This application claims foreign priority benefits under 35 U.S.C. ยง 119 to Chinese Patent Application No. 201921647030.6 filed on Sep. 29, 2019, the content of which is hereby incorporated by reference in its entirety.
The present invention relates to a scroll compressor, and in particular, to a scroll compressor provided with an injection tube assembly.
For this reason, a solution to lengthen the injection tube assembly 4 has been proposed in the prior art to be suitable for assembling the scroll compressor upside down. However, due to the installation method of the injection tube, it is easy to form gaps in components, such as the housing of the compressor, through which the injection tube passes, causing refrigerant to leak through the gaps, thereby causing problems such as overheating or even burning of the electric motor of the compressor.
The present invention has been made in order to solve the above technical problems and other potential technical problems.
In accordance with an aspect of the present invention, there is provided a scroll compressor. The scroll compressor includes an shell, a fixed scroll, a housing and an orbiting scroll. The fixed scroll and the housing are disposed in the shell and fixed relative to each other. An outer peripheral surface of the housing and an inner peripheral surface of the shell are fitted to each other. The orbiting scroll is disposed between the fixed scroll and the housing. The fixed scroll is formed therein with a first injection passage, the housing is formed therein with a second injection passage, a port of the first injection passage and a port of the second injection passage face each other, so that the first injection passage and the second injection passage communicate with each other. The scroll compressor further includes an injection tube assembly, the injection tube assembly is disposed in the shell. The injection tube assembly includes: a tube, and a first tube joint and a second tube joint respectively disposed at two ends of the tube, the first tube joint passes through the shell to communicate with the outside, and the second tube joint is inserted and fitted in the second injection passage.
The second injection passage is a through hole running through the housing.
The second tube joint is inserted in only a portion of the through hole.
The port of the first injection passage and the port of the second injection passage are hermetically joined together.
The outer peripheral surface of the housing and the inner peripheral surface of the shell are gas-tightly fitted to each other, and the second tube joint and the second injection passage are gas-tightly fitted to each other.
The tube, the first tube joint, and the second tube joint are all made of metal, and the first tube joint and the second tube joint are configured to be welded to two ends of the tube, respectively.
A first end of the second tube joint is connected to the tube, and a second end of the second tube joint is inserted into the second injection passage. A groove is formed on an outer peripheral wall of the second end of the second tube joint, and an O-ring seal is disposed in the groove.
A first end of the first tube joint passes through a through hole formed in the shell, and a second end of the first tube joint is connected to the tube. The second end of the first tube joint includes a flange and a main body. The main body is configured to be fastened to the flange by a screw. A first end face of the flange faces toward the main body, and a second end face of the flange is configured to be welded to the tube.
A gasket is disposed between the first end face of the flange and a fitting surface of the main body.
The scroll compressor further includes an electric motor, the electric motor is disposed in the shell and has a casing, and the tube extends along an axial direction of the fixed scroll between the casing and the shell.
Technical Effects
With the above technical solutions of the present invention, the assembly of the scroll compressor can be facilitated in the process of manufacturing the scroll compressor, and especially, the installation of the injection tube assembly of the compressor is improved. Based on the improvement of the installation method of the injection tube assembly, refrigerant leakage can be effectively prevented, thereby eliminating problems such as the overheating of the electric motor of the compressor caused by refrigerant leakage.
In order to facilitate understanding of the present invention, the present invention will be described in more detail based on exemplary embodiments in conjunction with the drawings. The same or similar reference numerals are used in the drawings to indicate the same or similar components. It should be understood that the drawings are only schematic, and the dimensions and proportions of components in the drawings are not necessarily accurate.
A scroll compressor according to an embodiment of the present invention includes a shell 1, and a fixed scroll 2, an orbiting scroll 3, an injection tube assembly 4, an electric motor 5, and a housing 6, which are disposed in the shell 1. The fixed scroll 2 and the housing 6 are disposed in the shell 1 and fixed relative to each other. An outer peripheral surface of the housing 6 and an inner peripheral surface of the shell 1 are fitted to each other. The orbiting scroll 3 is disposed between the fixed scroll 2 and the housing 6 and is indirectly driven by the electric motor 5.
The fixed scroll 2 is formed therein with a first injection passage 201, and the housing 6 is formed therein with a second injection passage 601. A lower port of the first injection passage 201 and an upper port of the second injection passage 601 face each other, so that the first injection passage 201 and the second injection passage 601 communicate with each other.
The injection tube assembly 4 includes: a tube 403, and a first tube joint 401 and a second tube joint 402 respectively disposed at two ends of the tube. The first tube joint 401 passes through the shell 1 to communicate with the outside, and the second tube joint 402 is inserted in the second injection passage 601. In particular, the second tube joint 402 is extended in only a portion of the second injection passage 601, rather than running through the entire second injection passage 601. In other words, the remaining portion of the second injection passage 601 and the entire first injection passage 201 directly form a flow passage for injected liquid.
As shown in
As shown in
In addition, a gasket 4013 may also be disposed between the lower end face of the flange 4012 and a fitting surface 4011 of the main body.
As shown in
The upper port 6011 of the through hole 601 and the lower port of the first injection passage 201 face each other. Optionally, a sealing groove and/or gasket (not shown in the figures) are/is provided at the junction of the upper port 6011 of the through hole 601 and the lower port of the first injection passage 201, to prevent the refrigerant from leaking at the junction of the injection passage.
Although the technical objects, technical solutions, and technical effects of the present invention have been described in detail above with reference to the specific embodiments, it should be understood that the above embodiments are only exemplary, but are not restrictive. All of the modifications, equivalent substitutions and improvements made by those skilled in the art without departing from the principles and spirit of the present invention should fall within the protection scope of the present invention.
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