bq25896.c 3.2 KB

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  1. #include <bq25896.h>
  2. #include <bq25896_reg.h>
  3. #include <i2c.h>
  4. uint8_t bit_reverse(uint8_t b) {
  5. b = (b & 0xF0) >> 4 | (b & 0x0F) << 4;
  6. b = (b & 0xCC) >> 2 | (b & 0x33) << 2;
  7. b = (b & 0xAA) >> 1 | (b & 0x55) << 1;
  8. return b;
  9. }
  10. bool bq25896_read(uint8_t address, uint8_t* data, size_t size) {
  11. if (HAL_I2C_Master_Transmit(&POWER_I2C, BQ25896_ADDRESS, &address, 1, 2000) != HAL_OK) {
  12. return false;
  13. }
  14. if (HAL_I2C_Master_Receive(&POWER_I2C, BQ25896_ADDRESS, data, size, 2000) != HAL_OK) {
  15. return false;
  16. }
  17. return true;
  18. }
  19. bool bq25896_read_reg(uint8_t address, uint8_t* data) {
  20. bq25896_read(address, data, 1);
  21. return true;
  22. }
  23. bool bq25896_write_reg(uint8_t address, uint8_t* data) {
  24. uint8_t buffer[2] = { address, *data };
  25. if (HAL_I2C_Master_Transmit(&POWER_I2C, BQ25896_ADDRESS, buffer, 2, 2000) != HAL_OK) {
  26. return false;
  27. }
  28. return true;
  29. }
  30. typedef struct {
  31. REG00 r00;
  32. REG01 r01;
  33. REG02 r02;
  34. REG03 r03;
  35. REG04 r04;
  36. REG05 r05;
  37. REG06 r06;
  38. REG07 r07;
  39. REG08 r08;
  40. REG09 r09;
  41. REG0A r0A;
  42. REG0B r0B;
  43. REG0C r0C;
  44. REG0D r0D;
  45. REG0E r0E;
  46. REG0F r0F;
  47. REG10 r10;
  48. REG11 r11;
  49. REG12 r12;
  50. REG13 r13;
  51. REG14 r14;
  52. } bq25896_regs_t;
  53. static bq25896_regs_t bq25896_regs;
  54. void bq25896_init() {
  55. bq25896_regs.r14.REG_RST = 1;
  56. bq25896_write_reg(0x14, (uint8_t*)&bq25896_regs.r14);
  57. // Readout all registers
  58. bq25896_read(0x00, (uint8_t*)&bq25896_regs, sizeof(bq25896_regs));
  59. // Poll ADC forever
  60. bq25896_regs.r02.CONV_START = 1;
  61. bq25896_regs.r02.CONV_RATE = 1;
  62. bq25896_write_reg(0x02, (uint8_t*)&bq25896_regs.r02);
  63. bq25896_regs.r07.WATCHDOG = WatchdogDisable;
  64. bq25896_write_reg(0x07, (uint8_t*)&bq25896_regs.r07);
  65. bq25896_read(0x00, (uint8_t*)&bq25896_regs, sizeof(bq25896_regs));
  66. }
  67. void bq25896_poweroff() {
  68. bq25896_regs.r09.BATFET_DIS=1;
  69. bq25896_write_reg(0x09, (uint8_t*)&bq25896_regs.r09);
  70. }
  71. bool bq25896_is_charging() {
  72. bq25896_read(0x00, (uint8_t*)&bq25896_regs, sizeof(bq25896_regs));
  73. bq25896_read_reg(0x0B, (uint8_t*)&bq25896_regs.r0B);
  74. return bq25896_regs.r0B.CHRG_STAT != ChrgStatNo;
  75. }
  76. void bq25896_enable_otg() {
  77. bq25896_regs.r03.OTG_CONFIG = 1;
  78. bq25896_write_reg(0x03, (uint8_t*)&bq25896_regs.r03);
  79. }
  80. void bq25896_disable_otg() {
  81. bq25896_regs.r03.OTG_CONFIG = 0;
  82. bq25896_write_reg(0x03, (uint8_t*)&bq25896_regs.r03);
  83. }
  84. uint16_t bq25896_get_vbus_voltage() {
  85. bq25896_read_reg(0x11, (uint8_t*)&bq25896_regs.r11);
  86. if (bq25896_regs.r11.VBUS_GD) {
  87. return (uint16_t)bq25896_regs.r11.VBUSV * 100 + 2600;
  88. } else {
  89. return 0;
  90. }
  91. }
  92. uint16_t bq25896_get_vsys_voltage() {
  93. bq25896_read_reg(0x0F, (uint8_t*)&bq25896_regs.r0F);
  94. return (uint16_t)bq25896_regs.r0F.SYSV * 20 + 2304;
  95. }
  96. uint16_t bq25896_get_vbat_voltage() {
  97. bq25896_read_reg(0x0E, (uint8_t*)&bq25896_regs.r0E);
  98. return (uint16_t)bq25896_regs.r0E.BATV * 20 + 2304;
  99. }
  100. uint16_t bq25896_get_vbat_current() {
  101. bq25896_read_reg(0x12, (uint8_t*)&bq25896_regs.r12);
  102. return (uint16_t)bq25896_regs.r12.ICHGR * 50;
  103. }
  104. uint32_t bq25896_get_ntc_mpct() {
  105. bq25896_read_reg(0x10, (uint8_t*)&bq25896_regs.r10);
  106. return (uint32_t)bq25896_regs.r10.TSPCT * 465+21000;
  107. }