IP Library › Granted Patent US 9,228,765
Granted Patent B2
US 9,228,765 · App. 13/798,683 · Granted Jan 5, 2016

Refrigeration cycle device

Inventor: Ryo Oya (Tokyo, JP)
Assignee: Mitsubishi Electric Corporation
F25B41/043F25B13/00F25B49/02F24D17/02F24D2220/08F25B2313/009F25B2313/021F25B2313/02741F25B2313/0314F25B2313/0315F25B2500/31F25B2600/0261F25B2600/2519F25B2700/2106F25B2700/2115F25B2700/21152F25B2700/21156
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,228,765
App. No.
13/798,683
Granted
Jan 5, 2016
Kind
B2
Abstract

A refrigeration cycle device includes a first refrigerant passage in which a compressor, a first solenoid valve, a four-way valve, an outdoor heat exchanger, a pressure reducing device, an indoor heat exchanger, and an accumulator are sequentially connected through pipes; a second refrigerant passage in which a second solenoid valve and a water refrigerant heat exchanger are sequentially connected to a pipe that connects a portion of a pipe between the compressor and the first solenoid valve to the pressure reducing device; heating means for heating a shell of the compressor; and a controller that performs control so as to close the first solenoid valve and the second solenoid valve in association with an operation of the compressor being stopped and so as to open the first solenoid valve when the heating means heats the compressor.

Claims (27)

1. A refrigeration cycle device comprising:

a first refrigerant passage in which a compressor, a first solenoid valve, a four-way valve, an outdoor heat exchanger, a pressure reducing device, an indoor heat exchanger, and an accumulator are sequentially connected through pipes;

a second refrigerant passage in which a second solenoid valve and a water refrigerant heat exchanger are sequentially connected, the second refrigerant passage connecting a portion of a pipe between the compressor and the first solenoid valve to the pressure reducing device;

a heat source for heating a shell of the compressor; and

a controller that performs control so as to close the first solenoid valve and the second solenoid valve in association with an operation of the compressor being stopped and so as to open the first solenoid valve when the heat source heats the compressor.

2. The refrigeration cycle device of claim 1 further comprising:

a compressor shell temperature sensor that detects a compressor shell temperature, which is a temperature of a surface of the shell of the compressor; and

an outdoor air temperature sensor that detects an outdoor air temperature, which is a temperature of outdoor air that passes through the outdoor heat exchanger,

wherein, after the heat source has finished a compressor heating operation, the first solenoid valve is closed if the compressor shell temperature detected by the compressor shell temperature sensor becomes lower than the outdoor air temperature detected by the outdoor air temperature sensor.

3. The refrigeration cycle device of claim 2 , wherein, when the heat source performs a compressor heating operation, the four-way valve is set so as to connect the first solenoid valve to the indoor heat exchanger and connect the accumulator to the outdoor heat exchanger.

4. The refrigeration cycle device of claim 2 further comprising

a bypass pipe in which a third solenoid valve is disposed, the bypass pipe being disposed between a pipe connecting the four-way valve to the outdoor heat exchanger and a pipe connecting the four-way valve to the accumulator,

wherein, when the heat source performs a compressor heating operation, in a case where the four-way valve is set so as to connect the first solenoid valve to the outdoor heat exchanger and connect the accumulator to the indoor heat exchanger, the third solenoid valve is opened.

5. The refrigeration cycle device of claim 1 , wherein, when the heat source performs a compressor heating operation, the four-way valve is set so as to connect the first solenoid valve to the indoor heat exchanger and connect the accumulator to the outdoor heat exchanger.

6. The refrigeration cycle device of claim 1 further comprising

a bypass pipe in which a third solenoid valve is disposed, the bypass pipe being disposed between a pipe connecting the four-way valve to the outdoor heat exchanger and a pipe connecting the four-way valve to the accumulator,

wherein, when the heat source performs a compressor heating operation, in a case where the four-way valve is set so as to connect the first solenoid valve to the outdoor heat exchanger and connect the accumulator to the indoor heat exchanger, the third solenoid valve is opened.

7. The refrigeration cycle device of claim 1 further comprising a compressor shell temperature sensor that detects a compressor shell temperature, which is a temperature of a surface of the shell of the compressor; and an outdoor air temperature sensor that detects an outdoor air temperature, which is a temperature of outdoor air that passes through the outdoor heat exchanger, wherein the compressor shell temperature detected by the compressor shell temperature sensor and the outdoor air temperature detected by the outdoor air temperature sensor are compared with each other, and the heat source starts a compressor heating operation if the compressor shell temperature becomes lower than the outdoor air temperature by a predetermined temperature or more and finishes the compressor heating operation if the compressor shell temperature becomes higher than the outdoor air temperature by the predetermined temperature or more.

8. The refrigeration cycle in claim 1 , wherein

the indoor air-conditioning device further comprises a first control circuit board, the first control circuit board configured to determine a load of the indoor air-conditioning device and to transmit the load information to the controller,

the indoor water device further comprises a second control circuit board, the second control circuit board configured to determine whether the indoor water device contains water and to transmit the determination to the controller, and

the heat source is connected to the first control circuit board and the second control circuit board via at least one communication line.

9. The refrigeration cycle in claim 1 , wherein

the compressor, the first solenoid valve, the four-way valve, the outdoor heat exchanger, the pressure reducing device, the indoor heat exchanger, and the accumulator are sequentially connected in this order, and

the second solenoid valve and the water refrigerant heat exchanger are sequentially connected in this order.

10. The refrigeration cycle in claim 1 , wherein

the controller is configured to close the first solenoid valve and the second solenoid valve when the compressor is stopped and to open the first solenoid valve after the heat source heats the compressor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 13, 2013
From: OYA, RYO
To: MITSUBISHI ELECTRIC CORPORATION
Reel/Frame 029981/0577 →
Priority Claims (1)
JP 2012-092595 · Apr 16, 2012 · national
Continuity (1)
Related Publication 20130269380A1 · Oct 17, 2013