nct6775 7.3 KB

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  1. Note
  2. ====
  3. This driver supersedes the NCT6775F and NCT6776F support in the W83627EHF
  4. driver.
  5. Kernel driver NCT6775
  6. =====================
  7. Supported chips:
  8. * Nuvoton NCT5572D/NCT6771F/NCT6772F/NCT6775F/W83677HG-I
  9. Prefix: 'nct6775'
  10. Addresses scanned: ISA address retrieved from Super I/O registers
  11. Datasheet: Available from Nuvoton upon request
  12. * Nuvoton NCT5577D/NCT6776D/NCT6776F
  13. Prefix: 'nct6776'
  14. Addresses scanned: ISA address retrieved from Super I/O registers
  15. Datasheet: Available from Nuvoton upon request
  16. * Nuvoton NCT5532D/NCT6779D
  17. Prefix: 'nct6779'
  18. Addresses scanned: ISA address retrieved from Super I/O registers
  19. Datasheet: Available from Nuvoton upon request
  20. Authors:
  21. Guenter Roeck <linux@roeck-us.net>
  22. Description
  23. -----------
  24. This driver implements support for the Nuvoton NCT6775F, NCT6776F, and NCT6779D
  25. and compatible super I/O chips.
  26. The chips support up to 25 temperature monitoring sources. Up to 6 of those are
  27. direct temperature sensor inputs, the others are special sources such as PECI,
  28. PCH, and SMBUS. Depending on the chip type, 2 to 6 of the temperature sources
  29. can be monitored and compared against minimum, maximum, and critical
  30. temperatures. The driver reports up to 10 of the temperatures to the user.
  31. There are 4 to 5 fan rotation speed sensors, 8 to 15 analog voltage sensors,
  32. one VID, alarms with beep warnings (control unimplemented), and some automatic
  33. fan regulation strategies (plus manual fan control mode).
  34. The temperature sensor sources on all chips are configurable. The configured
  35. source for each of the temperature sensors is provided in tempX_label.
  36. Temperatures are measured in degrees Celsius and measurement resolution is
  37. either 1 degC or 0.5 degC, depending on the temperature source and
  38. configuration. An alarm is triggered when the temperature gets higher than
  39. the high limit; it stays on until the temperature falls below the hysteresis
  40. value. Alarms are only supported for temp1 to temp6, depending on the chip type.
  41. Fan rotation speeds are reported in RPM (rotations per minute). An alarm is
  42. triggered if the rotation speed has dropped below a programmable limit. On
  43. NCT6775F, fan readings can be divided by a programmable divider (1, 2, 4, 8,
  44. 16, 32, 64 or 128) to give the readings more range or accuracy; the other chips
  45. do not have a fan speed divider. The driver sets the most suitable fan divisor
  46. itself; specifically, it increases the divider value each time a fan speed
  47. reading returns an invalid value, and it reduces it if the fan speed reading
  48. is lower than optimal. Some fans might not be present because they share pins
  49. with other functions.
  50. Voltage sensors (also known as IN sensors) report their values in millivolts.
  51. An alarm is triggered if the voltage has crossed a programmable minimum
  52. or maximum limit.
  53. The driver supports automatic fan control mode known as Thermal Cruise.
  54. In this mode, the chip attempts to keep the measured temperature in a
  55. predefined temperature range. If the temperature goes out of range, fan
  56. is driven slower/faster to reach the predefined range again.
  57. The mode works for fan1-fan5.
  58. sysfs attributes
  59. ----------------
  60. pwm[1-5] - this file stores PWM duty cycle or DC value (fan speed) in range:
  61. 0 (lowest speed) to 255 (full)
  62. pwm[1-5]_enable - this file controls mode of fan/temperature control:
  63. * 0 Fan control disabled (fans set to maximum speed)
  64. * 1 Manual mode, write to pwm[0-5] any value 0-255
  65. * 2 "Thermal Cruise" mode
  66. * 3 "Fan Speed Cruise" mode
  67. * 4 "Smart Fan III" mode (NCT6775F only)
  68. * 5 "Smart Fan IV" mode
  69. pwm[1-5]_mode - controls if output is PWM or DC level
  70. * 0 DC output
  71. * 1 PWM output
  72. Common fan control attributes
  73. -----------------------------
  74. pwm[1-5]_temp_sel Temperature source. Value is temperature sensor index.
  75. For example, select '1' for temp1_input.
  76. pwm[1-5]_weight_temp_sel
  77. Secondary temperature source. Value is temperature
  78. sensor index. For example, select '1' for temp1_input.
  79. Set to 0 to disable secondary temperature control.
  80. If secondary temperature functionality is enabled, it is controlled with the
  81. following attributes.
  82. pwm[1-5]_weight_duty_step
  83. Duty step size.
  84. pwm[1-5]_weight_temp_step
  85. Temperature step size. With each step over
  86. temp_step_base, the value of weight_duty_step is added
  87. to the current pwm value.
  88. pwm[1-5]_weight_temp_step_base
  89. Temperature at which secondary temperature control kicks
  90. in.
  91. pwm[1-5]_weight_temp_step_tol
  92. Temperature step tolerance.
  93. Thermal Cruise mode (2)
  94. -----------------------
  95. If the temperature is in the range defined by:
  96. pwm[1-5]_target_temp Target temperature, unit millidegree Celsius
  97. (range 0 - 127000)
  98. pwm[1-5]_temp_tolerance
  99. Target temperature tolerance, unit millidegree Celsius
  100. there are no changes to fan speed. Once the temperature leaves the interval, fan
  101. speed increases (if temperature is higher that desired) or decreases (if
  102. temperature is lower than desired), using the following limits and time
  103. intervals.
  104. pwm[1-5]_start fan pwm start value (range 1 - 255), to start fan
  105. when the temperature is above defined range.
  106. pwm[1-5]_floor lowest fan pwm (range 0 - 255) if temperature is below
  107. the defined range. If set to 0, the fan is expected to
  108. stop if the temperature is below the defined range.
  109. pwm[1-5]_step_up_time milliseconds before fan speed is increased
  110. pwm[1-5]_step_down_time milliseconds before fan speed is decreased
  111. pwm[1-5]_stop_time how many milliseconds must elapse to switch
  112. corresponding fan off (when the temperature was below
  113. defined range).
  114. Speed Cruise mode (3)
  115. ---------------------
  116. This modes tries to keep the fan speed constant.
  117. fan[1-5]_target Target fan speed
  118. fan[1-5]_tolerance
  119. Target speed tolerance
  120. Untested; use at your own risk.
  121. Smart Fan IV mode (5)
  122. ---------------------
  123. This mode offers multiple slopes to control the fan speed. The slopes can be
  124. controlled by setting the pwm and temperature attributes. When the temperature
  125. rises, the chip will calculate the DC/PWM output based on the current slope.
  126. There are up to seven data points depending on the chip type. Subsequent data
  127. points should be set to higher temperatures and higher pwm values to achieve
  128. higher fan speeds with increasing temperature. The last data point reflects
  129. critical temperature mode, in which the fans should run at full speed.
  130. pwm[1-5]_auto_point[1-7]_pwm
  131. pwm value to be set if temperature reaches matching
  132. temperature range.
  133. pwm[1-5]_auto_point[1-7]_temp
  134. Temperature over which the matching pwm is enabled.
  135. pwm[1-5]_temp_tolerance
  136. Temperature tolerance, unit millidegree Celsius
  137. pwm[1-5]_crit_temp_tolerance
  138. Temperature tolerance for critical temperature,
  139. unit millidegree Celsius
  140. pwm[1-5]_step_up_time milliseconds before fan speed is increased
  141. pwm[1-5]_step_down_time milliseconds before fan speed is decreased
  142. Usage Notes
  143. -----------
  144. On various ASUS boards with NCT6776F, it appears that CPUTIN is not really
  145. connected to anything and floats, or that it is connected to some non-standard
  146. temperature measurement device. As a result, the temperature reported on CPUTIN
  147. will not reflect a usable value. It often reports unreasonably high
  148. temperatures, and in some cases the reported temperature declines if the actual
  149. temperature increases (similar to the raw PECI temperature value - see PECI
  150. specification for details). CPUTIN should therefore be be ignored on ASUS
  151. boards. The CPU temperature on ASUS boards is reported from PECI 0.