Method and apparatus for a mobile information handling system with control for an ion drag blower integrated with a fan
An information handling system comprising a processor, memory device and a power source including a fan and an ion emitter/collector blower cooling system including an ion emitter and an ion collector placed in fluidic series with the fan to generate an airflow along a voltage field from the ion emitter to the ion collector and with the fan. An embedded controller to execute code instructions of an ion emitter/collector blower and fan control system to control the activation of the ion emitter/collector blower and the fan by activating the ion emitter/collector blower at a varying levels depending on a type of power source that the information handling system is coupled to, meeting a temperature threshold, and a detected operating mode of the information handling system to prioritize the ion emitter/collector blower over the fan to limit noise and power.
1 . An information handling system comprising:
a hardware processor;
a memory device;
a power management unit (PMU) to provide power to the processor and memory device;
a fan and fan motor operatively coupled to a motor driver hardware operated by the hardware processor;
an ion emitter/collector blower cooling system including:
an ion emitter/collector blower, the ion emitter/collector blower including an ion emitter and an ion collector placed in fluidic series with the fan;
an ionic driving circuit operatively coupled to the ion emitter via a high voltage to ionize gases at the ion emitter/collector blower to create charged ions that generate an airflow along a voltage field to and through the ion collector;
an embedded controller to execute code instructions of an ion emitter/collector blower and fan control system to control the activation of the ion emitter/collector blower and fan, the ion emitter/collector blower and fan control system to initiate the activation of the ion emitter/collector blower when the PMU indicates that the information handling system is coupled to a battery power source to operate in a dynamic power mode that is a variable control of the ion emitter/collector blower by the ion emitter/collector blower and fan control system such that different levels of voltage are applied to the ion emitter or ion collector so that different airflow capacity is created within the ion emitter/collector blower and at a first temperature threshold, detected by a temperature sensor, and the fan is activated when the ion emitter/collector blower has reached a maximum operating capacity; and
the embedded controller to execute code instructions of the ion emitter/collector blower and fan control system to initiate the activation of the ion emitter/collector blower when the PMU indicates that the information handling system is coupled to an alternating current (AC) power source and a detected operating mode is not a performance mode, then the ion emitter/collector blower and fan control system activates the ion emitter/collector blower at a first level and increases and decreases the airflow of the ion emitter/collector blower based on temperature feedback.
2 . The information handling system of claim 1 further comprising:
the embedded controller to execute code instructions of the ion emitter/collector blower and fan control system to initiate the activation of the ion emitter/collector blower at full power and to activate a fan speed of the fan to the mid-range airflow when the PMU indicates that the information handling system is coupled to the AC power source and the detected operating mode is a performance mode requiring an increased level of processor resource utilization.
3 . The information handling system of claim 1 further comprising:
the embedded controller to execute code instructions of the ion emitter/collector blower and fan control system to initiate the activation of the ion emitter/collector blower when the PMU indicates that the information handling system is coupled to the AC power source, the detected operating mode is not a performance mode, and the first temperature threshold, detected by a temperature sensor, has been reached, where the voltage applied to the ion emitter to increase and decrease the airflow adjusts based on temperature feedback above the first temperature threshold.
4 . The information handling system of claim 1 , wherein the fan is activated when the ion emitter/collector blower has reached the maximum operating capacity and the battery power source is detected and the embedded controller linearly increases or decreases the rotational speed of the rotatable fan blades of the fan based on temperature feedback.
5 . The information handling system of claim 1 further comprising:
the ion emitter/collector blower and fan control system to detect the operating mode is a performance mode requiring an increased level of processor resource utilization and where the ion emitter/collector blower has reached a maximum operating capacity, setting the fan speed of the fan to a mid-range airflow.
6 . The information handling system of claim 5 further comprising:
the ion emitter/collector blower and fan control system to control the fan speed from the mid-range airflow to a maximum airflow based on temperature feedback from a thermistor in the chassis.
7 . The information handling system of claim 1 further comprising:
the ion emitter/collector blower and fan control system to detect the operating mode is not the performance mode and where the ion emitter/collector blower has reached a maximum operating capacity, and to set a fan speed of the fan to a low-range airflow.
8 . An ion emitter/collector blower and fan cooling system for an information handling system comprising:
a fan and fan motor operatively coupled to a motor driver hardware, the fan including a set of rotatable fan blades;
an ion emitter/collector blower including an ion emitter and an ion collector, wherein the ion emitter/collector blower is fluidically coupled to the fan;
an ionic driving circuit operatively coupled to the ion emitter via a high voltage to ionize gases at the ion emitter/collector blower to create charged ions that generate an airflow along a voltage field to and through the ion collector;
an embedded controller executing code instructions of an ion emitter/collector blower and fan control system to activate the ion emitter/collector blower when the information handling system is utilizing a battery power source, detected information handling system operating mode is in a performance mode, and a first temperature threshold, detected by a temperature sensor, has been reached to prioritize the activation of ion emitter/collector blower over the fan in a dynamic power mode that is a variable control of the ion emitter/collector blower by an ion emitter/collector blower and fan control system such that different levels of voltage are applied to the ion emitter or ion collector so that different airflow capacity is created within the ion emitter/collector blower;
the ion emitter/collector blower and fan control system to activate the fan when the ion emitter/collector blower has reached a maximum operating capacity; and
the ion emitter/collector blower and fan control system, upon determining when the information handling system is coupled to an alternating current (AC) power source and an operating mode is detected as in a performance mode requiring increased utilization of processing resources, to activate the ion emitter/collector blower at a maximum operating capacity and to activate the fan at a fan speed that generates a midrange airflow that is increased based on temperature feedback of temperature that is above a second temperature threshold, detected by the temperature sensor; and
the ion emitter/collector blower and fan control system to detect the operating mode of the information handling system is not in the performance mode when the information handling system is coupled to the AC power source and activate the ion emitter/collector blower at a first level and increase and decrease the airflow of the ion emitter/collector blower based on temperature feedback.
9 . The ion emitter/collector blower and fan cooling system of claim 8 further comprising:
when the information handling system is coupled to the battery power source and the detected operating mode is the performance mode, the ion emitter/collector blower and fan control system to activate the fan at a mid-range rotational fan speed when the ion emitter/collector blower has reached the maximum operating capacity.
10 . The ion emitter/collector blower and fan cooling system of claim 8 further comprising:
the ion emitter/collector blower and fan control system to control a fan speed when the ion emitter/collector blower has reached a maximum operating capacity, where the fan speed of the fan is increased and decreased based on temperature feedback.
11 . The ion emitter/collector blower and fan cooling system of claim 8 further comprising:
the ion emitter/collector blower and fan control system to control a fan speed when the ion emitter/collector blower has reached the maximum operating capacity, where the fan speed of the fan is linearly increased from an initial fan speed to a maximum fan speed based on temperature feedback.
12 . The ion emitter/collector blower and fan cooling system of claim 8 further comprising:
when the information handling system is utilizing the battery power source and the detected operating mode is not the performance mode, the ion emitter/collector blower and fan control system to activate the ion emitter/collector blower at a second temperature threshold and to activate the fan at an initial fan speed that is a low-range rotational speed when the ion emitter/collector blower has reached the maximum operating capacity.
13 . The ion emitter/collector blower and fan cooling system of claim 8 further comprising:
the ion emitter/collector blower and fan control system, upon determining when the information handling system is coupled to the AC power source and the information handling system operating mode detected is not in the performance mode, to activate the ion emitter/collector blower at mid-level operating capacity and increasing capacity of the ion emitter/collector blower based on temperature feedback.
14 . The ion emitter/collector blower and fan cooling system of claim 8 further comprising:
when the information handling system is coupled to the AC power source but the detected operating mode is not the performance mode, the ion emitter/collector blower and fan control system to activate the fan at an initial fan speed that is a mid-range rotational fan speed when the ion emitter/collector blower has reached the maximum operating capacity.
15 . An ion emitter/collector blower and fan cooling system for an information handling system comprising:
a fan and fan motor operatively coupled to a motor driver hardware, the fan including a set of rotatable fan blades;
an ion emitter/collector blower including an ion emitter and an ion collector, wherein the ion emitter/collector blower is fluidically coupled to the fan;
an ionic driving circuit operatively coupled to the ion emitter via a high voltage to ionize gases at the ion emitter/collector blower to create charged ions that generate an airflow along a voltage field to and through the ion collector;
an embedded controller executing code instructions of an ion emitter/collector blower and fan control system to activate the ion emitter/collector blower when it detects that the information handling system is utilizing a battery power source, that an information handling system operating mode is in a performance mode requiring increased utilization of processing resources, and that a first temperature threshold, detected by a temperature sensor, has been reached to prioritize activation of the ion emitter/collector blower over the fan in a dynamic power mode that is a variable control of the ion emitter/collector blower by an ion emitter/collector blower and fan control system such that different levels of voltage are applied to the ion emitter or ion collector so that different airflow capacity is created within the ion emitter/collector blower;
the ion emitter/collector blower and fan control system to activate the fan at an initial fan speed that is a mid-range rotational speed when the ion emitter/collector blower has reached a maximum operating capacity when in the performance mode;
the ion emitter/collector blower and fan control system to control the activation of the ion emitter/collector blower when it detects that the information handling system is utilizing a battery power source, that the information handling system operating mode is not in the performance mode, and that a second temperature threshold, detected by a temperature sensor, has been reached;
the ion emitter/collector blower and fan control system to activate the fan at the initial fan speed that is a low-range rotational speed when the ion emitter/collector blower has reached the maximum operating capacity when not in the performance mode; and
the ion emitter/collector blower and fan control system, upon determining when the information handling system is coupled to an alternating current (AC) power source and an information handling system operating mode detected is not in the performance mode, to activate the ion emitter/collector blower at mid-level operating capacity and increasing capacity of the ion emitter/collector blower based on temperature feedback.
16 . The ion emitter/collector blower and fan cooling system of claim 15 further comprising:
the ion emitter/collector blower and fan control system to control a fan speed when the ion emitter/collector blower has reached the maximum operating capacity, where the fan speed of the fan is increased and decreased based on temperature feedback.
17 . The ion emitter/collector blower and fan cooling system of claim 15 further comprising:
the ion emitter/collector blower and fan control system to control a fan speed when the ion emitter/collector blower has reached the maximum operating capacity, where the fan speed of the fan is linearly increased from the initial fan speed to a maximum fan speed based on temperature feedback.
18 . The ion emitter/collector blower and fan cooling system of claim 15 further comprising:
the ion emitter/collector blower and fan control system, upon determining when the information handling system is coupled to the AC power source and the operating mode is detected as in the performance mode, to activate the ion emitter/collector blower at the maximum operating capacity and to activate the fan at the initial fan speed that is the low-range rotational speed when the ion emitter/collector blower has reached the maximum operating capacity.
19 . The ion emitter/collector blower and fan cooling system of claim 15 further comprising:
the ion emitter/collector blower and fan control system to detect the operating mode of the information handling system is not in the performance mode when the information handling system is coupled to the AC power source and activate the ion emitter/collector blower at a first level and increase and decrease the airflow of the ion emitter/collector blower based on temperature feedback.
20 . The ion emitter/collector blower and fan cooling system of claim 15 further comprising:
the ion emitter/collector blower and fan control system, upon determining when the information handling system is coupled to the AC power source and the information handling system operating mode detected is not the performance mode, the ion emitter/collector blower and fan control system to activate the fan at the initial fan speed that is the mid-range rotational fan speed when the ion emitter/collector blower has reached the maximum operating capacity.