Scroll compressor
A scroll compressor is provided. The scroll compressor comprises: a first compression part comprising a first stationary scroll and a first orbiting scroll; and a second compression part comprising a second stationary scroll and a second orbiting scroll, wherein at least one of the first compression part and the second compression part may have a capacity variable part equipped therein so as to induce refrigerant discharge from a compression chamber or to induce idling by blocking refrigerant suction in the compression chamber. The above configuration facilitates varying the capacity of the compressor while significantly reducing the capacity variation ratio, thereby increasing the energy efficiency of the compressor and the air conditioner equipped therewith.
1 . A scroll compressor, comprising:
a casing;
a rotation shaft that comprises a first eccentric portion and a second eccentric portion which are spaced apart from each other in an axial direction;
a first compression part that is coupled to the first eccentric portion of the rotation shaft to form a first compression chamber;
a second compression part that is disposed on one axial side of the first compression part and coupled to the second eccentric portion of the rotation shaft to form a second compression chamber; and
a main frame that comprises a shaft receiving portion disposed between the first compression part and the second compression part such that the rotation shaft penetrates therethrough, wherein at least one of the first compression part or the second compression part comprises a capacity varying part configured to idle the corresponding compression part by inducing refrigerant leakage from a compression chamber or block refrigerant suction into the corresponding compression chamber, wherein the first compression part comprises a first orbiting scroll configured to orbitally move while being axially supported with a first back pressure chamber defined together with a first side surface of the main frame, and a first fixed scroll engaged with the first orbiting scroll to form the first compression chamber, wherein the second compression part comprises a second orbiting scroll configured to orbitally move while being axially supported with a second back pressure chamber defined together with a second side surface of the main frame, and a second fixed scroll engaged with the second orbiting scroll to form the second compression chamber, wherein the capacity varying part comprises:
a communication hole disposed in the first orbiting scroll such that the first compression chamber and the first back pressure chamber communicate with each other; and
a first valve disposed to open and close the communication hole to allow refrigerant movement from the first compression chamber to the first back pressure chamber while blocking refrigerant movement from the first back pressure chamber to the first compression chamber, and wherein the first valve is formed such that a cross-section on a side toward the main frame is smaller than a cross-section on a side toward the first orbiting scroll.
2 . The scroll compressor of claim 1 , wherein a first back pressure sealing member is disposed between the first orbiting scroll and the first side surface of the main frame facing the first orbiting scroll to divide the first back pressure chamber into a first inner back pressure chamber and a first outer back pressure chamber, and wherein the communication hole communicates with the first inner back pressure chamber.
3 . The scroll compressor of claim 2 , wherein the communication hole comprises a valve receiving groove formed in an end portion thereof facing the main frame, and wherein the first valve is slidably inserted into the valve receiving groove to open and close the communication hole.
4 . The scroll compressor of claim 3 , wherein a refrigerant guide groove is formed by extending radially from an inner circumferential surface of the valve receiving groove, and wherein the refrigerant guide groove extends in a direction toward a center of the rotation shaft.
5 . The scroll compressor of claim 1 , wherein the first eccentric portion and the second eccentric portion are formed so that a center of the first eccentric portion and a center of the second eccentric portion are located at different rotational angles in the axial direction.
6 . A scroll compressor, comprising:
a casing;
a rotation shaft that comprises a first eccentric portion and a second eccentric portion which are spaced apart from each other in an axial direction;
a first compression part that is coupled to the first eccentric portion of the rotation shaft to form a first compression chamber;
a second compression part that is disposed on one axial side of the first compression part and coupled to the second eccentric portion of the rotation shaft to form a second compression chamber; and
a main frame that comprises a shaft receiving portion disposed between the first compression part and the second compression part such that the rotation shaft penetrates therethrough, wherein at least one of the first compression part or the second compression part comprises a capacity varying part configured to idle the corresponding compression part by inducing refrigerant leakage from a compression chamber or block refrigerant suction into the corresponding compression chamber, wherein a first suction port is formed in the first compression part, and a second suction port is formed in the second compression part, wherein a first suction pipe is connected to the first suction port, and a second suction pipe separated from the first suction pipe is connected to the second suction port, and wherein the capacity varying part comprises a second valve configured to selectively open and close the first suction pipe or the second suction pipe, wherein a refrigerant suction pipe is disposed outside the casing, wherein the first suction pipe is connected to a first position of the refrigerant suction pipe, wherein the second suction pipe is connected to a second position of the refrigerant suction pipe, wherein the second valve is disposed in the refrigerant suction pipe to open and close the refrigerant suction pipe, and the second valve is disposed between the first position and the second position, wherein the refrigerant suction pipe comprises a valve seat surface between the first position and the second position, and wherein the second valve is slidably inserted along the refrigerant suction pipe to be attached to and detached from the valve seat surface.
7 . The scroll compressor of claim 6 , wherein an elastic member is disposed on one side surface of the second valve to support the second valve in a direction toward the valve seat surface.
8 . The scroll compressor of claim 6 , wherein the first compression part comprises a first orbiting scroll configured to orbitally move while being axially supported with a first back pressure chamber defined together with a first side surface of the main frame, and a first fixed scroll engaged with the first orbiting scroll to form the first compression chamber, wherein the second compression part comprises a first orbiting scroll configured to orbitally move while being axially supported with a second back pressure chamber defined together with a second side surface of the main frame, and a second fixed scroll engaged with the second orbiting scroll to form the second compression chamber, and wherein a pressurization passage is disposed between the second back pressure chamber and the refrigerant suction pipe, to guide refrigerant in the second back pressure chamber toward a valve space defined by a back pressure surface of the second valve, such that the second valve is pressurized toward the second position.
9 . The scroll compressor of claim 8 , wherein the pressurization passage comprises:
a pressurization hole formed through the main frame; and
a connection pipe having a first end connected to the pressurization hole, and a second end inserted through the casing to be connected to the refrigerant suction pipe, and wherein a third valve is disposed in the pressurization hole to allow refrigerant movement from the second back pressure chamber to the valve space while blocking refrigerant movement from the valve space to the second back pressure chamber.
10 . The scroll compressor of claim 9 , wherein a second back pressure sealing member is disposed between the second orbiting scroll and the second side surface of the main frame facing the second orbiting scroll to divide the second back pressure chamber into a second inner back pressure chamber and a second outer back pressure chamber, and wherein the pressurization hole communicates with the second outer back pressure chamber.
11 . The scroll compressor of claim 10 , wherein the pressurization hole comprises:
a first hole connected to the second outer back pressure chamber;
a second hole having a first end connected to the first hole, and a second end connected to the shaft receiving portion of the main frame; and
a third hole having a first end connected to a contact point between the first hole and the second hole, and a second end connected to the connection pipe, and wherein the third valve is slidable in the second hole to open and close a portion between the first hole and the third hole by a pressure difference between the first hole and the second hole.