| 1 | /* SPDX-License-Identifier: GPL-2.0-only */ |
| 2 | /* |
| 3 | * Universal power supply monitor class |
| 4 | * |
| 5 | * Copyright © 2007 Anton Vorontsov <cbou@mail.ru> |
| 6 | * Copyright © 2004 Szabolcs Gyurko |
| 7 | * Copyright © 2003 Ian Molton <spyro@f2s.com> |
| 8 | * |
| 9 | * Modified: 2004, Oct Szabolcs Gyurko |
| 10 | */ |
| 11 | |
| 12 | #ifndef __LINUX_POWER_SUPPLY_H__ |
| 13 | #define __LINUX_POWER_SUPPLY_H__ |
| 14 | |
| 15 | #include <linux/device.h> |
| 16 | #include <linux/workqueue.h> |
| 17 | #include <linux/leds.h> |
| 18 | #include <linux/rwsem.h> |
| 19 | #include <linux/list.h> |
| 20 | #include <linux/spinlock.h> |
| 21 | #include <linux/notifier.h> |
| 22 | |
| 23 | /* |
| 24 | * All voltages, currents, charges, energies, time and temperatures in uV, |
| 25 | * µA, µAh, µWh, seconds and tenths of degree Celsius unless otherwise |
| 26 | * stated. It's driver's job to convert its raw values to units in which |
| 27 | * this class operates. |
| 28 | */ |
| 29 | |
| 30 | /* |
| 31 | * For systems where the charger determines the maximum battery capacity |
| 32 | * the min and max fields should be used to present these values to user |
| 33 | * space. Unused/unknown fields will not appear in sysfs. |
| 34 | */ |
| 35 | |
| 36 | enum { |
| 37 | POWER_SUPPLY_STATUS_UNKNOWN = 0, |
| 38 | POWER_SUPPLY_STATUS_CHARGING, |
| 39 | POWER_SUPPLY_STATUS_DISCHARGING, |
| 40 | POWER_SUPPLY_STATUS_NOT_CHARGING, |
| 41 | POWER_SUPPLY_STATUS_FULL, |
| 42 | }; |
| 43 | |
| 44 | /* What algorithm is the charger using? */ |
| 45 | enum power_supply_charge_type { |
| 46 | POWER_SUPPLY_CHARGE_TYPE_UNKNOWN = 0, |
| 47 | POWER_SUPPLY_CHARGE_TYPE_NONE, |
| 48 | POWER_SUPPLY_CHARGE_TYPE_TRICKLE, /* slow speed */ |
| 49 | POWER_SUPPLY_CHARGE_TYPE_FAST, /* fast speed */ |
| 50 | POWER_SUPPLY_CHARGE_TYPE_STANDARD, /* normal speed */ |
| 51 | POWER_SUPPLY_CHARGE_TYPE_ADAPTIVE, /* dynamically adjusted speed */ |
| 52 | POWER_SUPPLY_CHARGE_TYPE_CUSTOM, /* use CHARGE_CONTROL_* props */ |
| 53 | POWER_SUPPLY_CHARGE_TYPE_LONGLIFE, /* slow speed, longer life */ |
| 54 | POWER_SUPPLY_CHARGE_TYPE_BYPASS, /* bypassing the charger */ |
| 55 | }; |
| 56 | |
| 57 | enum { |
| 58 | POWER_SUPPLY_HEALTH_UNKNOWN = 0, |
| 59 | POWER_SUPPLY_HEALTH_GOOD, |
| 60 | POWER_SUPPLY_HEALTH_OVERHEAT, |
| 61 | POWER_SUPPLY_HEALTH_DEAD, |
| 62 | POWER_SUPPLY_HEALTH_OVERVOLTAGE, |
| 63 | POWER_SUPPLY_HEALTH_UNDERVOLTAGE, |
| 64 | POWER_SUPPLY_HEALTH_UNSPEC_FAILURE, |
| 65 | POWER_SUPPLY_HEALTH_COLD, |
| 66 | POWER_SUPPLY_HEALTH_WATCHDOG_TIMER_EXPIRE, |
| 67 | POWER_SUPPLY_HEALTH_SAFETY_TIMER_EXPIRE, |
| 68 | POWER_SUPPLY_HEALTH_OVERCURRENT, |
| 69 | POWER_SUPPLY_HEALTH_CALIBRATION_REQUIRED, |
| 70 | POWER_SUPPLY_HEALTH_WARM, |
| 71 | POWER_SUPPLY_HEALTH_COOL, |
| 72 | POWER_SUPPLY_HEALTH_HOT, |
| 73 | POWER_SUPPLY_HEALTH_NO_BATTERY, |
| 74 | POWER_SUPPLY_HEALTH_BLOWN_FUSE, |
| 75 | POWER_SUPPLY_HEALTH_CELL_IMBALANCE, |
| 76 | }; |
| 77 | |
| 78 | enum { |
| 79 | POWER_SUPPLY_TECHNOLOGY_UNKNOWN = 0, |
| 80 | POWER_SUPPLY_TECHNOLOGY_NiMH, |
| 81 | POWER_SUPPLY_TECHNOLOGY_LION, |
| 82 | POWER_SUPPLY_TECHNOLOGY_LIPO, |
| 83 | POWER_SUPPLY_TECHNOLOGY_LiFe, |
| 84 | POWER_SUPPLY_TECHNOLOGY_NiCd, |
| 85 | POWER_SUPPLY_TECHNOLOGY_LiMn, |
| 86 | }; |
| 87 | |
| 88 | enum { |
| 89 | POWER_SUPPLY_CAPACITY_LEVEL_UNKNOWN = 0, |
| 90 | POWER_SUPPLY_CAPACITY_LEVEL_CRITICAL, |
| 91 | POWER_SUPPLY_CAPACITY_LEVEL_LOW, |
| 92 | POWER_SUPPLY_CAPACITY_LEVEL_NORMAL, |
| 93 | POWER_SUPPLY_CAPACITY_LEVEL_HIGH, |
| 94 | POWER_SUPPLY_CAPACITY_LEVEL_FULL, |
| 95 | }; |
| 96 | |
| 97 | enum { |
| 98 | POWER_SUPPLY_SCOPE_UNKNOWN = 0, |
| 99 | POWER_SUPPLY_SCOPE_SYSTEM, |
| 100 | POWER_SUPPLY_SCOPE_DEVICE, |
| 101 | }; |
| 102 | |
| 103 | enum power_supply_property { |
| 104 | /* Properties of type `int' */ |
| 105 | POWER_SUPPLY_PROP_STATUS = 0, |
| 106 | POWER_SUPPLY_PROP_CHARGE_TYPE, |
| 107 | POWER_SUPPLY_PROP_CHARGE_TYPES, |
| 108 | POWER_SUPPLY_PROP_HEALTH, |
| 109 | POWER_SUPPLY_PROP_PRESENT, |
| 110 | POWER_SUPPLY_PROP_ONLINE, |
| 111 | POWER_SUPPLY_PROP_AUTHENTIC, |
| 112 | POWER_SUPPLY_PROP_TECHNOLOGY, |
| 113 | POWER_SUPPLY_PROP_CYCLE_COUNT, |
| 114 | POWER_SUPPLY_PROP_VOLTAGE_MAX, |
| 115 | POWER_SUPPLY_PROP_VOLTAGE_MIN, |
| 116 | POWER_SUPPLY_PROP_VOLTAGE_MAX_DESIGN, |
| 117 | POWER_SUPPLY_PROP_VOLTAGE_MIN_DESIGN, |
| 118 | POWER_SUPPLY_PROP_VOLTAGE_NOW, |
| 119 | POWER_SUPPLY_PROP_VOLTAGE_AVG, |
| 120 | POWER_SUPPLY_PROP_VOLTAGE_OCV, |
| 121 | POWER_SUPPLY_PROP_VOLTAGE_BOOT, |
| 122 | POWER_SUPPLY_PROP_CURRENT_MAX, |
| 123 | POWER_SUPPLY_PROP_CURRENT_NOW, |
| 124 | POWER_SUPPLY_PROP_CURRENT_AVG, |
| 125 | POWER_SUPPLY_PROP_CURRENT_BOOT, |
| 126 | POWER_SUPPLY_PROP_POWER_NOW, |
| 127 | POWER_SUPPLY_PROP_POWER_AVG, |
| 128 | POWER_SUPPLY_PROP_CHARGE_FULL_DESIGN, |
| 129 | POWER_SUPPLY_PROP_CHARGE_EMPTY_DESIGN, |
| 130 | POWER_SUPPLY_PROP_CHARGE_FULL, |
| 131 | POWER_SUPPLY_PROP_CHARGE_EMPTY, |
| 132 | POWER_SUPPLY_PROP_CHARGE_NOW, |
| 133 | POWER_SUPPLY_PROP_CHARGE_AVG, |
| 134 | POWER_SUPPLY_PROP_CHARGE_COUNTER, |
| 135 | POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT, |
| 136 | POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT_MAX, |
| 137 | POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE, |
| 138 | POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE_MAX, |
| 139 | POWER_SUPPLY_PROP_CHARGE_CONTROL_LIMIT, |
| 140 | POWER_SUPPLY_PROP_CHARGE_CONTROL_LIMIT_MAX, |
| 141 | POWER_SUPPLY_PROP_CHARGE_CONTROL_START_THRESHOLD, /* in percents! */ |
| 142 | POWER_SUPPLY_PROP_CHARGE_CONTROL_END_THRESHOLD, /* in percents! */ |
| 143 | POWER_SUPPLY_PROP_CHARGE_BEHAVIOUR, |
| 144 | POWER_SUPPLY_PROP_INPUT_CURRENT_LIMIT, |
| 145 | POWER_SUPPLY_PROP_INPUT_VOLTAGE_LIMIT, |
| 146 | POWER_SUPPLY_PROP_INPUT_POWER_LIMIT, |
| 147 | POWER_SUPPLY_PROP_ENERGY_FULL_DESIGN, |
| 148 | POWER_SUPPLY_PROP_ENERGY_EMPTY_DESIGN, |
| 149 | POWER_SUPPLY_PROP_ENERGY_FULL, |
| 150 | POWER_SUPPLY_PROP_ENERGY_EMPTY, |
| 151 | POWER_SUPPLY_PROP_ENERGY_NOW, |
| 152 | POWER_SUPPLY_PROP_ENERGY_AVG, |
| 153 | POWER_SUPPLY_PROP_CAPACITY, /* in percents! */ |
| 154 | POWER_SUPPLY_PROP_CAPACITY_ALERT_MIN, /* in percents! */ |
| 155 | POWER_SUPPLY_PROP_CAPACITY_ALERT_MAX, /* in percents! */ |
| 156 | POWER_SUPPLY_PROP_CAPACITY_ERROR_MARGIN, /* in percents! */ |
| 157 | POWER_SUPPLY_PROP_CAPACITY_LEVEL, |
| 158 | POWER_SUPPLY_PROP_TEMP, |
| 159 | POWER_SUPPLY_PROP_TEMP_MAX, |
| 160 | POWER_SUPPLY_PROP_TEMP_MIN, |
| 161 | POWER_SUPPLY_PROP_TEMP_ALERT_MIN, |
| 162 | POWER_SUPPLY_PROP_TEMP_ALERT_MAX, |
| 163 | POWER_SUPPLY_PROP_TEMP_AMBIENT, |
| 164 | POWER_SUPPLY_PROP_TEMP_AMBIENT_ALERT_MIN, |
| 165 | POWER_SUPPLY_PROP_TEMP_AMBIENT_ALERT_MAX, |
| 166 | POWER_SUPPLY_PROP_TIME_TO_EMPTY_NOW, |
| 167 | POWER_SUPPLY_PROP_TIME_TO_EMPTY_AVG, |
| 168 | POWER_SUPPLY_PROP_TIME_TO_FULL_NOW, |
| 169 | POWER_SUPPLY_PROP_TIME_TO_FULL_AVG, |
| 170 | POWER_SUPPLY_PROP_TYPE, /* use power_supply.type instead */ |
| 171 | POWER_SUPPLY_PROP_USB_TYPE, |
| 172 | POWER_SUPPLY_PROP_SCOPE, |
| 173 | POWER_SUPPLY_PROP_PRECHARGE_CURRENT, |
| 174 | POWER_SUPPLY_PROP_CHARGE_TERM_CURRENT, |
| 175 | POWER_SUPPLY_PROP_CALIBRATE, |
| 176 | POWER_SUPPLY_PROP_MANUFACTURE_YEAR, |
| 177 | POWER_SUPPLY_PROP_MANUFACTURE_MONTH, |
| 178 | POWER_SUPPLY_PROP_MANUFACTURE_DAY, |
| 179 | /* Properties of type `const char *' */ |
| 180 | POWER_SUPPLY_PROP_MODEL_NAME, |
| 181 | POWER_SUPPLY_PROP_MANUFACTURER, |
| 182 | POWER_SUPPLY_PROP_SERIAL_NUMBER, |
| 183 | }; |
| 184 | |
| 185 | enum power_supply_type { |
| 186 | POWER_SUPPLY_TYPE_UNKNOWN = 0, |
| 187 | POWER_SUPPLY_TYPE_BATTERY, |
| 188 | POWER_SUPPLY_TYPE_UPS, |
| 189 | POWER_SUPPLY_TYPE_MAINS, |
| 190 | POWER_SUPPLY_TYPE_USB, /* Standard Downstream Port */ |
| 191 | POWER_SUPPLY_TYPE_USB_DCP, /* Dedicated Charging Port */ |
| 192 | POWER_SUPPLY_TYPE_USB_CDP, /* Charging Downstream Port */ |
| 193 | POWER_SUPPLY_TYPE_USB_ACA, /* Accessory Charger Adapters */ |
| 194 | POWER_SUPPLY_TYPE_USB_TYPE_C, /* Type C Port */ |
| 195 | POWER_SUPPLY_TYPE_USB_PD, /* Power Delivery Port */ |
| 196 | POWER_SUPPLY_TYPE_USB_PD_DRP, /* PD Dual Role Port */ |
| 197 | POWER_SUPPLY_TYPE_APPLE_BRICK_ID, /* Apple Charging Method */ |
| 198 | POWER_SUPPLY_TYPE_WIRELESS, /* Wireless */ |
| 199 | }; |
| 200 | |
| 201 | enum power_supply_usb_type { |
| 202 | POWER_SUPPLY_USB_TYPE_UNKNOWN = 0, |
| 203 | POWER_SUPPLY_USB_TYPE_SDP, /* Standard Downstream Port */ |
| 204 | POWER_SUPPLY_USB_TYPE_DCP, /* Dedicated Charging Port */ |
| 205 | POWER_SUPPLY_USB_TYPE_CDP, /* Charging Downstream Port */ |
| 206 | POWER_SUPPLY_USB_TYPE_ACA, /* Accessory Charger Adapters */ |
| 207 | POWER_SUPPLY_USB_TYPE_C, /* Type C Port */ |
| 208 | POWER_SUPPLY_USB_TYPE_PD, /* Power Delivery Port */ |
| 209 | POWER_SUPPLY_USB_TYPE_PD_DRP, /* PD Dual Role Port */ |
| 210 | POWER_SUPPLY_USB_TYPE_PD_PPS, /* PD Programmable Power Supply */ |
| 211 | POWER_SUPPLY_USB_TYPE_APPLE_BRICK_ID, /* Apple Charging Method */ |
| 212 | }; |
| 213 | |
| 214 | enum power_supply_charge_behaviour { |
| 215 | POWER_SUPPLY_CHARGE_BEHAVIOUR_AUTO = 0, |
| 216 | POWER_SUPPLY_CHARGE_BEHAVIOUR_INHIBIT_CHARGE, |
| 217 | POWER_SUPPLY_CHARGE_BEHAVIOUR_INHIBIT_CHARGE_AWAKE, |
| 218 | POWER_SUPPLY_CHARGE_BEHAVIOUR_FORCE_DISCHARGE, |
| 219 | }; |
| 220 | |
| 221 | enum power_supply_notifier_events { |
| 222 | PSY_EVENT_PROP_CHANGED, |
| 223 | }; |
| 224 | |
| 225 | union power_supply_propval { |
| 226 | int intval; |
| 227 | const char *strval; |
| 228 | }; |
| 229 | |
| 230 | struct device_node; |
| 231 | struct power_supply; |
| 232 | |
| 233 | /* Run-time specific power supply configuration */ |
| 234 | struct power_supply_config { |
| 235 | struct device_node *of_node; |
| 236 | struct fwnode_handle *fwnode; |
| 237 | |
| 238 | /* Driver private data */ |
| 239 | void *drv_data; |
| 240 | |
| 241 | /* Device specific sysfs attributes */ |
| 242 | const struct attribute_group **attr_grp; |
| 243 | |
| 244 | char **supplied_to; |
| 245 | size_t num_supplicants; |
| 246 | |
| 247 | bool no_wakeup_source; |
| 248 | }; |
| 249 | |
| 250 | /* Description of power supply */ |
| 251 | struct power_supply_desc { |
| 252 | const char *name; |
| 253 | enum power_supply_type type; |
| 254 | u8 charge_behaviours; |
| 255 | u32 charge_types; |
| 256 | u32 usb_types; |
| 257 | const enum power_supply_property *properties; |
| 258 | size_t num_properties; |
| 259 | |
| 260 | /* |
| 261 | * Functions for drivers implementing power supply class. |
| 262 | * These shouldn't be called directly by other drivers for accessing |
| 263 | * this power supply. Instead use power_supply_*() functions (for |
| 264 | * example power_supply_get_property()). |
| 265 | */ |
| 266 | int (*get_property)(struct power_supply *psy, |
| 267 | enum power_supply_property psp, |
| 268 | union power_supply_propval *val); |
| 269 | int (*set_property)(struct power_supply *psy, |
| 270 | enum power_supply_property psp, |
| 271 | const union power_supply_propval *val); |
| 272 | /* |
| 273 | * property_is_writeable() will be called during registration |
| 274 | * of power supply. If this happens during device probe then it must |
| 275 | * not access internal data of device (because probe did not end). |
| 276 | */ |
| 277 | int (*property_is_writeable)(struct power_supply *psy, |
| 278 | enum power_supply_property psp); |
| 279 | void (*external_power_changed)(struct power_supply *psy); |
| 280 | |
| 281 | /* |
| 282 | * Set if thermal zone should not be created for this power supply. |
| 283 | * For example for virtual supplies forwarding calls to actual |
| 284 | * sensors or other supplies. |
| 285 | */ |
| 286 | bool no_thermal; |
| 287 | /* For APM emulation, think legacy userspace. */ |
| 288 | int use_for_apm; |
| 289 | }; |
| 290 | |
| 291 | struct power_supply_ext { |
| 292 | const char *const name; |
| 293 | u8 charge_behaviours; |
| 294 | u32 charge_types; |
| 295 | const enum power_supply_property *properties; |
| 296 | size_t num_properties; |
| 297 | |
| 298 | int (*get_property)(struct power_supply *psy, |
| 299 | const struct power_supply_ext *ext, |
| 300 | void *data, |
| 301 | enum power_supply_property psp, |
| 302 | union power_supply_propval *val); |
| 303 | int (*set_property)(struct power_supply *psy, |
| 304 | const struct power_supply_ext *ext, |
| 305 | void *data, |
| 306 | enum power_supply_property psp, |
| 307 | const union power_supply_propval *val); |
| 308 | int (*property_is_writeable)(struct power_supply *psy, |
| 309 | const struct power_supply_ext *ext, |
| 310 | void *data, |
| 311 | enum power_supply_property psp); |
| 312 | }; |
| 313 | |
| 314 | struct power_supply { |
| 315 | const struct power_supply_desc *desc; |
| 316 | |
| 317 | char **supplied_to; |
| 318 | size_t num_supplicants; |
| 319 | |
| 320 | char **supplied_from; |
| 321 | size_t num_supplies; |
| 322 | |
| 323 | /* Driver private data */ |
| 324 | void *drv_data; |
| 325 | |
| 326 | /* private */ |
| 327 | struct device dev; |
| 328 | struct work_struct changed_work; |
| 329 | struct delayed_work deferred_register_work; |
| 330 | spinlock_t changed_lock; |
| 331 | bool changed; |
| 332 | bool update_groups; |
| 333 | bool initialized; |
| 334 | bool removing; |
| 335 | atomic_t use_cnt; |
| 336 | struct power_supply_battery_info *battery_info; |
| 337 | struct rw_semaphore extensions_sem; /* protects "extensions" */ |
| 338 | struct list_head extensions; |
| 339 | #ifdef CONFIG_THERMAL |
| 340 | struct thermal_zone_device *tzd; |
| 341 | struct thermal_cooling_device *tcd; |
| 342 | #endif |
| 343 | |
| 344 | #ifdef CONFIG_LEDS_TRIGGERS |
| 345 | struct led_trigger *trig; |
| 346 | struct led_trigger *charging_trig; |
| 347 | struct led_trigger *full_trig; |
| 348 | struct led_trigger *charging_blink_full_solid_trig; |
| 349 | struct led_trigger *charging_orange_full_green_trig; |
| 350 | #endif |
| 351 | }; |
| 352 | |
| 353 | #define dev_to_psy(__dev) container_of_const(__dev, struct power_supply, dev) |
| 354 | |
| 355 | /* |
| 356 | * This is recommended structure to specify static power supply parameters. |
| 357 | * Generic one, parametrizable for different power supplies. Power supply |
| 358 | * class itself does not use it, but that's what implementing most platform |
| 359 | * drivers, should try reuse for consistency. |
| 360 | */ |
| 361 | |
| 362 | struct power_supply_info { |
| 363 | const char *name; |
| 364 | int technology; |
| 365 | int voltage_max_design; |
| 366 | int voltage_min_design; |
| 367 | int charge_full_design; |
| 368 | int charge_empty_design; |
| 369 | int energy_full_design; |
| 370 | int energy_empty_design; |
| 371 | int use_for_apm; |
| 372 | }; |
| 373 | |
| 374 | struct power_supply_battery_ocv_table { |
| 375 | int ocv; /* microVolts */ |
| 376 | int capacity; /* percent */ |
| 377 | }; |
| 378 | |
| 379 | struct power_supply_resistance_temp_table { |
| 380 | int temp; /* celsius */ |
| 381 | int resistance; /* internal resistance percent */ |
| 382 | }; |
| 383 | |
| 384 | struct power_supply_vbat_ri_table { |
| 385 | int vbat_uv; /* Battery voltage in microvolt */ |
| 386 | int ri_uohm; /* Internal resistance in microohm */ |
| 387 | }; |
| 388 | |
| 389 | /** |
| 390 | * struct power_supply_maintenance_charge_table - setting for maintenace charging |
| 391 | * @charge_current_max_ua: maintenance charging current that is used to keep |
| 392 | * the charge of the battery full as current is consumed after full charging. |
| 393 | * The corresponding charge_voltage_max_uv is used as a safeguard: when we |
| 394 | * reach this voltage the maintenance charging current is turned off. It is |
| 395 | * turned back on if we fall below this voltage. |
| 396 | * @charge_voltage_max_uv: maintenance charging voltage that is usually a bit |
| 397 | * lower than the constant_charge_voltage_max_uv. We can apply this settings |
| 398 | * charge_current_max_ua until we get back up to this voltage. |
| 399 | * @safety_timer_minutes: maintenance charging safety timer, with an expiry |
| 400 | * time in minutes. We will only use maintenance charging in this setting |
| 401 | * for a certain amount of time, then we will first move to the next |
| 402 | * maintenance charge current and voltage pair in respective array and wait |
| 403 | * for the next safety timer timeout, or, if we reached the last maintencance |
| 404 | * charging setting, disable charging until we reach |
| 405 | * charge_restart_voltage_uv and restart ordinary CC/CV charging from there. |
| 406 | * These timers should be chosen to align with the typical discharge curve |
| 407 | * for the battery. |
| 408 | * |
| 409 | * Ordinary CC/CV charging will stop charging when the charge current goes |
| 410 | * below charge_term_current_ua, and then restart it (if the device is still |
| 411 | * plugged into the charger) at charge_restart_voltage_uv. This happens in most |
| 412 | * consumer products because the power usage while connected to a charger is |
| 413 | * not zero, and devices are not manufactured to draw power directly from the |
| 414 | * charger: instead they will at all times dissipate the battery a little, like |
| 415 | * the power used in standby mode. This will over time give a charge graph |
| 416 | * such as this: |
| 417 | * |
| 418 | * Energy |
| 419 | * ^ ... ... ... ... ... ... ... |
| 420 | * | . . . . . . . . . . . . . |
| 421 | * | .. . .. . .. . .. . .. . .. . .. |
| 422 | * |. .. .. .. .. .. .. |
| 423 | * +-------------------------------------------------------------------> t |
| 424 | * |
| 425 | * Practically this means that the Li-ions are wandering back and forth in the |
| 426 | * battery and this causes degeneration of the battery anode and cathode. |
| 427 | * To prolong the life of the battery, maintenance charging is applied after |
| 428 | * reaching charge_term_current_ua to hold up the charge in the battery while |
| 429 | * consuming power, thus lowering the wear on the battery: |
| 430 | * |
| 431 | * Energy |
| 432 | * ^ ....................................... |
| 433 | * | . ...................... |
| 434 | * | .. |
| 435 | * |. |
| 436 | * +-------------------------------------------------------------------> t |
| 437 | * |
| 438 | * Maintenance charging uses the voltages from this table: a table of settings |
| 439 | * is traversed using a slightly lower current and voltage than what is used for |
| 440 | * CC/CV charging. The maintenance charging will for safety reasons not go on |
| 441 | * indefinately: we lower the current and voltage with successive maintenance |
| 442 | * settings, then disable charging completely after we reach the last one, |
| 443 | * and after that we do not restart charging until we reach |
| 444 | * charge_restart_voltage_uv (see struct power_supply_battery_info) and restart |
| 445 | * ordinary CC/CV charging from there. |
| 446 | * |
| 447 | * As an example, a Samsung EB425161LA Lithium-Ion battery is CC/CV charged |
| 448 | * at 900mA to 4340mV, then maintenance charged at 600mA and 4150mV for up to |
| 449 | * 60 hours, then maintenance charged at 600mA and 4100mV for up to 200 hours. |
| 450 | * After this the charge cycle is restarted waiting for |
| 451 | * charge_restart_voltage_uv. |
| 452 | * |
| 453 | * For most mobile electronics this type of maintenance charging is enough for |
| 454 | * the user to disconnect the device and make use of it before both maintenance |
| 455 | * charging cycles are complete, if the current and voltage has been chosen |
| 456 | * appropriately. These need to be determined from battery discharge curves |
| 457 | * and expected standby current. |
| 458 | * |
| 459 | * If the voltage anyway drops to charge_restart_voltage_uv during maintenance |
| 460 | * charging, ordinary CC/CV charging is restarted. This can happen if the |
| 461 | * device is e.g. actively used during charging, so more current is drawn than |
| 462 | * the expected stand-by current. Also overvoltage protection will be applied |
| 463 | * as usual. |
| 464 | */ |
| 465 | struct power_supply_maintenance_charge_table { |
| 466 | int charge_current_max_ua; |
| 467 | int charge_voltage_max_uv; |
| 468 | int charge_safety_timer_minutes; |
| 469 | }; |
| 470 | |
| 471 | #define POWER_SUPPLY_OCV_TEMP_MAX 20 |
| 472 | |
| 473 | /** |
| 474 | * struct power_supply_battery_info - information about batteries |
| 475 | * @technology: from the POWER_SUPPLY_TECHNOLOGY_* enum |
| 476 | * @energy_full_design_uwh: energy content when fully charged in microwatt |
| 477 | * hours |
| 478 | * @charge_full_design_uah: charge content when fully charged in microampere |
| 479 | * hours |
| 480 | * @voltage_min_design_uv: minimum voltage across the poles when the battery |
| 481 | * is at minimum voltage level in microvolts. If the voltage drops below this |
| 482 | * level the battery will need precharging when using CC/CV charging. |
| 483 | * @voltage_max_design_uv: voltage across the poles when the battery is fully |
| 484 | * charged in microvolts. This is the "nominal voltage" i.e. the voltage |
| 485 | * printed on the label of the battery. |
| 486 | * @tricklecharge_current_ua: the tricklecharge current used when trickle |
| 487 | * charging the battery in microamperes. This is the charging phase when the |
| 488 | * battery is completely empty and we need to carefully trickle in some |
| 489 | * charge until we reach the precharging voltage. |
| 490 | * @precharge_current_ua: current to use in the precharge phase in microamperes, |
| 491 | * the precharge rate is limited by limiting the current to this value. |
| 492 | * @precharge_voltage_max_uv: the maximum voltage allowed when precharging in |
| 493 | * microvolts. When we pass this voltage we will nominally switch over to the |
| 494 | * CC (constant current) charging phase defined by constant_charge_current_ua |
| 495 | * and constant_charge_voltage_max_uv. |
| 496 | * @charge_term_current_ua: when the current in the CV (constant voltage) |
| 497 | * charging phase drops below this value in microamperes the charging will |
| 498 | * terminate completely and not restart until the voltage over the battery |
| 499 | * poles reach charge_restart_voltage_uv unless we use maintenance charging. |
| 500 | * @charge_restart_voltage_uv: when the battery has been fully charged by |
| 501 | * CC/CV charging and charging has been disabled, and the voltage subsequently |
| 502 | * drops below this value in microvolts, the charging will be restarted |
| 503 | * (typically using CV charging). |
| 504 | * @overvoltage_limit_uv: If the voltage exceeds the nominal voltage |
| 505 | * voltage_max_design_uv and we reach this voltage level, all charging must |
| 506 | * stop and emergency procedures take place, such as shutting down the system |
| 507 | * in some cases. |
| 508 | * @constant_charge_current_max_ua: current in microamperes to use in the CC |
| 509 | * (constant current) charging phase. The charging rate is limited |
| 510 | * by this current. This is the main charging phase and as the current is |
| 511 | * constant into the battery the voltage slowly ascends to |
| 512 | * constant_charge_voltage_max_uv. |
| 513 | * @constant_charge_voltage_max_uv: voltage in microvolts signifying the end of |
| 514 | * the CC (constant current) charging phase and the beginning of the CV |
| 515 | * (constant voltage) charging phase. |
| 516 | * @maintenance_charge: an array of maintenance charging settings to be used |
| 517 | * after the main CC/CV charging phase is complete. |
| 518 | * @maintenance_charge_size: the number of maintenance charging settings in |
| 519 | * maintenance_charge. |
| 520 | * @alert_low_temp_charge_current_ua: The charging current to use if the battery |
| 521 | * enters low alert temperature, i.e. if the internal temperature is between |
| 522 | * temp_alert_min and temp_min. No matter the charging phase, this |
| 523 | * and alert_high_temp_charge_voltage_uv will be applied. |
| 524 | * @alert_low_temp_charge_voltage_uv: Same as alert_low_temp_charge_current_ua, |
| 525 | * but for the charging voltage. |
| 526 | * @alert_high_temp_charge_current_ua: The charging current to use if the |
| 527 | * battery enters high alert temperature, i.e. if the internal temperature is |
| 528 | * between temp_alert_max and temp_max. No matter the charging phase, this |
| 529 | * and alert_high_temp_charge_voltage_uv will be applied, usually lowering |
| 530 | * the charging current as an evasive manouver. |
| 531 | * @alert_high_temp_charge_voltage_uv: Same as |
| 532 | * alert_high_temp_charge_current_ua, but for the charging voltage. |
| 533 | * @factory_internal_resistance_uohm: the internal resistance of the battery |
| 534 | * at fabrication time, expressed in microohms. This resistance will vary |
| 535 | * depending on the lifetime and charge of the battery, so this is just a |
| 536 | * nominal ballpark figure. This internal resistance is given for the state |
| 537 | * when the battery is discharging. |
| 538 | * @factory_internal_resistance_charging_uohm: the internal resistance of the |
| 539 | * battery at fabrication time while charging, expressed in microohms. |
| 540 | * The charging process will affect the internal resistance of the battery |
| 541 | * so this value provides a better resistance under these circumstances. |
| 542 | * This resistance will vary depending on the lifetime and charge of the |
| 543 | * battery, so this is just a nominal ballpark figure. |
| 544 | * @ocv_temp: array indicating the open circuit voltage (OCV) capacity |
| 545 | * temperature indices. This is an array of temperatures in degrees Celsius |
| 546 | * indicating which capacity table to use for a certain temperature, since |
| 547 | * the capacity for reasons of chemistry will be different at different |
| 548 | * temperatures. Determining capacity is a multivariate problem and the |
| 549 | * temperature is the first variable we determine. |
| 550 | * @temp_ambient_alert_min: the battery will go outside of operating conditions |
| 551 | * when the ambient temperature goes below this temperature in degrees |
| 552 | * Celsius. |
| 553 | * @temp_ambient_alert_max: the battery will go outside of operating conditions |
| 554 | * when the ambient temperature goes above this temperature in degrees |
| 555 | * Celsius. |
| 556 | * @temp_alert_min: the battery should issue an alert if the internal |
| 557 | * temperature goes below this temperature in degrees Celsius. |
| 558 | * @temp_alert_max: the battery should issue an alert if the internal |
| 559 | * temperature goes above this temperature in degrees Celsius. |
| 560 | * @temp_min: the battery will go outside of operating conditions when |
| 561 | * the internal temperature goes below this temperature in degrees Celsius. |
| 562 | * Normally this means the system should shut down. |
| 563 | * @temp_max: the battery will go outside of operating conditions when |
| 564 | * the internal temperature goes above this temperature in degrees Celsius. |
| 565 | * Normally this means the system should shut down. |
| 566 | * @ocv_table: for each entry in ocv_temp there is a corresponding entry in |
| 567 | * ocv_table and a size for each entry in ocv_table_size. These arrays |
| 568 | * determine the capacity in percent in relation to the voltage in microvolts |
| 569 | * at the indexed temperature. |
| 570 | * @ocv_table_size: for each entry in ocv_temp this array is giving the size of |
| 571 | * each entry in the array of capacity arrays in ocv_table. |
| 572 | * @resist_table: this is a table that correlates a battery temperature to the |
| 573 | * expected internal resistance at this temperature. The resistance is given |
| 574 | * as a percentage of factory_internal_resistance_uohm. Knowing the |
| 575 | * resistance of the battery is usually necessary for calculating the open |
| 576 | * circuit voltage (OCV) that is then used with the ocv_table to calculate |
| 577 | * the capacity of the battery. The resist_table must be ordered descending |
| 578 | * by temperature: highest temperature with lowest resistance first, lowest |
| 579 | * temperature with highest resistance last. |
| 580 | * @resist_table_size: the number of items in the resist_table. |
| 581 | * @vbat2ri_discharging: this is a table that correlates Battery voltage (VBAT) |
| 582 | * to internal resistance (Ri). The resistance is given in microohm for the |
| 583 | * corresponding voltage in microvolts. The internal resistance is used to |
| 584 | * determine the open circuit voltage so that we can determine the capacity |
| 585 | * of the battery. These voltages to resistance tables apply when the battery |
| 586 | * is discharging. The table must be ordered descending by voltage: highest |
| 587 | * voltage first. |
| 588 | * @vbat2ri_discharging_size: the number of items in the vbat2ri_discharging |
| 589 | * table. |
| 590 | * @vbat2ri_charging: same function as vbat2ri_discharging but for the state |
| 591 | * when the battery is charging. Being under charge changes the battery's |
| 592 | * internal resistance characteristics so a separate table is needed.* |
| 593 | * The table must be ordered descending by voltage: highest voltage first. |
| 594 | * @vbat2ri_charging_size: the number of items in the vbat2ri_charging |
| 595 | * table. |
| 596 | * @bti_resistance_ohm: The Battery Type Indicator (BIT) nominal resistance |
| 597 | * in ohms for this battery, if an identification resistor is mounted |
| 598 | * between a third battery terminal and ground. This scheme is used by a lot |
| 599 | * of mobile device batteries. |
| 600 | * @bti_resistance_tolerance: The tolerance in percent of the BTI resistance, |
| 601 | * for example 10 for +/- 10%, if the bti_resistance is set to 7000 and the |
| 602 | * tolerance is 10% we will detect a proper battery if the BTI resistance |
| 603 | * is between 6300 and 7700 Ohm. |
| 604 | * |
| 605 | * This is the recommended struct to manage static battery parameters, |
| 606 | * populated by power_supply_get_battery_info(). Most platform drivers should |
| 607 | * use these for consistency. |
| 608 | * |
| 609 | * Its field names must correspond to elements in enum power_supply_property. |
| 610 | * The default field value is -EINVAL or NULL for pointers. |
| 611 | * |
| 612 | * CC/CV CHARGING: |
| 613 | * |
| 614 | * The charging parameters here assume a CC/CV charging scheme. This method |
| 615 | * is most common with Lithium Ion batteries (other methods are possible) and |
| 616 | * looks as follows: |
| 617 | * |
| 618 | * ^ Battery voltage |
| 619 | * | --- overvoltage_limit_uv |
| 620 | * | |
| 621 | * | ................................................... |
| 622 | * | .. constant_charge_voltage_max_uv |
| 623 | * | .. |
| 624 | * | . |
| 625 | * | . |
| 626 | * | . |
| 627 | * | . |
| 628 | * | . |
| 629 | * | .. precharge_voltage_max_uv |
| 630 | * | .. |
| 631 | * |. (trickle charging) |
| 632 | * +------------------------------------------------------------------> time |
| 633 | * |
| 634 | * ^ Current into the battery |
| 635 | * | |
| 636 | * | ............. constant_charge_current_max_ua |
| 637 | * | . . |
| 638 | * | . . |
| 639 | * | . . |
| 640 | * | . . |
| 641 | * | . .. |
| 642 | * | . .... |
| 643 | * | . ..... |
| 644 | * | ... precharge_current_ua ....... charge_term_current_ua |
| 645 | * | . . |
| 646 | * | . . |
| 647 | * |.... tricklecharge_current_ua . |
| 648 | * | . |
| 649 | * +-----------------------------------------------------------------> time |
| 650 | * |
| 651 | * These diagrams are synchronized on time and the voltage and current |
| 652 | * follow each other. |
| 653 | * |
| 654 | * With CC/CV charging commence over time like this for an empty battery: |
| 655 | * |
| 656 | * 1. When the battery is completely empty it may need to be charged with |
| 657 | * an especially small current so that electrons just "trickle in", |
| 658 | * this is the tricklecharge_current_ua. |
| 659 | * |
| 660 | * 2. Next a small initial pre-charge current (precharge_current_ua) |
| 661 | * is applied if the voltage is below precharge_voltage_max_uv until we |
| 662 | * reach precharge_voltage_max_uv. CAUTION: in some texts this is referred |
| 663 | * to as "trickle charging" but the use in the Linux kernel is different |
| 664 | * see below! |
| 665 | * |
| 666 | * 3. Then the main charging current is applied, which is called the constant |
| 667 | * current (CC) phase. A current regulator is set up to allow |
| 668 | * constant_charge_current_max_ua of current to flow into the battery. |
| 669 | * The chemical reaction in the battery will make the voltage go up as |
| 670 | * charge goes into the battery. This current is applied until we reach |
| 671 | * the constant_charge_voltage_max_uv voltage. |
| 672 | * |
| 673 | * 4. At this voltage we switch over to the constant voltage (CV) phase. This |
| 674 | * means we allow current to go into the battery, but we keep the voltage |
| 675 | * fixed. This current will continue to charge the battery while keeping |
| 676 | * the voltage the same. A chemical reaction in the battery goes on |
| 677 | * storing energy without affecting the voltage. Over time the current |
| 678 | * will slowly drop and when we reach charge_term_current_ua we will |
| 679 | * end the constant voltage phase. |
| 680 | * |
| 681 | * After this the battery is fully charged, and if we do not support maintenance |
| 682 | * charging, the charging will not restart until power dissipation makes the |
| 683 | * voltage fall so that we reach charge_restart_voltage_uv and at this point |
| 684 | * we restart charging at the appropriate phase, usually this will be inside |
| 685 | * the CV phase. |
| 686 | * |
| 687 | * If we support maintenance charging the voltage is however kept high after |
| 688 | * the CV phase with a very low current. This is meant to let the same charge |
| 689 | * go in for usage while the charger is still connected, mainly for |
| 690 | * dissipation for the power consuming entity while connected to the |
| 691 | * charger. |
| 692 | * |
| 693 | * All charging MUST terminate if the overvoltage_limit_uv is ever reached. |
| 694 | * Overcharging Lithium Ion cells can be DANGEROUS and lead to fire or |
| 695 | * explosions. |
| 696 | * |
| 697 | * DETERMINING BATTERY CAPACITY: |
| 698 | * |
| 699 | * Several members of the struct deal with trying to determine the remaining |
| 700 | * capacity in the battery, usually as a percentage of charge. In practice |
| 701 | * many chargers uses a so-called fuel gauge or coloumb counter that measure |
| 702 | * how much charge goes into the battery and how much goes out (+/- leak |
| 703 | * consumption). This does not help if we do not know how much capacity the |
| 704 | * battery has to begin with, such as when it is first used or was taken out |
| 705 | * and charged in a separate charger. Therefore many capacity algorithms use |
| 706 | * the open circuit voltage with a look-up table to determine the rough |
| 707 | * capacity of the battery. The open circuit voltage can be conceptualized |
| 708 | * with an ideal voltage source (V) in series with an internal resistance (Ri) |
| 709 | * like this: |
| 710 | * |
| 711 | * +-------> IBAT >----------------+ |
| 712 | * | ^ | |
| 713 | * [ ] Ri | | |
| 714 | * | | VBAT | |
| 715 | * o <---------- | | |
| 716 | * +| ^ | [ ] Rload |
| 717 | * .---. | | | |
| 718 | * | V | | OCV | | |
| 719 | * '---' | | | |
| 720 | * | | | | |
| 721 | * GND +-------------------------------+ |
| 722 | * |
| 723 | * If we disconnect the load (here simplified as a fixed resistance Rload) |
| 724 | * and measure VBAT with a infinite impedance voltage meter we will get |
| 725 | * VBAT = OCV and this assumption is sometimes made even under load, assuming |
| 726 | * Rload is insignificant. However this will be of dubious quality because the |
| 727 | * load is rarely that small and Ri is strongly nonlinear depending on |
| 728 | * temperature and how much capacity is left in the battery due to the |
| 729 | * chemistry involved. |
| 730 | * |
| 731 | * In many practical applications we cannot just disconnect the battery from |
| 732 | * the load, so instead we often try to measure the instantaneous IBAT (the |
| 733 | * current out from the battery), estimate the Ri and thus calculate the |
| 734 | * voltage drop over Ri and compensate like this: |
| 735 | * |
| 736 | * OCV = VBAT - (IBAT * Ri) |
| 737 | * |
| 738 | * The tables vbat2ri_discharging and vbat2ri_charging are used to determine |
| 739 | * (by interpolation) the Ri from the VBAT under load. These curves are highly |
| 740 | * nonlinear and may need many datapoints but can be found in datasheets for |
| 741 | * some batteries. This gives the compensated open circuit voltage (OCV) for |
| 742 | * the battery even under load. Using this method will also compensate for |
| 743 | * temperature changes in the environment: this will also make the internal |
| 744 | * resistance change, and it will affect the VBAT under load, so correlating |
| 745 | * VBAT to Ri takes both remaining capacity and temperature into consideration. |
| 746 | * |
| 747 | * Alternatively a manufacturer can specify how the capacity of the battery |
| 748 | * is dependent on the battery temperature which is the main factor affecting |
| 749 | * Ri. As we know all checmical reactions are faster when it is warm and slower |
| 750 | * when it is cold. You can put in 1500mAh and only get 800mAh out before the |
| 751 | * voltage drops too low for example. This effect is also highly nonlinear and |
| 752 | * the purpose of the table resist_table: this will take a temperature and |
| 753 | * tell us how big percentage of Ri the specified temperature correlates to. |
| 754 | * Usually we have 100% of the factory_internal_resistance_uohm at 25 degrees |
| 755 | * Celsius. |
| 756 | * |
| 757 | * The power supply class itself doesn't use this struct as of now. |
| 758 | */ |
| 759 | |
| 760 | struct power_supply_battery_info { |
| 761 | unsigned int technology; |
| 762 | int energy_full_design_uwh; |
| 763 | int charge_full_design_uah; |
| 764 | int voltage_min_design_uv; |
| 765 | int voltage_max_design_uv; |
| 766 | int tricklecharge_current_ua; |
| 767 | int precharge_current_ua; |
| 768 | int precharge_voltage_max_uv; |
| 769 | int charge_term_current_ua; |
| 770 | int charge_restart_voltage_uv; |
| 771 | int overvoltage_limit_uv; |
| 772 | int constant_charge_current_max_ua; |
| 773 | int constant_charge_voltage_max_uv; |
| 774 | const struct power_supply_maintenance_charge_table *maintenance_charge; |
| 775 | int maintenance_charge_size; |
| 776 | int alert_low_temp_charge_current_ua; |
| 777 | int alert_low_temp_charge_voltage_uv; |
| 778 | int alert_high_temp_charge_current_ua; |
| 779 | int alert_high_temp_charge_voltage_uv; |
| 780 | int factory_internal_resistance_uohm; |
| 781 | int factory_internal_resistance_charging_uohm; |
| 782 | int ocv_temp[POWER_SUPPLY_OCV_TEMP_MAX]; |
| 783 | int temp_ambient_alert_min; |
| 784 | int temp_ambient_alert_max; |
| 785 | int temp_alert_min; |
| 786 | int temp_alert_max; |
| 787 | int temp_min; |
| 788 | int temp_max; |
| 789 | const struct power_supply_battery_ocv_table *ocv_table[POWER_SUPPLY_OCV_TEMP_MAX]; |
| 790 | int ocv_table_size[POWER_SUPPLY_OCV_TEMP_MAX]; |
| 791 | const struct power_supply_resistance_temp_table *resist_table; |
| 792 | int resist_table_size; |
| 793 | const struct power_supply_vbat_ri_table *vbat2ri_discharging; |
| 794 | int vbat2ri_discharging_size; |
| 795 | const struct power_supply_vbat_ri_table *vbat2ri_charging; |
| 796 | int vbat2ri_charging_size; |
| 797 | int bti_resistance_ohm; |
| 798 | int bti_resistance_tolerance; |
| 799 | }; |
| 800 | |
| 801 | extern int power_supply_reg_notifier(struct notifier_block *nb); |
| 802 | extern void power_supply_unreg_notifier(struct notifier_block *nb); |
| 803 | #if IS_ENABLED(CONFIG_POWER_SUPPLY) |
| 804 | extern struct power_supply *power_supply_get_by_name(const char *name); |
| 805 | extern void power_supply_put(struct power_supply *psy); |
| 806 | #else |
| 807 | static inline void power_supply_put(struct power_supply *psy) {} |
| 808 | static inline struct power_supply *power_supply_get_by_name(const char *name) |
| 809 | { return NULL; } |
| 810 | #endif |
| 811 | #ifdef CONFIG_OF |
| 812 | extern struct power_supply *power_supply_get_by_phandle(struct device_node *np, |
| 813 | const char *property); |
| 814 | extern struct power_supply *devm_power_supply_get_by_phandle( |
| 815 | struct device *dev, const char *property); |
| 816 | #else /* !CONFIG_OF */ |
| 817 | static inline struct power_supply * |
| 818 | power_supply_get_by_phandle(struct device_node *np, const char *property) |
| 819 | { return NULL; } |
| 820 | static inline struct power_supply * |
| 821 | devm_power_supply_get_by_phandle(struct device *dev, const char *property) |
| 822 | { return NULL; } |
| 823 | #endif /* CONFIG_OF */ |
| 824 | |
| 825 | extern const enum power_supply_property power_supply_battery_info_properties[]; |
| 826 | extern const size_t power_supply_battery_info_properties_size; |
| 827 | extern int power_supply_get_battery_info(struct power_supply *psy, |
| 828 | struct power_supply_battery_info **info_out); |
| 829 | extern void power_supply_put_battery_info(struct power_supply *psy, |
| 830 | struct power_supply_battery_info *info); |
| 831 | extern bool power_supply_battery_info_has_prop(struct power_supply_battery_info *info, |
| 832 | enum power_supply_property psp); |
| 833 | extern int power_supply_battery_info_get_prop(struct power_supply_battery_info *info, |
| 834 | enum power_supply_property psp, |
| 835 | union power_supply_propval *val); |
| 836 | extern int power_supply_ocv2cap_simple(const struct power_supply_battery_ocv_table *table, |
| 837 | int table_len, int ocv); |
| 838 | extern const struct power_supply_battery_ocv_table * |
| 839 | power_supply_find_ocv2cap_table(struct power_supply_battery_info *info, |
| 840 | int temp, int *table_len); |
| 841 | extern int power_supply_batinfo_ocv2cap(struct power_supply_battery_info *info, |
| 842 | int ocv, int temp); |
| 843 | extern int |
| 844 | power_supply_temp2resist_simple(const struct power_supply_resistance_temp_table *table, |
| 845 | int table_len, int temp); |
| 846 | extern int power_supply_vbat2ri(struct power_supply_battery_info *info, |
| 847 | int vbat_uv, bool charging); |
| 848 | extern const struct power_supply_maintenance_charge_table * |
| 849 | power_supply_get_maintenance_charging_setting(struct power_supply_battery_info *info, int index); |
| 850 | extern bool power_supply_battery_bti_in_range(struct power_supply_battery_info *info, |
| 851 | int resistance); |
| 852 | extern void power_supply_changed(struct power_supply *psy); |
| 853 | extern int power_supply_am_i_supplied(struct power_supply *psy); |
| 854 | int power_supply_get_property_from_supplier(struct power_supply *psy, |
| 855 | enum power_supply_property psp, |
| 856 | union power_supply_propval *val); |
| 857 | |
| 858 | static inline bool |
| 859 | power_supply_supports_maintenance_charging(struct power_supply_battery_info *info) |
| 860 | { |
| 861 | const struct power_supply_maintenance_charge_table *mt; |
| 862 | |
| 863 | mt = power_supply_get_maintenance_charging_setting(info, 0); |
| 864 | |
| 865 | return (mt != NULL); |
| 866 | } |
| 867 | |
| 868 | static inline bool |
| 869 | power_supply_supports_vbat2ri(struct power_supply_battery_info *info) |
| 870 | { |
| 871 | return ((info->vbat2ri_discharging != NULL) && |
| 872 | info->vbat2ri_discharging_size > 0); |
| 873 | } |
| 874 | |
| 875 | static inline bool |
| 876 | power_supply_supports_temp2ri(struct power_supply_battery_info *info) |
| 877 | { |
| 878 | return ((info->resist_table != NULL) && |
| 879 | info->resist_table_size > 0); |
| 880 | } |
| 881 | |
| 882 | #ifdef CONFIG_POWER_SUPPLY |
| 883 | extern int power_supply_is_system_supplied(void); |
| 884 | #else |
| 885 | static inline int power_supply_is_system_supplied(void) { return -ENOSYS; } |
| 886 | #endif |
| 887 | |
| 888 | extern int power_supply_get_property(struct power_supply *psy, |
| 889 | enum power_supply_property psp, |
| 890 | union power_supply_propval *val); |
| 891 | #if IS_ENABLED(CONFIG_POWER_SUPPLY) |
| 892 | extern int power_supply_set_property(struct power_supply *psy, |
| 893 | enum power_supply_property psp, |
| 894 | const union power_supply_propval *val); |
| 895 | #else |
| 896 | static inline int power_supply_set_property(struct power_supply *psy, |
| 897 | enum power_supply_property psp, |
| 898 | const union power_supply_propval *val) |
| 899 | { return 0; } |
| 900 | #endif |
| 901 | extern void power_supply_external_power_changed(struct power_supply *psy); |
| 902 | |
| 903 | extern struct power_supply *__must_check |
| 904 | power_supply_register(struct device *parent, |
| 905 | const struct power_supply_desc *desc, |
| 906 | const struct power_supply_config *cfg); |
| 907 | extern struct power_supply *__must_check |
| 908 | devm_power_supply_register(struct device *parent, |
| 909 | const struct power_supply_desc *desc, |
| 910 | const struct power_supply_config *cfg); |
| 911 | extern void power_supply_unregister(struct power_supply *psy); |
| 912 | extern int power_supply_powers(struct power_supply *psy, struct device *dev); |
| 913 | |
| 914 | extern int __must_check |
| 915 | power_supply_register_extension(struct power_supply *psy, |
| 916 | const struct power_supply_ext *ext, |
| 917 | struct device *dev, |
| 918 | void *data); |
| 919 | extern void power_supply_unregister_extension(struct power_supply *psy, |
| 920 | const struct power_supply_ext *ext); |
| 921 | |
| 922 | #define to_power_supply(device) container_of(device, struct power_supply, dev) |
| 923 | |
| 924 | extern void *power_supply_get_drvdata(struct power_supply *psy); |
| 925 | extern int power_supply_for_each_psy(void *data, int (*fn)(struct power_supply *psy, void *data)); |
| 926 | |
| 927 | static inline bool power_supply_is_amp_property(enum power_supply_property psp) |
| 928 | { |
| 929 | switch (psp) { |
| 930 | case POWER_SUPPLY_PROP_CHARGE_FULL_DESIGN: |
| 931 | case POWER_SUPPLY_PROP_CHARGE_EMPTY_DESIGN: |
| 932 | case POWER_SUPPLY_PROP_CHARGE_FULL: |
| 933 | case POWER_SUPPLY_PROP_CHARGE_EMPTY: |
| 934 | case POWER_SUPPLY_PROP_CHARGE_NOW: |
| 935 | case POWER_SUPPLY_PROP_CHARGE_AVG: |
| 936 | case POWER_SUPPLY_PROP_CHARGE_COUNTER: |
| 937 | case POWER_SUPPLY_PROP_PRECHARGE_CURRENT: |
| 938 | case POWER_SUPPLY_PROP_CHARGE_TERM_CURRENT: |
| 939 | case POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT: |
| 940 | case POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT_MAX: |
| 941 | case POWER_SUPPLY_PROP_CURRENT_MAX: |
| 942 | case POWER_SUPPLY_PROP_CURRENT_NOW: |
| 943 | case POWER_SUPPLY_PROP_CURRENT_AVG: |
| 944 | case POWER_SUPPLY_PROP_CURRENT_BOOT: |
| 945 | return true; |
| 946 | default: |
| 947 | break; |
| 948 | } |
| 949 | |
| 950 | return false; |
| 951 | } |
| 952 | |
| 953 | static inline bool power_supply_is_watt_property(enum power_supply_property psp) |
| 954 | { |
| 955 | switch (psp) { |
| 956 | case POWER_SUPPLY_PROP_ENERGY_FULL_DESIGN: |
| 957 | case POWER_SUPPLY_PROP_ENERGY_EMPTY_DESIGN: |
| 958 | case POWER_SUPPLY_PROP_ENERGY_FULL: |
| 959 | case POWER_SUPPLY_PROP_ENERGY_EMPTY: |
| 960 | case POWER_SUPPLY_PROP_ENERGY_NOW: |
| 961 | case POWER_SUPPLY_PROP_ENERGY_AVG: |
| 962 | case POWER_SUPPLY_PROP_VOLTAGE_MAX: |
| 963 | case POWER_SUPPLY_PROP_VOLTAGE_MIN: |
| 964 | case POWER_SUPPLY_PROP_VOLTAGE_MAX_DESIGN: |
| 965 | case POWER_SUPPLY_PROP_VOLTAGE_MIN_DESIGN: |
| 966 | case POWER_SUPPLY_PROP_VOLTAGE_NOW: |
| 967 | case POWER_SUPPLY_PROP_VOLTAGE_AVG: |
| 968 | case POWER_SUPPLY_PROP_VOLTAGE_OCV: |
| 969 | case POWER_SUPPLY_PROP_VOLTAGE_BOOT: |
| 970 | case POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE: |
| 971 | case POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE_MAX: |
| 972 | case POWER_SUPPLY_PROP_POWER_NOW: |
| 973 | return true; |
| 974 | default: |
| 975 | break; |
| 976 | } |
| 977 | |
| 978 | return false; |
| 979 | } |
| 980 | |
| 981 | #ifdef CONFIG_SYSFS |
| 982 | ssize_t power_supply_charge_behaviour_show(struct device *dev, |
| 983 | unsigned int available_behaviours, |
| 984 | enum power_supply_charge_behaviour behaviour, |
| 985 | char *buf); |
| 986 | |
| 987 | int power_supply_charge_behaviour_parse(unsigned int available_behaviours, const char *buf); |
| 988 | ssize_t power_supply_charge_types_show(struct device *dev, |
| 989 | unsigned int available_types, |
| 990 | enum power_supply_charge_type current_type, |
| 991 | char *buf); |
| 992 | int power_supply_charge_types_parse(unsigned int available_types, const char *buf); |
| 993 | #else |
| 994 | static inline |
| 995 | ssize_t power_supply_charge_behaviour_show(struct device *dev, |
| 996 | unsigned int available_behaviours, |
| 997 | enum power_supply_charge_behaviour behaviour, |
| 998 | char *buf) |
| 999 | { |
| 1000 | return -EOPNOTSUPP; |
| 1001 | } |
| 1002 | |
| 1003 | static inline int power_supply_charge_behaviour_parse(unsigned int available_behaviours, |
| 1004 | const char *buf) |
| 1005 | { |
| 1006 | return -EOPNOTSUPP; |
| 1007 | } |
| 1008 | |
| 1009 | static inline |
| 1010 | ssize_t power_supply_charge_types_show(struct device *dev, |
| 1011 | unsigned int available_types, |
| 1012 | enum power_supply_charge_type current_type, |
| 1013 | char *buf) |
| 1014 | { |
| 1015 | return -EOPNOTSUPP; |
| 1016 | } |
| 1017 | |
| 1018 | static inline int power_supply_charge_types_parse(unsigned int available_types, const char *buf) |
| 1019 | { |
| 1020 | return -EOPNOTSUPP; |
| 1021 | } |
| 1022 | #endif |
| 1023 | |
| 1024 | #endif /* __LINUX_POWER_SUPPLY_H__ */ |