Smart fan and pump controller
A pump or DC fan used to cool an electronic system is monitored for speed. When the pump or fan encounters an unexpected increase in impedance, such as an obstruction or a bearing anomaly, the controller temporarily increases the power to the pump or fan to overcome the impedance, and optionally notifies the user of the pump or fan problem. Also, when the pump or fan impedance returns to a normal range, the controller returns the power to the pump or fan to normal levels. In some embodiments, the controller may supply more power to the pump or fan than specified by the manufacturer to temporarily over come the increased impedance or pending failure of the pump or fan. This increased power allows the fan or pump to operate at a speed necessary for cooling an electronic system during a temporary increase in impedance, or during a slow degradation of the efficiency of the fan or pump.
The present invention relates generally to the field of cooling technologies and more specifically to the field of cooling technologies within a device enclosure including cooling fans or pumps.
BACKGROUND OF THE INVENTIONAs technology advances, more and more heat-generating electronic devices are packed into smaller and smaller enclosures. With most electronic devices, there is a critical temperature above, which the device or devices will no longer operate correctly. Currently there are a wide variety of methods used to cool electronic device enclosures including fans for air-cooling devices and liquid cooling techniques where a cooling liquid is pumped through the enclosure. As with most moving mechanical devices, these fans and pumps are subject to wear, causing their operating characteristics to change. Also, a fan or pump may be temporarily blocked by an obstruction, reducing the efficiency of the fan or pump. When these events occur, the cooling system may no longer operate sufficiently to keep the electronic devices being cooled within their operating temperature range. At this point the device may fail, causing expensive downtime for repairs to the fan or pump, and possibly expensive repairs to the electronic devices themselves.
Many DC fans are capable of operation for short times above their maximum rated voltage. While exceeding the maximum rated voltage may shorten the lifetime of a fan, it may be desirable to sacrifice fan lifetime in exchange for the prevention of unscheduled down time. In most electronic systems, fan cost is a small fraction of the cost of the rest of the system. Typically fan cost is also small relative to the cost of unscheduled downtime for the system. Thus, in some situations, it is desirable to have the ability to apply higher voltages to a fan or pump to temporarily maintain necessary system cooling capability, while allowing a user to schedule time for repairing or replacing the fan or pump (if necessary) at a time convenient to the user. This would allow the system to avoid sudden unexpected system failures, and allows the system user more flexibility in scheduling repairs to the cooling system.
SUMMARY OF THE INVENTIONA pump or DC fan used to cool an electronic system is monitored for speed. When the pump or fan encounters an unexpected increase in impedance, such as an obstruction or a bearing anomaly, the controller temporarily increases the power to the pump or fan to overcome the impedance, and optionally notifies the user of the pump or fan problem. Also, when the pump or fan impedance returns to a normal range, the controller returns the power to the pump or fan to normal levels. In some embodiments, the controller may supply more power to the pump or fan than specified by the manufacturer to temporarily over come the increased impedance or pending failure of the pump or fan. This increased power allows the fan or pump to operate at a speed necessary for cooling an electronic system during a temporary increase in impedance, or during a slow degradation of the efficiency of the fan or pump.
Other aspects and advantages of the present invention will become apparent from the following detailed description, taken in conjunction with the accompanying drawings, illustrating by way of example the principles of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS
The foregoing description of the present invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed, and other modifications and variations may be possible in light of the above teachings. The embodiments were chosen and described in order to best explain the principles of the invention and its practical application to thereby enable others skilled in the art to best utilize the invention in various embodiments and various modifications as are suited to the particular use contemplated. It is intended that the appended claims be construed to include other alternative embodiments of the invention except insofar as limited by the prior art.
Claims
1. A device, comprising:
- a fan including a motor, wherein said fan outputs fan speed data;
- a power supply electrically coupled to said motor; and
- a controller electrically coupled to said fan and said power supply, wherein said controller receives fan speed data and outputs a control signal to said power supply, wherein said controller responds to decreases in fan speed below a normal speed by increasing power supplied to said fan.
2. The device recited in claim 1,
- wherein said controller responds to increases in fan speed above a normal speed by decreasing power supplied to said fan.
3. The device recited in claim 1,
- wherein said increasing power supplied to said fan exceeds a normal operating power of said fan.
4. The device recited in claim 1,
- wherein said controller sends a warning to a user when increasing power supplied to said fan.
5. A device, comprising:
- a fan including a motor;
- a fan speed sensor configured to output fan speed data;
- a power supply electrically coupled to said motor; and
- a controller electrically coupled to said fan speed sendor and said power supply, wherein said controller receives fan speed data and outputs a control signal to said power supply, wherein said controller responds to decreases in fan speed below a normal speed by increasing power supplied to said fan.
6. The device recited in claim 5,
- wherein said controller responds to increases in fan speed above a normal speed by decreasing power supplied to said fan.
7. The device recited in claim 5,
- wherein said increasing power supplied to said fan exceeds a normal operating power of said fan.
8. The device recited in claim 5,
- wherein said controller sends a warning to a user when increasing power supplied to said fan.
9. A device, comprising:
- a pump including a motor, wherein said pump outputs pump speed data;
- a power supply electrically coupled to said motor; and
- a controller electrically coupled to said pump and said power supply, wherein said controller receives pump speed data and outputs a control signal to said power supply, wherein said controller responds to decreases in pump speed below a normal speed by increasing power supplied to said pump.
10. The device recited in claim 9,
- wherein said controller responds to increases in pump speed above a normal speed by decreasing power supplied to said pump.
11. The device recited in claim 9,
- wherein said increasing power supplied to said pump exceeds a normal operating power of said pump.
12. The device recited in claim 9,
- wherein said controller sends a warning to a user when increasing power supplied to said pump.
13. A device, comprising:
- a pump including a motor;
- a flow speed sensor configured to output flow speed data;
- a power supply electrically coupled to said motor; and
- a controller electrically coupled to said flow speed sensor and said power supply, wherein said controller receives flow speed data and outputs a control signal to said power supply, wherein said controller responds to decreases in flow speed below a normal speed by increasing power supplied to said pump.
14. The device recited in claim 13,
- wherein said controller responds to increases in flow speed above a normal speed by decreasing power supplied to said pump.
15. The device recited in claim 13,
- wherein said increasing power supplied to said pump exceeds a normal operating power of said pump.
16. The device recited in claim 13,
- wherein said controller sends a warning to a user when increasing power supplied to said pump.
17. A method, comprising the steps of:
- (a) monitoring the speed a fan;
- (b) detecting changes in the fan speed;
- (c) increasing power to the fan when decreases in the fan speed below a normal speed are detected.
18. The method recited in claim 17, further comprising the step of:
- (d) decreasing power to the fan when increases in the fan speed above a normal speed are detected.
19. The method recited in claim 17, further comprising the step of:
- (d) sending a warning to a user when increasing power to the fan.
20. A method, comprising the steps of:
- (a) monitoring the speed a pump;
- (b) detecting changes in the pump speed;
- (c) increasing power to the pump when decreases in the pump speed below a normal speed are detected.
21. The method recited in claim 20, further comprising the step of:
- (e) decreasing power to the pump when increases in the pump speed above a normal speed are detected.
22. The method recited in claim 20, further comprising the step of:
- (e) sending a warning to a user when increasing power to the pump.
23. A method, comprising the steps of:
- (a) monitoring the flow of a liquid;
- (b) detecting changes in the flow speed;
- (c) increasing power to a pump when decreases in the flow speed below a normal speed are detected.
24. The method recited in claim 23, further comprising the step of:
- (d) decreasing power to the pump when increases in the flow speed above a normal speed are detected.
25. The method recited in claim 23, further comprising the step of:
- (d) sending a warning to a user when increasing power to the pump.
Type: Application
Filed: Oct 20, 2003
Publication Date: Apr 21, 2005
Inventors: Andrew Delano (Fort Collins, CO), Robert Smith (Loveland, CO), Christopher Kroeger (Longmont, CO)
Application Number: 10/689,808