WATER-COOLED AND FLOW-CONTROLLED HEAT DISSIPATION SYSTEM USED IN CABINET AND CONTROL METHOD THEREOF
20220272873 ยท 2022-08-25
Inventors
Cpc classification
F28F27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20781
ELECTRICITY
F28F9/0275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2250/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20272
ELECTRICITY
International classification
H05K7/20
ELECTRICITY
F28F27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
This disclosure relates to a water-cooled and flow-controlled heat dissipation system used in a cabinet and a control method thereof. The heat dissipation system includes a water supply apparatus, multiple water blocks, a pipe assembly, multiple throttles, and a control unit. The pipe assembly has a distribution pipe, a converging pipe, multiple inlet pipes, and multiple outlet pipes. One end of the distribution pipe and one end of the converging pipe are communicated with the water supply apparatus. Each inlet pipe has two ends communicated with the distribution pipe and to each water block respectively. Each outlet pipe has two ends communicated with the converging pipe and to each water blocks. Each throttle is installed in each inlet pipe, each outlet pipe, or each water block. The control unit is electrically connected to the throttles and controls the opening degree of each throttle.
Claims
1. A water-cooled and flow-controlled heat dissipation system used in a cabinet comprising a plurality of servers and a plurality of heat generating components installed in each server, the water-cooled and flow-controlled heat dissipation system comprising: a water supply apparatus; a plurality of water blocks, installed in each server respectively and thermally attached to each heat generating component; a pipe assembly, comprising a distribution pipe, a converging pipe, a plurality of inlet pipes, and a plurality of outlet pipes, wherein one end of the distribution pipe and one end of the converging pipe are communicated with the water supply apparatus, one end of each of the inlet pipes is communicated with the distribution pipe and the other end of each of the inlet pipes is communicated with each water block, one end of each of the outlet pipes is communicated with the converging pipe and the other end of each of the outlet pipes is communicated with each water block; a plurality of throttles, installed respectively in each inlet pipe, in each outlet pipe, or in each water block; and a control unit, electrically connected to the throttles and controlling an opening degree of each throttle.
2. The water-cooled and flow-controlled heat dissipation system according to claim 1, further comprising: a plurality of flowrate sensors, installed respectively in each inlet pipe, in each outlet pipe, or in each water block, wherein each of the flowrate sensors senses a flowrate to generate a flowrate signal, and the control unit receives the flowrate signal to control the opening degree of each throttle.
3. The water-cooled and flow-controlled heat dissipation system according to claim 2, further comprising: a plurality of temperature sensors, installed respectively in each inlet pipe, in each outlet pipe, in each water block, or on each heat generating component, wherein each of the temperature sensors senses a temperature to generate a temperature signal, and the control unit receives the temperature signal to control the opening degree of each throttle.
4. The water-cooled and flow-controlled heat dissipation system according to claim 3, wherein the water supply apparatus comprises a water box and a pump communicated with the water box, one end of the distribution pipe and one end of the converging pipe are communicated with the water box, the pump drives a working fluid in the water box to flow to the converging pipe through the distribution pipe, the inlet pipes, and the outlet pipes in sequence.
5. The water-cooled and flow-controlled heat dissipation system according to claim 4, wherein the control unit is electrically connected to the pump, each of the throttles generates an opening degree signal based on the opening degree thereof, the control unit receives each flowrate signal and each opening degree signal to control the rotating speed of the pump.
6. The water-cooled and flow-controlled heat dissipation system according to claim 4, further comprising: a cooling unit, wherein the converging pipe comprises a first converging pipe and a second converging pipe, one end of the first converging pipe is communicated with the outlet pipes and the other end of the first converging pipe is communicated with the cooling unit, one end of the second converging pipe is communicated with the cooling unit and the other end of the second converging pipe is communicated with the water box.
7. The water-cooled and flow-controlled heat dissipation system according to claim 1, wherein the servers are stacked in an up and down configuration.
8. A control method of a water-cooled and flow-controlled heat dissipation system, the control method comprising: (a) providing a cabinet comprising a plurality of servers and a plurality of heat generating components installed in each server; (b) providing a plurality of water blocks installed in each server and thermally attached to each heat generating component; (c) providing a water supply apparatus and a pipe assembly comprising a distribution pipe, a converging pipe, a plurality of inlet pipes, and a plurality of outlet pipes, wherein one end of the distribution pipe and one end of the converging pipe are communicated with the water supply apparatus, one end of each of the inlet pipes is communicated with the distribution pipe and the other end of each of the inlet pipes is communicated with each water block, one end of each of the outlet pipes is communicated with the converging pipe and the other end of each of the outlet pipes is communicated with each water block; (d) providing a plurality of throttles installed respectively in each inlet pipe, in each outlet pipe, or in each water block; (e) providing a plurality of flowrate sensors installed respectively in each inlet pipe, in each outlet pipe, or in each water block, and sensing a flowrate to generate a flowrate signal by each flowrate sensor; and (f) providing a control unit electrically connected to the throttles, receiving the flowrate signal less than a predetermined flowrate to increase an opening degree of each throttle by the control unit, and receiving the flowrate signal greater than the predetermined flowrate to decrease the opening degree of each throttle by the control unit.
9. The control method of the water-cooled and flow-controlled heat dissipation system according to claim 8, further comprising a step (g) after the step (f), the step (g) comprising: providing a plurality of temperature sensors installed respectively in each inlet pipe, in each outlet pipe, in each water block, or on each heat generating component, sensing a temperature to generate a temperature signal by each temperature sensor, and receiving the temperature signals to calculate the predetermined flowrate by the control unit.
10. The control method of a water-cooled and flow-controlled heat dissipation system according to claim 9, further comprising a step (h) after the step (g), the step (h) comprising: generating an opening degree signal by each of the throttles based on the opening degree thereof, wherein the water supply apparatus comprises a pump electrically connected to the control unit; receiving each flowrate signal less than the predetermined flowrate and receiving each opening signal greater than a predetermined opening degree to increase the rotating speed of the pump by the control unit, and receiving each flowrate signal greater than the predetermined flowrate and receiving each opening signal less than the predetermined opening degree to decrease the rotating speed of the pump by the control unit.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0009]
[0010]
[0011]
[0012]
DETAILED DESCRIPTION OF THE INVENTION
[0013] The detailed description and technical details of this disclosure are explained below with reference to accompanying figures. However, the accompanying figures are for reference and explanation only, but not to limit the scope of this disclosure.
[0014] Please refer to
[0015] As shown in
[0016] As shown in
[0017] As shown in
[0018] As shown in
[0019] As shown in
[0020] As shown in
[0021] As shown in
[0022] As shown in
[0023] The control unit 5 receives each temperature signal and each flowrate signal and then controls the opening degree of each throttle 4. The control unit 5 receives each flowrate signal and each opening degree signal and then controls the rotating speed of the pump 12.
[0024] As shown in
[0025] As shown in
[0026] Second, as shown in the step (b) of
[0027] Third, as shown in the step (c) of
[0028] Fourth, as shown in the step (d) of
[0029] Fifth, as shown in the step (e) of
[0030] Sixth, as shown in the step (f) of
[0031] In this way, the transport power of the working fluid in each water blocks 21 may have uniform bypass flow rate to stabilize the flow rate and the flow speed of the working fluid in each water block 21. Therefore, beneficial effects of uniform flows, heat dissipation, and cooling may be achieved.
[0032] Seventh, as shown in the step (g) of
[0033] Therefore, the working fluid in thermal contact with the heat generating component 102 having higher temperature may obtain greater bypass flow such that the working fluid has greater flow rate and greater flow speed to rapidly transfer the heat generated from the heat generating component 102 to the cooling unit 8. Consequently, efficiency of heat dissipation of the water-cooled and flow-controlled heat dissipation system 10 may be increased.
[0034] Eighth, as shown in the step (h) of
[0035] Thus, the flow rate of the working fluid is adjusted through the opening degree of each throttle 4 until the flowrate signal reaches the predetermined flowrate. If the opening degree of each throttle 4 reaches the limits (e.g., the opening degree of the throttle 4 cannot be increased or decreased any more), the rotating speed of the pump 12 is adjusted such that each flowrate signal reaches the predetermined flowrate. Further, the efficiency of heat dissipation and cooling of the water-cooled and flow-controlled heat dissipation system 10 may be stabilized.
[0036] Although this disclosure has been described with reference to the foregoing embodiment, it will be understood that the disclosure is not limited to the details thereof. Various equivalent variations and modifications can still occur to those skilled in this art in view of the teachings of this disclosure. Thus, all such variations and equivalent modifications are also embraced within the scope of this disclosure as defined in the appended claims.