1 | /****************************************************************************** |
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2 | * |
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3 | * @file ads1260.c |
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4 | * @author ECS, Joseph Zimmer |
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5 | * @version V1.0.0 |
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6 | * @date 25-04-2019 |
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7 | * @brief |
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8 | * INITIALISIERUNG ADS1260: |
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9 | * 0. Setze die ADC Zustandsvariable auf ADC_STATE_INITIALIZE |
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10 | * PIN CONFIG: |
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11 | * 1. ADC_POWER_DOWN_Pin auf 1 setzen -> ADS power up |
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12 | * 2. ADC_RESET_Pin auf 1 setzen -> ADS reset Zustand abschalten |
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13 | * 3. ADC_START_CONV_Pin auf 0 setzen -> ADS in Konfigurationsmodus ADC läuft nicht |
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14 | * |
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15 | * WARTEN AUF: |
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16 | * 4. // warten bis ADC_DATA_READY_Pin auf 1 ist -> wenn auf 1 ist dann ist der Chip bereit für Kommunikation // |
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17 | * wurde ersetzt durch einschalten des Data Ready Interrupts dieser löst bei fallender Flanke aus |
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18 | * die fallende Flanke wird generiert durch den ADS1260 wenn dieser mit der Data Conversion fertig ist. |
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19 | * |
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20 | * REGISTER CONFIG: |
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21 | * 5. interne Referenzspannung 2.500V wird eingeschaltet, lässt sich mit ADC vom STM32G0 messen |
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22 | * 6. Samplerate auf 10 sps- setzen |
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23 | * 7. Filter auf FIR setzen |
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24 | * 8. Conversion Mode auf Mode Pulse setzen -> nur eine Conversion wenn gestartet muss für jede neue Conversion neu aufgerufen werden |
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25 | * 9. Schalte AIN0 und AIN1 auf dem ADC |
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26 | * 10. Self Offset Calibration wird durchgeführt |
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27 | * |
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28 | * x. Setze die ADC Zustandsvariable auf ADC_STATE_CONVERSION_STOPPED |
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29 | * |
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30 | * |
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31 | * |
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32 | * |
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33 | * REGISTER SCHREIBEN: |
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34 | * |
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35 | * 1.Byte 0x40 + Register Adresse || 2.Byte 0xXX Daten |
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36 | * Bsp: |
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37 | * Code 0x40 + Register 0x06, Daten 0x10 |
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38 | * => 1.Byte 0x46, => 2.Byte 0x10 |
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39 | * |
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40 | * |
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41 | * |
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42 | ******************************************************************************/ |
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43 | |
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44 | // --- INCLUDES ----------------------------------------------------------------- |
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45 | #include "ads1260.h" |
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46 | #include "spi.h" |
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47 | #include "math.h" |
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48 | #include "main.h" |
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49 | #include "eeprom.h" |
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50 | #include <stdio.h> |
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51 | // --- EXTERNE VARIABLEN -------------------------------------------------------- |
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52 | |
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53 | // --- LOKALE DEFINES - bitte hier dokumentieren -------------------------------- |
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54 | |
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55 | /*************************************************************************************************************/ |
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56 | |
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57 | /*************************************************************************************************************/ |
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58 | #define VOLTAGE (0) |
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59 | #define CURRENT (1) |
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60 | #define TEMPERATURE (2) |
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61 | |
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62 | #define DEFAULT_ADS1260_TRANSMIT_TIMEOUT (10) |
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63 | #define DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT (10) |
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64 | #define ADS1260_SELF_OFFSET_CALIBRATION_TIMEOUT (2000) // > 16 * sampletime muss eingestellt werden |
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65 | #define ADS1260_SYSTEM_OFFSET_CALIBRATION_TIMEOUT (2000) |
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66 | #define ADS1260_GAIN_CALIBRATION_TIMEOUT (2000) |
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67 | |
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68 | #define COMMAND_POS (0) |
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69 | #define SEND_DATA_POS (1) |
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70 | #define RECEIVE_DATA_POS (2) |
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71 | |
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72 | #define SEND_DATA_NR_OF_BYTES (2) |
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73 | #define RECEIVE_DATA_NR_OF_BYTES (3) |
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74 | #define DATA_ARRAY_SIZE (3) |
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75 | |
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76 | #define REGISTER_READ_COMMAND (1 << 5) |
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77 | #define REGISTER_WRITE_COMMAND (1 << 6) |
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78 | |
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79 | #define SYSTEM_OFFSET_CALIBRATION_COMMAND (0x16) |
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80 | #define GAIN_CALIBRATION_COMMAND (0x17) |
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81 | #define SELF_OFFSET_CALIBRATION_COMMAND (0x19) |
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82 | // Register Number: |
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83 | #define DATA_RATE_REGISTER (0x02) |
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84 | #define DATA_RATE_2_5 (0b00000 << 3) |
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85 | #define DATA_RATE_5 (0b00001 << 3) |
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86 | #define DATA_RATE_10 (0b00010 << 3) |
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87 | #define DATA_RATE_16_6 (0b00011 << 3) |
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88 | #define DATA_RATE_20 (0b00100 << 3)/*Default*/ |
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89 | #define DATA_RATE_50 (0b00101 << 3) |
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90 | #define DATA_RATE_60 (0b00110 << 3) |
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91 | #define DATA_RATE_100 (0b00111 << 3) |
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92 | #define DATA_RATE_400 (0b01000 << 3) |
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93 | #define DATA_RATE_1200 (0b01001 << 3) |
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94 | #define DATA_RATE_2400 (0b01010 << 3) |
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95 | #define DATA_RATE_4800 (0b01011 << 3) |
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96 | #define DATA_RATE_7200 (0b01100 << 3) |
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97 | #define DATA_RATE_14400 (0b01101 << 3) |
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98 | #define DATA_RATE_19200 (0b01110 << 3) |
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99 | #define DATA_RATE_25600 (0b01111 << 3) |
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100 | #define DATA_RATE_40000 (0b10000 << 3) |
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101 | #define DATA_RATE_RESET_MASK ~(0b11111 << 3) |
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102 | |
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103 | #define DIGITAL_FILTER_REGISTER (DATA_RATE_REGISTER) |
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104 | #define FILTER_SINC1 (0b000 << 0) |
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105 | #define FILTER_SINC2 (0b001 << 0) |
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106 | #define FILTER_SINC3 (0b010 << 0) |
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107 | #define FILTER_SINC4 (0b011 << 0) |
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108 | #define FILTER_FIR (0b100 << 0)/*Default*/ |
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109 | #define FILTER_RESET_MASK ~(0b111 << 0) |
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110 | |
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111 | |
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112 | #define CHOP_MODE_REGISTER (0x03) |
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113 | #define CHOP_MODE_NORMAL (0b00 << 5)/*Default*/ |
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114 | #define CHOP_MODE_CHOP_MODE (0b01 << 5) |
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115 | #define CHOP_MODE_RESET_MASK ~(0b11 << 5)/*Default*/ |
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116 | |
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117 | #define CONVERSION_MODE_REGISTER (CHOP_MODE_REGISTER) |
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118 | #define CONVERSION_MODE_CONTINIOUS (0 << 4)/*Default*/ |
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119 | #define CONVERSION_MODE_PULSE (1 << 4) |
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120 | #define CONVERSION_MODE_RESET_MASK ~(1 << 4) |
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121 | |
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122 | #define CONVERSION_START_DELAY_REGISTER (CHOP_MODE_REGISTER) |
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123 | #define CONVERSION_START_DELAY_0u (0b0000 << 0) |
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124 | #define CONVERSION_START_DELAY_50u (0b0001 << 0)/*Default*/ |
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125 | #define CONVERSION_START_DELAY_59u (0b0010 << 0) |
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126 | #define CONVERSION_START_DELAY_67u (0b0011 << 0) |
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127 | #define CONVERSION_START_DELAY_85u (0b0100 << 0) |
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128 | #define CONVERSION_START_DELAY_119u (0b0101 << 0) |
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129 | #define CONVERSION_START_DELAY_189u (0b0110 << 0) |
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130 | #define CONVERSION_START_DELAY_328u (0b0111 << 0) |
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131 | #define CONVERSION_START_DELAY_605u (0b1000 << 0) |
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132 | #define CONVERSION_START_DELAY_1_16m (0b1001 << 0) |
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133 | #define CONVERSION_START_DELAY_2_27m (0b1010 << 0) |
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134 | #define CONVERSION_START_DELAY_4_49m (0b1011 << 0) |
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135 | #define CONVERSION_START_DELAY_8_89m (0b1100 << 0) |
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136 | #define CONVERSION_START_DELAY_17_8m (0b1101 << 0) |
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137 | #define CONVERSION_START_RESET_MASK ~(0b1111 << 0) |
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138 | |
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139 | |
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140 | |
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141 | #define REFERENCE_CONFIG_REGISTER (0x06) |
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142 | #define INTERNAL_REFERENCE_ENABLE (1 << 4) |
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143 | #define INTERNAL_REFERENCE_DISABLE (0 << 4)/*Default*/ |
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144 | #define INTERNAL_REFERENCE_RESET_MASK ~(1 << 4) |
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145 | |
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146 | #define SELECT_POS_REFERENCE_INTERNAL (0b00 << 2) |
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147 | #define SELECT_POS_REFERENCE_AVDD (0b01 << 2)/*Default*/ |
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148 | #define SELECT_POS_REFERENCE_AIN0 (0b10 << 2) |
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149 | #define SELECT_POS_REFERENCE_AIN2 (0b11 << 2) |
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150 | |
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151 | #define SELECT_NEG_REFERENCE_INTERNAL (0b00 << 0) |
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152 | #define SELECT_NEG_REFERENCE_AVSS (0b01 << 0)/*Default*/ |
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153 | #define SELECT_NEG_REFERENCE_AIN1 (0b10 << 0) |
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154 | #define SELECT_NEG_REFERENCE_AIN3 (0b11 << 0) |
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155 | |
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156 | #define SELECT_REFERENCE_RESET_MASK ~(0b1111 << 0) |
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157 | |
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158 | #define OFFSET_CAL_LOW_BYTE_REG (0x07) |
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159 | #define OFFSET_CAL_MID_BYTE_REG (0x08) |
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160 | #define OFFSET_CAL_HIGH_BYTE_REG (0x09) |
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161 | |
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162 | #define FSCALE_CAL_LOW_BYTE_REG (0x0A) |
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163 | #define FSCALE_CAL_MID_BYTE_REG (0x0B) |
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164 | #define FSCALE_CAL_HIGH_BYTE_REG (0x0C) |
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165 | |
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166 | #define INPUT_MUX_REGISTER (0x11) |
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167 | |
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168 | #define POS_INPUT_MUX_SELECT_AINCOM (0b0000 << 4) |
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169 | #define POS_INPUT_MUX_SELECT_AIN0 (0b0001 << 4) |
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170 | #define POS_INPUT_MUX_SELECT_AIN1 (0b0010 << 4) |
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171 | #define POS_INPUT_MUX_SELECT_AIN2 (0b0011 << 4) |
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172 | #define POS_INPUT_MUX_SELECT_AIN3 (0b0100 << 4) |
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173 | #define POS_INPUT_MUX_SELECT_AIN4 (0b0101 << 4) |
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174 | #define POS_INPUT_MUX_SELECT_INT_TEMP_SENSOR_POS (0b1011 << 4) |
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175 | #define POS_INPUT_MUX_SELECT_INT_AVDD_DIV4_POS (0b1100 << 4) |
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176 | #define POS_INPUT_MUX_SELECT_INT_DVDD_DIV4_POS (0b1101 << 4) |
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177 | #define POS_INPUT_MUX_SELECT_INPUTS_OPEN (0b1110 << 4) |
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178 | #define POS_INPUT_MUX_SELECT_VCOM (0b1111 << 4) |
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179 | |
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180 | #define NEG_INPUT_MUX_SELECT_AINCOM (0b0000 << 4) |
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181 | #define NEG_INPUT_MUX_SELECT_AIN0 (0b0001 << 0) |
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182 | #define NEG_INPUT_MUX_SELECT_AIN1 (0b0010 << 0) |
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183 | #define NEG_INPUT_MUX_SELECT_AIN2 (0b0011 << 0) |
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184 | #define NEG_INPUT_MUX_SELECT_AIN3 (0b0100 << 0) |
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185 | #define NEG_INPUT_MUX_SELECT_AIN4 (0b0101 << 0) |
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186 | #define NEG_INPUT_MUX_SELECT_INT_TEMP_SENSOR_NEG (0b1011 << 0) |
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187 | #define NEG_INPUT_MUX_SELECT_INT_AVDD_DIV4_NEG (0b1100 << 0) |
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188 | #define NEG_INPUT_MUX_SELECT_INT_DVDD_DIV4_NEG (0b1101 << 0) |
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189 | #define NEG_INPUT_MUX_SELECT_INPUTS_OPEN (0b1110 << 0) |
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190 | #define NEG_INPUT_MUX_SELECT_VCOM (0b1111 << 0) |
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191 | #define INPUT_MUX_SELECT_RESET_MASK ~(0b00000000 << 0) |
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192 | |
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193 | // --- LOKALE TYPE DEFS - bitte hier dokumentieren------------------------------- |
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194 | |
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195 | // --- DEFINITIONEN GLOBALER VARIABLEN - Bitte in Header dokumentieren ---------- |
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196 | uint32_t ahCounter[50]; |
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197 | int32_t nrOfValuesCurrent; |
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198 | int32_t avgValWithOffsetCompensation; |
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199 | int32_t avgValWithOffsetCommonModeOffsetCorrection; |
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200 | int32_t avgValWithOffsetCommonModeOffsetTemperatureCorrection; |
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201 | double current; |
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202 | double currentWithGainCorrection; |
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203 | double currentWithGainAndGainShuntTempCorrection; |
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204 | //double currentWithGainAndGainShuntTempAndGainChipTempCorrection; |
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205 | // --- LOKALE VARIABLEN - bitte hier dokumentieren ------------------------------ |
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206 | static adc_state_enum_t ads1260DataCoversionState; |
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207 | |
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208 | static const uint8_t RREG_BaseOpcode = 0x20; // Read Register CMD |
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209 | static const uint8_t WREG_BaseOpcode = 0x40; // Write Register CMD |
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210 | static const uint8_t LOCK_Opcode = 0xF2; // Lock registers modification CMD |
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211 | static const uint8_t RDATA_Opcode = 0x12; // Read conversion DATA CMD |
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212 | |
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213 | static const uint8_t MODE3_regAdr = 0x05; // MODE3 register address |
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214 | static const uint8_t MODE3_STATENB = 6U; // Status enable bit position in MODE3 register |
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215 | static const uint8_t MODE3_CRCENB = 5U; // CRC enable bit position in MODE3 register |
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216 | |
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217 | static const uint8_t STATUS_regAdr = 0x01; |
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218 | static const uint8_t STATUS_LOCK = 7U; |
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219 | static const uint8_t STATUS_CRCERR = 6U; |
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220 | static const uint8_t STATUS_REFL_ALM = 3U; |
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221 | static const uint8_t STATUS_DRDY = 2U; |
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222 | |
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223 | |
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224 | static const uint8_t arbitraryByte = 0xEC; // Don't care byte |
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225 | static const uint8_t replyHeader = 0xFF; |
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226 | |
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227 | // --- LOKALE FUNKTIONS PROTOTYPEN ---------------------------------------------- |
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228 | static void ADS_1260_SetConversionMode(SPI_HandleTypeDef * hspi, uint8_t conversionMode); |
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229 | static void ADS_1260_SetInternalReference(SPI_HandleTypeDef * hspi); |
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230 | static void ADS_1260_SetExternalReference(SPI_HandleTypeDef * hspi); |
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231 | static void ADS_1260_InputMuxSelect(SPI_HandleTypeDef * hspi, uint8_t muxSelect); |
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232 | static void ADS_1260_SetChopMode(SPI_HandleTypeDef * hspi, uint8_t chopMode); |
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233 | static void ADS_1260_ActivateStatusData(void); |
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234 | static void ADS_1260_ActivateLock(void); |
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235 | |
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236 | static uint32_t ADS1260_ProcessCurrent(int32_t current); |
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237 | volatile uint32_t newCurrentValue=0; |
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238 | //static uint32_t ADS1260_ProcessVoltage(int32_t voltage, sys_data_t * data); |
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239 | //static uint32_t ADS1260_ProcessTemperature(int32_t temperature, sys_data_t * data); |
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240 | |
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241 | // Funktionen werden extern |
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242 | |
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243 | // --- LOKALE FUNKTIONEN - bitte hier dokumentieren ----------------------------- |
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244 | |
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245 | /* |
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246 | * @brief Einstellung Conversion Mode |
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247 | * @param kein |
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248 | * @retval kein |
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249 | */ |
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250 | static void ADS_1260_SetConversionMode(SPI_HandleTypeDef * hspi, uint8_t conversionMode) |
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251 | { |
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252 | uint8_t spiData[DATA_ARRAY_SIZE]; |
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253 | // Read |
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254 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + CONVERSION_MODE_REGISTER); |
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255 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
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256 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, RECEIVE_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
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257 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
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258 | // Modify |
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259 | spiData[SEND_DATA_POS] = ((spiData[RECEIVE_DATA_POS] & CONVERSION_MODE_RESET_MASK) | conversionMode); // so gefriemelt dass der Conversionsmodus gesetzt wird und der Rest des Registers unberührt beleibt |
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260 | // Write |
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261 | spiData[COMMAND_POS] = (REGISTER_WRITE_COMMAND + CONVERSION_MODE_REGISTER); |
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262 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
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263 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, SEND_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
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264 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
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265 | // Read |
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266 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + CONVERSION_MODE_REGISTER); |
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267 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
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268 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, RECEIVE_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
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269 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
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270 | // Verify |
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271 | if((spiData[RECEIVE_DATA_POS] & conversionMode) != conversionMode) |
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272 | { |
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273 | printf("ERROR ADS_1260_SetConversionMode\n"); |
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274 | while(1); |
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275 | } |
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276 | |
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277 | } |
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278 | |
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279 | /* |
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280 | * @brief Einstellung Chop Mode |
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281 | * @param kein |
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282 | * @retval kein |
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283 | */ |
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284 | static void ADS_1260_SetChopMode(SPI_HandleTypeDef * hspi, uint8_t chopMode) |
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285 | { |
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286 | uint8_t spiData[DATA_ARRAY_SIZE]; |
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287 | // Read |
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288 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + CHOP_MODE_REGISTER); |
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289 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
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290 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, RECEIVE_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
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291 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
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292 | // Modify |
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293 | spiData[SEND_DATA_POS] = ((spiData[RECEIVE_DATA_POS] & CHOP_MODE_RESET_MASK) | chopMode); // so gefriemelt dass der Conversionsmodus gesetzt wird und der Rest des Registers unberührt beleibt |
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294 | // Write |
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295 | spiData[COMMAND_POS] = (REGISTER_WRITE_COMMAND + CHOP_MODE_REGISTER); |
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296 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
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297 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, SEND_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
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298 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
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299 | // Read |
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300 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + CHOP_MODE_REGISTER); |
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301 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
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302 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, RECEIVE_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
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303 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
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304 | // Verify |
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305 | if((spiData[RECEIVE_DATA_POS] & chopMode) != chopMode) |
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306 | { |
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307 | printf("ERROR ADS_1260_SetChopMode\n"); |
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308 | while(1); |
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309 | } |
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310 | } |
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311 | |
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312 | /* |
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313 | * @brief Einstellung Datarate |
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314 | * @param kein |
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315 | * @retval kein |
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316 | */ |
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317 | void ADS_1260_SetDataRate(SPI_HandleTypeDef * hspi, uint8_t dataRate) |
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318 | { |
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319 | uint8_t spiData[DATA_ARRAY_SIZE]; |
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320 | // Read |
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321 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + DATA_RATE_REGISTER); |
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322 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
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323 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, RECEIVE_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
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324 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
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325 | // Modify |
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326 | spiData[SEND_DATA_POS] = ((spiData[RECEIVE_DATA_POS] & DATA_RATE_RESET_MASK) | dataRate); // so gefriemelt dass die Datarate gesetzt wird und der Rest des Registers unberührt beleibt |
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327 | // Write |
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328 | spiData[COMMAND_POS] = (REGISTER_WRITE_COMMAND + DATA_RATE_REGISTER); |
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329 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
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330 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, SEND_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
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331 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
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332 | // Read |
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333 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + DATA_RATE_REGISTER); |
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334 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
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335 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, RECEIVE_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
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336 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
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337 | // Verify |
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338 | if((spiData[RECEIVE_DATA_POS] & dataRate) != dataRate) |
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339 | { |
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340 | printf("ERROR ADS_1260_SetDataRate\n"); |
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341 | while(1); |
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342 | } |
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343 | |
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344 | } |
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345 | |
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346 | /* |
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347 | * @brief Einstellung Filtertyp |
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348 | * @param kein |
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349 | * @retval kein |
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350 | */ |
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351 | void ADS_1260_SetDigitalFilter(SPI_HandleTypeDef * hspi, uint8_t digitalFilter) |
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352 | { |
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353 | uint8_t spiData[DATA_ARRAY_SIZE]; |
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354 | // Read |
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355 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + DIGITAL_FILTER_REGISTER); |
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356 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
357 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, RECEIVE_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
358 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
359 | // Modify |
---|
360 | spiData[SEND_DATA_POS] = ((spiData[RECEIVE_DATA_POS] & FILTER_RESET_MASK) | digitalFilter); // so gefriemelt dass der Filter gesetzt wird und der Rest des Registers unberührt beleibt |
---|
361 | // Write |
---|
362 | spiData[COMMAND_POS] = (REGISTER_WRITE_COMMAND + DIGITAL_FILTER_REGISTER); |
---|
363 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
364 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, SEND_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
365 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
366 | // Read |
---|
367 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + DIGITAL_FILTER_REGISTER); |
---|
368 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
369 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, RECEIVE_DATA_NR_OF_BYTES, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
370 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
371 | // Verify |
---|
372 | if((spiData[RECEIVE_DATA_POS] & digitalFilter) != digitalFilter) |
---|
373 | { |
---|
374 | printf("ERROR ADS_1260_SetDigitalFilter\n"); |
---|
375 | while(1); |
---|
376 | } |
---|
377 | } |
---|
378 | |
---|
379 | /* |
---|
380 | * @brief schaltet über die Mux die Eingänge auf den ADC |
---|
381 | * @param kein |
---|
382 | * @retval kein |
---|
383 | */ |
---|
384 | static void ADS_1260_InputMuxSelect(SPI_HandleTypeDef * hspi, uint8_t muxSelect) |
---|
385 | { |
---|
386 | // Write |
---|
387 | uint8_t spiData[3] = {(REGISTER_WRITE_COMMAND + INPUT_MUX_REGISTER), muxSelect, 0}; |
---|
388 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
389 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, 2, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
390 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
391 | // Read |
---|
392 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + INPUT_MUX_REGISTER); |
---|
393 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
394 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, 3, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
395 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
396 | // Verifie |
---|
397 | if(spiData[RECEIVE_DATA_POS] != muxSelect) |
---|
398 | { |
---|
399 | printf("ERROR ADS_1260_InputMuxSelect\n"); |
---|
400 | // while(1); |
---|
401 | } |
---|
402 | } |
---|
403 | |
---|
404 | |
---|
405 | /* |
---|
406 | * @brief schaltet die interne 2.500 Volt Referenzspannungsquelle ein |
---|
407 | * und wählt diese als Referenspannungsquelle aus |
---|
408 | * @param kein |
---|
409 | * @retval kein |
---|
410 | */ |
---|
411 | static void ADS_1260_SetInternalReference(SPI_HandleTypeDef * hspi) |
---|
412 | { |
---|
413 | // Write |
---|
414 | uint8_t spiData[3] = {(REGISTER_WRITE_COMMAND + REFERENCE_CONFIG_REGISTER), (INTERNAL_REFERENCE_ENABLE + SELECT_POS_REFERENCE_INTERNAL + SELECT_NEG_REFERENCE_INTERNAL), 0}; |
---|
415 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
416 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, 2, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
417 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
418 | // Read |
---|
419 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + REFERENCE_CONFIG_REGISTER); |
---|
420 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
421 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, 3, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
422 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
423 | // Verifie |
---|
424 | if(spiData[RECEIVE_DATA_POS] != (INTERNAL_REFERENCE_ENABLE + SELECT_POS_REFERENCE_INTERNAL + SELECT_NEG_REFERENCE_INTERNAL)) |
---|
425 | { |
---|
426 | printf("ERROR ADS_1260_SetInternalReference\n"); |
---|
427 | while(1); |
---|
428 | } |
---|
429 | |
---|
430 | } |
---|
431 | |
---|
432 | |
---|
433 | /* |
---|
434 | * @brief schaltet die interne 2.500 Volt Referenzspannungsquelle ein |
---|
435 | * und wählt diese als Referenspannungsquelle aus |
---|
436 | * @param kein |
---|
437 | * @retval kein |
---|
438 | */ |
---|
439 | static void ADS_1260_SetExternalReference(SPI_HandleTypeDef * hspi) |
---|
440 | { |
---|
441 | // Write |
---|
442 | uint8_t spiData[3] = {(REGISTER_WRITE_COMMAND + REFERENCE_CONFIG_REGISTER), (INTERNAL_REFERENCE_DISABLE + SELECT_POS_REFERENCE_AIN0 + SELECT_NEG_REFERENCE_AIN1), 0}; |
---|
443 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
444 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, 2, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
445 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
446 | // Read |
---|
447 | spiData[COMMAND_POS] = (REGISTER_READ_COMMAND + REFERENCE_CONFIG_REGISTER); |
---|
448 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
449 | HAL_SPI_TransmitReceive(hspi, spiData, spiData, 3, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
450 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
451 | // Verifie |
---|
452 | if(spiData[RECEIVE_DATA_POS] != (INTERNAL_REFERENCE_DISABLE + SELECT_POS_REFERENCE_AIN0 + SELECT_NEG_REFERENCE_AIN1)) |
---|
453 | { |
---|
454 | printf("ERROR ADS_1260_SetInternalReference\n"); |
---|
455 | while(1); |
---|
456 | } |
---|
457 | |
---|
458 | } |
---|
459 | |
---|
460 | |
---|
461 | |
---|
462 | |
---|
463 | |
---|
464 | /************************************************** KAL *****************************************************************/ |
---|
465 | /* |
---|
466 | * @brief Software Offsetkalibrierung für die Strommessung. |
---|
467 | * Voraussetzungen: Es darf kein Strom über den Shunt fließen. |
---|
468 | * Warten bis Mittelwertbildung abgeschlossen ist. |
---|
469 | * @param kein |
---|
470 | * @retval kein |
---|
471 | */ |
---|
472 | void ADS_1260_BatteryCurrentOffsetCalibrationStart(sys_data_t * data) |
---|
473 | { |
---|
474 | data->s.parameter.batteryCurrentOffset = data->s.values.battryCurrentRaw; |
---|
475 | data->s.parameter.batteryCurrentOffsetRefTemperatureShunt = data->s.values.shuntTemperature; |
---|
476 | data->s.parameter.batteryCurrentOffsetRefTemperatureChip = data->s.values.chipTemperature; |
---|
477 | data->s.parameter.batteryCurrentOffsetRefshuntVoltage = data->s.values.shuntVoltage; |
---|
478 | EEPROM_storeConfig(&sys_data,0); |
---|
479 | } |
---|
480 | |
---|
481 | void ADS_1260_BatteryCurrentOffsetCommonModeErrorComepensationStart(sys_data_t * data) |
---|
482 | { |
---|
483 | //speichere geänderte CommonMode Spannung |
---|
484 | data->s.parameter.batteryCurrentOffsetCommonModeCalibrationVoltage = data->s.values.shuntVoltage; |
---|
485 | |
---|
486 | //Delta berechnen |
---|
487 | //Kompensationswert speichern in ADC Steps *1000 pro mV Common Mode Voltage |
---|
488 | int32_t deltaU = data->s.parameter.batteryCurrentOffsetCommonModeCalibrationVoltage - data->s.parameter.batteryCurrentOffsetRefshuntVoltage; |
---|
489 | |
---|
490 | //Entstandene Abweichung durch Common Mode Fehler, ist aktueller Messwert mit vorherigen Kompensationen |
---|
491 | int32_t deltaADC = avgValWithOffsetCompensation; |
---|
492 | int32_t compensationFactor = deltaADC * 1000 / deltaU; |
---|
493 | data->s.parameter.batteryCurrentOffsetCommonModeCompensationFactor = compensationFactor; |
---|
494 | EEPROM_storeConfig(&sys_data,0); |
---|
495 | } |
---|
496 | |
---|
497 | void ADS_1260_BatteryCurrentOffsetTemperatureErrorComepensationStart(void) |
---|
498 | { |
---|
499 | //speichere geänderte Temperatur |
---|
500 | //Achtung die Offset Kompeensation machen wir hier absichtlich mit der Chip Temperatur und nicht mit der Shunt Temperatur |
---|
501 | //Die Chip spiegeelt genaueer die Temperatur der ADC und Strommessverstärker wieder. Der Offset driftt hängt von der Temp der ADC/VREF/Messverstrker zusammen |
---|
502 | //und nicht mit der Temp der Shunt Widerstände |
---|
503 | sys_data.s.parameter.batteryCurrentOffsetTemperatureCalibrationTemperature = sys_data.s.values.chipTemperature; |
---|
504 | |
---|
505 | |
---|
506 | //Delta berechnen |
---|
507 | int32_t deltaT = sys_data.s.parameter.batteryCurrentOffsetTemperatureCalibrationTemperature - sys_data.s.parameter.batteryCurrentOffsetRefTemperatureChip; |
---|
508 | int32_t deltaADC = avgValWithOffsetCommonModeOffsetCorrection; |
---|
509 | int32_t compensationFactor = deltaADC * 1000 / deltaT; |
---|
510 | sys_data.s.parameter.batteryCurrentOffsetTemperatureCompensationFactor = compensationFactor; |
---|
511 | EEPROM_storeConfig(&sys_data,0); |
---|
512 | } |
---|
513 | |
---|
514 | |
---|
515 | |
---|
516 | |
---|
517 | void ADS_1260_BatteryCurrentGainCalibrationStart(sys_data_t * data) |
---|
518 | { |
---|
519 | double helper; |
---|
520 | printf("--- Gain CAL ---"); |
---|
521 | if(data->s.parameter.batteryCurrentGainRefCurrent == 0) // Fehler |
---|
522 | { |
---|
523 | printf("ADS_1260_BatteryCurrentGainCalibrationStart: ERROR IN CALIBRATION, NO REFERENCE CURRENT!\n"); |
---|
524 | return; |
---|
525 | } |
---|
526 | |
---|
527 | |
---|
528 | |
---|
529 | // Sollstrom durch Batteriestrom teilen |
---|
530 | // Sollstrom ist in mA also umrechen in A, da Batteriestrom ("current") auch in A |
---|
531 | // ACHTUNG Das Punkt 0 ist wichtig, muss mit Fließkomma Berechnung durchgeführt werden!!!! |
---|
532 | helper = (data->s.parameter.batteryCurrentGainRefCurrent / 1000.0 ) / current; |
---|
533 | // in den Batteriegain umrechnen |
---|
534 | data->s.parameter.batteryCurrentGainCorrectionFaktor = (helper * 1000000.0); |
---|
535 | // schreibe Temperatur bei der kalibriert wurde |
---|
536 | data->s.parameter.batteryCurrentGainRefTempShunt = data->s.values.shuntTemperature; |
---|
537 | data->s.parameter.batteryCurrentGainRefTempChip = data->s.values.chipTemperature; |
---|
538 | |
---|
539 | printf("I (without compensation)=%f\n", current); |
---|
540 | printf("I Referenz=%f\n", data->s.parameter.batteryCurrentGainRefCurrent / 1000.0); |
---|
541 | printf("Tshunt=%f\n", data->s.parameter.batteryCurrentGainRefTempShunt/100.0); |
---|
542 | printf("Tship=%f\n", data->s.parameter.batteryCurrentGainRefTempChip/100.0); |
---|
543 | printf("Korrekturfaktor=%f\n", data->s.parameter.batteryCurrentGainCorrectionFaktor*1000000.0 ); |
---|
544 | printf("--- Gain CAL ENDE---"); |
---|
545 | EEPROM_storeConfig(&sys_data,0); |
---|
546 | } |
---|
547 | //Self Heat Kompensation |
---|
548 | void ADS_1260_BatteryCurrentGainTemperatureCalibrationShuntStart(void) |
---|
549 | { |
---|
550 | double helper; |
---|
551 | printf("--- Gain Drift CAL ---"); |
---|
552 | //speichere aktuelle Temperatur |
---|
553 | sys_data.s.parameter.batteryCurrentGainTemperatureCalibrationShuntTemperature = sys_data.s.values.shuntTemperature; |
---|
554 | printf("Actual T=%f C\n", sys_data.s.parameter.batteryCurrentGainTemperatureCalibrationShuntTemperature/100.0); |
---|
555 | //Temperaturänderung berechnen |
---|
556 | int32_t deltaTShunt = ( sys_data.s.values.shuntTemperature - sys_data.s.parameter.batteryCurrentGainRefTempShunt); |
---|
557 | printf("delta T=%f C\n", deltaTShunt/100.0); |
---|
558 | |
---|
559 | helper = currentWithGainCorrection; |
---|
560 | printf("Acutal I=%f A(without gain temp drift correction)\n", currentWithGainCorrection); |
---|
561 | printf("Ref I=%f\n", sys_data.s.parameter.batteryCurrentGainRefCurrent/1000.0); |
---|
562 | // Sollstrom durch Batteriestrom teilen |
---|
563 | // wir erhalten den Korrektur Faktor für die aktuelle Temperatur |
---|
564 | helper = (sys_data.s.parameter.batteryCurrentGainRefCurrent/1000.0) / helper; |
---|
565 | |
---|
566 | // Speichere Korrekturfaktor pro Schritt Temperaturänderung |
---|
567 | helper = helper - 1.0; |
---|
568 | |
---|
569 | helper = helper / (deltaTShunt); |
---|
570 | |
---|
571 | //Speicher um Faktor 10000000 erhöht um Kommazahlen zu vermeiden |
---|
572 | sys_data.s.parameter.batteryCurrentGainTemperatureCompensationShuntFactor = helper*1000000000.0; |
---|
573 | |
---|
574 | printf("Korrekturfaktor=%f [ 1 / Celsius]\n", (sys_data.s.parameter.batteryCurrentGainTemperatureCompensationShuntFactor / 1000000000.0 * 100) + 1.0 ); |
---|
575 | printf("--- Gain Drift CAL ENDE ---"); |
---|
576 | EEPROM_storeConfig(&sys_data,0); |
---|
577 | } |
---|
578 | |
---|
579 | ////Ambient Temperature |
---|
580 | //void ADS_1260_BatteryCurrentGainTemperatureCalibrationChipStart() |
---|
581 | //{ |
---|
582 | // double helper; |
---|
583 | // //speichere geänderte Temperatur |
---|
584 | // sys_data.s.parameter.batteryCurrentGainTemperatureCalibrationChipTemperature = sys_data.s.values.chipTemperature; |
---|
585 | // int32_t deltaT = sys_data.s.values.chipTemperature - sys_data.s.parameter.batteryCurrentGainRefTempChip; |
---|
586 | // |
---|
587 | // |
---|
588 | // helper = currentWithGainAndGainShuntTempCorrection; |
---|
589 | // // Sollstrom durch Batteriestrom teilen |
---|
590 | // // wir erhalten den Korrektur Faktor für die aktuelle Temperatur |
---|
591 | // helper = (sys_data.s.parameter.batteryCurrentGainRefCurrent/1000.0) / helper; |
---|
592 | // |
---|
593 | // // Speichere Korrekturfaktor pro Schritt Temperaturänderung |
---|
594 | // helper = helper - 1.0; |
---|
595 | // |
---|
596 | // helper = helper / deltaT; |
---|
597 | // |
---|
598 | // //Speicher um Faktor 10000000 erhöht um Kommazahlen zu vermeiden |
---|
599 | // sys_data.s.parameter.batteryCurrentGainTemperatureCompensationChipFactor = helper*1000000000.0; |
---|
600 | // |
---|
601 | //} |
---|
602 | |
---|
603 | |
---|
604 | /* |
---|
605 | * @brief Rohwerte ADC in Strom umrechnen |
---|
606 | * @param kein |
---|
607 | * @retval kein |
---|
608 | */ |
---|
609 | |
---|
610 | #define BATTERY_CURRENT_FILTER 2 |
---|
611 | |
---|
612 | static uint32_t ADS1260_ProcessCurrent(int32_t newval) |
---|
613 | { |
---|
614 | static signed long avgsum = 0; |
---|
615 | static int meas_counter; |
---|
616 | if (meas_counter < INT32_MAX) meas_counter++; |
---|
617 | int32_t avgval; |
---|
618 | |
---|
619 | // Filterlängen in 2er-Potenzen --> Compiler optimiert |
---|
620 | avgsum -= avgsum/ BATTERY_CURRENT_FILTER; |
---|
621 | avgsum += newval; |
---|
622 | avgval = avgsum / BATTERY_CURRENT_FILTER; |
---|
623 | sys_data.s.values.battryCurrentRaw = avgval; |
---|
624 | /**********************Offset Kompensation:*******************************/ |
---|
625 | // Offset abziehen |
---|
626 | avgValWithOffsetCompensation = avgval - sys_data.s.parameter.batteryCurrentOffset; |
---|
627 | // Temperaturabhängiges Offset abziehen |
---|
628 | // in ADC Messwerten mal Abweichung von Referenttemperatur |
---|
629 | //current = current - ((sys_data.s.ads1260.s.offsetTemperatureFactorCurrent / 1000.0) * ((sys_data.s.device.parameter.shuntTemperature - sys_data.s.ads1260.s.refTempSoftwareOffsetCalibrationCurrent)/1000.0)); |
---|
630 | /**********************Offset Kompensation:*******************************/ |
---|
631 | |
---|
632 | |
---|
633 | /********************** START Common Mode Kompensation:*******************************/ |
---|
634 | //Berechne Änderung der aktuellen Spannung am Shunt zu der Spannung am shunt bei Kalibrierung |
---|
635 | int32_t commonModeDeltaU = ((int32_t)sys_data.s.values.shuntVoltage - (int32_t)sys_data.s.parameter.batteryCurrentOffsetRefshuntVoltage) ; |
---|
636 | int32_t commonModeErrorAdcSteps = (commonModeDeltaU * sys_data.s.parameter.batteryCurrentOffsetCommonModeCompensationFactor) / 1000.0 ; |
---|
637 | sys_data.s.values.batteryCurrentOffsetCommonModeCorrectionADCSteps = commonModeErrorAdcSteps; |
---|
638 | avgValWithOffsetCommonModeOffsetCorrection = avgValWithOffsetCompensation - commonModeErrorAdcSteps; |
---|
639 | /********************** ENDE Common Mode Kompensation:*******************************/ |
---|
640 | |
---|
641 | /********************** START Offset Temperature Kompensation*******************************/ |
---|
642 | //Berechne Änderung der aktuellen Spannung am Shunt zu der Spannung am shunt bei Kalibrierung |
---|
643 | //Achtung wir arbeiten für die Offset Temperatur Kompenssation mit der Chip Temperatur, nicht mit der Shunt Temperatur, vgl Kal. Faunktion |
---|
644 | double temperatureDeltaT = ((int32_t)sys_data.s.values.chipTemperature - (int32_t) sys_data.s.parameter.batteryCurrentOffsetRefTemperatureChip); |
---|
645 | int32_t temperatureErrorAdcSteps = (temperatureDeltaT * sys_data.s.parameter.batteryCurrentOffsetTemperatureCompensationFactor) / 1000.0 ; |
---|
646 | avgValWithOffsetCommonModeOffsetTemperatureCorrection = avgValWithOffsetCommonModeOffsetCorrection - temperatureErrorAdcSteps; |
---|
647 | /********************** ENDE Offset Temperature Kompensation *******************************/ |
---|
648 | |
---|
649 | |
---|
650 | |
---|
651 | |
---|
652 | // ADC Messwerte nach Mittwelwertbildung und Offset speichern |
---|
653 | //sys_data.s.ads1260.s.mwADCStepsWithOffsetCorrectionCurrent = current; |
---|
654 | |
---|
655 | // 250 resultiert aus 100µOhm Shunt + (Verstärkung Strommessverstärker = 20) * 2 -> Umrechnung in Strom |
---|
656 | // 200 resultiert aus 125µOhm Shunt + (Verstärkung Strommessverstärker = 20) * 2 -> Umrechnung in Strom |
---|
657 | // 2.5 = Vref, externe Referenz ist 3.0V |
---|
658 | // 0x800000 = ADC Auflösung |
---|
659 | #if (DEVICETYPE == 500) |
---|
660 | current = ((avgValWithOffsetCommonModeOffsetTemperatureCorrection * (double)3.0 * 200.0) / (double)0x800000); |
---|
661 | #elif (DEVICETYPE == 250) |
---|
662 | current = ((avgValWithOffsetCommonModeOffsetTemperatureCorrection * (double)3.0 * 100.0) / (double)0x800000); |
---|
663 | #elif (DEVICETYPE == 125) |
---|
664 | current = ((avgValWithOffsetCommonModeOffsetTemperatureCorrection * (double)3.0 * 50.0) / (double)0x800000); |
---|
665 | #else |
---|
666 | #error No valid device type |
---|
667 | #endif |
---|
668 | // Gain aus Sysdata |
---|
669 | currentWithGainCorrection = current * (sys_data.s.parameter.batteryCurrentGainCorrectionFaktor / 1000000.0); |
---|
670 | |
---|
671 | /**********************Gain Temperatur Kompensation:*******************************/ |
---|
672 | // Wenn sich in Abhängigkeit von der Temperatur das Gain ändert wird der Messwert mit einem Wert 1 +/- einem kleinen Faktor |
---|
673 | // der abhängig von der Temperaturabweichung ist multipliziert |
---|
674 | //ausgabe = ausgabe * ( 1 + ((sys_data.s.ads1260.s.gainTemperatureFactorCurrent * ((sys_data.s.device.parameter.shuntTemperature - sys_data.s.ads1260.s.refTempSoftwareGainCalibrationCurrent) / 1000.0) / 1000000000.0))); |
---|
675 | /**********************Gain Temperatur Kompensation:*******************************/ |
---|
676 | |
---|
677 | #ifdef PRINT_BATTERY_CURRENT |
---|
678 | // Ausgabe runden auf %f.3 |
---|
679 | printf("battery current = %.4fA\n", current); |
---|
680 | #endif |
---|
681 | |
---|
682 | |
---|
683 | |
---|
684 | |
---|
685 | double temperatureDeltaTShunt; |
---|
686 | //double temperatureDeltaTChip; |
---|
687 | temperatureDeltaTShunt = ((int32_t)sys_data.s.values.shuntTemperature - (int32_t) sys_data.s.parameter.batteryCurrentGainRefTempShunt); |
---|
688 | //temperatureDeltaTChip = ((int32_t)sys_data.s.values.chipTemperature - (int32_t) sys_data.s.parameter.batteryCurrentGainRefTempChip); |
---|
689 | |
---|
690 | // Gain Temperaturkompensation anwenden - Shunt |
---|
691 | double f = (sys_data.s.parameter.batteryCurrentGainTemperatureCompensationShuntFactor / 1000000000.0); |
---|
692 | double k = 1.0 + (temperatureDeltaTShunt * f); |
---|
693 | currentWithGainAndGainShuntTempCorrection = currentWithGainCorrection * k; |
---|
694 | |
---|
695 | |
---|
696 | // Gain Temperaturkompensation anwenden - Ambient |
---|
697 | //double f2 = (sys_data.s.parameter.batteryCurrentGainTemperatureCompensationChipFactor / 1000000000.0); |
---|
698 | //double k2 = 1.0 + ( temperatureDeltaTChip * f2); |
---|
699 | //k2=1; //Testabschaltung |
---|
700 | //currentWithGainAndGainShuntTempAndGainChipTempCorrection = currentWithGainAndGainShuntTempCorrection * k2; |
---|
701 | |
---|
702 | |
---|
703 | |
---|
704 | // printf("i=%f A. ist=%f, fs=%f, dTs=%f\n", currentWithGainCorrection, currentWithGainAndGainShuntTempCorrection, k, temperatureDeltaTShunt ); |
---|
705 | |
---|
706 | //Endergebniss in mA speichern |
---|
707 | #if (DEVICETYPE == 500) |
---|
708 | if ((currentWithGainAndGainShuntTempCorrection > 550.0) || (currentWithGainAndGainShuntTempCorrection < -550.0)) |
---|
709 | { |
---|
710 | sys_data.s.values.batteryCurrent = sys_data.s.values.fast_current; |
---|
711 | } |
---|
712 | else |
---|
713 | { |
---|
714 | sys_data.s.values.batteryCurrent = currentWithGainAndGainShuntTempCorrection * 1000.0; |
---|
715 | } |
---|
716 | #elif (DEVICETYPE == 250) |
---|
717 | if ((currentWithGainAndGainShuntTempCorrection > 275.0) || (currentWithGainAndGainShuntTempCorrection < -275.0)) |
---|
718 | { |
---|
719 | sys_data.s.values.batteryCurrent = sys_data.s.values.fast_current; |
---|
720 | } |
---|
721 | else |
---|
722 | { |
---|
723 | sys_data.s.values.batteryCurrent = currentWithGainAndGainShuntTempCorrection * 1000.0; |
---|
724 | } |
---|
725 | #elif (DEVICETYPE == 125) |
---|
726 | if ((currentWithGainAndGainShuntTempCorrection > 137.0) || (currentWithGainAndGainShuntTempCorrection < -137.0)) |
---|
727 | { |
---|
728 | sys_data.s.values.batteryCurrent = sys_data.s.values.fast_current; |
---|
729 | } |
---|
730 | else |
---|
731 | { |
---|
732 | sys_data.s.values.batteryCurrent = currentWithGainAndGainShuntTempCorrection * 1000.0; |
---|
733 | } |
---|
734 | #else |
---|
735 | #error No valid device type |
---|
736 | #endif |
---|
737 | |
---|
738 | |
---|
739 | |
---|
740 | if (meas_counter > (BATTERY_CURRENT_FILTER *10)) // Nur aktualiseren, wenn es schon ausreichend Messwerte gab |
---|
741 | { |
---|
742 | // höchster und niedrigster Stromwert werden gespeichert |
---|
743 | if(sys_data.s.values.batteryCurrent > sys_data.s.values.batteryCurrentMax) |
---|
744 | { |
---|
745 | sys_data.s.values.batteryCurrentMax = sys_data.s.values.batteryCurrent; |
---|
746 | } |
---|
747 | if(sys_data.s.values.batteryCurrent < sys_data.s.values.batteryCurrentMin) |
---|
748 | { |
---|
749 | sys_data.s.values.batteryCurrentMin = sys_data.s.values.batteryCurrent; |
---|
750 | } |
---|
751 | } |
---|
752 | |
---|
753 | newCurrentValue=1; |
---|
754 | |
---|
755 | return 0; |
---|
756 | } |
---|
757 | |
---|
758 | |
---|
759 | // --- GLOBALE FUNKTIONEN - bitte in Header dokumentieren------------------------ |
---|
760 | |
---|
761 | void ADS1260_init(void) |
---|
762 | { |
---|
763 | uint8_t sdata[10] = {0x47,0x00,0x00,0x00,0x00,0x00}; |
---|
764 | /* 0*/ ads1260DataCoversionState = ADC_STATE_INITIALIZE; |
---|
765 | /* 3*/ HAL_GPIO_WritePin(ADC_START_CONV_GPIO_Port, ADC_START_CONV_Pin, GPIO_PIN_SET); |
---|
766 | HAL_Delay(150); // Delay weil die Vref braucht zeit um sich zu stabilisieren (siehe Datenblatt Seite 9) |
---|
767 | /* 1*/ //HAL_GPIO_WritePin(ADC_POWER_DOWN_GPIO_Port, ADC_POWER_DOWN_Pin, GPIO_PIN_RESET); |
---|
768 | //HAL_Delay(150); // Delay weil die Vref braucht zeit um sich zu stabilisieren (siehe Datenblatt Seite 9) |
---|
769 | /* 1*/ //HAL_GPIO_WritePin(ADC_POWER_DOWN_GPIO_Port, ADC_POWER_DOWN_Pin, GPIO_PIN_SET); |
---|
770 | //HAL_Delay(150); // Delay weil die Vref braucht zeit um sich zu stabilisieren (siehe Datenblatt Seite 9) |
---|
771 | /* 2*/ HAL_GPIO_WritePin(ADC_RESET_GPIO_Port, ADC_RESET_Pin, GPIO_PIN_RESET); |
---|
772 | HAL_Delay(150); // Delay weil die Vref braucht zeit um sich zu stabilisieren (siehe Datenblatt Seite 9) |
---|
773 | /* 2*/ HAL_GPIO_WritePin(ADC_RESET_GPIO_Port, ADC_RESET_Pin, GPIO_PIN_SET); |
---|
774 | HAL_Delay(150); // Delay weil die Vref braucht zeit um sich zu stabilisieren (siehe Datenblatt Seite 9) |
---|
775 | /* 3*/ HAL_GPIO_WritePin(ADC_START_CONV_GPIO_Port, ADC_START_CONV_Pin, GPIO_PIN_RESET); |
---|
776 | |
---|
777 | /* 4*/ //while(HAL_GPIO_ReadPin(ADC_DATA_READY_GPIO_Port, ADC_DATA_READY_Pin) == GPIO_PIN_RESET); |
---|
778 | HAL_NVIC_SetPriority(EXTI4_15_IRQn, 2, 0); |
---|
779 | HAL_NVIC_EnableIRQ(EXTI4_15_IRQn); |
---|
780 | |
---|
781 | /* 5*/ ADS_1260_SetExternalReference(&hspi1); |
---|
782 | HAL_Delay(150); |
---|
783 | /* 6*/ ADS_1260_SetDataRate(&hspi1, DATA_RATE_20); |
---|
784 | // /* 7*/ ADS_1260_SetDigitalFilter(&hspi1, FILTER_SINC4); |
---|
785 | /* 8*/ ADS_1260_SetConversionMode(&hspi1, CONVERSION_MODE_CONTINIOUS); |
---|
786 | // langsamer |
---|
787 | ADS_1260_SetChopMode(&hspi1, CHOP_MODE_CHOP_MODE); |
---|
788 | ADS_1260_InputMuxSelect(&hspi1, POS_INPUT_MUX_SELECT_AIN2 + NEG_INPUT_MUX_SELECT_AIN3); |
---|
789 | |
---|
790 | ADS_1260_ActivateStatusData(); |
---|
791 | ADS_1260_ActivateLock(); |
---|
792 | |
---|
793 | /*10*/ //ADS_1260_SelfOffsetCalibration(&hspi1); |
---|
794 | HAL_Delay(150); |
---|
795 | /*x*/ ads1260DataCoversionState = ADC_STATE_READY_FOR_CONVERSION; |
---|
796 | ADS1260_StartConversion(); |
---|
797 | } |
---|
798 | |
---|
799 | |
---|
800 | void ADS1260_StartConversion(void) |
---|
801 | { |
---|
802 | HAL_GPIO_WritePin(ADC_START_CONV_GPIO_Port, ADC_START_CONV_Pin, GPIO_PIN_SET); |
---|
803 | } |
---|
804 | |
---|
805 | void ADS1260_ReadConversion(void) |
---|
806 | { |
---|
807 | extern CRC_HandleTypeDef hcrc; |
---|
808 | convert_union_t convert; |
---|
809 | |
---|
810 | // CRC2 |
---|
811 | uint8_t spiDataIn[9] = { RDATA_Opcode, arbitraryByte, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 }; |
---|
812 | spiDataIn[2] = HAL_CRC_Calculate(&hcrc, (uint32_t*) spiDataIn, 2); |
---|
813 | uint8_t spiDataOut[9] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 }; |
---|
814 | |
---|
815 | int32_t value = 0; |
---|
816 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
817 | HAL_SPI_TransmitReceive(&hspi1, spiDataIn, spiDataOut, 9, DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
818 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
819 | |
---|
820 | if (spiDataOut[0] == replyHeader && spiDataOut[1] == spiDataIn[0] && spiDataOut[2] == spiDataIn[1] && spiDataOut[3] == spiDataIn[2] && spiDataOut[8] == HAL_CRC_Calculate(&hcrc, (uint32_t*) &spiDataOut[4], 4)) |
---|
821 | { |
---|
822 | uint8_t STATUS_reg = spiDataOut[4]; |
---|
823 | |
---|
824 | if ((STATUS_reg & (1 << STATUS_LOCK)) && (STATUS_reg & (1 << STATUS_DRDY)) && !(STATUS_reg & (1 << STATUS_CRCERR)) && !(STATUS_reg & (1 << STATUS_REFL_ALM))) |
---|
825 | { |
---|
826 | // Rohwerte Byteswitch |
---|
827 | convert.s[3] = 0; |
---|
828 | convert.s[2] = spiDataOut[5]; |
---|
829 | convert.s[1] = spiDataOut[6]; |
---|
830 | convert.s[0] = spiDataOut[7]; |
---|
831 | |
---|
832 | // Vorzeichen ausrechnen (24 bit MSB = Vorzeichenbit muss auf 32 bit umgesetzt werden) |
---|
833 | if(convert.w >= 0x800000) |
---|
834 | { |
---|
835 | convert.sw = -(0xFFFFFF - convert.w); |
---|
836 | value = convert.sw; |
---|
837 | } |
---|
838 | else if(convert.w < 0x800000) |
---|
839 | { |
---|
840 | //convert.sw = convert.w; |
---|
841 | value = convert.w; |
---|
842 | } |
---|
843 | } |
---|
844 | else |
---|
845 | { |
---|
846 | sys_data.s.values.adc_restarts++; |
---|
847 | ADS1260_init(); |
---|
848 | } |
---|
849 | |
---|
850 | } |
---|
851 | else |
---|
852 | { |
---|
853 | sys_data.s.values.adc_restarts++; |
---|
854 | ADS1260_init(); |
---|
855 | } |
---|
856 | |
---|
857 | ADS1260_ProcessCurrent(value); |
---|
858 | } |
---|
859 | |
---|
860 | //----------------------------------------------------------------------------- |
---|
861 | |
---|
862 | static void ADS_1260_ActivateLock(void) |
---|
863 | { |
---|
864 | extern CRC_HandleTypeDef hcrc; |
---|
865 | const int maxReTries = 5; |
---|
866 | int lockIsWritten = 0; |
---|
867 | |
---|
868 | for (int i = 0; i < maxReTries; i++) |
---|
869 | { |
---|
870 | // Sendin LOCK command CRC2 |
---|
871 | uint8_t Din[] = { LOCK_Opcode, arbitraryByte, 0x00, 0x00 }; |
---|
872 | Din[2] = HAL_CRC_Calculate(&hcrc, (uint32_t*) Din, 2); |
---|
873 | uint8_t Dout[] = { 0x00, 0x00, 0x00, 0x00 }; |
---|
874 | |
---|
875 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
876 | HAL_SPI_TransmitReceive(&hspi1, Din, Dout, sizeof(Din) / sizeof(Din[0]), DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
877 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
878 | |
---|
879 | if (Dout[0] == replyHeader && Dout[1] == Din[0] && Dout[2] == Din[1] && Dout[3] == Din[2]) |
---|
880 | { |
---|
881 | lockIsWritten = 1; |
---|
882 | break; |
---|
883 | } |
---|
884 | else continue; |
---|
885 | } |
---|
886 | |
---|
887 | if (!lockIsWritten) |
---|
888 | while (1) |
---|
889 | { // Blink the RED LED forever |
---|
890 | HAL_GPIO_TogglePin(LED_ERROR_GPIO_Port, LED_ERROR_Pin); |
---|
891 | HAL_Delay(350); |
---|
892 | } |
---|
893 | |
---|
894 | int lockIsWrittenCorrect = 0; |
---|
895 | // Reading STATUS register to make sure that LOCK is active |
---|
896 | for (int i = 0; i < maxReTries; i++) |
---|
897 | { |
---|
898 | // Reading the content of the STATUS register CRC2 |
---|
899 | uint8_t Din[] = { RREG_BaseOpcode | STATUS_regAdr, arbitraryByte, 0x00, 0x00, 0x00, 0x00 }; |
---|
900 | Din[2] = HAL_CRC_Calculate(&hcrc, (uint32_t*) Din, 2); |
---|
901 | uint8_t Dout[] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 }; |
---|
902 | |
---|
903 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
904 | HAL_SPI_TransmitReceive(&hspi1, Din, Dout, sizeof(Din) / sizeof(Din[0]), DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
905 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
906 | |
---|
907 | if (Dout[0] == replyHeader && Dout[1] == Din[0] && Dout[2] == Din[1] && Dout[3] == Din[2] && Dout[5] == HAL_CRC_Calculate(&hcrc, (uint32_t*)&Dout[4], 1)) |
---|
908 | { |
---|
909 | uint8_t STATUS_reg = Dout[4]; |
---|
910 | if (STATUS_reg & (1U << STATUS_LOCK)) |
---|
911 | { |
---|
912 | lockIsWrittenCorrect = 1; |
---|
913 | break; |
---|
914 | } |
---|
915 | } |
---|
916 | else continue; |
---|
917 | } |
---|
918 | |
---|
919 | if (!lockIsWrittenCorrect) |
---|
920 | while (1) |
---|
921 | { // Blink the RED LED forever |
---|
922 | HAL_GPIO_TogglePin(LED_ERROR_GPIO_Port, LED_ERROR_Pin); |
---|
923 | HAL_Delay(400); |
---|
924 | } |
---|
925 | |
---|
926 | } |
---|
927 | |
---|
928 | //----------------------------------------------------------------------------- |
---|
929 | |
---|
930 | static void ADS_1260_ActivateStatusData(void) |
---|
931 | { |
---|
932 | extern CRC_HandleTypeDef hcrc; |
---|
933 | const int maxReTries = 5; |
---|
934 | int mode3IsRead = 0; |
---|
935 | uint8_t MODE3_Reg; |
---|
936 | |
---|
937 | for (int i = 0; i < maxReTries; i++) |
---|
938 | { |
---|
939 | // Reading the content of the MODE3 register |
---|
940 | uint8_t Din[] = { RREG_BaseOpcode | MODE3_regAdr, arbitraryByte, 0x00 }; |
---|
941 | uint8_t Dout[] = { 0x00, 0x00, 0x00 }; |
---|
942 | |
---|
943 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
944 | HAL_SPI_TransmitReceive(&hspi1, Din, Dout, sizeof(Din) / sizeof(Din[0]), DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
945 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
946 | |
---|
947 | if (Dout[0] == replyHeader && Dout[1] == Din[0]) |
---|
948 | { |
---|
949 | MODE3_Reg = Dout[2]; // Saving the content of the MODE3 register |
---|
950 | mode3IsRead = 1; |
---|
951 | break; |
---|
952 | } |
---|
953 | else continue; |
---|
954 | } |
---|
955 | |
---|
956 | if (!mode3IsRead) |
---|
957 | while (1) |
---|
958 | { // Blink the RED LED forever |
---|
959 | HAL_GPIO_TogglePin(LED_ERROR_GPIO_Port, LED_ERROR_Pin); |
---|
960 | HAL_Delay(200); |
---|
961 | } |
---|
962 | |
---|
963 | // Setting STATENB and CRCENB bits in MODE3 register |
---|
964 | MODE3_Reg |= (1U << MODE3_STATENB) | (1U << MODE3_CRCENB); |
---|
965 | |
---|
966 | int mode3IsWritten = 0; |
---|
967 | |
---|
968 | for (int i = 0; i < maxReTries; i++) |
---|
969 | { |
---|
970 | // Writing back the content of the MODE3 register |
---|
971 | uint8_t Din[] = { WREG_BaseOpcode | MODE3_regAdr, MODE3_Reg }; |
---|
972 | uint8_t Dout[] = { 0x00, 0x00 }; |
---|
973 | |
---|
974 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
975 | HAL_SPI_TransmitReceive(&hspi1, Din, Dout, sizeof(Din) / sizeof(Din[0]), DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
976 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
977 | |
---|
978 | if (Dout[0] == replyHeader && Dout[1] == Din[0]) |
---|
979 | { |
---|
980 | mode3IsWritten = 1; |
---|
981 | break; |
---|
982 | } |
---|
983 | else continue; |
---|
984 | } |
---|
985 | |
---|
986 | if (!mode3IsWritten) |
---|
987 | while (1) |
---|
988 | { // Blink the RED LED forever |
---|
989 | HAL_GPIO_TogglePin(LED_ERROR_GPIO_Port, LED_ERROR_Pin); |
---|
990 | HAL_Delay(250); |
---|
991 | } |
---|
992 | |
---|
993 | int mode3IsWrittenCorrect = 0; |
---|
994 | |
---|
995 | // We have activated CRC in every data packet, so we need take it into account |
---|
996 | for (int i = 0; i < maxReTries; i++) |
---|
997 | { |
---|
998 | // Reading one more time the content of the MODE3 register CRC2 |
---|
999 | uint8_t Din[] = { RREG_BaseOpcode | MODE3_regAdr, arbitraryByte, 0x00, 0x00, 0x00, 0x00 }; |
---|
1000 | Din[2] = HAL_CRC_Calculate(&hcrc, (uint32_t*) Din, 2); |
---|
1001 | uint8_t Dout[] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 }; |
---|
1002 | |
---|
1003 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_RESET); |
---|
1004 | HAL_SPI_TransmitReceive(&hspi1, Din, Dout, sizeof(Din) / sizeof(Din[0]), DEFAULT_ADS1260_TRANSMIT_RECEIVE_TIMEOUT); |
---|
1005 | HAL_GPIO_WritePin(ADC_SPI1_NSS_GPIO_Port, ADC_SPI1_NSS_Pin, GPIO_PIN_SET); |
---|
1006 | |
---|
1007 | if (Dout[0] == replyHeader && Dout[1] == Din[0] && Dout[2] == Din[1] && Dout[3] == Din[2] && Dout[5] == HAL_CRC_Calculate(&hcrc, (uint32_t*)&Dout[4], 1)) |
---|
1008 | { |
---|
1009 | if ((Dout[4] & (1U << MODE3_STATENB)) && (Dout[4] & (1U << MODE3_CRCENB))) |
---|
1010 | { |
---|
1011 | mode3IsWrittenCorrect = 1; |
---|
1012 | break; |
---|
1013 | } |
---|
1014 | } |
---|
1015 | else continue; |
---|
1016 | } |
---|
1017 | |
---|
1018 | if (!mode3IsWrittenCorrect) |
---|
1019 | while (1) |
---|
1020 | { // Blink the RED LED forever |
---|
1021 | HAL_GPIO_TogglePin(LED_ERROR_GPIO_Port, LED_ERROR_Pin); |
---|
1022 | HAL_Delay(300); |
---|
1023 | } |
---|
1024 | } |
---|
1025 | |
---|
1026 | //----------------------------------------------------------------------------- |
---|
1027 | |
---|
1028 | void ADS1260_ConversionFinished(void) |
---|
1029 | { |
---|
1030 | ADS1260_ReadConversion(); |
---|
1031 | // ADS1260_StartConversion(); |
---|
1032 | } |
---|
1033 | |
---|
1034 | //----------------------------------------------------------------------------- |
---|