furi_hal_power.c 14 KB

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  1. #include <furi_hal_power.h>
  2. #include <furi_hal_clock.h>
  3. #include <furi_hal_bt.h>
  4. #include <furi_hal_resources.h>
  5. #include <stm32wbxx_ll_rcc.h>
  6. #include <stm32wbxx_ll_pwr.h>
  7. #include <stm32wbxx_ll_hsem.h>
  8. #include <stm32wbxx_ll_cortex.h>
  9. #include <stm32wbxx_ll_gpio.h>
  10. #include <hw_conf.h>
  11. #include <bq27220.h>
  12. #include <bq25896.h>
  13. #include <furi.h>
  14. #define TAG "FuriHalPower"
  15. typedef struct {
  16. volatile uint8_t insomnia;
  17. volatile uint8_t deep_insomnia;
  18. volatile uint8_t suppress_charge;
  19. } FuriHalPower;
  20. static volatile FuriHalPower furi_hal_power = {
  21. .insomnia = 0,
  22. .deep_insomnia = 1,
  23. .suppress_charge = 0,
  24. };
  25. const ParamCEDV cedv = {
  26. .cedv_conf.gauge_conf =
  27. {
  28. .CCT = 1,
  29. .CSYNC = 0,
  30. .EDV_CMP = 0,
  31. .SC = 1,
  32. .FIXED_EDV0 = 1,
  33. .FCC_LIM = 1,
  34. .FC_FOR_VDQ = 1,
  35. .IGNORE_SD = 1,
  36. .SME0 = 0,
  37. },
  38. .full_charge_cap = 2101,
  39. .design_cap = 2101,
  40. .EDV0 = 3300,
  41. .EDV1 = 3321,
  42. .EDV2 = 3355,
  43. .EMF = 3679,
  44. .C0 = 430,
  45. .C1 = 0,
  46. .R1 = 408,
  47. .R0 = 334,
  48. .T0 = 4626,
  49. .TC = 11,
  50. .DOD0 = 4044,
  51. .DOD10 = 3905,
  52. .DOD20 = 3807,
  53. .DOD30 = 3718,
  54. .DOD40 = 3642,
  55. .DOD50 = 3585,
  56. .DOD60 = 3546,
  57. .DOD70 = 3514,
  58. .DOD80 = 3477,
  59. .DOD90 = 3411,
  60. .DOD100 = 3299,
  61. };
  62. void HAL_RCC_CSSCallback(void) {
  63. // TODO: notify user about issue with HSE
  64. furi_hal_power_reset();
  65. }
  66. void furi_hal_power_init() {
  67. LL_PWR_SetRegulVoltageScaling(LL_PWR_REGU_VOLTAGE_SCALE1);
  68. LL_PWR_SMPS_SetMode(LL_PWR_SMPS_STEP_DOWN);
  69. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  70. bq27220_init(&furi_hal_i2c_handle_power, &cedv);
  71. bq25896_init(&furi_hal_i2c_handle_power);
  72. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  73. FURI_LOG_I(TAG, "Init OK");
  74. }
  75. uint16_t furi_hal_power_insomnia_level() {
  76. return furi_hal_power.insomnia;
  77. }
  78. void furi_hal_power_insomnia_enter() {
  79. FURI_CRITICAL_ENTER();
  80. furi_assert(furi_hal_power.insomnia < UINT8_MAX);
  81. furi_hal_power.insomnia++;
  82. FURI_CRITICAL_EXIT();
  83. }
  84. void furi_hal_power_insomnia_exit() {
  85. FURI_CRITICAL_ENTER();
  86. furi_assert(furi_hal_power.insomnia > 0);
  87. furi_hal_power.insomnia--;
  88. FURI_CRITICAL_EXIT();
  89. }
  90. bool furi_hal_power_sleep_available() {
  91. return furi_hal_power.insomnia == 0;
  92. }
  93. bool furi_hal_power_deep_sleep_available() {
  94. return furi_hal_bt_is_alive() && furi_hal_power.deep_insomnia == 0;
  95. }
  96. void furi_hal_power_light_sleep() {
  97. __WFI();
  98. }
  99. void furi_hal_power_deep_sleep() {
  100. while(LL_HSEM_1StepLock(HSEM, CFG_HW_RCC_SEMID))
  101. ;
  102. if(!LL_HSEM_1StepLock(HSEM, CFG_HW_ENTRY_STOP_MODE_SEMID)) {
  103. if(LL_PWR_IsActiveFlag_C2DS()) {
  104. // Release ENTRY_STOP_MODE semaphore
  105. LL_HSEM_ReleaseLock(HSEM, CFG_HW_ENTRY_STOP_MODE_SEMID, 0);
  106. // The switch on HSI before entering Stop Mode is required
  107. furi_hal_clock_switch_to_hsi();
  108. }
  109. } else {
  110. /**
  111. * The switch on HSI before entering Stop Mode is required
  112. */
  113. furi_hal_clock_switch_to_hsi();
  114. }
  115. /* Release RCC semaphore */
  116. LL_HSEM_ReleaseLock(HSEM, CFG_HW_RCC_SEMID, 0);
  117. // Prepare deep sleep
  118. LL_PWR_SetPowerMode(LL_PWR_MODE_STOP1);
  119. LL_LPM_EnableDeepSleep();
  120. #if defined(__CC_ARM)
  121. // Force store operations
  122. __force_stores();
  123. #endif
  124. __WFI();
  125. /* Release ENTRY_STOP_MODE semaphore */
  126. LL_HSEM_ReleaseLock(HSEM, CFG_HW_ENTRY_STOP_MODE_SEMID, 0);
  127. while(LL_HSEM_1StepLock(HSEM, CFG_HW_RCC_SEMID))
  128. ;
  129. if(LL_RCC_GetSysClkSource() != LL_RCC_SYS_CLKSOURCE_STATUS_PLL) {
  130. furi_hal_clock_switch_to_pll();
  131. }
  132. LL_HSEM_ReleaseLock(HSEM, CFG_HW_RCC_SEMID, 0);
  133. }
  134. void furi_hal_power_sleep() {
  135. if(furi_hal_power_deep_sleep_available()) {
  136. furi_hal_power_deep_sleep();
  137. } else {
  138. furi_hal_power_light_sleep();
  139. }
  140. }
  141. uint8_t furi_hal_power_get_pct() {
  142. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  143. uint8_t ret = bq27220_get_state_of_charge(&furi_hal_i2c_handle_power);
  144. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  145. return ret;
  146. }
  147. uint8_t furi_hal_power_get_bat_health_pct() {
  148. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  149. uint8_t ret = bq27220_get_state_of_health(&furi_hal_i2c_handle_power);
  150. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  151. return ret;
  152. }
  153. bool furi_hal_power_is_charging() {
  154. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  155. bool ret = bq25896_is_charging(&furi_hal_i2c_handle_power);
  156. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  157. return ret;
  158. }
  159. void furi_hal_power_off() {
  160. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  161. bq25896_poweroff(&furi_hal_i2c_handle_power);
  162. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  163. }
  164. void furi_hal_power_reset() {
  165. NVIC_SystemReset();
  166. }
  167. void furi_hal_power_enable_otg() {
  168. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  169. bq25896_enable_otg(&furi_hal_i2c_handle_power);
  170. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  171. }
  172. void furi_hal_power_disable_otg() {
  173. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  174. bq25896_disable_otg(&furi_hal_i2c_handle_power);
  175. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  176. }
  177. bool furi_hal_power_is_otg_enabled() {
  178. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  179. bool ret = bq25896_is_otg_enabled(&furi_hal_i2c_handle_power);
  180. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  181. return ret;
  182. }
  183. void furi_hal_power_check_otg_status() {
  184. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  185. if(bq25896_check_otg_fault(&furi_hal_i2c_handle_power))
  186. bq25896_disable_otg(&furi_hal_i2c_handle_power);
  187. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  188. }
  189. uint32_t furi_hal_power_get_battery_remaining_capacity() {
  190. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  191. uint32_t ret = bq27220_get_remaining_capacity(&furi_hal_i2c_handle_power);
  192. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  193. return ret;
  194. }
  195. uint32_t furi_hal_power_get_battery_full_capacity() {
  196. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  197. uint32_t ret = bq27220_get_full_charge_capacity(&furi_hal_i2c_handle_power);
  198. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  199. return ret;
  200. }
  201. uint32_t furi_hal_power_get_battery_design_capacity() {
  202. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  203. uint32_t ret = bq27220_get_design_capacity(&furi_hal_i2c_handle_power);
  204. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  205. return ret;
  206. }
  207. float furi_hal_power_get_battery_voltage(FuriHalPowerIC ic) {
  208. float ret = 0.0f;
  209. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  210. if(ic == FuriHalPowerICCharger) {
  211. ret = (float)bq25896_get_vbat_voltage(&furi_hal_i2c_handle_power) / 1000.0f;
  212. } else if(ic == FuriHalPowerICFuelGauge) {
  213. ret = (float)bq27220_get_voltage(&furi_hal_i2c_handle_power) / 1000.0f;
  214. }
  215. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  216. return ret;
  217. }
  218. float furi_hal_power_get_battery_current(FuriHalPowerIC ic) {
  219. float ret = 0.0f;
  220. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  221. if(ic == FuriHalPowerICCharger) {
  222. ret = (float)bq25896_get_vbat_current(&furi_hal_i2c_handle_power) / 1000.0f;
  223. } else if(ic == FuriHalPowerICFuelGauge) {
  224. ret = (float)bq27220_get_current(&furi_hal_i2c_handle_power) / 1000.0f;
  225. }
  226. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  227. return ret;
  228. }
  229. static float furi_hal_power_get_battery_temperature_internal(FuriHalPowerIC ic) {
  230. float ret = 0.0f;
  231. if(ic == FuriHalPowerICCharger) {
  232. // Linear approximation, +/- 5 C
  233. ret = (71.0f - (float)bq25896_get_ntc_mpct(&furi_hal_i2c_handle_power) / 1000) / 0.6f;
  234. } else if(ic == FuriHalPowerICFuelGauge) {
  235. ret = ((float)bq27220_get_temperature(&furi_hal_i2c_handle_power) - 2731.0f) / 10.0f;
  236. }
  237. return ret;
  238. }
  239. float furi_hal_power_get_battery_temperature(FuriHalPowerIC ic) {
  240. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  241. float ret = furi_hal_power_get_battery_temperature_internal(ic);
  242. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  243. return ret;
  244. }
  245. float furi_hal_power_get_usb_voltage() {
  246. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  247. float ret = (float)bq25896_get_vbus_voltage(&furi_hal_i2c_handle_power) / 1000.0f;
  248. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  249. return ret;
  250. }
  251. void furi_hal_power_dump_state() {
  252. BatteryStatus battery_status;
  253. OperationStatus operation_status;
  254. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  255. if(bq27220_get_battery_status(&furi_hal_i2c_handle_power, &battery_status) == BQ27220_ERROR ||
  256. bq27220_get_operation_status(&furi_hal_i2c_handle_power, &operation_status) ==
  257. BQ27220_ERROR) {
  258. printf("Failed to get bq27220 status. Communication error.\r\n");
  259. } else {
  260. // Operation status register
  261. printf(
  262. "bq27220: CALMD: %d, SEC0: %d, SEC1: %d, EDV2: %d, VDQ: %d, INITCOMP: %d, SMTH: %d, BTPINT: %d, CFGUPDATE: %d\r\n",
  263. operation_status.CALMD,
  264. operation_status.SEC0,
  265. operation_status.SEC1,
  266. operation_status.EDV2,
  267. operation_status.VDQ,
  268. operation_status.INITCOMP,
  269. operation_status.SMTH,
  270. operation_status.BTPINT,
  271. operation_status.CFGUPDATE);
  272. // Battery status register, part 1
  273. printf(
  274. "bq27220: CHGINH: %d, FC: %d, OTD: %d, OTC: %d, SLEEP: %d, OCVFAIL: %d, OCVCOMP: %d, FD: %d\r\n",
  275. battery_status.CHGINH,
  276. battery_status.FC,
  277. battery_status.OTD,
  278. battery_status.OTC,
  279. battery_status.SLEEP,
  280. battery_status.OCVFAIL,
  281. battery_status.OCVCOMP,
  282. battery_status.FD);
  283. // Battery status register, part 2
  284. printf(
  285. "bq27220: DSG: %d, SYSDWN: %d, TDA: %d, BATTPRES: %d, AUTH_GD: %d, OCVGD: %d, TCA: %d, RSVD: %d\r\n",
  286. battery_status.DSG,
  287. battery_status.SYSDWN,
  288. battery_status.TDA,
  289. battery_status.BATTPRES,
  290. battery_status.AUTH_GD,
  291. battery_status.OCVGD,
  292. battery_status.TCA,
  293. battery_status.RSVD);
  294. // Voltage and current info
  295. printf(
  296. "bq27220: Full capacity: %dmAh, Design capacity: %dmAh, Remaining capacity: %dmAh, State of Charge: %d%%, State of health: %d%%\r\n",
  297. bq27220_get_full_charge_capacity(&furi_hal_i2c_handle_power),
  298. bq27220_get_design_capacity(&furi_hal_i2c_handle_power),
  299. bq27220_get_remaining_capacity(&furi_hal_i2c_handle_power),
  300. bq27220_get_state_of_charge(&furi_hal_i2c_handle_power),
  301. bq27220_get_state_of_health(&furi_hal_i2c_handle_power));
  302. printf(
  303. "bq27220: Voltage: %dmV, Current: %dmA, Temperature: %dC\r\n",
  304. bq27220_get_voltage(&furi_hal_i2c_handle_power),
  305. bq27220_get_current(&furi_hal_i2c_handle_power),
  306. (int)furi_hal_power_get_battery_temperature_internal(FuriHalPowerICFuelGauge));
  307. }
  308. printf(
  309. "bq25896: VBUS: %d, VSYS: %d, VBAT: %d, Current: %d, NTC: %ldm%%\r\n",
  310. bq25896_get_vbus_voltage(&furi_hal_i2c_handle_power),
  311. bq25896_get_vsys_voltage(&furi_hal_i2c_handle_power),
  312. bq25896_get_vbat_voltage(&furi_hal_i2c_handle_power),
  313. bq25896_get_vbat_current(&furi_hal_i2c_handle_power),
  314. bq25896_get_ntc_mpct(&furi_hal_i2c_handle_power));
  315. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  316. }
  317. void furi_hal_power_enable_external_3_3v() {
  318. LL_GPIO_SetOutputPin(PERIPH_POWER_GPIO_Port, PERIPH_POWER_Pin);
  319. }
  320. void furi_hal_power_disable_external_3_3v() {
  321. LL_GPIO_ResetOutputPin(PERIPH_POWER_GPIO_Port, PERIPH_POWER_Pin);
  322. }
  323. void furi_hal_power_suppress_charge_enter() {
  324. vTaskSuspendAll();
  325. bool disable_charging = furi_hal_power.suppress_charge == 0;
  326. furi_hal_power.suppress_charge++;
  327. xTaskResumeAll();
  328. if(disable_charging) {
  329. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  330. bq25896_disable_charging(&furi_hal_i2c_handle_power);
  331. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  332. }
  333. }
  334. void furi_hal_power_suppress_charge_exit() {
  335. vTaskSuspendAll();
  336. furi_hal_power.suppress_charge--;
  337. bool enable_charging = furi_hal_power.suppress_charge == 0;
  338. xTaskResumeAll();
  339. if(enable_charging) {
  340. furi_hal_i2c_acquire(&furi_hal_i2c_handle_power);
  341. bq25896_enable_charging(&furi_hal_i2c_handle_power);
  342. furi_hal_i2c_release(&furi_hal_i2c_handle_power);
  343. }
  344. }
  345. void furi_hal_power_info_get(FuriHalPowerInfoCallback out, void* context) {
  346. furi_assert(out);
  347. string_t value;
  348. string_init(value);
  349. // Power Info version
  350. out("power_info_major", "1", false, context);
  351. out("power_info_minor", "0", false, context);
  352. uint8_t charge = furi_hal_power_get_pct();
  353. string_printf(value, "%u", charge);
  354. out("charge_level", string_get_cstr(value), false, context);
  355. if(furi_hal_power_is_charging()) {
  356. if(charge < 100) {
  357. string_printf(value, "charging");
  358. } else {
  359. string_printf(value, "charged");
  360. }
  361. } else {
  362. string_printf(value, "discharging");
  363. }
  364. out("charge_state", string_get_cstr(value), false, context);
  365. uint16_t voltage =
  366. (uint16_t)(furi_hal_power_get_battery_voltage(FuriHalPowerICFuelGauge) * 1000.f);
  367. string_printf(value, "%u", voltage);
  368. out("battery_voltage", string_get_cstr(value), false, context);
  369. int16_t current =
  370. (int16_t)(furi_hal_power_get_battery_current(FuriHalPowerICFuelGauge) * 1000.f);
  371. string_printf(value, "%d", current);
  372. out("battery_current", string_get_cstr(value), false, context);
  373. int16_t temperature = (int16_t)furi_hal_power_get_battery_temperature(FuriHalPowerICFuelGauge);
  374. string_printf(value, "%d", temperature);
  375. out("gauge_temp", string_get_cstr(value), false, context);
  376. string_printf(value, "%u", furi_hal_power_get_bat_health_pct());
  377. out("battery_health", string_get_cstr(value), false, context);
  378. string_printf(value, "%u", furi_hal_power_get_battery_remaining_capacity());
  379. out("capacity_remain", string_get_cstr(value), false, context);
  380. string_printf(value, "%u", furi_hal_power_get_battery_full_capacity());
  381. out("capacity_full", string_get_cstr(value), false, context);
  382. string_printf(value, "%u", furi_hal_power_get_battery_design_capacity());
  383. out("capacity_design", string_get_cstr(value), true, context);
  384. string_clear(value);
  385. }