The present application claims the benefit of Patent Application No. GB1713297.8 from the United Kingdom, which was filed on Aug. 18, 2017 and is incorporated herein by reference in its entirety.
The subject matter relates to a cooling unit for use in cooling a computer device comprising a centrifugal pump connected to a heat exchanger to pump coolant fluid therethrough and thereby to cool the coolant fluid.
When connected for example to a supercomputer to provide cooling therefor, the unit is connected in a coolant fluid circuit which includes the heat sinks of the semiconductor chips. Thus coolant fluid flows from the output of the heat exchanger of the supercomputer cooling unit to the heat sinks, where the coolant fluid cools the heat sinks, and then along a return path back to the pump. The pump pumps the coolant fluid to the input of the heat exchanger, where the coolant fluid is cooled before it passes out from the heat exchanger at an output therefrom, and onwards to pass around the coolant fluid circuit continuously.
Hitherto in such a cooling unit, the pump has comprised an electric motor having a drive axle which passes through a bearing and a seal between the axle and an impeller housing, to an impeller of a centrifugal pump to which it is drivingly connected. In the event that the seal fails, coolant fluid may escape from the circuit with the possible result that the semiconductor chips overheat to such an extent that they may be damaged or even destroyed. Seal and/or bearing failure may occur through wear or through overheating as a result of cavitation in the coolant fluid, or a loss of coolant fluid from the circuit through leaks other than through the seal. Furthermore the particles from the bearing may break away therefrom and may be carried in the coolant fluid to the heat sinks. The latter typically have a fine ridging or microfins or microchannels on to or within which the coolant is entrained to create turbulence or at least a better heat exchange between the heat sink and the coolant fluid, and such particles may have a detrimental effect on such heat exchange.
Embodiments seek to provide a remedy.
Accordingly, at least one embodiment is directed to a cooling unit comprising a coolant fluid pathway in which there is (a) a centrifugal pump which serves to pump coolant fluid along the pathway when the unit is in use, and (b) a heat exchanger which serves to cool the coolant fluid which is thus pumped along the pathway, characterized in that the pump has a rotor constituted by a magnetically contactlessly driven impeller which is provided with at last one magnet and which is enclosed within a housing, and a stator outside the housing and provided with at least one electromagnet operable to act on the said at least one magnet to rotate the impeller.
Such a construction avoids any contact between a moving and a stationery part that may give rise to frictional wear and heating.
The impeller may be a magnetically levitated impeller so that it may be driven contactlessly.
Alternatively or in addition, the impeller may be fluid-dynamically levitated so that it may be driven contactlessly.
When the unit is connected for use, with coolant within the coolant pathway, the coolant fluid may comprise water, with or without an additive such as a bactericide or glycol.
This provides a fluid coolant with a high specific heat, highly effective for heat transference.
The presence of a bactericide reduces the risk of bacteria colonies forming for example on the fine ridge formations of heat sinks when the device is in use to cool such heat sinks.
The presence of glycol enables the unit to be used in low temperature climates.
A cooling unit of one more embodiments may further comprise a filter in the coolant fluid pathway to filter the coolant fluid.
Such a construction provides the further benefit of being able to remove detritus or particles resulting from wear or corrosion that may otherwise accumulate in the fluid coolant and cause a blockage or damage to the fine ridging of heat sinks when the unit is connected to cool such heat sinks.
The filter may comprise a mesh through which the coolant fluid flows when the unit is in use.
The filter may further comprise a cylindrical perforated wall surrounded by such a mesh.
The hole size of the mesh may be 20 to 100 microns in diameter, preferably 50 microns.
The filter may be attached to the pump.
This provides for a compact unit.
An efficient manner of manufacture may be obtained if the filter is so attached to the pump that the inlet to the pump is in fluid communication with the interior of such a cylinder of the filter.
Embodiments include a method of cooling a computer device using a unit as described herein.
Examples of cooling units made in accordance with one or more embodiments will now be described in greater detail with reference to the accompanying drawings, in which:
The cooling unit 10 shown in
The cooling unit 10 also comprises a secondary coolant pathway constituted by an inlet pipe 22 connected to a secondary pathway inlet 24 of the heat exchanger 16, the secondary pathway outlet 26 of which is connected to the inlet of a filter 27 via a connecting pipe 28. The outlet (not shown in
When the unit 10 is in use, a supercomputer 36 for example is connected to the inlet pipe 22 and the outlet pipe 32 of the unit 10, so that cooled water from the heat exchanger 16 is passed through the filter 27, and is pumped by the pump 29 through the outlet pipe 32 to the coolant distribution manifold (not shown) of the supercomputer 36 to conduct fluid to and cool the heat sinks (not shown) within the supercomputer. The water is then returned via a return manifold (not shown) to the inlet pipe 22 and thence back to the filter 27 via the heat exchanger 16 to begin the next cycle around the secondary coolant circuit. Thus cooling water is pumped continuously across the heat sinks of the supercomputer 36.
Details of the heat exchanger 16 are shown in
Further details of the filter 27 are shown in
The outlet 60 of the filter 27 and the inlet 62 of the pump 29 is provided by a single component 64, for example of stainless steel, which also provides the bottom wall 56 of the filter 27. Thus the component has an axially extending passageway 66 flared at an upper end to provide the outlet 60 of the filter 27 and at a lower end to provide the inlet 62 of the pump 29. The latter is represented in block form in
Details of the pump 29 are shown diagrammatically in
A stator 76 surrounds a lower part of the housing 70 (part of which is provided by the component 64) which accommodates the lower part of the impeller 72 containing the magnets 74. The stator 76 is constituted by twelve magnetically permeable sections 78 respective portions of which are surrounded by respective electromagnetic coils 80.
The housing 70 has an upper aperture 82 at the inlet 62 of the pump 29, and a lateral aperture 84 at a transversely extending outlet 86 of the pump 29. Eight impeller blades 88 extend outwardly from an open centre 90 of the impeller 72, the blades being uniformly spaced around the impeller and spiraling radially outwardly.
When the unit is in use and an electrical current is passing through the electromagnetic coils 80, the impeller 72 is magnetically levitated, so that it is not in contact with any of the walls of the housing 70, and when it rotates it does so contactlessly.
The construction of pump shown in
The electronic drive circuitry of the pump 29 is shown in
Numerous modifications and variations may occur to the reader without the resulting construction falling outside the scope of the inventive subject matter. By way of example only, there are numerous electromagnetic drives which are possible for the pump 29, involving various numbers of impeller magnets and stator sections, although there must be at least one of each. The radiator and pump 21 may be replaced by a pump with a chiller, a fluid cooler, or a cooling tower for example. Instead of being connected to a supercomputer 36, the unit 10 may be connected to cool for example a high performance computer, or a rear door heat exchanger to cool air exiting a computer blade rack, so that the cooling unit cools the rack indirectly by cooling air which is circulated around the room in which the rack is located.
It will be appreciated that in the embodiment of the pump illustrated in
Number | Date | Country | Kind |
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1713297.8 | Aug 2017 | GB | national |