61 #include "HL_system.h"
76 #define LTC_LTC6820CONTROL_GIODIR (hetREG1->DIR)
77 #define LTC_LTC6820CONTROL_GIOPORT (hetREG1->DOUT)
79 #define LTC_LTC6820_FORWARD_ENABLE_PIN (22U)
80 #define LTC_LTC6820_FORWARD_SPI1_MASTER_PIN (24U)
82 #define LTC_LTC6820_REVERSE_ENABLE_PIN (23U)
83 #define LTC_LTC6820_REVERSE_MASTER_PIN (25U)
90 #define LTC_PORT_EXPANDER_TI_INPUT_REG_ADR (0x00u)
91 #define LTC_PORT_EXPANDER_TI_OUTPUT_REG_ADR (0x01u)
92 #define LTC_PORT_EXPANDER_TI_CONFIG_REG_ADR (0x03u)
99 #define LTC_ICOM_START (0x60u)
100 #define LTC_ICOM_STOP (0x10u)
101 #define LTC_ICOM_BLANK (0x00u)
102 #define LTC_ICOM_NO_TRANSMIT (0x70u)
103 #define LTC_FCOM_MASTER_ACK (0x00u)
104 #define LTC_FCOM_MASTER_NACK (0x08u)
105 #define LTC_FCOM_MASTER_NACK_STOP (0x09u)
109 #define LTC_MAX_SUPPORTED_CELLS (12u)
116 #pragma SET_DATA_SECTION(".sharedRAM")
119 #pragma SET_DATA_SECTION()
142 .minimumPlausibleVoltage_mV = 0,
158 .numberOfMeasuredMux = 32,
160 .ErrRetryCounter = 0,
161 .ErrRequestCounter = 0,
162 .VoltageSampleTime = 0,
164 .commandDataTransferTime = 3,
165 .commandTransferTime = 3,
166 .gpioClocksTransferTime = 3,
170 .first_measurement_made =
false,
174 .transmit_ongoing =
false,
196 .requestedString = 0u,
231 {0x69, 0x18, 0x0F, 0xF0, 0x0F, 0xF9};
234 {0x64, 0x18, 0x0F, 0xF9, 0x7F, 0xF9};
238 {0x03, 0x60, 0xF4, 0x6C};
240 {0x03, 0x70, 0xAF, 0x42};
242 {0x03, 0xE0, 0xB0, 0x4A};
244 {0x03, 0xF0, 0xEB, 0x64};
246 {0x02, 0xE0, 0x38, 0x06};
248 {0x02, 0xF0, 0x63, 0x28};
250 {0x02, 0xE1, 0xb3, 0x34};
270 {0x05, 0xE0, 0x97, 0x86};
308 uint16_t timer_ms_ok,
310 uint8_t substate_nok,
311 uint16_t timer_ms_nok);
318 uint32_t frameLength,
320 uint8_t stringNumber);
327 uint32_t frameLength);
347 uint8_t stringNumber);
352 uint8_t stringNumber);
356 uint16_t *DataBufferSPI_RX_with_PEC,
357 uint8_t stringNumber);
363 uint32_t frameLength);
369 uint32_t frameLength);
376 uint32_t frameLength,
385 uint32_t frameLength,
392 uint32_t frameLength,
400 uint32_t frameLength);
408 uint32_t frameLength,
415 uint32_t frameLength);
421 uint32_t frameLength,
430 uint32_t frameLength,
439 uint8_t stringNumber);
458 for (uint8_t stringNumber = 0u; stringNumber <
BS_NR_OF_STRINGS; stringNumber++) {
532 ltc_state->
state = state;
534 ltc_state->
timer = timer_ms;
561 uint16_t timer_ms_ok,
563 uint8_t substate_nok,
564 uint16_t timer_ms_nok) {
586 int32_t stringVoltage_mV = 0;
587 uint16_t numberValidMeasurements = 0;
612 numberValidMeasurements++;
638 uint16_t numberValidMeasurements = 0;
654 numberValidMeasurements++;
690 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
691 const uint16_t val_i = DataBufferSPI_RX[8u + (1u * i * 8u)] |
692 (DataBufferSPI_RX[8u + (1u * i * 8u) + 1u] << 8u);
753 return ltc_state->
state;
807 uint8_t tmpbusID = 0;
820 if (ltc_state->
timer > 0u) {
821 if ((--ltc_state->
timer) > 0u) {
828 if (ltc_state->
timer > 0u) {
829 if ((--ltc_state->
timer) > 0u) {
837 if (continueFunction ==
STD_OK) {
838 switch (ltc_state->
state) {
849 ltc_state->
adcMode = tmpadcMode;
2948 uint8_t stringNumber) {
2949 uint16_t val_ui = 0;
2950 int16_t temperature_ddegC = 0;
2951 uint8_t sensor_idx = 0;
2953 uint16_t buffer_LSB = 0;
2954 uint16_t buffer_MSB = 0;
2958 if (muxseqptr->
muxCh != 0xFF) {
2960 if ((muxseqptr->
muxID == 1) || (muxseqptr->
muxID == 2)) {
2961 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
2962 if (muxseqptr->
muxID == 1) {
2963 ch_idx = 0 + muxseqptr->
muxCh;
2965 ch_idx = 8 + muxseqptr->
muxCh;
2968 if (ch_idx < (2u * 8u)) {
2969 val_ui = *((uint16_t *)(&pRxBuff[6u + (1u * i * 8u)]));
2975 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
2976 buffer_MSB = pRxBuff[4u + (i * 8u) + 1u];
2977 buffer_LSB = pRxBuff[4u + (i * 8u)];
2978 val_ui = buffer_LSB | (buffer_MSB << 8);
2994 (~(1u << sensor_idx));
3026 uint8_t registerSet,
3027 uint8_t stringNumber) {
3028 uint16_t cellOffset = 0;
3029 uint16_t voltage_index = 0;
3030 uint16_t val_ui = 0;
3031 uint16_t voltage = 0;
3032 uint32_t bitmask = 0;
3033 uint16_t buffer_LSB = 0;
3034 uint16_t buffer_MSB = 0;
3035 bool continueFunction =
true;
3037 if (registerSet == 0u) {
3040 }
else if (registerSet == 1u) {
3043 }
else if (registerSet == 2u) {
3046 }
else if (registerSet == 3u) {
3049 }
else if (registerSet == 4u) {
3052 }
else if (registerSet == 5u) {
3056 continueFunction =
false;
3059 if (continueFunction ==
true) {
3061 bitmask |= 0x07u << cellOffset;
3064 if (cellOffset == 0u) {
3069 for (uint16_t m = 0u; m <
LTC_N_LTC; m++) {
3070 uint16_t incrementations = 0u;
3073 for (uint8_t c = 0u; c < 3u; c++) {
3075 voltage_index = c + cellOffset;
3078 buffer_MSB = pRxBuff[4u + (2u * c) + (m * 8u) + 1u];
3079 buffer_LSB = pRxBuff[4u + (2u * c) + (m * 8u)];
3080 val_ui = buffer_LSB | (buffer_MSB << 8u);
3082 voltage = ((val_ui)) * 100e-6f * 1000.0f;
3136 uint8_t registerSet,
3137 uint8_t stringNumber) {
3138 uint8_t i_offset = 0;
3139 uint32_t bitmask = 0;
3140 uint16_t buffer_LSB = 0;
3141 uint16_t buffer_MSB = 0;
3143 if (registerSet == 0u) {
3146 bitmask = 0x07u << i_offset;
3148 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
3154 buffer_MSB = pRxBuff[4u + (i * 8u) + 1u];
3155 buffer_LSB = pRxBuff[4u + (i * 8u)];
3158 ((buffer_LSB | (buffer_MSB << 8u))) / 10u;
3160 buffer_MSB = pRxBuff[6u + (i * 8u) + 1u];
3161 buffer_LSB = pRxBuff[6u + (i * 8u)];
3164 ((buffer_LSB | (buffer_MSB << 8u))) / 10u;
3166 buffer_MSB = pRxBuff[8u + (i * 8u) + 1u];
3167 buffer_LSB = pRxBuff[8u + (i * 8u)];
3170 ((buffer_LSB | (buffer_MSB << 8u))) / 10u;
3176 }
else if (registerSet == 1u) {
3179 bitmask = 0x03u << i_offset;
3181 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
3187 buffer_MSB = pRxBuff[4u + (i * 8u) + 1u];
3188 buffer_LSB = pRxBuff[4u + (i * 8u)];
3191 ((buffer_LSB | (buffer_MSB << 8u))) / 10u;
3193 buffer_MSB = pRxBuff[6u + (i * 8u) + 1u];
3194 buffer_LSB = pRxBuff[6u + (i * 8u)];
3197 ((buffer_LSB | (buffer_MSB << 8u))) / 10u;
3203 }
else if (registerSet == 2u) {
3206 bitmask = 0x07u << i_offset;
3208 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
3214 buffer_MSB = pRxBuff[4u + (i * 8u) + 1u];
3215 buffer_LSB = pRxBuff[4u + (i * 8u)];
3218 ((buffer_LSB | (buffer_MSB << 8u))) / 10u;
3220 buffer_MSB = pRxBuff[6u + (i * 8u) + 1u];
3221 buffer_LSB = pRxBuff[6u + (i * 8u)];
3224 ((buffer_LSB | (buffer_MSB << 8u))) / 10u;
3226 buffer_MSB = pRxBuff[8u + (i * 8u) + 1u];
3227 buffer_LSB = pRxBuff[8u + (i * 8u)];
3230 ((buffer_LSB | (buffer_MSB << 8u))) / 10u;
3236 }
else if (registerSet == 3u) {
3239 bitmask = 0x01u << i_offset;
3241 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
3249 *((uint16_t *)(&pRxBuff[4u + (i * 8u)])) / 10u;
3335 uint32_t frameLength) {
3338 uint8_t PEC_Check[6];
3339 uint16_t PEC_result = 0;
3349 for (uint16_t i = 0u; i <
LTC_N_LTC; i++) {
3351 pTxBuff[4u + (i * 8u)] = 0xFC;
3352 pTxBuff[5u + (i * 8u)] = 0x00;
3353 pTxBuff[6u + (i * 8u)] = 0x00;
3354 pTxBuff[7u + (i * 8u)] = 0x00;
3355 pTxBuff[8u + (i * 8u)] = 0x00;
3356 pTxBuff[9u + (i * 8u)] = 0x00;
3358 PEC_Check[0] = pTxBuff[4u + (i * 8u)];
3359 PEC_Check[1] = pTxBuff[5u + (i * 8u)];
3360 PEC_Check[2] = pTxBuff[6u + (i * 8u)];
3361 PEC_Check[3] = pTxBuff[7u + (i * 8u)];
3362 PEC_Check[4] = pTxBuff[8u + (i * 8u)];
3363 PEC_Check[5] = pTxBuff[9u + (i * 8u)];
3365 PEC_result = LTC_pec15_calc(6, PEC_Check);
3366 pTxBuff[10u + (i * 8u)] = (PEC_result >> 8u) & 0xFFu;
3367 pTxBuff[11u + (i * 8u)] = PEC_result & 0xFFu;
3397 uint32_t frameLength,
3398 uint8_t registerSet,
3399 uint8_t stringNumber) {
3402 uint8_t PEC_Check[6];
3403 uint16_t PEC_result = 0;
3407 if (registerSet == 0u) {
3416 pTxBuff[4u + (i * 8u)] = 0xFC;
3417 pTxBuff[5u + (i * 8u)] = 0x00;
3418 pTxBuff[6u + (i * 8u)] = 0x00;
3419 pTxBuff[7u + (i * 8u)] = 0x00;
3420 pTxBuff[8u + (i * 8u)] = 0x00;
3421 pTxBuff[9u + (i * 8u)] = 0x00;
3425 pTxBuff[8u + (i * 8u)] |= 0x01u;
3429 pTxBuff[8u + (i * 8u)] |= 0x02u;
3433 pTxBuff[8u + (i * 8u)] |= 0x04u;
3437 pTxBuff[8u + (i * 8u)] |= 0x08u;
3441 pTxBuff[8u + (i * 8u)] |= 0x10u;
3445 pTxBuff[8u + (i * 8u)] |= 0x20u;
3449 pTxBuff[8u + (i * 8u)] |= 0x40u;
3453 pTxBuff[8u + (i * 8u)] |= 0x80u;
3457 pTxBuff[9u + (i * 8u)] |= 0x01u;
3461 pTxBuff[9u + (i * 8u)] |= 0x02u;
3465 pTxBuff[9u + (i * 8u)] |= 0x04u;
3469 pTxBuff[9u + (i * 8u)] |= 0x08u;
3472 PEC_Check[0] = pTxBuff[4u + (i * 8u)];
3473 PEC_Check[1] = pTxBuff[5u + (i * 8u)];
3474 PEC_Check[2] = pTxBuff[6u + (i * 8u)];
3475 PEC_Check[3] = pTxBuff[7u + (i * 8u)];
3476 PEC_Check[4] = pTxBuff[8u + (i * 8u)];
3477 PEC_Check[5] = pTxBuff[9u + (i * 8u)];
3479 PEC_result = LTC_pec15_calc(6, PEC_Check);
3480 pTxBuff[10u + (i * 8u)] = (PEC_result >> 8u) & 0xFFu;
3481 pTxBuff[11u + (i * 8u)] = PEC_result & 0xFFu;
3484 }
else if (registerSet == 1u) {
3493 pTxBuff[4u + (i * 8u)] = 0x0F;
3494 pTxBuff[5u + (i * 8u)] = 0x00;
3495 pTxBuff[6u + (i * 8u)] = 0x00;
3496 pTxBuff[7u + (i * 8u)] = 0x00;
3497 pTxBuff[8u + (i * 8u)] = 0x00;
3498 pTxBuff[9u + (i * 8u)] = 0x00;
3502 pTxBuff[4u + (i * 8u)] |= 0x10u;
3506 pTxBuff[4u + (i * 8u)] |= 0x20u;
3510 pTxBuff[4u + (i * 8u)] |= 0x40u;
3515 pTxBuff[4u + (i * 8u)] |= 0x80u;
3519 pTxBuff[5u + (i * 8u)] |= 0x01u;
3523 pTxBuff[5u + (i * 8u)] |= 0x02u;
3527 PEC_Check[0] = pTxBuff[4u + (i * 8u)];
3528 PEC_Check[1] = pTxBuff[5u + (i * 8u)];
3529 PEC_Check[2] = pTxBuff[6u + (i * 8u)];
3530 PEC_Check[3] = pTxBuff[7u + (i * 8u)];
3531 PEC_Check[4] = pTxBuff[8u + (i * 8u)];
3532 PEC_Check[5] = pTxBuff[9u + (i * 8u)];
3534 PEC_result = LTC_pec15_calc(6, PEC_Check);
3535 pTxBuff[10u + (i * 8u)] = (PEC_result >> 8u) & 0xFFu;
3536 pTxBuff[11u + (i * 8u)] = PEC_result & 0xFFu;
3554 for (uint8_t stringNumber = 0u; stringNumber <
BS_NR_OF_STRINGS; stringNumber++) {
3555 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
3747 }
else if (PUP == 1u) {
3777 uint16_t *DataBufferSPI_RX_with_PEC,
3778 uint8_t stringNumber) {
3781 uint16_t PEC_result = 0;
3782 uint8_t PEC_Check[6] = {0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
3785 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
3786 PEC_Check[0] = DataBufferSPI_RX_with_PEC[4u + (i * 8u)];
3787 PEC_Check[1] = DataBufferSPI_RX_with_PEC[5u + (i * 8u)];
3788 PEC_Check[2] = DataBufferSPI_RX_with_PEC[6u + (i * 8u)];
3789 PEC_Check[3] = DataBufferSPI_RX_with_PEC[7u + (i * 8u)];
3790 PEC_Check[4] = DataBufferSPI_RX_with_PEC[8u + (i * 8u)];
3791 PEC_Check[5] = DataBufferSPI_RX_with_PEC[9u + (i * 8u)];
3793 PEC_result = LTC_pec15_calc(6, PEC_Check);
3794 PEC_TX[0] = (uint8_t)((PEC_result >> 8u) & 0xFFu);
3795 PEC_TX[1] = (uint8_t)(PEC_result & 0xFFu);
3798 if ((PEC_TX[0] != DataBufferSPI_RX_with_PEC[10u + (i * 8u)]) ||
3799 (PEC_TX[1] != DataBufferSPI_RX_with_PEC[11u + (i * 8u)])) {
3842 uint32_t frameLength) {
3853 pTxBuff[0] = Command[0];
3854 pTxBuff[1] = Command[1];
3855 pTxBuff[2] = Command[2];
3856 pTxBuff[3] = Command[3];
3891 uint32_t frameLength) {
3894 uint16_t PEC_result = 0;
3895 uint8_t PEC_Check[6] = {0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
3897 pTxBuff[0] = Command[0];
3898 pTxBuff[1] = Command[1];
3899 pTxBuff[2] = Command[2];
3900 pTxBuff[3] = Command[3];
3903 for (uint16_t i = 0u; i <
LTC_N_LTC; i++) {
3904 PEC_Check[0] = pTxBuff[4u + (i * 8u)];
3905 PEC_Check[1] = pTxBuff[5u + (i * 8u)];
3906 PEC_Check[2] = pTxBuff[6u + (i * 8u)];
3907 PEC_Check[3] = pTxBuff[7u + (i * 8u)];
3908 PEC_Check[4] = pTxBuff[8u + (i * 8u)];
3909 PEC_Check[5] = pTxBuff[9u + (i * 8u)];
3911 PEC_result = LTC_pec15_calc(6, PEC_Check);
3912 pTxBuff[10u + (i * 8u)] = (PEC_result >> 8u) & 0xFFu;
3913 pTxBuff[11u + (i * 8u)] = PEC_result & 0xFFu;
3933 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
3934 #if SLAVE_BOARD_VERSION == 2u
3937 uint8_t address = 0x98u | ((mux % 4u) << 1u);
3938 uint8_t data = 1u << (channel % 8u);
3939 if (channel == 0xFFu) {
3946 uint8_t address = 0x90u | ((mux % 4u) << 1u);
3947 uint8_t data = 0x08u | (channel % 8u);
3948 if (channel == 0xFFu) {
3954 pTxBuff[4u + (i * 8u)] =
LTC_ICOM_START | ((address >> 4u) & 0x0Fu);
3956 pTxBuff[6u + (i * 8u)] =
LTC_ICOM_BLANK | ((data >> 4u) & 0x0Fu);
3959 pTxBuff[9u + (i * 8u)] = 0x00;
3981 uint32_t frameLength,
4005 address &= 0x3FFFFu;
4006 const uint8_t address0 = address >> 16u;
4007 const uint8_t address1 = (address & 0xFFFFu) >> 8u;
4008 const uint8_t address2 = address & 0xFFu;
4011 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
4021 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
4042 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
4044 ((pRxBuff[7u + (i * 8u)] >> 4u));
4071 uint32_t frameLength,
4095 address &= 0x3FFFFu;
4096 const uint8_t address0 = address >> 16u;
4097 const uint8_t address1 = (address & 0xFFFFu) >> 8u;
4098 const uint8_t address2 = address & 0xFFu;
4101 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
4111 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
4148 uint32_t frameLength,
4177 uint32_t frameLength,
4178 uint16_t *cmd_data) {
4182 pTxBuff[4u + (i * 6u)] = cmd_data[0];
4183 pTxBuff[5u + (i * 6u)] = cmd_data[1];
4185 pTxBuff[6u + (i * 6u)] = cmd_data[2];
4186 pTxBuff[7u + (i * 6u)] = cmd_data[3];
4188 pTxBuff[8u + (i * 6u)] = cmd_data[4];
4189 pTxBuff[9u + (i * 6u)] = cmd_data[5];
4210 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
4211 uint8_t temp_tmp[2];
4212 temp_tmp[0] = (pRxBuff[6u + (i * 8u)] << 4u) | ((pRxBuff[7u + (i * 8u)] >> 4u));
4213 temp_tmp[1] = (pRxBuff[8u + (i * 8u)] << 4u) | ((pRxBuff[9u + (i * 8u)] >> 4u));
4214 uint16_t val_i = (temp_tmp[0] << 8u) | (temp_tmp[1]);
4215 val_i = val_i >> 8u;
4240 uint32_t frameLength) {
4250 pTxBuff[5u + (i * 8u)] =
4253 pTxBuff[6u + (i * 8u)] =
4255 (output_data >> 4u);
4256 pTxBuff[7u + (i * 8u)] =
4257 (uint8_t)(output_data << 4u) |
4261 pTxBuff[9u + (i * 8u)] = 0;
4283 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
4284 const uint8_t val_i = (pRxBuff[6u + (i * 8u)] << 4u) | ((pRxBuff[7u + (i * 8u)] >> 4u));
4310 uint32_t frameLength,
4328 pTxBuff[9u + (i * 8u)] = (uint8_t)(direction << 4u) |
4356 uint32_t frameLength) {
4374 pTxBuff[9u + (i * 8u)] = (uint8_t)(output_data << 4u) |
4403 uint32_t frameLength,
4419 pTxBuff[9u + (i * 8u)] = 0;
4434 pTxBuff[9u + (i * 8u)] = 0;
4454 for (uint16_t i = 0; i <
LTC_N_LTC; i++) {
4455 const uint8_t val_i = (pTxBuff[6u + (i * 8u)] << 4u) | ((pTxBuff[7u + (i * 8u)] >> 4u));
4475 uint16_t ltc_TXBufferClock[4u + 9u];
4477 for (uint16_t i = 0; i < (4u + 9u); i++) {
4478 ltc_TXBufferClock[i] = 0xFF;
4501 uint32_t SPI_Clock = 0;
4502 uint32_t prescaler = 0;
4527 prescaler = ((pSpiInterface->
pNode->FMT0) >> 8u) & 0xFFu;
4528 SPI_Clock = (uint32_t)(AVCLK1_FREQ * 1000000u) / (prescaler + 1u);
4542 uint32_t transferTime_us = 0;
4543 uint32_t SPI_Clock = 0;
4549 transferTime_us = (8u * 1000u * 1000u) / (SPI_Clock);
4556 transferTime_us = ((4u) * 8u * 1000u * 1000u) / (SPI_Clock);
4562 transferTime_us = ((4u + 9u) * 8u * 1000u * 1000u) / (SPI_Clock);
4601 bool retval =
false;
4638 #ifdef UNITY_UNIT_TEST
4648 #define TEST_LTC_DEFINE_GET(VARIABLE) \
4649 extern void TEST_LTC_Get_##VARIABLE(uint8_t data[4]) { \
4650 for (uint8_t i = 0u; i < 4u; i++) { \
4651 data[i] = (uint8_t)(VARIABLE)[i]; \
#define BS_NR_OF_CELLS_PER_MODULE
number of battery cells per battery module (parallel cells are counted as one)
#define BS_NR_OF_MODULES
number of modules in battery pack
#define BS_MAX_SUPPORTED_CELLS
Defines the maximal number of supported cells per module.
#define BS_NR_OF_TEMP_SENSORS_PER_MODULE
number of temperature sensors per battery module
#define BS_NR_OF_GPIOS_PER_MODULE
Number of GPIOs on the LTC IC.
#define BS_NR_OF_TEMP_SENSORS_PER_STRING
#define BS_NR_OF_BAT_CELLS
#define DATA_READ_DATA(...)
#define DATA_WRITE_DATA(...)
@ DATA_BLOCK_ID_BALANCING_CONTROL
@ DATA_BLOCK_ID_CELL_TEMPERATURE_BASE
@ DATA_BLOCK_ID_OPEN_WIRE_BASE
@ DATA_BLOCK_ID_SLAVE_CONTROL
@ DATA_BLOCK_ID_CELL_VOLTAGE_BASE
@ DATA_BLOCK_ID_ALL_GPIO_VOLTAGES_BASE
@ DATA_BLOCK_ID_BALANCING_FEEDBACK_BASE
DIAG_RETURNTYPE_e DIAG_Handler(DIAG_ID_e diag_id, DIAG_EVENT_e event, DIAG_IMPACT_LEVEL_e impact, uint32_t data)
DIAG_Handler provides generic error handling, based on diagnosis group.
STD_RETURN_TYPE_e DIAG_CheckEvent(STD_RETURN_TYPE_e cond, DIAG_ID_e diag_id, DIAG_IMPACT_LEVEL_e impact, uint32_t data)
DIAG_CheckEvent provides a simple interface to check an event for STD_OK.
@ DIAG_ID_MEASUREMENT_IC_CELL_VOLTAGE_MEAS_ERROR
@ DIAG_ID_MEASUREMENT_IC_CELL_TEMPERATURE_MEAS_ERROR
#define FAS_ASSERT(x)
Assertion macro that asserts that x is true.
#define FAS_TRAP
Define that evaluates to essential boolean false thus tripping an assert.
#define NULL_PTR
Null pointer.
enum STD_RETURN_TYPE STD_RETURN_TYPE_e
#define SETBIT(register, bit)
sets a bit to 1u
void IO_PinSet(volatile uint32_t *pRegisterAddress, uint32_t pin)
Set pin by writing in pin output register.
void IO_PinReset(volatile uint32_t *pRegisterAddress, uint32_t pin)
Set pin by writing in pin output register.
Header for the driver for the IO module.
Headers for the driver for the LTC monitoring chip.
const uint8_t ltc_voltage_input_used[BS_MAX_SUPPORTED_CELLS]
int16_t LTC_Convert_MuxVoltages_to_Temperatures(uint16_t adcVoltage_mV)
converts a raw voltage from multiplexer to a temperature value in deci °C.
#define LTC_TransmitI2cCommand(spi_ltcInterface, txbuf)
const uint8_t ltc_muxsensortemperatur_cfg[BS_NR_OF_TEMP_SENSORS_PER_MODULE]
#define LTC_STATEMACH_DAISY_CHAIN_FIRST_INITIALIZATION_TIME
#define LTC_TRANSMISSION_TIMEOUT
#define LTC_STATEMACH_MEAS_SINGLE_NORMAL_TCYCLE
#define LTC_TransmitCommand(spi_ltcInterface, command)
#define LTC_STATEMACH_MEAS_SINGLE_FILTERED_TCYCLE
#define LTC_STATEMACH_SHORTTIME
#define LTC_PORTEXPANDER_ADR_TI
#define LTC_NUMBER_OF_LTC_PER_MODULE
#define LTC_VOLTAGE_MEASUREMENT_MODE
#define LTC_ADOW_THRESHOLD
#define LTC_STATEMACH_MEAS_ALL_FILTERED_TCYCLE
#define LTC_STATEMACH_MEAS_ALL_NORMAL_TCYCLE
#define LTC_STATEMACH_MEAS_SINGLE_FAST_TCYCLE
#define LTC_TransmitReceiveData(spi_ltcInterface, txbuf, rxbuf, length)
#define LTC_SPI_WAKEUP_WAIT_TIME_US
#define LTC_GPIO_MEASUREMENT_MODE
#define LTC_STATEMACH_MEAS_ALL_FAST_TCYCLE
#define LTC_TransmitWakeUp(spi_ltcInterface)
#define LTC_NMBR_REQ_ADOW_COMMANDS
#define LTC_OW_MEASUREMENT_MODE
#define LTC_STATEMACH_DAISY_CHAIN_SECOND_INITIALIZATION_TIME
#define LTC_PORT_EXPANDER_TI_OUTPUT_REG_ADR
static void LTC_SetEEPROMReadCommand(LTC_STATE_s *ltc_state, uint16_t *pTxBuff, uint8_t step)
configures the data that will be sent to the LTC daisy-chain to read EEPROM on slaves.
static STD_RETURN_TYPE_e LTC_SendEEPROMReadCommand(LTC_STATE_s *ltc_state, SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength, uint8_t step)
sends data to the LTC daisy-chain to read EEPROM on slaves.
static uint16_t ltc_cmdADAX_fast_GPIO3[4]
uint16_t ltc_TxPecBuffer[LTC_N_BYTES_FOR_DATA_TRANSMISSION]
#define LTC_LTC6820_REVERSE_MASTER_PIN
static uint16_t ltc_cmdRDCVC[4]
static STD_RETURN_TYPE_e LTC_StartVoltageMeasurement(SPI_INTERFACE_CONFIG_s *pSpiInterface, LTC_ADCMODE_e adcMode, LTC_ADCMEAS_CHAN_e adcMeasCh)
tells the LTC daisy-chain to start measuring the voltage on all cells.
static uint16_t ltc_cmdRDAUXB[4]
static DATA_BLOCK_ALL_GPIO_VOLTAGES_s ltc_allgpiovoltage
static uint16_t ltc_cmdRDCVA[4]
static uint16_t ltc_cmdWRCOMM[4]
#define LTC_PORT_EXPANDER_TI_INPUT_REG_ADR
static STD_RETURN_TYPE_e LTC_SetPortExpanderDirection_TI(LTC_STATE_s *ltc_state, SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength, LTC_PORT_EXPANDER_TI_DIRECTION_e direction)
sends data to the LTC daisy-chain to control the user port expander from TI
static uint32_t LTC_GetSPIClock(SPI_INTERFACE_CONFIG_s *pSpiInterface)
gets the frequency of the SPI clock.
static uint16_t ltc_cmdADAX_normal_GPIO1[4]
static DATA_BLOCK_CELL_VOLTAGE_s ltc_cellvoltage
static STD_RETURN_TYPE_e LTC_StartOpenWireMeasurement(SPI_INTERFACE_CONFIG_s *pSpiInterface, LTC_ADCMODE_e adcMode, uint8_t PUP)
tells LTC daisy-chain to start measuring the voltage on GPIOS.
static STD_RETURN_TYPE_e LTC_GetPortExpander_Input_TI(LTC_STATE_s *ltc_state, SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength, uint8_t step)
sends data to the LTC daisy-chain to control the user port expander from TI
static STD_RETURN_TYPE_e LTC_TX(uint16_t *Command, SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength)
sends command and data to the LTC daisy-chain.
LTC_STATEMACH_e LTC_GetState(LTC_STATE_s *ltc_state)
gets the current state.
bool LTC_IsFirstMeasurementCycleFinished(LTC_STATE_s *ltc_state)
gets the measurement initialization status.
static STD_RETURN_TYPE_e LTC_SetMuxChannel(SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength, uint8_t mux, uint8_t channel)
sends data to the LTC daisy-chain to configure multiplexer channels.
static uint16_t ltc_cmdRDAUXA[4]
static STD_RETURN_TYPE_e LTC_I2CClock(SPI_INTERFACE_CONFIG_s *pSpiInterface)
sends 72 clock pulses to the LTC daisy-chain.
static uint16_t ltc_cmdRDCVB[4]
#define TEST_LTC_DEFINE_GET(VARIABLE)
#define LTC_LTC6820_FORWARD_ENABLE_PIN
static void LTC_StateTransition(LTC_STATE_s *ltc_state, LTC_STATEMACH_e state, uint8_t substate, uint16_t timer_ms)
function for setting LTC_Trigger state transitions
void LTC_SaveAllGPIOMeasurement(LTC_STATE_s *ltc_state)
stores the measured GPIOs in the database.
static uint16_t ltc_cmdADCV_fast_DCP1[4]
static uint16_t ltc_cmdWRCFG2[4]
static void LTC_SaveBalancingFeedback(LTC_STATE_s *ltc_state, uint16_t *DataBufferSPI_RX, uint8_t stringNumber)
stores the measured balancing feedback values in the database.
#define LTC_LTC6820CONTROL_GIOPORT
static void LTC_SetFirstMeasurementCycleFinished(LTC_STATE_s *ltc_state)
sets the measurement initialization status.
static LTC_RETURN_TYPE_e LTC_CheckStateRequest(LTC_STATE_s *ltc_state, LTC_REQUEST_s statereq)
checks the state requests that are made.
static STD_RETURN_TYPE_e LTC_SendEEPROMWriteCommand(LTC_STATE_s *ltc_state, SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength, uint8_t step)
sends data to the LTC daisy-chain to write EEPROM on slaves.
static const MIC_PLAUSIBILITY_VALUES_s ltc_plausibleCellVoltages681x
LTC_RETURN_TYPE_e LTC_SetStateRequest(LTC_STATE_s *ltc_state, LTC_REQUEST_s statereq)
sets the current state request of the state variable ltc_state.
static void LTC_SetTransferTimes(LTC_STATE_s *ltc_state)
sets the transfer time needed to receive/send data with the LTC daisy-chain.
static uint16_t ltc_cmdRDAUXC[4]
static uint16_t ltc_cmdADAX_fast_GPIO2[4]
static uint16_t ltc_cmdADAX_normal_ALLGPIOS[4]
static uint16_t ltc_cmdADAX_filtered_GPIO3[4]
static uint16_t ltc_cmdADAX_filtered_GPIO2[4]
static uint16_t ltc_cmdRDCVD[4]
static void LTC_Get_BalancingControlValues(LTC_STATE_s *ltc_state)
gets the balancing orders from the database.
static uint16_t ltc_I2CcmdPortExpander1[6]
static uint16_t ltc_cmdRDCFG[4]
#define LTC_ICOM_NO_TRANSMIT
static void LTC_SaveLastStates(LTC_STATE_s *ltc_state)
Saves the last state and the last substate.
static void LTC_SaveRXtoGPIOBuffer(LTC_STATE_s *ltc_state, uint16_t *pRxBuff, uint8_t registerSet, uint8_t stringNumber)
saves the GPIO voltage values read from the LTC daisy-chain.
LTC_REQUEST_s LTC_TransferStateRequest(LTC_STATE_s *ltc_state, uint8_t *pBusIDptr, LTC_ADCMODE_e *pAdcModeptr, LTC_ADCMEAS_CHAN_e *pAdcMeasChptr)
transfers the current state request to the state machine.
void LTC_SaveTemperatures(LTC_STATE_s *ltc_state, uint8_t stringNumber)
stores the measured temperatures and the measured multiplexer feedbacks in the database.
#define LTC_PORT_EXPANDER_TI_CONFIG_REG_ADR
static uint16_t ltc_used_cells_index[BS_NR_OF_STRINGS]
static void LTC_PortExpanderSaveValues(LTC_STATE_s *ltc_state, uint16_t *pRxBuff)
saves the received values of the external port expander read from the LTC daisy-chain.
static DATA_BLOCK_BALANCING_CONTROL_s ltc_balancing_control
#define LTC_LTC6820_REVERSE_ENABLE_PIN
#define LTC_FCOM_MASTER_NACK_STOP
static uint16_t ltc_cmdADAX_fast_ALLGPIOS[4]
static uint16_t ltc_cmdADAX_normal_GPIO2[4]
static void LTC_PortExpanderSaveValues_TI(LTC_STATE_s *ltc_state, uint16_t *pTxBuff)
saves the received values of the external port expander from TI read from the LTC daisy-chain.
#define LTC_LTC6820_FORWARD_SPI1_MASTER_PIN
static uint16_t ltc_BC_cmdADOW_PDOWN_filtered_DCP0[4]
static STD_RETURN_TYPE_e LTC_Send_I2C_Command(SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength, uint16_t *cmd_data)
sends data to the LTC daisy-chain to communicate via I2C
static uint16_t ltc_cmdADAX_filtered_ALLGPIOS[4]
static void LTC_EEPROMSaveReadValue(LTC_STATE_s *ltc_state, uint16_t *pRxBuff)
saves the read values of the external EEPROMs read from the LTC daisy-chain.
static uint16_t ltc_I2CcmdTempSens1[6]
static STD_RETURN_TYPE_e LTC_SetPortExpander(LTC_STATE_s *ltc_state, SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength)
sends data to the LTC daisy-chain to control the user port expander
static STD_RETURN_TYPE_e LTC_I2CCheckACK(LTC_STATE_s *ltc_state, uint16_t *pRxBuff, uint8_t mux, uint8_t stringNumber)
checks if the multiplexers acknowledged transmission.
static uint16_t ltc_cmdADCV_fast_DCP0[4]
static STD_RETURN_TYPE_e LTC_BalanceControl(LTC_STATE_s *ltc_state, SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength, uint8_t registerSet, uint8_t stringNumber)
sets the balancing according to the control values read in the database.
LTC_REQUEST_s LTC_GetStateRequest(LTC_STATE_s *ltc_state)
gets the current state request.
static DATA_BLOCK_BALANCING_FEEDBACK_s ltc_balancing_feedback
static void LTC_SetMUXChCommand(uint16_t *pTxBuff, uint8_t mux, uint8_t channel)
configures the data that will be sent to the LTC daisy-chain to configure multiplexer channels.
void LTC_SaveVoltages(LTC_STATE_s *ltc_state, uint8_t stringNumber)
stores the measured voltages in the database.
static void LTC_SaveRXtoVoltagebuffer(LTC_STATE_s *ltc_state, uint16_t *pRxBuff, uint8_t registerSet, uint8_t stringNumber)
saves the voltage values read from the LTC daisy-chain.
static STD_RETURN_TYPE_e LTC_Init(SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength)
initialize the daisy-chain.
static uint16_t ltc_cmdADCV_filtered_DCP0[4]
static STD_RETURN_TYPE_e LTC_StartGPIOMeasurement(SPI_INTERFACE_CONFIG_s *pSpiInterface, LTC_ADCMODE_e adcMode, LTC_ADCMEAS_CHAN_e adcMeasCh)
tells LTC daisy-chain to start measuring the voltage on GPIOS.
static void LTC_ResetErrorTable(LTC_STATE_s *ltc_state)
resets the error table.
LTC_STATE_s ltc_stateBase
static uint16_t ltc_cmdADAX_normal_GPIO3[4]
static void LTC_SetEEPROMWriteCommand(LTC_STATE_s *ltc_state, uint16_t *pTxBuff, uint8_t step)
configures the data that will be sent to the LTC daisy-chain to write EEPROM on slaves.
#define LTC_FCOM_MASTER_NACK
static uint16_t ltc_cmdADCV_normal_DCP1[4]
static uint16_t ltc_cmdRDCVE[4]
static STD_RETURN_TYPE_e LTC_SetPortExpander_Output_TI(LTC_STATE_s *ltc_state, SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength)
sends data to the LTC daisy-chain to control the user port expander from TI
static uint16_t ltc_cmdRDAUXD[4]
static uint16_t ltc_cmdADCV_normal_DCP0[4]
static uint16_t ltc_BC_cmdADOW_PDOWN_normal_DCP0[4]
static uint16_t ltc_cmdADCV_fast_DCP0_twocells[4]
static LTC_ERRORTABLE_s ltc_errorTable
static void LTC_Initialize_Database(LTC_STATE_s *ltc_state)
in the database, initializes the fields related to the LTC drivers.
void LTC_Trigger(LTC_STATE_s *ltc_state)
trigger function for the LTC driver state machine.
static uint16_t ltc_cmdRDCVF[4]
uint8_t LTC_CheckReEntrance(LTC_STATE_s *ltc_state)
re-entrance check of LTC state machine trigger function
static uint16_t LTC_Get_MeasurementTCycle(LTC_ADCMODE_e adcMode, LTC_ADCMEAS_CHAN_e adcMeasCh)
brief missing
static DATA_BLOCK_OPEN_WIRE_s ltc_openwire
static uint16_t ltc_BC_cmdADOW_PUP_normal_DCP0[4]
static uint16_t ltc_cmdRDCOMM[4]
uint16_t ltc_RxPecBuffer[LTC_N_BYTES_FOR_DATA_TRANSMISSION]
static DATA_BLOCK_SLAVE_CONTROL_s ltc_slave_control
static uint16_t ltc_I2CcmdTempSens0[6]
void LTC_monitoringPinInit(void)
Sets the transceiver pins to enable LTC6820 IC.
static void LTC_TempSensSaveTemp(LTC_STATE_s *ltc_state, uint16_t *pRxBuff)
saves the temperature value of the external temperature sensors read from the LTC daisy-chain.
static LTC_OPENWIRE_DETECTION_s ltc_openWireDetection
static uint16_t ltc_cmdSTCOMM[4]
static void LTC_CondBasedStateTransition(LTC_STATE_s *ltc_state, STD_RETURN_TYPE_e retVal, DIAG_ID_e diagCode, LTC_STATEMACH_e state_ok, uint8_t substate_ok, uint16_t timer_ms_ok, LTC_STATEMACH_e state_nok, uint8_t substate_nok, uint16_t timer_ms_nok)
condition-based state transition depending on retVal
static uint16_t ltc_cmdADAX_filtered_GPIO1[4]
static void LTC_SaveMuxMeasurement(LTC_STATE_s *ltc_state, uint16_t *pRxBuff, LTC_MUX_CH_CFG_s *muxseqptr, uint8_t stringNumber)
saves the multiplexer values read from the LTC daisy-chain.
static uint16_t ltc_cmdWRCFG[4]
void TEST_LTC_SetFirstMeasurementCycleFinished(LTC_STATE_s *ltc_state)
static uint16_t ltc_BC_cmdADOW_PUP_filtered_DCP0[4]
static STD_RETURN_TYPE_e LTC_RX_PECCheck(LTC_STATE_s *ltc_state, uint16_t *DataBufferSPI_RX_with_PEC, uint8_t stringNumber)
checks if the data received from the daisy-chain is not corrupt.
static DATA_BLOCK_CELL_TEMPERATURE_s ltc_celltemperature
static uint16_t ltc_cmdADCV_filtered_DCP1[4]
static uint16_t ltc_cmdADAX_fast_GPIO1[4]
#define LTC_LTC6820CONTROL_GIODIR
static STD_RETURN_TYPE_e LTC_RX(uint16_t *Command, SPI_INTERFACE_CONFIG_s *pSpiInterface, uint16_t *pTxBuff, uint16_t *pRxBuff, uint32_t frameLength)
send command to the LTC daisy-chain and receives data from the LTC daisy-chain.
uint8_t TEST_LTC_CheckReEntrance(LTC_STATE_s *ltc_state)
LTC_MUX_SEQUENCE_s ltc_mux_seq
Header for the configuration for the LTC 6804-1 6811-1, 6812-1, and 6813-1 monitoring IC.
#define LTC_DISCARD_MUX_CHECK
#define LTC_GOTO_MUX_CHECK
#define LTC_N_BYTES_FOR_DATA_TRANSMISSION
@ LTC_RE_ENTRY_INITIALIZATION
@ LTC_ENTRY_INITIALIZATION
@ LTC_START_INIT_INITIALIZATION
@ LTC_EXIT_INITIALIZATION
@ LTC_CHECK_INITIALIZATION
@ LTC_USER_IO_READ_I2C_TRANSMISSION_RESULT_RDCOMM
@ LTC_USER_IO_SEND_CLOCK_STCOMM
@ LTC_USER_IO_READ_INPUT_REGISTER
@ LTC_USER_IO_SET_OUTPUT_REGISTER
@ LTC_STATE_EEPROM_READ_REQUEST
@ LTC_STATE_USER_IO_READ_REQUEST_TI
@ LTC_STATE_USER_IO_READ_REQUEST
@ LTC_STATE_EEPROM_WRITE_REQUEST
@ LTC_STATE_USER_IO_WRITE_REQUEST
@ LTC_STATE_USER_IO_WRITE_REQUEST_TI
@ LTC_STATE_OPENWIRE_CHECK_REQUEST
@ LTC_STATE_TEMP_SENS_READ_REQUEST
@ LTC_STATEMACH_BALANCEFEEDBACK_REQUEST
@ LTC_REQUEST_PULLDOWN_CURRENT_OPENWIRE_CHECK
@ LTC_READ_VOLTAGES_PULLDOWN_OPENWIRE_CHECK
@ LTC_READ_VOLTAGES_PULLUP_OPENWIRE_CHECK
@ LTC_REQUEST_PULLUP_CURRENT_OPENWIRE_CHECK
@ LTC_PERFORM_OPENWIRE_CHECK
@ LTC_STATEMACH_INITIALIZATION
@ LTC_STATEMACH_USER_IO_FEEDBACK
@ LTC_STATEMACH_UNINITIALIZED
@ LTC_STATEMACH_MUXMEASUREMENT
@ LTC_STATEMACH_TEMP_SENS_READ
@ LTC_STATEMACH_BALANCECONTROL
@ LTC_STATEMACH_EEPROM_WRITE
@ LTC_STATEMACH_EEPROM_READ
@ LTC_STATEMACH_USER_IO_FEEDBACK_TI
@ LTC_STATEMACH_STARTMEAS_CONTINUE
@ LTC_STATEMACH_READALLGPIO
@ LTC_STATEMACH_OPENWIRE_CHECK
@ LTC_STATEMACH_USER_IO_CONTROL_TI
@ LTC_STATEMACH_USER_IO_CONTROL
@ LTC_STATEMACH_READVOLTAGE
@ LTC_STATEMACH_BALANCEFEEDBACK
@ LTC_STATEMACH_INITIALIZED
@ LTC_STATEMACH_STARTMEAS
@ LTC_STATEMACH_MEASCYCLE_FINISHED
@ LTC_STATEMACH_ALLGPIOMEASUREMENT
@ LTC_EEPROM_SEND_CLOCK_STCOMM4
@ LTC_EEPROM_SEND_CLOCK_STCOMM2
@ LTC_EEPROM_READ_I2C_TRANSMISSION_RESULT_RDCOMM
@ LTC_EEPROM_SEND_CLOCK_STCOMM3
@ LTC_EEPROM_SEND_CLOCK_STCOMM1
@ LTC_ADCMEAS_SINGLECHANNEL_GPIO5
@ LTC_ADCMEAS_SINGLECHANNEL_GPIO2
@ LTC_ADCMEAS_SINGLECHANNEL_GPIO4
@ LTC_ADCMEAS_SINGLECHANNEL_GPIO1
@ LTC_ADCMEAS_SINGLECHANNEL_GPIO3
@ LTC_ADCMEAS_SINGLECHANNEL_TWOCELLS
@ LTC_USER_IO_SET_OUTPUT_REGISTER_TI
@ LTC_USER_IO_SET_DIRECTION_REGISTER_TI
@ LTC_USER_IO_READ_INPUT_REGISTER_TI_FIRST
@ LTC_USER_IO_READ_I2C_TRANSMISSION_RESULT_RDCOMM_TI_SECOND
@ LTC_USER_IO_READ_I2C_TRANSMISSION_RESULT_RDCOMM_TI_THIRD
@ LTC_USER_IO_SAVE_DATA_TI
@ LTC_USER_IO_READ_INPUT_REGISTER_TI_SECOND
@ LTC_USER_IO_READ_I2C_TRANSMISSION_RESULT_RDCOMM_TI_FOURTH
@ LTC_USER_IO_SEND_CLOCK_STCOMM_TI
LTC_PORT_EXPANDER_TI_DIRECTION_e
@ LTC_PORT_EXPANDER_TI_OUTPUT
@ LTC_PORT_EXPANDER_TI_INPUT
@ LTC_ALREADY_INITIALIZED
@ LTC_TEMP_SENS_READ_I2C_TRANSMISSION_RESULT_RDCOMM
@ LTC_TEMP_SENS_SEND_CLOCK_STCOMM1
@ LTC_TEMP_SENS_SEND_CLOCK_STCOMM2
@ LTC_TEMP_SENS_SAVE_TEMP
@ LTC_TEMP_SENS_SEND_DATA1
@ LTC_TEMP_SENS_READ_DATA1
@ LTC_STATEMACH_READMUXMEASUREMENT
@ LTC_CONFIG_BALANCECONTROL
@ LTC_SAVE_FEEDBACK_BALANCECONTROL
@ LTC_STATEMACH_MUXCONFIGURATION_INIT
@ LTC_CONFIG2_BALANCECONTROL_END
@ LTC_READ_FEEDBACK_BALANCECONTROL
@ LTC_CONFIG2_BALANCECONTROL
@ LTC_STATEMACH_STOREMUXMEASUREMENT
@ LTC_READ_I2C_TRANSMISSION_RESULT_RDCOMM_MUXMEASUREMENT_CONFIG
@ LTC_READ_I2C_TRANSMISSION_CHECK_MUXMEASUREMENT_CONFIG
@ LTC_SEND_CLOCK_STCOMM_MUXMEASUREMENT_CONFIG
@ LTC_READ_AUXILIARY_REGISTER_D_RDAUXD
@ LTC_READ_VOLTAGE_REGISTER_F_RDCVF_READVOLTAGE
@ LTC_READ_AUXILIARY_REGISTER_A_RDAUXA
@ LTC_READ_VOLTAGE_REGISTER_A_RDCVA_READVOLTAGE
@ LTC_READ_VOLTAGE_REGISTER_D_RDCVD_READVOLTAGE
@ LTC_READ_AUXILIARY_REGISTER_C_RDAUXC
@ LTC_EXIT_READAUXILIARY_ALLGPIOS
@ LTC_READ_AUXILIARY_REGISTER_B_RDAUXB
@ LTC_READ_VOLTAGE_REGISTER_B_RDCVB_READVOLTAGE
@ LTC_READ_VOLTAGE_REGISTER_E_RDCVE_READVOLTAGE
@ LTC_READ_VOLTAGE_REGISTER_C_RDCVC_READVOLTAGE
@ LTC_REUSE_READVOLT_FOR_ADOW_PUP
@ LTC_REUSE_READVOLT_FOR_ADOW_PDOWN
@ LTC_ADCMODE_FILTERED_DCP1
@ LTC_ADCMODE_NORMAL_DCP0
@ LTC_ADCMODE_FILTERED_DCP0
@ LTC_ADCMODE_NORMAL_DCP1
bool MIC_IsTransmitOngoing(LTC_STATE_s *pLtcState)
gets the SPI transmit status.
void MIC_SetTransmitOngoing(LTC_STATE_s *pLtcState)
sets the SPI transmit status.
STD_RETURN_TYPE_e MIC_PlausibilityCheckVoltageMeasurementRange(const int16_t cellvoltage_mV, const MIC_PLAUSIBILITY_VALUES_s plausibleValues)
Cell voltage measurement range plausibility check.
STD_RETURN_TYPE_e MIC_PlausibilityCheckTempMinMax(const int16_t celltemperature_ddegC)
Cell temperature plausibility check.
plausibility checks for cell voltage and cell temperatures
void OS_ExitTaskCritical(void)
Exit Critical interface function for use in FreeRTOS-Tasks and FreeRTOS-ISR.
void OS_EnterTaskCritical(void)
Enter Critical interface function for use in FreeRTOS-Tasks and FreeRTOS-ISR.
Implementation of the tasks used by the system, headers.
SPI_INTERFACE_CONFIG_s spi_ltcInterface[BS_NR_OF_STRINGS]
DATA_BLOCK_HEADER_s header
uint16_t gpioVoltages_mV[BS_NR_OF_STRINGS][BS_NR_OF_MODULES *BS_NR_OF_GPIOS_PER_MODULE]
uint16_t invalidGpioVoltages[BS_NR_OF_STRINGS][BS_NR_OF_MODULES]
uint8_t balancingState[BS_NR_OF_STRINGS][BS_NR_OF_BAT_CELLS]
uint16_t nrBalancedCells[BS_NR_OF_STRINGS]
DATA_BLOCK_HEADER_s header
DATA_BLOCK_HEADER_s header
uint16_t value[BS_NR_OF_STRINGS][BS_NR_OF_MODULES]
int16_t cellTemperature_ddegC[BS_NR_OF_STRINGS][BS_NR_OF_TEMP_SENSORS_PER_STRING]
DATA_BLOCK_HEADER_s header
uint16_t invalidCellTemperature[BS_NR_OF_STRINGS][BS_NR_OF_MODULES]
uint16_t nrValidTemperatures[BS_NR_OF_STRINGS]
uint16_t nrValidCellVoltages[BS_NR_OF_STRINGS]
int16_t cellVoltage_mV[BS_NR_OF_STRINGS][BS_NR_OF_BAT_CELLS]
uint64_t invalidCellVoltage[BS_NR_OF_STRINGS][BS_NR_OF_MODULES]
DATA_BLOCK_HEADER_s header
int32_t packVoltage_mV[BS_NR_OF_STRINGS]
DATA_BLOCK_HEADER_s header
uint8_t openwire[BS_NR_OF_STRINGS][BS_NR_OF_MODULES *(BS_NR_OF_CELLS_PER_MODULE+1)]
uint8_t ioValueIn[BS_NR_OF_MODULES]
uint8_t eepromValueWrite[BS_NR_OF_MODULES]
uint32_t eepromWriteAddressLastUsed
uint32_t eepromReadAddressLastUsed
uint32_t eepromReadAddressToUse
DATA_BLOCK_HEADER_s header
uint8_t ioValueOut[BS_NR_OF_MODULES]
uint8_t eepromValueRead[BS_NR_OF_MODULES]
uint32_t eepromWriteAddressToUse
uint8_t externalTemperatureSensor[BS_NR_OF_MODULES]
LTC_OPENWIRE_DETECTION_s * openWireDetection
DATA_BLOCK_ALL_GPIO_VOLTAGES_s * allGpioVoltages
DATA_BLOCK_CELL_VOLTAGE_s * cellVoltage
DATA_BLOCK_CELL_TEMPERATURE_s * cellTemperature
LTC_ERRORTABLE_s * errorTable
DATA_BLOCK_BALANCING_FEEDBACK_s * balancingFeedback
SPI_INTERFACE_CONFIG_s * pSpiInterface
DATA_BLOCK_SLAVE_CONTROL_s * slaveControl
DATA_BLOCK_OPEN_WIRE_s * openWire
DATA_BLOCK_BALANCING_CONTROL_s * balancingControl
uint8_t PEC_valid[BS_NR_OF_STRINGS][LTC_N_LTC]
uint8_t mux3[BS_NR_OF_STRINGS][LTC_N_LTC]
uint8_t mux2[BS_NR_OF_STRINGS][LTC_N_LTC]
uint8_t mux0[BS_NR_OF_STRINGS][LTC_N_LTC]
uint8_t mux1[BS_NR_OF_STRINGS][LTC_N_LTC]
LTC_MUX_CH_CFG_s * seqptr
int16_t openWirePup[BS_NR_OF_STRINGS][BS_NR_OF_BAT_CELLS]
int32_t openWireDelta[BS_NR_OF_STRINGS][BS_NR_OF_BAT_CELLS]
int16_t openWirePdown[BS_NR_OF_STRINGS][BS_NR_OF_BAT_CELLS]
LTC_STATE_REQUEST_e request
uint32_t commandDataTransferTime
DIAG_ID_e voltMeasDiagErrorEntry
DIAG_ID_e pecDiagErrorEntry
DIAG_ID_e muxDiagErrorEntry
uint8_t muxmeas_nr_end[BS_NR_OF_STRINGS]
DIAG_ID_e tempMeasDiagErrorEntry
SPI_INTERFACE_CONFIG_s * spiSeqPtr
uint32_t commandTransferTime
SPI_INTERFACE_CONFIG_s * spiSeqEndPtr
LTC_STATEMACH_e laststate
LTC_ADCMEAS_CHAN_e adcMeasCh
LTC_REUSE_MODE_e reusageMeasurementMode
uint32_t gpioClocksTransferTime
uint8_t resendCommandCounter
DIAG_ID_e spiDiagErrorEntry
uint8_t spiNumberInterfaces
LTC_MUX_CH_CFG_s * muxmeas_seqendptr[BS_NR_OF_STRINGS]
LTC_MUX_CH_CFG_s * muxmeas_seqptr[BS_NR_OF_STRINGS]
uint32_t ErrRequestCounter
STD_RETURN_TYPE_e balance_control_done
STD_RETURN_TYPE_e check_spi_flag
bool first_measurement_made
LTC_ADCMEAS_CHAN_e adcMeasChreq
struct definition for plausibility values of a MIC
const int16_t maximumPlausibleVoltage_mV