mt_battery.c 30 KB

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  1. /* Copyright Statement:
  2. *
  3. * This software/firmware and related documentation ("MediaTek Software") are
  4. * protected under relevant copyright laws. The information contained herein
  5. * is confidential and proprietary to MediaTek Inc. and/or its licensors.
  6. * Without the prior written permission of MediaTek inc. and/or its licensors,
  7. * any reproduction, modification, use or disclosure of MediaTek Software,
  8. * and information contained herein, in whole or in part, shall be strictly prohibited.
  9. */
  10. /* MediaTek Inc. (C) 2015. All rights reserved.
  11. *
  12. * BY OPENING THIS FILE, RECEIVER HEREBY UNEQUIVOCALLY ACKNOWLEDGES AND AGREES
  13. * THAT THE SOFTWARE/FIRMWARE AND ITS DOCUMENTATIONS ("MEDIATEK SOFTWARE")
  14. * RECEIVED FROM MEDIATEK AND/OR ITS REPRESENTATIVES ARE PROVIDED TO RECEIVER ON
  15. * AN "AS-IS" BASIS ONLY. MEDIATEK EXPRESSLY DISCLAIMS ANY AND ALL WARRANTIES,
  16. * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE IMPLIED WARRANTIES OF
  17. * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR NONINFRINGEMENT.
  18. * NEITHER DOES MEDIATEK PROVIDE ANY WARRANTY WHATSOEVER WITH RESPECT TO THE
  19. * SOFTWARE OF ANY THIRD PARTY WHICH MAY BE USED BY, INCORPORATED IN, OR
  20. * SUPPLIED WITH THE MEDIATEK SOFTWARE, AND RECEIVER AGREES TO LOOK ONLY TO SUCH
  21. * THIRD PARTY FOR ANY WARRANTY CLAIM RELATING THERETO. RECEIVER EXPRESSLY ACKNOWLEDGES
  22. * THAT IT IS RECEIVER'S SOLE RESPONSIBILITY TO OBTAIN FROM ANY THIRD PARTY ALL PROPER LICENSES
  23. * CONTAINED IN MEDIATEK SOFTWARE. MEDIATEK SHALL ALSO NOT BE RESPONSIBLE FOR ANY MEDIATEK
  24. * SOFTWARE RELEASES MADE TO RECEIVER'S SPECIFICATION OR TO CONFORM TO A PARTICULAR
  25. * STANDARD OR OPEN FORUM. RECEIVER'S SOLE AND EXCLUSIVE REMEDY AND MEDIATEK'S ENTIRE AND
  26. * CUMULATIVE LIABILITY WITH RESPECT TO THE MEDIATEK SOFTWARE RELEASED HEREUNDER WILL BE,
  27. * AT MEDIATEK'S OPTION, TO REVISE OR REPLACE THE MEDIATEK SOFTWARE AT ISSUE,
  28. * OR REFUND ANY SOFTWARE LICENSE FEES OR SERVICE CHARGE PAID BY RECEIVER TO
  29. * MEDIATEK FOR SUCH MEDIATEK SOFTWARE AT ISSUE.
  30. */
  31. #include <target/board.h>
  32. #ifdef MTK_KERNEL_POWER_OFF_CHARGING
  33. #define CFG_POWER_CHARGING
  34. #endif
  35. #ifdef CFG_POWER_CHARGING
  36. #include <platform/mt_typedefs.h>
  37. #include <platform/mt_reg_base.h>
  38. #include <platform/mt_pmic.h>
  39. #include <platform/upmu_hw.h>
  40. #include <platform/upmu_common.h>
  41. #include <platform/boot_mode.h>
  42. #include <platform/mt_gpio.h>
  43. #include <platform/mt_gpt.h>
  44. #include <platform/mt_rtc.h>
  45. #include <platform/mt_rtc_hw.h>
  46. #include <platform/mt_pmic_wrap_init.h>
  47. #include <platform/mt_pumpexpress.h>
  48. //#include <platform/mt_disp_drv.h>
  49. //#include <platform/mtk_wdt.h>
  50. //#include <platform/mtk_key.h>
  51. //#include <platform/mt_logo.h>
  52. #include <platform/mt_leds.h>
  53. #include <printf.h>
  54. #include <sys/types.h>
  55. #include <target/cust_battery.h>
  56. #if defined(MTK_BQ24261_SUPPORT)
  57. #include <platform/bq24261.h>
  58. #endif
  59. #if defined(MTK_BQ24296_SUPPORT)
  60. #include <platform/bq24296.h>
  61. #endif
  62. #if defined(MTK_NCP1854_SUPPORT)
  63. #include <platform/ncp1854.h>
  64. #endif
  65. #if defined(MTK_BQ25896_SUPPORT)
  66. #include <platform/bq25890.h>
  67. #endif
  68. #ifdef MTK_CHARGER_INTERFACE
  69. #include <platform/mtk_charger_intf.h>
  70. static struct mtk_charger_info *primary_mchr;
  71. #endif
  72. #define DLPT_FEATURE_SUPPORT
  73. #define V_CHARGER_MAX 6500 // 6.5 V
  74. #undef printf
  75. /*****************************************************************************
  76. * Type define
  77. ****************************************************************************/
  78. #if defined(CUST_BATTERY_LOWVOL_THRESOLD)
  79. #define BATTERY_LOWVOL_THRESOLD CUST_BATTERY_LOWVOL_THRESOLD
  80. #else
  81. #define BATTERY_LOWVOL_THRESOLD 3450
  82. #endif
  83. /*****************************************************************************
  84. * Global Variable
  85. ****************************************************************************/
  86. bool g_boot_reason_change = false;
  87. kal_uint32 ptim_bat_vol=0;
  88. kal_int32 ptim_R_curr=0;
  89. static unsigned int count_time_out_adc_imp = 36;
  90. kal_bool g_fg_is_charging = 0;
  91. extern signed int fg_swocv_v;
  92. extern signed int fg_swocv_i;
  93. extern int shutdown_time;
  94. extern int boot_voltage;
  95. extern BOOT_ARGUMENT *g_boot_arg;
  96. /* battery meter parameter */
  97. #define UNIT_FGCURRENT (314331)
  98. #define CAR_TUNE_VALUE 1000 //1.00
  99. #define R_FG_VALUE 100
  100. #if defined(STD_AC_LARGE_CURRENT)
  101. int g_std_ac_large_current_en=1;
  102. #else
  103. int g_std_ac_large_current_en=0;
  104. #endif
  105. /*****************************************************************************
  106. * Externl Variable
  107. ****************************************************************************/
  108. extern bool g_boot_menu;
  109. extern void mtk_wdt_restart(void);
  110. extern BOOL meta_mode_check(void);
  111. int get_bat_volt(int times)
  112. {
  113. int bat_vol;
  114. #if defined(SWCHR_POWER_PATH)
  115. bat_vol = get_i_sense_volt(times);
  116. #else
  117. bat_vol = get_bat_sense_volt(times);
  118. #endif
  119. return bat_vol;
  120. }
  121. void kick_charger_wdt(void)
  122. {
  123. /*
  124. //mt6325_upmu_set_rg_chrwdt_td(0x0); // CHRWDT_TD, 4s
  125. mt6325_upmu_set_rg_chrwdt_td(0x3); // CHRWDT_TD, 32s for keep charging for lk to kernel
  126. mt6325_upmu_set_rg_chrwdt_wr(1); // CHRWDT_WR
  127. mt6325_upmu_set_rg_chrwdt_int_en(1); // CHRWDT_INT_EN
  128. mt6325_upmu_set_rg_chrwdt_en(1); // CHRWDT_EN
  129. mt6325_upmu_set_rg_chrwdt_flag_wr(1); // CHRWDT_WR
  130. */
  131. pmic_set_register_value(PMIC_RG_CHRWDT_TD,3); // CHRWDT_TD, 32s for keep charging for lk to kernel
  132. pmic_set_register_value(PMIC_RG_CHRWDT_WR,1); // CHRWDT_WR
  133. pmic_set_register_value(PMIC_RG_INT_EN_WATCHDOG,1); // CHRWDT_INT_EN
  134. pmic_set_register_value(PMIC_RG_CHRWDT_EN,1); // CHRWDT_EN
  135. /* pmic_set_register_value(PMIC_RG_CHRWDT_FLAG_WR,1);// CHRWDT_WR */
  136. }
  137. #if defined(MTK_BATLOWV_NO_PANEL_ON_EARLY)
  138. kal_bool is_low_battery(kal_int32 val)
  139. {
  140. static UINT8 g_bat_low = 0xFF;
  141. //low battery only justice once in lk
  142. if (0xFF != g_bat_low)
  143. return g_bat_low;
  144. else
  145. g_bat_low = FALSE;
  146. #if defined(SWCHR_POWER_PATH)
  147. if (0 == val)
  148. val = get_i_sense_volt(1);
  149. #else
  150. if (0 == val)
  151. val = get_bat_sense_volt(1);
  152. #endif
  153. if (val < BATTERY_LOWVOL_THRESOLD) {
  154. dprintf(INFO, "%s, TRUE\n", __FUNCTION__);
  155. g_bat_low = 0x1;
  156. }
  157. if (FALSE == g_bat_low)
  158. dprintf(INFO, "%s, FALSE\n", __FUNCTION__);
  159. return g_bat_low;
  160. }
  161. #endif
  162. void pchr_turn_on_charging(kal_bool bEnable)
  163. {
  164. #ifdef MTK_CHARGER_INTERFACE
  165. int ret = 0;
  166. bool enable = bEnable ? true : false;
  167. #endif
  168. pmic_set_register_value(PMIC_RG_USBDL_RST,1);//force leave USBDL mode
  169. //mt6325_upmu_set_rg_usbdl_rst(1); //force leave USBDL mode
  170. pmic_set_register_value(PMIC_RG_BC11_RST,1);//BC11_RST
  171. kick_charger_wdt();
  172. pmic_set_register_value(PMIC_RG_CS_VTH,0xC); // CS_VTH, 450mA
  173. //mt6325_upmu_set_rg_cs_vth(0xC); // CS_VTH, 450mA
  174. pmic_set_register_value(PMIC_RG_CSDAC_EN,bEnable);
  175. //mt6325_upmu_set_rg_csdac_en(1); // CSDAC_EN
  176. pmic_set_register_value(PMIC_RG_CHR_EN,bEnable);
  177. //mt6325_upmu_set_rg_chr_en(1); // CHR_EN
  178. pmic_set_register_value(PMIC_RG_CSDAC_MODE,1);//CSDAC_MODE
  179. pmic_set_register_value(PMIC_RG_CSDAC_EN,1);
  180. #if defined(MTK_BQ24261_SUPPORT)
  181. bq24261_hw_init();
  182. bq24261_charging_enable(bEnable);
  183. bq24261_dump_register();
  184. #endif
  185. #if defined(MTK_BQ24296_SUPPORT)
  186. bq24296_hw_init();
  187. bq24296_charging_enable(bEnable);
  188. bq24296_dump_register();
  189. #endif
  190. #if defined(MTK_NCP1854_SUPPORT)
  191. ncp1854_hw_init();
  192. ncp1854_charging_enable(bEnable);
  193. ncp1854_dump_register();
  194. #endif
  195. #if defined(MTK_BQ25896_SUPPORT)
  196. bq25890_hw_init();
  197. bq25890_charging_enable(bEnable);
  198. bq25890_dump_register();
  199. #endif
  200. #ifdef MTK_CHARGER_INTERFACE
  201. if (meta_mode_check()) {
  202. ret = mtk_charger_set_aicr(primary_mchr, 200);
  203. if (ret < 0)
  204. dprintf(CRITICAL, "%s: set aicr failed, ret = %d\n",
  205. __func__, ret);
  206. dprintf(CRITICAL, "Set AICR to 200mA in META mode\n");
  207. }
  208. ret = mtk_charger_enable_charging(primary_mchr, enable);
  209. if (ret < 0)
  210. dprintf(CRITICAL, "%s: %s charging failed, ret = %d\n",
  211. __func__, (enable ? "enable" : "disable"), ret);
  212. mtk_charger_dump_register(primary_mchr);
  213. if (ret < 0)
  214. dprintf(CRITICAL, "%s: dump register failed, ret = %d\n",
  215. __func__, ret);
  216. #endif
  217. }
  218. void pchr_turn_off_charging(void)
  219. {
  220. pmic_set_register_value(PMIC_RG_INT_EN_WATCHDOG,0);
  221. pmic_set_register_value(PMIC_RG_CHRWDT_EN,0);// CHRWDT_EN
  222. /* pmic_set_register_value(PMIC_RG_CHRWDT_FLAG_WR,0);// CHRWDT_FLAG */
  223. pmic_set_register_value(PMIC_RG_CSDAC_EN,0);// CSDAC_EN
  224. pmic_set_register_value(PMIC_RG_CHR_EN,0);// CHR_EN
  225. pmic_set_register_value(PMIC_RG_HWCV_EN,0);// RG_HWCV_EN
  226. }
  227. /*
  228. * Switch Charger Power Path switch
  229. */
  230. void switch_charger_power_path_enable(kal_bool enable)
  231. {
  232. #if defined(MTK_BQ25896_SUPPORT)
  233. if (enable == KAL_TRUE) {
  234. bq25890_set_FORCE_VINDPM(1);
  235. bq25890_set_VINDPM(0x14);
  236. } else {
  237. bq25890_set_FORCE_VINDPM(1);
  238. bq25890_set_VINDPM(0x7F);
  239. }
  240. #elif defined(MTK_CHARGER_INTERFACE)
  241. int ret = 0;
  242. bool _enable = enable ? true : false;
  243. ret = mtk_charger_enable_power_path(primary_mchr, _enable);
  244. if (ret < 0)
  245. dprintf(CRITICAL, "%s: %s power path failed, ret = %d\n",
  246. __func__, (_enable ? "enable" : "disable"), ret);
  247. #endif
  248. }
  249. int is_charging = 0;
  250. int fix_coverity = 0;
  251. /*
  252. * enter this function when low battery with charger
  253. * For BQ25896, power path support can provide current and voltage for cell phone to boot directly to kernel.
  254. */
  255. void check_bat_protect_status()
  256. {
  257. kal_int32 bat_val = 0;
  258. int current,chr_volt,cnt=0,i;
  259. #if defined(SWCHR_POWER_PATH)
  260. bat_val = get_i_sense_volt(5);
  261. #else
  262. bat_val = get_bat_sense_volt(5);
  263. #endif
  264. dprintf(CRITICAL, "[%s]: check VBAT=%d mV with %d mV, start charging... \n", __FUNCTION__, bat_val, BATTERY_LOWVOL_THRESOLD);
  265. if (bat_val == 56789)
  266. fix_coverity = 1;
  267. while (bat_val < BATTERY_LOWVOL_THRESOLD) {
  268. mtk_wdt_restart();
  269. if (upmu_is_chr_det() == KAL_FALSE) {
  270. dprintf(CRITICAL, "[BATTERY] No Charger, Power OFF !\n");
  271. mt6575_power_off();
  272. while (1) {
  273. if (fix_coverity == 1)
  274. return;
  275. }
  276. }
  277. chr_volt= get_charger_volt(1);
  278. if (chr_volt>V_CHARGER_MAX) {
  279. dprintf(CRITICAL, "[BATTERY] charger voltage is too high :%d , threshold is %d !\n",chr_volt,V_CHARGER_MAX);
  280. #if defined(SWCHR_POWER_PATH)
  281. mt6575_power_off();
  282. #endif
  283. break;
  284. }
  285. /* pmic_set_register_value(PMIC_BATON_TDET_EN, 1); */
  286. pmic_set_register_value(PMIC_RG_BATON_EN, 1);
  287. if (pmic_get_register_value(PMIC_RGS_BATON_UNDET) == 1) {
  288. dprintf(CRITICAL, "[BATTERY] No battry plug-in. Power Off.");
  289. mt6575_power_off();
  290. break;
  291. }
  292. dprintf(CRITICAL, "[%s]: check VBAT=%d mV with %d mV, start charging... \n", __FUNCTION__, bat_val, BATTERY_LOWVOL_THRESOLD);
  293. is_charging = 1;
  294. pchr_turn_on_charging(KAL_TRUE);
  295. #if defined(SWCHR_POWER_PATH)
  296. mdelay(5000);
  297. #else
  298. cnt=0;
  299. for (i=0; i<10; i++) {
  300. current=get_charging_current(1);
  301. chr_volt=get_charger_volt(1);
  302. if (current<100 && chr_volt<4400) {
  303. cnt++;
  304. dprintf(CRITICAL, "[BATTERY] charging current=%d charger volt=%d\n\r",current,chr_volt);
  305. } else {
  306. dprintf(CRITICAL, "[BATTERY] charging current=%d charger volt=%d\n\r",current,chr_volt);
  307. cnt=0;
  308. }
  309. }
  310. if (cnt>=8) {
  311. dprintf(CRITICAL, "[BATTERY] charging current and charger volt too low !! \n\r",cnt);
  312. pchr_turn_off_charging();
  313. #ifndef NO_POWER_OFF
  314. mt6575_power_off();
  315. #endif
  316. while (1) {
  317. dprintf(CRITICAL, "If you see the log, please check with RTC power off API\n\r");
  318. }
  319. }
  320. mdelay(50);
  321. #endif
  322. #if defined(SWCHR_POWER_PATH)
  323. bat_val = get_i_sense_volt(5);
  324. #else
  325. bat_val = get_bat_sense_volt(5);
  326. #endif
  327. dprintf(CRITICAL, "[%s]: check VBAT=%d mV \n", __FUNCTION__, bat_val);
  328. }
  329. mtk_wdt_restart();
  330. dprintf(CRITICAL, "[%s]: check VBAT=%d mV with %d mV, stop charging... \n", __FUNCTION__, bat_val, BATTERY_LOWVOL_THRESOLD);
  331. }
  332. bool mtk_bat_allow_backlight_enable(void)
  333. {
  334. int bat_vol = 0;
  335. #if defined(SWCHR_POWER_PATH)
  336. bat_vol = get_i_sense_volt(1);
  337. #else
  338. bat_vol = get_bat_sense_volt(1);
  339. #endif
  340. if (bat_vol > (BATTERY_LOWVOL_THRESOLD + 150))
  341. return true;
  342. return false;
  343. }
  344. static kal_uint32 fg_get_data_ready_status(void)
  345. {
  346. kal_uint32 ret=0;
  347. kal_uint32 temp_val=0;
  348. ret=pmic_read_interface(MT6356_FGADC_CON0, &temp_val, 0xFFFF, 0x0);
  349. dprintf(CRITICAL, "[fg_get_data_ready_status] Reg[0x%x]=0x%x\r\n", MT6356_FGADC_CON0, temp_val);
  350. temp_val = (temp_val & (PMIC_FG_LATCHDATA_ST_MASK << PMIC_FG_LATCHDATA_ST_SHIFT)) >> PMIC_FG_LATCHDATA_ST_SHIFT;
  351. return temp_val;
  352. }
  353. void fgauge_read_IM_current(void *data)
  354. {
  355. unsigned short uvalue16 = 0;
  356. signed int dvalue = 0;
  357. /*int m = 0;*/
  358. long long Temp_Value = 0;
  359. /*unsigned int ret = 0;*/
  360. uvalue16 = pmic_get_register_value(PMIC_FG_R_CURR);
  361. dprintf(CRITICAL,"[fgauge_read_IM_current] : FG_CURRENT = %x\r\n",
  362. uvalue16);
  363. /*calculate the real world data */
  364. dvalue = (unsigned int) uvalue16;
  365. if (dvalue == 0) {
  366. Temp_Value = (long long) dvalue;
  367. g_fg_is_charging = false;
  368. } else if (dvalue > 32767) {
  369. /* > 0x8000 */
  370. Temp_Value = (long long) (dvalue - 65535);
  371. Temp_Value = Temp_Value - (Temp_Value * 2);
  372. g_fg_is_charging = false;
  373. } else {
  374. Temp_Value = (long long) dvalue;
  375. g_fg_is_charging = true;
  376. }
  377. Temp_Value = Temp_Value * UNIT_FGCURRENT;
  378. Temp_Value=Temp_Value/100000;
  379. dvalue = (unsigned int) Temp_Value;
  380. if (g_fg_is_charging == true)
  381. dprintf(CRITICAL,
  382. "[fgauge_read_IM_current] current(charging) = %d mA\r\n",
  383. dvalue);
  384. else
  385. dprintf(CRITICAL,
  386. "[fgauge_read_IM_current] current(discharging) = %d mA\r\n",
  387. dvalue);
  388. /* Auto adjust value */
  389. if (R_FG_VALUE != 100) {
  390. dprintf(CRITICAL,
  391. "[fgauge_read_IM_current] Auto adjust value due to the Rfg is %d\n Ori current=%d, ",
  392. R_FG_VALUE, dvalue);
  393. dvalue = (dvalue * 100) / R_FG_VALUE;
  394. dprintf(CRITICAL,"[fgauge_read_IM_current] new current=%d\n",
  395. dvalue);
  396. }
  397. dprintf(CRITICAL,"[fgauge_read_IM_current] ori current=%d\n", dvalue);
  398. dvalue = ((dvalue * CAR_TUNE_VALUE) / 1000);
  399. dprintf(CRITICAL,"[fgauge_read_IM_current] final current=%d (ratio=%d)\n",
  400. dvalue, CAR_TUNE_VALUE);
  401. *(signed int *) (data) = dvalue;
  402. }
  403. void do_ptim(void)
  404. {
  405. kal_uint32 vbat_reg;
  406. unsigned int count_adc_imp = 0;
  407. pmic_set_register_value(PMIC_AUXADC_SPL_NUM_LARGE, 0x0006);
  408. pmic_set_register_value(PMIC_AUXADC_IMP_AUTORPT_PRD,6);
  409. #if 0 /* default use hw control, no need to set CK_PDN_HWEN to sw mode */
  410. pmic_set_register_value(PMIC_CLK_AUXADC_SMPS_CK_PDN,0);
  411. pmic_set_register_value(PMIC_CLK_AUXADC_SMPS_CK_PDN_HWEN,0);
  412. pmic_set_register_value(PMIC_RG_AUXADC_CK_PDN_HWEN,0);
  413. pmic_set_register_value(PMIC_RG_AUXADC_CK_PDN,0);
  414. #endif
  415. pmic_set_register_value(PMIC_AUXADC_IMP_AUTORPT_EN,1); /*Peter-SW:55,56*/
  416. pmic_set_register_value(PMIC_AUXADC_CLR_IMP_CNT_STOP,1);
  417. pmic_set_register_value(PMIC_AUXADC_IMPEDANCE_IRQ_CLR,1);
  418. /*restore to initial state */
  419. pmic_set_register_value(PMIC_AUXADC_CLR_IMP_CNT_STOP,0);
  420. pmic_set_register_value(PMIC_AUXADC_IMPEDANCE_IRQ_CLR,0);
  421. /*set issue interrupt */
  422. /*pmic_set_register_value(PMIC_RG_INT_EN_AUXADC_IMP,1); */
  423. pmic_set_register_value(PMIC_AUXADC_IMPEDANCE_CHSEL,1);
  424. /*pmic_set_register_value(PMIC_AUXADC_IMP_AUTORPT_EN,1);*//*Peter-SW:55,56*/
  425. pmic_set_register_value(PMIC_AUXADC_IMPEDANCE_CNT,1);
  426. pmic_set_register_value(PMIC_AUXADC_IMPEDANCE_MODE,1);
  427. while (pmic_get_register_value(PMIC_AUXADC_IMPEDANCE_IRQ_STATUS)==0) {
  428. if (count_adc_imp > count_time_out_adc_imp) {
  429. dprintf(CRITICAL, "do_ptim over %d times/ms\n", count_adc_imp);
  430. dprintf(CRITICAL, "AUXADC_IMPEDANCE_MODE=0x%x\n",
  431. pmic_get_register_value(PMIC_AUXADC_IMPEDANCE_MODE));
  432. dprintf(CRITICAL, "AUXADC_CLR_IMP_CNT_STOP=0x%x\n",
  433. pmic_get_register_value(PMIC_AUXADC_CLR_IMP_CNT_STOP));
  434. dprintf(CRITICAL, "AUXADC_IMPEDANCE_IRQ_STATUS=0x%x\n",
  435. pmic_get_register_value(PMIC_AUXADC_IMPEDANCE_IRQ_STATUS));
  436. dprintf(CRITICAL, "AUXADC_IMPEDANCE_IRQ_CLR=0x%x\n",
  437. pmic_get_register_value(PMIC_AUXADC_IMPEDANCE_IRQ_CLR));
  438. dprintf(CRITICAL, "AUXADC_IMPEDANCE_CHSEL=0x%x\n",
  439. pmic_get_register_value(PMIC_AUXADC_IMPEDANCE_CHSEL));
  440. dprintf(CRITICAL, "AUXADC_IMPEDANCE_CNT=0x%x\n",
  441. pmic_get_register_value(PMIC_AUXADC_IMPEDANCE_CNT));
  442. dprintf(CRITICAL, "AUXADC_IMP_AUTORPT_EN=0x%x\n",
  443. pmic_get_register_value(PMIC_AUXADC_IMP_AUTORPT_EN));
  444. dprintf(CRITICAL, "AUXADC_IMP_AUTORPT_PRD=0x%x\n",
  445. pmic_get_register_value(PMIC_AUXADC_IMP_AUTORPT_PRD));
  446. dprintf(CRITICAL, "RG_AUXADC_AO_1M_CK_PDN=0x%x\n",
  447. pmic_get_register_value(PMIC_RG_AUXADC_AO_1M_CK_PDN));
  448. dprintf(CRITICAL, "RG_AUXADC_1M_CK_PDN=0x%x\n",
  449. pmic_get_register_value(PMIC_RG_AUXADC_1M_CK_PDN));
  450. dprintf(CRITICAL, "RG_AUXADC_CK_PDN_HWEN=0x%x\n",
  451. pmic_get_register_value(PMIC_RG_AUXADC_CK_PDN_HWEN));
  452. dprintf(CRITICAL, "RG_AUXADC_CK_PDN=0x%x\n",
  453. pmic_get_register_value(PMIC_RG_AUXADC_CK_PDN));
  454. dprintf(CRITICAL, "RG_AUXADC_RNG_CK_PDN_HWEN=0x%x\n",
  455. pmic_get_register_value(PMIC_RG_AUXADC_RNG_CK_PDN_HWEN));
  456. dprintf(CRITICAL, "RG_AUXADC_RNG_CK_PDN=0x%x\n",
  457. pmic_get_register_value(PMIC_RG_AUXADC_RNG_CK_PDN));
  458. dprintf(CRITICAL, "RG_AUXADC_32K_CK_PDN_HWEN=0x%x\n",
  459. pmic_get_register_value(PMIC_RG_AUXADC_32K_CK_PDN_HWEN));
  460. dprintf(CRITICAL, "RG_AUXADC_32K_CK_PDN=0x%x\n",
  461. pmic_get_register_value(PMIC_RG_AUXADC_32K_CK_PDN));
  462. dprintf(CRITICAL, "RG_AUXADC_1K_CK_PDN=0x%x\n",
  463. pmic_get_register_value(PMIC_RG_AUXADC_1K_CK_PDN));
  464. dprintf(CRITICAL, "RG_AUXADC_INTRP_CK_PDN=0x%x\n",
  465. pmic_get_register_value(PMIC_RG_AUXADC_INTRP_CK_PDN));
  466. dprintf(CRITICAL, "AUXADC_CK_AON=0x%x\n",
  467. pmic_get_register_value(PMIC_AUXADC_CK_AON));
  468. dprintf(CRITICAL, "RG_AUXADC_IMP_CK_SW_MODE=0x%x\n",
  469. pmic_get_register_value(PMIC_RG_AUXADC_IMP_CK_SW_MODE));
  470. dprintf(CRITICAL, "RG_AUXADC_IMP_CK_SW_EN=0x%x\n",
  471. pmic_get_register_value(PMIC_RG_AUXADC_IMP_CK_SW_EN));
  472. dprintf(CRITICAL, "RG_STRUP_AUXADC_RSTB_SEL=0x%x\n",
  473. pmic_get_register_value(PMIC_RG_STRUP_AUXADC_RSTB_SEL));
  474. dprintf(CRITICAL, "RG_STRUP_AUXADC_RSTB_SW=0x%x\n",
  475. pmic_get_register_value(PMIC_RG_STRUP_AUXADC_RSTB_SW));
  476. break;
  477. }
  478. count_adc_imp++;
  479. mdelay(1);
  480. }
  481. /*disable */
  482. /*pmic_set_register_value(PMIC_AUXADC_IMP_AUTORPT_EN,0);*//*Peter-SW:55,56*/
  483. pmic_set_register_value(PMIC_AUXADC_IMPEDANCE_MODE,0);
  484. /*clear irq */
  485. pmic_set_register_value(PMIC_AUXADC_CLR_IMP_CNT_STOP,1);
  486. pmic_set_register_value(PMIC_AUXADC_IMPEDANCE_IRQ_CLR,1);
  487. pmic_set_register_value(PMIC_AUXADC_CLR_IMP_CNT_STOP,0);
  488. pmic_set_register_value(PMIC_AUXADC_IMPEDANCE_IRQ_CLR,0);
  489. pmic_set_register_value(PMIC_AUXADC_IMP_AUTORPT_EN,0); /*Peter-SW:55,56*/
  490. if (count_adc_imp <= count_time_out_adc_imp) {
  491. vbat_reg=pmic_get_register_value(PMIC_AUXADC_ADC_OUT_IMP_AVG);
  492. ptim_bat_vol=(vbat_reg*3*18000)/32768;
  493. } else
  494. ptim_bat_vol = pmic_get_auxadc_value(AUXADC_LIST_ISENSE) * 10;
  495. fgauge_read_IM_current((void *)&ptim_R_curr);
  496. /*dprintf(CRITICAL, "******** [do_ptim] Done!\n" ); */
  497. }
  498. void do_ptim_gauge(unsigned int *bat, signed int *cur)
  499. {
  500. int volt[5] = {0};
  501. int curr[5] = {0};
  502. int i, j;
  503. int arraySize = sizeof(volt)/sizeof(volt[0]);
  504. for (i = 0; i < arraySize; i++) {
  505. do_ptim();
  506. /* insertion sort */
  507. for (j = i; j > 0; j--) {
  508. if (ptim_bat_vol < volt[j - 1])
  509. volt[j] = volt[j - 1];
  510. else
  511. break;
  512. }
  513. volt[j] = ptim_bat_vol;
  514. /* insertion sort */
  515. for (j = i; j > 0; j--) {
  516. if (ptim_R_curr < curr[j - 1])
  517. curr[j] = curr[j - 1];
  518. else
  519. break;
  520. }
  521. curr[j] = ptim_R_curr;
  522. }
  523. *bat = volt[arraySize >> 1];
  524. *cur = curr[arraySize >> 1];
  525. dprintf(CRITICAL, "%s, %d(%d, %d, %d, %d, %d), %d(%d, %d, %d, %d, %d)\n",
  526. __func__, *bat, volt[0], volt[1], volt[2], volt[3], volt[4],
  527. *cur, curr[0], curr[1], curr[2], curr[3], curr[4]);
  528. }
  529. void check_sw_ocv(int bat_vol)
  530. {
  531. pchr_turn_on_charging(KAL_FALSE);
  532. mdelay(50);
  533. do_ptim_gauge(&ptim_bat_vol, &ptim_R_curr);
  534. fg_swocv_v = ptim_bat_vol;
  535. if (g_fg_is_charging == true)
  536. fg_swocv_i = ptim_R_curr;
  537. else
  538. fg_swocv_i = -ptim_R_curr;
  539. dprintf(CRITICAL, "[check_sw_ocv]%d ptim[%d %d] fg_swocv[%d %d] boot_vbat:%d shutdowntime:%d vbat:%d\n",
  540. g_fg_is_charging,
  541. ptim_bat_vol, ptim_R_curr, fg_swocv_v, fg_swocv_i, g_boot_arg->boot_voltage, g_boot_arg->shutdown_time,
  542. bat_vol);
  543. shutdown_time = g_boot_arg->shutdown_time;
  544. boot_voltage = g_boot_arg->boot_voltage;
  545. pchr_turn_on_charging(KAL_TRUE);
  546. }
  547. void mt65xx_bat_init(void)
  548. {
  549. #ifdef MTK_CHARGER_INTERFACE
  550. int ret = 0;
  551. #endif /* MTK_CHARGER_INTERFACE */
  552. kal_int32 bat_vol;
  553. #if defined(SWCHR_POWER_PATH) || defined(MTK_PUMP_EXPRESS_PLUS_SUPPORT)
  554. kal_int32 chr_volt;
  555. kal_int32 rc = 0;
  556. #endif
  557. // Low Battery Safety Booting
  558. /* Get charger interface */
  559. #ifdef MTK_CHARGER_INTERFACE
  560. mtk_charger_init();
  561. primary_mchr = mtk_charger_get_by_name("primary_charger");
  562. if (!primary_mchr)
  563. dprintf(CRITICAL, "%s: get primary charger failed\n", __func__);
  564. #endif
  565. #if defined(SWCHR_POWER_PATH)
  566. bat_vol = get_i_sense_volt(1);
  567. #else
  568. bat_vol = get_bat_sense_volt(1);
  569. #endif
  570. check_sw_ocv(bat_vol);
  571. //pchr_turn_on_charging(KAL_TRUE);
  572. dprintf(INFO, "[mt65xx_bat_init] check VBAT=%d mV with %d mV\n", bat_vol, BATTERY_LOWVOL_THRESOLD);
  573. #if defined(MTK_PUMP_EXPRESS_PLUS_SUPPORT) || defined(MTK_PUMP_EXPRESS_PLUS_20_SUPPORT)
  574. /*Try to reset PE+ adapter once abnormal voltage is found*/
  575. chr_volt = get_charger_volt(1);
  576. while (chr_volt > V_CHARGER_MAX) {
  577. dprintf(CRITICAL, "[mt65xx_bat_init] PE+ adpater should be reset to 5V now\n");
  578. pumpex_reset_adapter_enble(1);
  579. mdelay(250);
  580. pumpex_reset_adapter_enble(0);
  581. chr_volt = get_charger_volt(1);
  582. rc++;
  583. if (rc == 3)
  584. break;
  585. }
  586. #endif
  587. if (g_boot_mode == KERNEL_POWER_OFF_CHARGING_BOOT && (pmic_get_register_value(PMIC_PWRKEY_DEB)==0) ) {
  588. dprintf(CRITICAL, "[mt65xx_bat_init] KPOC+PWRKEY => change boot mode\n");
  589. g_boot_reason_change = true;
  590. }
  591. rtc_boot_check(false);
  592. #ifndef MTK_DISABLE_POWER_ON_OFF_VOLTAGE_LIMITATION
  593. #ifndef MTK_BATLOWV_NO_PANEL_ON_EARLY
  594. if (bat_vol < BATTERY_LOWVOL_THRESOLD)
  595. #else
  596. if (is_low_battery(bat_vol))
  597. #endif
  598. {
  599. if (g_boot_mode == KERNEL_POWER_OFF_CHARGING_BOOT && upmu_is_chr_det() == KAL_TRUE) {
  600. dprintf(CRITICAL, "[%s] Kernel Low Battery Power Off Charging Mode\n", __func__);
  601. g_boot_mode = LOW_POWER_OFF_CHARGING_BOOT;
  602. check_bat_protect_status();
  603. } else {
  604. dprintf(CRITICAL, "[BATTERY] battery voltage(%dmV) <= CLV ! Can not Boot Linux Kernel !! \n\r",bat_vol);
  605. #ifndef NO_POWER_OFF
  606. mt6575_power_off();
  607. #endif
  608. while (1) {
  609. dprintf(CRITICAL, "If you see the log, please check with RTC power off API\n\r");
  610. if (fix_coverity == 1)
  611. return;
  612. }
  613. }
  614. }
  615. #endif
  616. #if defined(SWCHR_POWER_PATH)
  617. chr_volt = get_charger_volt(1);
  618. if (chr_volt > V_CHARGER_MAX) {
  619. dprintf(CRITICAL, "Charger Over Voltage:%d\n, power off...", chr_volt);
  620. mt6575_power_off();
  621. }
  622. #endif
  623. #if defined(DLPT_FEATURE_SUPPORT)
  624. /* if fast meta mode detected, skip DLPT to speed up */
  625. if((g_boot_mode == META_BOOT) && !mt_get_gpio_in(GPIO0)){
  626. return;
  627. }
  628. if (g_boot_mode != META_BOOT && g_boot_mode != FACTORY_BOOT && g_boot_mode != ATE_FACTORY_BOOT) {
  629. /* pmic_set_register_value(PMIC_BATON_TDET_EN, 1); */
  630. pmic_set_register_value(PMIC_RG_BATON_EN, 1);
  631. if (pmic_get_register_value(PMIC_RGS_BATON_UNDET) == 1) {
  632. dprintf(CRITICAL, "[BATTERY] No battry plug-in. Power Off.");
  633. mt6575_power_off();
  634. }
  635. }
  636. pchr_turn_on_charging(KAL_FALSE);
  637. /* disable SW charger power path */
  638. switch_charger_power_path_enable(KAL_FALSE);
  639. mdelay(50);
  640. get_dlpt_imix_r();
  641. /* after get imix, re-enable SW charger power path */
  642. switch_charger_power_path_enable(KAL_TRUE);
  643. check_bat_protect_status();
  644. if (is_charging == 1) {
  645. pchr_turn_on_charging(KAL_TRUE);
  646. dprintf(CRITICAL, "turn on charging \n\r");
  647. }
  648. #endif //#if defined(DLPT_FEATURE_SUPPORT)
  649. #ifdef MTK_CHARGER_INTERFACE
  650. /* disable wdt in case entering fastboot later... */
  651. ret = mtk_charger_enable_wdt(primary_mchr, false);
  652. if (ret < 0)
  653. dprintf(CRITICAL, "%s: disable wdt fail\n", __func__);
  654. /* set bl/db driver */
  655. ret = mtk_charger_set_bl_driver(primary_mchr);
  656. if (ret < 0)
  657. dprintf(CRITICAL, "%s: set bl/db driver fail\n", __func__);
  658. #endif /* MTK_CHARGER_INTERFACE */
  659. return;
  660. }
  661. #if defined(DLPT_FEATURE_SUPPORT)
  662. int imix_r=170;
  663. extern kal_uint32 upmu_get_reg_value(kal_uint32 reg);
  664. void enable_dummy_load(kal_uint32 en)
  665. {
  666. if (en==1) {
  667. /*1. disable isink pdn */
  668. pmic_set_register_value(PMIC_RG_DRV_ISINK3_CK_PDN, 0);
  669. pmic_set_register_value(PMIC_RG_DRV_ISINK2_CK_PDN, 0);
  670. pmic_set_register_value(PMIC_RG_DRV_ISINK1_CK_PDN, 0);
  671. pmic_set_register_value(PMIC_RG_DRV_ISINK0_CK_PDN, 0);
  672. /* pmic_set_register_value(PMIC_RG_DRV_32K_CK_PDN, 0); */
  673. pmic_set_register_value(PMIC_RG_DRV_CHRIND_CK_PDN, 0);
  674. /* enable isink step */
  675. pmic_set_register_value(PMIC_ISINK_CH0_STEP, 0x7);
  676. pmic_set_register_value(PMIC_ISINK_CH1_STEP, 0x7);
  677. pmic_set_register_value(PMIC_ISINK_CH2_STEP, 0x7);
  678. pmic_set_register_value(PMIC_ISINK_CH3_STEP, 0x7);
  679. /* double function */
  680. pmic_set_register_value(PMIC_RG_ISINK3_DOUBLE, 0x1); /*CH3 double on */
  681. pmic_set_register_value(PMIC_RG_ISINK2_DOUBLE, 0x1); /*CH2 double on */
  682. pmic_set_register_value(PMIC_RG_ISINK1_DOUBLE, 0); /*CH1 double off */
  683. pmic_set_register_value(PMIC_RG_ISINK0_DOUBLE, 0); /*CH0 double off */
  684. /*enable isink */
  685. pmic_set_register_value(PMIC_ISINK_CH3_BIAS_EN, 0x1);
  686. pmic_set_register_value(PMIC_ISINK_CH2_BIAS_EN, 0x1);
  687. pmic_set_register_value(PMIC_ISINK_CH1_BIAS_EN, 0);
  688. pmic_set_register_value(PMIC_ISINK_CH0_BIAS_EN, 0);
  689. /* TODO */
  690. pmic_set_register_value(PMIC_ISINK_CHOP3_EN, 0); /* no chop */
  691. pmic_set_register_value(PMIC_ISINK_CHOP2_EN, 0); /* no chop */
  692. pmic_set_register_value(PMIC_ISINK_CHOP1_EN, 0); /* no chop */
  693. pmic_set_register_value(PMIC_ISINK_CHOP0_EN, 0); /* no chop */
  694. pmic_set_register_value(PMIC_ISINK_CH3_EN, 0x1);
  695. pmic_set_register_value(PMIC_ISINK_CH2_EN, 0x1);
  696. pmic_set_register_value(PMIC_ISINK_CH1_EN, 0);
  697. pmic_set_register_value(PMIC_ISINK_CH0_EN, 0);
  698. /*PMICLOG("[enable dummy load]\n"); */
  699. } else {
  700. pmic_set_register_value(PMIC_ISINK_CH3_EN, 0);
  701. pmic_set_register_value(PMIC_ISINK_CH2_EN, 0);
  702. pmic_set_register_value(PMIC_ISINK_CH1_EN, 0);
  703. pmic_set_register_value(PMIC_ISINK_CH0_EN, 0);
  704. pmic_set_register_value(PMIC_ISINK_CHOP3_EN, 0); /* no chop */
  705. pmic_set_register_value(PMIC_ISINK_CHOP2_EN, 0); /* no chop */
  706. pmic_set_register_value(PMIC_ISINK_CHOP1_EN, 0); /* no chop */
  707. pmic_set_register_value(PMIC_ISINK_CHOP0_EN, 0); /* no chop */
  708. pmic_set_register_value(PMIC_ISINK_CH3_BIAS_EN, 0);
  709. pmic_set_register_value(PMIC_ISINK_CH2_BIAS_EN, 0);
  710. pmic_set_register_value(PMIC_ISINK_CH1_BIAS_EN, 0);
  711. pmic_set_register_value(PMIC_ISINK_CH0_BIAS_EN, 0);
  712. /*1. enable isink pdn */
  713. pmic_set_register_value(PMIC_RG_DRV_ISINK3_CK_PDN, 0x1);
  714. pmic_set_register_value(PMIC_RG_DRV_ISINK2_CK_PDN, 0x1);
  715. pmic_set_register_value(PMIC_RG_DRV_ISINK1_CK_PDN, 0x1);
  716. pmic_set_register_value(PMIC_RG_DRV_ISINK0_CK_PDN, 0x1);
  717. /* pmic_set_register_value(PMIC_RG_DRV_32K_CK_PDN, 0x1); */
  718. pmic_set_register_value(PMIC_RG_DRV_CHRIND_CK_PDN, 0x1);
  719. /*pmic_set_register_value(PMIC_RG_VIBR_EN,0); */
  720. /*PMICLOG("[disable dummy load]\n"); */
  721. }
  722. }
  723. int get_rac_val(void)
  724. {
  725. int volt_1=0;
  726. int volt_2=0;
  727. int curr_1=0;
  728. int curr_2=0;
  729. int rac_cal=0;
  730. int ret=0;
  731. kal_bool retry_state = KAL_FALSE;
  732. int retry_count=0;
  733. do {
  734. //adc and fg--------------------------------------------------------
  735. do_ptim();
  736. dprintf(INFO, "[1,Trigger ADC PTIM mode] volt1=%d, curr_1=%d\n", ptim_bat_vol, ptim_R_curr);
  737. volt_1=ptim_bat_vol;
  738. curr_1=ptim_R_curr;
  739. dprintf(INFO, "[2,enable dummy load]");
  740. enable_dummy_load(1);
  741. /* debug to measure bat volt & Isense */
  742. /* pmic_set_register_value(PMIC_RG_VIBR_EN, 0x1); */
  743. mdelay(1);
  744. //Wait --------------------------------------------------------------
  745. //adc and fg--------------------------------------------------------
  746. do_ptim();
  747. dprintf(INFO, "[3,Trigger ADC PTIM mode again]0717 volt2=%d, curr_2=%d\n", ptim_bat_vol, ptim_R_curr);
  748. volt_2=ptim_bat_vol;
  749. curr_2=ptim_R_curr;
  750. //Disable dummy load-------------------------------------------------
  751. enable_dummy_load(0);
  752. /* debug to measure bat volt & Isense */
  753. /*pmic_set_register_value(PMIC_RG_VIBR_EN, 0); */
  754. //Calculate Rac------------------------------------------------------
  755. if ( (curr_2-curr_1) >= 700 && (curr_2-curr_1) <= 1200 && (volt_1-volt_2)>=80 ) { //40.0mA
  756. rac_cal=((volt_1-volt_2)*1000)/(curr_2-curr_1); //m-ohm
  757. if (rac_cal<0) {
  758. ret = (rac_cal-(rac_cal*2))*1;
  759. } else {
  760. ret = rac_cal*1;
  761. }
  762. } else {
  763. ret=-1;
  764. dprintf(CRITICAL, "[4,Calculate Rac] bypass due to (curr_x-curr_y) < 40mA\n");
  765. }
  766. dprintf(INFO, "[5,Calculate Rac] volt_1=%d,volt_2=%d,curr_1=%d,curr_2=%d,rac_cal=%d,ret=%d,retry_count=%d\n",
  767. volt_1,volt_2,curr_1,curr_2,rac_cal,ret,retry_count);
  768. dprintf(CRITICAL, "[6,Calculate Rac *] %d,%d,%d,%d,%d,%d,%d\n",
  769. volt_1,volt_2,curr_1,curr_2,rac_cal,ret,retry_count);
  770. //------------------------
  771. retry_count++;
  772. if ((retry_count < 3) && (ret == -1)) retry_state = KAL_TRUE;
  773. else retry_state = KAL_FALSE;
  774. } while (retry_state == KAL_TRUE);
  775. return ret;
  776. }
  777. void get_dlpt_imix_r(void)
  778. {
  779. int rac_val[5],rac_val_avg=0,rac_val_sum=0;
  780. int volt[5],curr[5],volt_avg=0,curr_avg=0;
  781. int imix;
  782. int i;
  783. int validcnt=0;
  784. int min=1000,max=0;
  785. for (i=0; i<5; i++) {
  786. rac_val[i]=get_rac_val();
  787. if (rac_val[i]<=min && rac_val[i]!=-1)
  788. min=rac_val[i];
  789. if (rac_val[i]>=max)
  790. max=rac_val[i];
  791. if (rac_val[i]!=-1) {
  792. rac_val_sum+=rac_val[i];
  793. validcnt++;
  794. }
  795. }
  796. if (validcnt>=4) {
  797. rac_val_sum=rac_val_sum-min-max;
  798. imix_r=rac_val_sum/(validcnt-2);
  799. } else if (validcnt!=0) {
  800. imix_r=rac_val_sum/validcnt;
  801. }
  802. dprintf(CRITICAL, "[dlpt_R] %d,%d,%d,%d,%d [%d:%d:%d]%d\n",rac_val[0],rac_val[1],rac_val[2],rac_val[3],rac_val[4],min,max,validcnt,imix_r);
  803. return;
  804. }
  805. #endif //#if defined(DLPT_FEATURE_SUPPORT)
  806. #else
  807. #include <platform/mt_typedefs.h>
  808. #include <platform/mt_reg_base.h>
  809. #include <printf.h>
  810. int imix_r=170;
  811. void mt65xx_bat_init(void)
  812. {
  813. dprintf(CRITICAL, "[BATTERY] Skip mt65xx_bat_init !!\n\r");
  814. dprintf(CRITICAL, "[BATTERY] If you want to enable power off charging, \n\r");
  815. dprintf(CRITICAL, "[BATTERY] Please #define CFG_POWER_CHARGING!!\n\r");
  816. }
  817. int get_bat_volt(int times)
  818. {
  819. int bat_vol;
  820. #if defined(SWCHR_POWER_PATH)
  821. bat_vol = get_i_sense_volt(times);
  822. #else
  823. bat_vol = get_bat_sense_volt(times);
  824. #endif
  825. return bat_vol;
  826. }
  827. #endif