IP Library › Granted Patent US 12,007,152
Granted Patent B2
US 12,007,152 · App. 17/371,137 · Granted Jun 11, 2024

Starting method for cryocooler and cryocooler

Inventor: Shuji Oyama (Nishitokyo, JP)
Assignee: SUMITOMO HEAVY INDUSTRIES, LTD.
F25B49/022F25B2500/26F25B2600/024F25B2700/193F25B2700/2104
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Quick Facts
Patent No.
US 12,007,152
App. No.
17/371,137
Granted
Jun 11, 2024
Kind
B2
Abstract

There is provided a starting method for a cryocooler, the cryocooler including a compressor, a cold head, a high pressure line, and a low pressure line, the method including increasing a volume of the high pressure line when the cold head is at a room temperature, cooling the cold head from the room temperature to a cryogenic temperature while controlling an operation frequency of the compressor based on a pressure of the high pressure line or a differential pressure between the high pressure line and the low pressure line, after the volume of the high pressure line has been increased, decreasing the volume of the high pressure line after the cold head has been cooled to the cryogenic temperature, and maintaining the cold head at the cryogenic temperature after the volume of the high pressure line has been decreased.

Claims (49)

1. A starting method for a cryocooler, the cryocooler including a compressor, a cold head, a high pressure line through which a refrigerant gas is supplied from the compressor to the cold head, and a low pressure line through which the refrigerant gas is collected from the cold head to the compressor, the method comprising:

increasing a volume of the high pressure line when the cold head is at a room temperature;

cooling the cold head from the room temperature to a cryogenic temperature while controlling an operation frequency of the compressor based on a pressure of the high pressure line or a differential pressure between the high pressure line and the low pressure line, after the volume of the high pressure line has been increased;

decreasing the volume of the high pressure line after the cold head has been cooled to the cryogenic temperature; and

maintaining the cold head at the cryogenic temperature after the volume of the high pressure line has been decreased.

2. The method according to claim 1 ,

wherein the cooling of the cold head from the room temperature to the cryogenic temperature includes controlling the operation frequency of the compressor such that the pressure of the high pressure line follows a pressure target value.

3. The method according to claim 1 ,

wherein the maintaining of the cold head at the cryogenic temperature includes controlling the operation frequency of the compressor such that the differential pressure between the high pressure line and the low pressure line follows a differential pressure target value.

4. The method according to claim 1 ,

wherein the increasing of the volume of the high pressure line includes connecting the compressor to the cold head with a first high-pressure pipe,

the decreasing of the volume of the high pressure line includes connecting the compressor to the cold head with a second high-pressure pipe, and

a volume of the first high-pressure pipe is larger than a volume of the second high-pressure pipe.

5. The method according to claim 1 ,

wherein the increasing of the volume of the high pressure line includes connecting a buffer volume to the high pressure line, and

the decreasing of the volume of the high pressure line includes disconnecting the buffer volume from the high pressure line.

6. A cryocooler comprising:

a compressor;

a cold head;

a high pressure line through which a refrigerant gas is supplied from the compressor to the cold head;

a low pressure line through which the refrigerant gas is collected from the cold head to the compressor;

a pressure sensor that measures a pressure of the high pressure line or a differential pressure between the high pressure line and the low pressure line;

a compressor controller that controls an operation frequency of the compressor based on the pressure measured by the pressure sensor; and

a buffer volume configured to be connected to the high pressure line when the cold head is cooled from a room temperature to a cryogenic temperature, and the buffer volume is configured to be disconnected from the high pressure line when the cold head is maintained at the cryogenic temperature.

7. A cryocooler comprising:

a compressor;

a cold head;

a high pressure line through which a refrigerant gas is supplied from the compressor to the cold head;

a low pressure line through which the refrigerant gas is collected from the cold head to the compressor;

a pressure sensor that measures a pressure of the high pressure line or a differential pressure between the high pressure line and the low pressure line; and

a compressor controller that controls an operation frequency of the compressor based on the pressure measured by the pressure sensor,

wherein a volume of the high pressure line is larger than a volume of the low pressure line.

8. The cryocooler according to claim 6 ,

wherein the compressor controller controls the operation frequency of the compressor such that the pressure of the high pressure line, measured by the pressure sensor, follows a pressure target value, when the cold head is cooled from the room temperature to the cryogenic temperature.

9. The cryocooler according to claim 8 ,

wherein the compressor controller controls the operation frequency of the compressor such that the differential pressure between the high pressure line and the low pressure line, measured by the pressure sensor, follows a differential pressure target value, when the cold head is maintained at the cryogenic temperature.

10. The method according to claim 1 , wherein the cooling of the cold head from the room temperature to the cryogenic temperature comprises:

measuring a temperature of the cold head,

comparing the measured temperature of the cold head to a temperature threshold value, and

when the measured temperature of the cold head exceeds the temperature threshold value, controlling the operation frequency of the compressor such that the pressure of the high pressure line follows a pressure target value.

11. The method according to claim 10 , wherein the cooling of the cold head from the room temperature to the cryogenic temperature comprises:

when the measured temperature of the cold head is below the temperature threshold value, controlling the operation frequency of the compressor such that the differential pressure between the high pressure line and the low pressure line follows a differential pressure target value.

12. A starting method for a cryocooler, the cryocooler including a compressor, a cold head, a high pressure line through which a refrigerant gas is supplied from the compressor to the cold head, and a low pressure line through which the refrigerant gas is collected from the cold head to the compressor, the method comprising:

increasing a volume of the high pressure line when the cold head is at a room temperature; and

cooling the cold head from the room temperature to a cryogenic temperature after the volume of the high pressure line has been increased,

wherein the cooling of the cold head from the room temperature to the cryogenic temperature comprises:

measuring a temperature of the cold head,

comparing the measured temperature of the cold head to a temperature threshold value, and

when the measured temperature of the cold head exceeds the temperature threshold value, controlling the operation frequency of the compressor such that the pressure of the high pressure line follows a pressure target value.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2021
From: OYAMA, SHUJI
To: SUMITOMO HEAVY INDUSTRIES, LTD.
Reel/Frame 056997/0383 →
Priority Claims (1)
JP 2019-004076 · Jan 15, 2019 · national
Continuity (2)
Continuation PCTJP2020000516 · Jan 9, 2020
Related Publication 20210341199A1 · Nov 4, 2021