The invention relates to heat dissipation systems for servers, particularly to a water-cooled pressurized distributive heat dissipation system for a rack.
A conventional water-cooled heat dissipation system applied in a rack for servers uses a master pump to drive working fluid to separately flow into water blocks on corresponding heat sources of servers by flow distribution. Although a water-cooling effect can be accomplished, flow of the working fluid tends to be affected because of different lengths of pipelines. For example, the longer the length of a pipeline is, the lower the flow of the working fluid is.
However, unavoidably, servers mounted in a rack are usually arranged in a vertical or superpositional direction, so a distance between the top one and the bottom one is the longest than others. Thus, these two servers with the longest distance, which are connected by the abovementioned pipeline, must only obtain less flow of the working fluid than others. This causes an uneven effect of heat dissipation or cooling. If a larger pump is used to satisfy the lowest effect of heat dissipation or cooling, then the costs will be increased. This is a problem to be solved.
An object of the invention is to provide a water-cooled pressurized distributive heat dissipation system for a rack, which uses a flow distribution approach to implement an effect of even flow.
Another object of the invention is to provide a water-cooled pressurized distributive heat dissipation system for a rack, which can use pumps with less power because of flow distribution.
To accomplish the above objects, the invention provides a water-cooled pressurized distributive heat dissipation system, which is used for dissipating heat of servers in the rack, wherein the servers are fixed in the rack in a ranging direction. The system includes a water tank having a distributing duct, branch modules separately corresponding to the servers and a converging duct. Each branch module has a branch pump and a water block in a corresponding one of the servers. The branch pump of each branch module connects between the distributing duct and the water block. The converging duct connects to the water blocks in the ranging direction.
To accomplish the above objects, the invention provides a water-cooled pressurized distributive heat dissipation system further including another distributing duct, another converging duct and branch modules connected between the another distributing duct and the another distributing duct, wherein the converging duct connects to the another distributing duct.
Please refer to
The water tank 1 may be disposed outside the rack 1 and holds a working fluid for heat dissipation or cooling, such as water. A distributing duct 10 is connected to the water tank 1. The working fluid in the water tank 1 can be conveyed into the servers 50 in the rack 50 for dissipating heat from heat sources in the servers 50.
The branch modules 2 separately correspond to the servers, each of which has a branch pump 20 and at least one water block 21 in a corresponding one of the servers 50. The branch pump 20 of each branch module 2 connects between the distributing duct 10 and the water block 21. As shown in
The converging duct 3 is disposed outside the servers 50 and connects to the water blocks 21 of the branch modules 2 in the ranging direction F. As a result, each branch module 2 has a branch pump 20 corresponding to one of the servers 50 in the rack 5. The working fluid can be evenly conveyed to each of the water blocks 21 and then converged in the converging duct 3 arranged in the ranging direction F. Accordingly, both flow and speed of the working fluid are stable and even and the effect of heat dissipation is great.
In addition, the invention may be further provided with a cooling device 4 between the water tank 1 and an output end of the converging duct 3 to cool the working fluid in the converging duct 3. A connecting pipe 40 is connected between the water tank 40 and the cooling device 4 to form a circulating pipeline so as to make the working fluid circulate in the circulating pipeline.
It will be appreciated by persons skilled in the art that the above embodiments have been described by way of example only and not in any limitative sense, and that various alterations and modifications are possible without departure from the scope of the disclosed example as defined by the appended claims.
Number | Date | Country | Kind |
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108104274 | Feb 2019 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
7318322 | Ota | Jan 2008 | B2 |
7599184 | Upadhya | Oct 2009 | B2 |
9769954 | Bonnin | Sep 2017 | B2 |
9883616 | Chainer | Jan 2018 | B2 |
10201116 | Ross | Feb 2019 | B1 |
20110240281 | Avery | Oct 2011 | A1 |
20140060799 | Eckberg | Mar 2014 | A1 |
20190320548 | Gao | Oct 2019 | A1 |
Number | Date | Country |
---|---|---|
M346849 | Dec 2008 | TW |
201414924 | Apr 2014 | TW |
Entry |
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Office Action dated Jul. 17, 2019 of the corresponding Taiwan patent application. |
Number | Date | Country | |
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20200253090 A1 | Aug 2020 | US |