IP Library Granted Patent US 11,853,135
Granted Patent B2
US 11,853,135 · App. 18/023,398 · Granted Dec 26, 2023

Heat dissipation control method, apparatus and device

Inventor: Hongrui Han (Jiangsu, CN)
Assignee: INSPUR SUZHOU INTELLIGENT TECHNOLOGY CO., LTD.
G06F1/20G05B19/4155G05B2219/49216
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Quick Facts
Patent No.
US 11,853,135
App. No.
18/023,398
Granted
Dec 26, 2023
Kind
B2
Abstract

A heat dissipation control method is disclosed, wherein the heat generation speed of a heat dissipation channel may be calculated according to a power consumption value of each component in the heat dissipation channel, and a radiator is then controlled on the basis of the heat generation speed, whereby the heat dissipation speed of the heat dissipation channel is comparable to the heat generation speed. A heat dissipation control apparatus and device are further disclosed, which have the same beneficial effects as the heat dissipation control method.

Claims (60)

1. A heat dissipation control method, comprising:

calculating heat generation speed of a heat dissipation channel according to a power consumption value of each component in the heat dissipation channel;

calculating heat dissipation speed of the heat dissipation channel according to a temperature value of the heat dissipation channel and an actual flow rate of a heat dissipation medium per unit time;

determining a first parameter adjustment amount for a heat sink according to a difference between the heat generation speed and the heat dissipation speed; and

controlling the heat sink according to the first parameter adjustment amount, whereby the heat dissipation speed is comparable to the heat generation speed.

2. The heat dissipation control method according to claim 1 , wherein the step of calculating the heat generation speed of the heat dissipation channel according to the power consumption value of each component in the heat dissipation channel comprises:

obtaining the power consumption value of each inactive component in the heat dissipation channel; and

calculating the heat generation speed of the heat dissipation channel according to a sum of the power consumption values.

3. The heat dissipation control method according to claim 2 , wherein the step of calculating the heat dissipation speed of the heat dissipation channel according to the temperature value of the heat dissipation channel and the actual flow rate of the heat dissipation medium per unit time comprises:

V heat dissipation =C×CFM×ρ×ΔT;

CFM=V×S;

where V heat dissipation is the heat dissipation speed, C is a specific heat capacity of air, CFM is the actual flow rate of the heat dissipation medium per unit time in the heat dissipation channel, ρ is a density of the heat dissipation medium, ΔT is a temperature difference between an inlet temperature and an outlet temperature of the heat dissipation medium in the heat dissipation channel, V is a flow rate of the heat dissipation medium, and S is a cross-sectional area of the heat dissipation channel.

4. The heat dissipation control method according to claim 3 , wherein a plurality of heat dissipation channels are provided;

the step of obtaining the power consumption value of each inactive component in the heat dissipation channel comprises:

obtaining the power consumption value of each inactive component in a target heat dissipation channel; and

the step of calculating the heat generation speed of the heat dissipation channel according to the sum of the power consumption values comprises:

calculating the heat generation speed of the target heat dissipation channel according to the sum of the power consumption values.

5. The heat dissipation control method according to claim 4 , wherein the heat sink is a fan; and

the heat dissipation channel is an air channel and the heat dissipation medium is air.

6. The heat dissipation control method according to claim 1 , wherein the heat dissipation control method is applied to a processor independent of a server where the heat sink is located.

7. The heat dissipation control method according to claim 1 , wherein a plurality of heat sinks correspond to the heat dissipation channel; and

the step of controlling the heat sink according to the first parameter adjustment amount comprises:

controlling the plurality of heat sinks corresponding to the heat dissipation channel according to the first parameter adjustment amount, with a highest sum of energy conversion efficiencies of the plurality of heat sinks corresponding to the heat dissipation channel as a goal.

8. The heat dissipation control method according to claim 1 , wherein after the step of controlling the heat sink according to the first parameter adjustment amount, the heat dissipation control method further comprises:

calculating a flow rate compensation value of the actual flow rate relative to a current theoretical flow rate in the heat sink per unit time;

generating a second parameter adjustment amount for the heat sink according to the flow rate compensation value per unit time; and

controlling the heat sink according to the second parameter adjustment amount, whereby the actual flow rate per unit time is equal to the theoretical flow rate per unit time.

9. The heat dissipation control method according to claim 1 , wherein the heat dissipation medium flows through the heat dissipation channel.

10. The heat dissipation control method according to claim 1 , wherein the each component comprises a Central Processing Unit (CPU), a Graphics Processing Unit (GPU), and a wire.

11. The heat dissipation control method according to claim 1 , wherein the step of controlling the heat sink according to the first parameter adjustment amount comprises:

adjusting an operating power consumption of the heat sink.

12. The heat dissipation control method according to claim 1 , wherein the heat dissipation control method is performed every preset period of time.

13. A heat dissipation control device, comprising:

a memory, configured to store a computer program; and

a processor, capable of executing the computer program, and upon execution of the computer program, configured to:

calculate heat generation speed of a heat dissipation channel according to a power consumption value of each component in the heat dissipation channel;

calculate heat dissipation speed of the heat dissipation channel according to a temperature value of the heat dissipation channel and an actual flow rate of a heat dissipation medium per unit time;

determine a first parameter adjustment amount for a heat sink according to a difference between the heat generation speed and the heat dissipation speed; and

control the heat sink according to the first parameter adjustment amount, whereby the heat dissipation speed is comparable to the heat generation speed.

14. The heat dissipation control device according to claim 13 , wherein the processor, upon execution of the computer program, is further configured to:

obtain the power consumption value of each inactive component in the heat dissipation channel; and

calculate the heat generation speed of the heat dissipation channel according to a sum of the power consumption values.

15. The heat dissipation control device according to claim 14 , wherein the step of calculating the heat dissipation speed of the heat dissipation channel according to the temperature value of the heat dissipation channel and the actual flow rate of the heat dissipation medium per unit time comprises:

V heat dissipation =C×CFM×ρ×ΔT;

CFM=V×S;

where V heat dissipation is the heat dissipation speed, C is a specific heat capacity of air, CFM is the actual flow rate of the heat dissipation medium per unit time in the heat dissipation channel, ρ is a density of the heat dissipation medium, ΔT is a temperature difference between an inlet temperature and an outlet temperature of the heat dissipation medium in the heat dissipation channel, V is a flow rate of the heat dissipation medium, and S is a cross-sectional area of the heat dissipation channel.

16. The heat dissipation control device according to claim 15 , wherein a plurality of heat dissipation channels are provided;

the processor, upon execution of the computer program, is further configured to:

obtain the power consumption value of each inactive component in a target heat dissipation channel; and

calculate the heat generation speed of the target heat dissipation channel according to the sum of the power consumption values.

17. The heat dissipation control device according to claim 16 , wherein the heat sink is a fan; and

the heat dissipation channel is an air channel and the heat dissipation medium is air.

18. The heat dissipation control device according to claim 17 , wherein the processor is independent of a server where the heat sink is located.

19. The heat dissipation control device according to claim 13 , wherein a plurality of heat sinks correspond to the heat dissipation channel; and

the processor, upon execution of the computer program, is further configured to:

control the plurality of heat sinks corresponding to the heat dissipation channel according to the first parameter adjustment amount, with a highest sum of energy conversion efficiencies of the plurality of heat sinks corresponding to the heat dissipation channel as a goal.

20. The heat dissipation control device according to claim 13 , wherein the processor, upon execution of the computer program, is further configured to:

calculate a flow rate compensation value of the actual flow rate relative to a current theoretical flow rate in the heat sink per unit time;

generate a second parameter adjustment amount for the heat sink according to the flow rate compensation value per unit time; and

control the heat sink according to the second parameter adjustment amount, whereby the actual flow rate per unit time is equal to the theoretical flow rate per unit time.

Assignments (2)
LICENSE Recorded Jun 30, 2026
From: IEIT SYSTEMS CO., LTD
To: AIVRES SYSTEMS INC.
Reel/Frame 075857/0939 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 27, 2023
From: HAN, HONGRUI
To: INSPUR SUZHOU INTELLIGENT TECHNOLOGY CO., LTD.
Reel/Frame 062970/0054 →
Priority Claims (1)
CN 202010935962.1 · Sep 8, 2020 · national
Continuity (1)
Related Publication 20230229209A1 · Jul 20, 2023