This application is the national phase of International Application No. PCT/CN2011/082334, entitled “Liquid Reservoir and Manufacturing Method Therefor”, filed on Nov. 17, 2011, which claims the benefit of priority to Chinese Patent Application No. 201020611886.0 titled “HEAT EXCHANGER AND RECEIVER THEREOF”, filed with the Chinese State Intellectual Property Office on Nov. 17, 2010, the entire disclosure of which is incorporated herein by reference.
The present application relates to the field of heat exchange apparatus, and particularly to a liquid reservoir for a heat exchanger such as an automobile air conditioner. The liquid reservoir is also known as a receiver to those of ordinary skill in the art. The present application further relates to a method for manufacturing the receiver.
With the rapid development of Chinese economy and construction, various heat exchangers are more and more widely used in every field of production and living.
In the heat exchangers such as an automobile air conditioner, the receiver used as a container for storing the liquid refrigerant is an indispensable component of the heat exchanger. The main functions of the receiver are to store the refrigerant, filter the impurity and absorb the moisture. Taking the automobile air conditioner for example, the main structural types of the receiver may include a sight glass base type, a head type, an upper/lower receiver body type and a supercooling type structure type. At present, the upper/lower receiver body type receiver is more and more widely used by automobile air conditioner manufactures at home and abroad.
Reference is made to
The typical receiver belongs to the upper/lower receiver body type receiver, which has an elongated contour and is formed by welding a first receiver body assembly and a second receiver body assembly after the two assemblies are assembled. The first receiver body assembly includes a first receiver body 11 provided with an inlet hole 111 and an outlet hole 112. The outlet hole 112 is a single through hole and an outer diameter of an outer end thereof is constant. The outlet hole 112 is cooperated, via the outer wall thereof, with other elements. The inner end of the outlet hole 112 of the first receiver body 11 is provided with a metal filter screen 13 and a filter 14. A retaining plate 15 is mounted on the metal filter screen 13 by spot welding generally. After the metal filter screen 13 and the retaining plate 15 are mounted to the first receiver body 11, inwardly protruded dots 16 are provided on the first receiver body 11 by dotting to thereby limit the retaining plate 15 via the inwardly protruded dots 16. In the operating process, the refrigerant flows, from the inlet hole 111 of the first receiver body 11, into the receiver after being filtered by the metal filter screen 13, and then flows out of the receiver after being filtered by the filter 14 and the metal filter screen 13.
One of the main functions of the receiver for an automobile air conditioner is to filter the impurity, for example, the impurity having a size larger than 60 micrometers. Therefore, the filter generally employs a material of non-woven fabric. In order that the non-woven fabric filter has sufficient filter capacity, the non-woven fabric filter should have a high density. However, the higher the density is, the larger the flow resistance of the hole suffers. The filter is mounted at the inner end of the outlet hole, therefore the effective flow area of the filter is the portion corresponding to the outlet hole. The load of the air conditioner system becomes higher in cases that the flow resistance of the filter to the refrigerant is high. Where being compressed, the density of the non-woven fabric or other filter elements is increased and the porosity is decreased, therefore the filter precision is increased, however, the flow resistance is accordingly increased. The high pressure end of the automobile air conditioner system has no sufficient supercooling degree since the flow resistance is large, more refrigerant is needed to achieve the same cooling effect. If the flow resistance is too large, the load of the compressor will be increased and the compressor may even be damaged.
Therefore, there is an urgent demand for those skilled in the art to ensure the filter precision as well as to reduce the flow resistance of the filter to the refrigerant, and to reduce the workload of the heat exchanger.
An object of the present application is to provide a receiver for a heat exchanger such as an automobile air conditioner, to reduce the flow resistance of the filter element of the receiver to the refrigerant without changing the contour structure of the receiver, thereby reducing the workload of the heat exchanger. Another object of the present application is to provide a method for manufacturing the receiver.
In order to solve the above technical problems, it is provided according to the present application a receiver for a heat exchanger. The receiver includes an inlet hole and an outlet hole. The outlet hole is mounted with a filter element which covers the outlet hole. A flow area of the outlet hole at a position of the outlet hole covered with the filter element is larger than cross-sectional areas of the outlet hole at other positions thereof. Thereby, a flow resistance of the filter element against a refrigerant is reduced.
Preferably, the outlet hole includes a main body portion and a counter bore portion. The filter element is mounted at the counter bore portion, and a surface area of the counter bore portion at a position of the counter bore portion covered with the filter element is larger than a cross-sectional area of the main body portion.
Optionally, a surface of the counter bore portion covered with the filter element includes a first arc segment and a second arc segment connected in a closed-loop manner.
Optionally, the surface of the counter bore portion covered with the filter element has a circular shape.
Optionally, a bottom surface of the counter bore portion adjacent to the main body portion is perpendicular to an axial direction of the main body portion.
Optionally, a bottom surface of the counter bore portion adjacent to the main body portion forms an angle, which is larger than 0 degree and is less than 90 degrees, with an axial direction of the outlet hole.
Preferably, the counter bore portion is integrated with the main body portion.
Optionally, the outlet hole includes a main body portion and a gasket. The filter element is mounted on the main body portion via the gasket, and an inner diameter of the gasket is larger than that of the main body portion.
A receiver for an automobile air conditioner includes a first receiver body, a filter element and a retaining plate for fixing the filter element. The first receiver body includes a second connecting hole and a first connecting hole for being connected with an external system. The filter element is provided in a passage of the second connecting hole in a way that the filter element covers the passage. A cross-sectional area of the second connecting hole at a position of the second connecting hole covered with the filter element is larger than flow areas of the second connecting hole at other positions thereof.
Preferably, the receiver further includes a limiting portion provided at a position of the second connecting hole arranged with the filter element. The limiting portion is located under the retaining plate to ensure a height of the position arranged with the filter element. The limiting portion is configured to prevent the retaining plate from inclining towards the filter element. Where being assembled, some of the retaining plates of the receivers in the prior art may incline towards the filter element, thereby compressing the filter element, which increases the flow resistance to the fluid in the flowing process and affects the uniformity of the product. According to the present application, by providing the limiting portion, even if the retaining plate inclines towards the filter element where being assembled, it will not press the filter element during the assembling process since it will not incline further after abutting against the limiting portion, therefore the filter element is still in the free state after being assembled, and thus the uniformity of the products is ensured. In this way, the flow resistance is reduced where the refrigerant flows through the filter element, and the supercooling degree at the high pressure end of the automobile air conditioner is sufficient, therefore the amount of the refrigerant filled in the automobile air conditioner system is reduced.
Optionally, the limiting portion is a limiting step or a limiting pole provided on the first receiver body, and the limiting step or the limiting pole is integrated with the first receiver body to facilitate the assembling process.
Optionally, the limiting portion is a limiting gasket provided on the first receiver body, and a height of the limiting gasket is equal to or larger than that of the filter element.
Preferably, the second connecting hole includes a second connecting hole main body portion for being connected and cooperated with an external system, and a counter bore adjacent to a cavity of the receiver. The counter bore portion includes a filter element accommodating portion provided between the retaining plate and the second connecting hole main body portion. The filter element is mounted at the filter element accommodating portion. A buffer space is formed between the filter element accommodating portion and the second connecting hole main body portion. And a flow area at an interface of the filter element accommodating portion and the buffer space is larger than a cross-sectional area of the second connecting hole main body portion.
Preferably, a height of the filter element accommodating portion is equal to or larger than that of the filter element, and a cross-sectional area of the filter element accommodating portion is larger than that of the buffer space and that of the second connecting hole main body portion.
Optionally, the counter bore portion is integrated with the second connecting hole main body portion, and a bottom surface of the counter bore portion adjacent to the second connecting hole main body portion is perpendicular to or forms an angle, which is larger than 0 degree and less than 90 degrees, with an axial direction of the second connecting hole main body portion.
Further, a ratio of a height H1 that a stopping surface of the retaining plate for stopping the filter element extends towards the second connecting hole to a height H2 from a step surface of the limiting step to an upper end surface of the first connecting hole, i.e., H1/H2, is within a range of 0.9-1.05.
It is also provided according to the present application a method for manufacturing a receiver for an automobile air conditioner. The receiver includes a first receiver body, a filter element and a retaining plate for fixing the filter element. The first receiver body includes a second connecting hole and a first connecting hole for being connected with an external system, and a filter element accommodating portion for accommodating the filter element. The receiver further includes a limiting portion configured to prevent the retaining plate from inclining towards the filter element. The filter element is provided in a passage of the second connecting hole in a way that the filter element covers the passage. A flow area of the second connecting hole at a position of the second connecting hole covered with the filter element is larger than cross-sectional areas of the second connecting hole at other positions thereof. A machining process of the receiver includes the following steps performed in sequence:
I. machining and cleaning the first receiver body. Preferably, the filter element accommodating portion and the limiting portion form an integral structure with the first receiver body; and the filter element accommodating portion and the limiting portion form the integral structure with the first receiver body during a cold extruding process of the first receiver body, or the integral structure is formed by a cold extruding process and a machining process performed sequentially;
II. mounting the filter element in the filter element accommodating portion;
III. mounting the retaining plate such that the retaining plate is mounted in place, preferably in a way that the retaining plate is stopped against the limiting portion and thus is fixed, or in a way that a gap is formed between the retaining plate and the limiting portion;
IV. pressing an end port portion of the retaining plate such that the end port portion of the retaining plate is abutted against an inner wall of a cavity of the first receiver body and thereby is fixed; and
V. providing dots or an annular groove on the first receiver body after the end port portion of the retaining plate is pressed and expanded, such that the retaining plate is further limited and fixed. After the end port portion of the retaining plate is pressed and expanded, and the dots or the annular groove is provided on the first receiver body, the retaining plate will not incline towards the filter element because of the limiting action of the limiting portion, thereby the filter element will not be compressed.
Optionally, the step I of the machining process of the receiver may be replaced by the following steps:
I-1. machining and cleaning the first receiver body, and machining and cleaning a limiting gasket for forming a limiting portion; and
I-2. mounting the limiting gasket in the first receiver body to form the limiting portion. A height of the limiting gasket is equal to or larger than that of the filter element.
The receiver for the heat exchanger according to the present application includes an inlet connecting hole and an outlet connecting hole. One of the connecting holes is covered with a filter element, and the flow area at the position of the connecting hole at a position of the connecting hole covered with the filter element is larger than cross-sectional areas of the connecting hole at other positions thereof. In this way, the filter area at the position of the connecting hole mounted with the filter element is increased without changing the other structures of the receiver, and thus the flow area of the refrigerant is increased, the flow resistance of the filter element to the refrigerant is reduced and the workload of the heat exchanger is decreased.
In a receiver for a heat exchanger according to a preferred embodiment of the present application, the surface of the counter bore portion mounted with the filter element includes a first arc segment and a second arc segment connected in a closed-loop manner. Compared with other shapes having the same flow area, this kind of shape including two segments has a larger circumference, and thus has a higher shock-resistance capability. Thereby the service life of the filter element is improved.
The spirit of the present application is to provide a receiver used in a heat exchanger, for example, an automobile air conditioner. A filter element of the receiver has a small flow resistance to the refrigerant without changing the contour dimension of the receiver and the equivalent aperture of the filter element, which reduces the workload of the heat exchanger. Another spirit of the present application is to provide a heat exchanger having the receiver.
In order that those skilled in the art can better understand technical solutions of the present application, the present application will be further described in detail in conjunction with the accompanying drawings and embodiments.
Reference is made to
The receiver for a heat exchanger according to the present application includes the first receiver body and a second receiver body (not shown in the figure). The first receiver body of the receiver is provided with an inlet hole 21 and an outlet hole 22. A filter element 23 is provided at the outlet hole 22, with the outlet hole 22 being covered by the filter element 23, that is, the refrigerant flowing out of the outlet hole 22 is filtered by the filter element 23. A flow area of the outlet hole 22 at a position of the outlet hole 22 covered by the filter element 23 is larger than cross-sectional areas of at other positions of the outlet hole 22 at other positions thereof. During the operating process, the refrigerant in the heat exchanger flows into a cavity of the receiver through the inlet hole 21, and flows out of the outlet hole 22 after filtered by the filter element 23.
Generally, the filter element 23 covers an opening of the outlet hole 22, but the position that the filter element 23 is located is not limited to the openings of the hole, the filter element 23 may also be positioned at a certain cross section at a middle portion of the outlet hole 22. Thereby there is no restriction to the position of the filter element 23 in the outlet hole 22 as long as the refrigerant flowing out of the outlet hole 22 is filtered by the filter element 23.
In the present embodiment, the outlet hole 22 includes a main body portion 221 which is a segment close to an external of the inlet hole 21, and a counter bore portion 222 which is a segment close to an internal of the inlet hole 21. The filter element 23 is provided on the counter bore portion 222, and the surface area of the counter bore portion 222 at a position of the counter bore portion 222 covered with the filter element 23 is larger than the cross-sectional area of the main body portion 221. In this way, the filter element 23 is mounted by providing the counter bore portion 222 which has a cross-sectional area larger than that of the main body portion 221, which kind of structure is simplified and is easy to be manufactured.
Generally, the filter element 23 is mounted at the inner end surface of the counter bore portion 222 to facilitate the mounting thereof, however, without being limited to the inner end surface of the counter bore portion 222, the filter element 23 may also be mounted at the end surface of the counter bore portion 222 close to the main body portion 221, and so on, as long as the flow area of the counter bore portion 222 at a position thereof covered by the filter element 23 is larger than areas at other positions thereof.
It should be noted that the areas at other positions referred to herein are equal to original areas without being changed on the basis of the prior art.
The counter bore portion 222 is a straight bore, that is, the bottom surface of the counter bore portion 222 close to the main body portion 221 is perpendicular to the axial direction of the main body portion 221, and the sidewall of the counter bore portion 222 is vertical in the direction that the counter bore portion 222 extends. Since this kind of structure is of a straight bore configuration, it is easier to be manufactured and the production cost thereof is relatively low.
Reference is made to
According to the first embodiment, the surface of the counter bore portion 222 covered with the filter element 23 may be of a circular shape. The circular structure is convenient to be manufactured and the manufacturing process thereof is simple. The diameter of the circular surface is determined according to the actual usage condition, which is not limited herein. Generally, the diameter of the circular surface is at least 1.3 times that of the main body portion 221 of the outlet hole 22.
According to the second embodiment, the surface of the counter bore portion 222 covered with the filter element 23 may be of an oval shape. The specific structure of the oval shape structure is determined according to the actual usage condition and is not limited herein.
According to the third embodiment, the surface of the counter bore portion 222 covered with the filter element 23 is of a shape including a first arc segment 2221 and a second arc segment 2222 connected in a closed-loop manner. In a case that several shapes have the same surface flow area, among which the shape including two segments has a larger circumference, and therefore has a higher shock resistance performance, thereby the service life of the filter element 23 is increased.
The above two arc segments may be connected in the closed-loop manner directly, and may also be smoothly connected via connecting arcs between the two arc segments.
Apparently, the counter bore portion 222 is not limited to include the first arc segment 2221 and the second arc segment 2222 only. In theory, the counter bore portion 222 may include more arc segments.
Without changing the inlet hole 21 and other structures of the receiver, the area at the outlet hole 22 mounted with the filter element 23 is increased and the filtering area is increased. Therefore the flow area of the refrigerant is increased and the flow resistance of the filter element 23 to the refrigerant is reduced, and therefore the workload of the heat exchanger is decreased.
Reference is made to
According to the second embodiment, the bottom surface of the counter bore portion 222 adjacent to the main body portion 221 forms an angle, which is larger than 0 degree and less than 90 degrees, with the axial direction of the outlet hole 22, and the sidewall of the counter bore portion 222 forms a predetermined angle with the vertical plane in the direction that the counter bore portion 222 extends. Since the bottom surface of the counter bore portion 222 is inclined, the flow area is further increased with respect to a flat bottom surface, and thus the flow resistance is further reduced.
Generally, the above predetermined angle is about 30 degrees.
The counter bore portion 222 may be integrated with the main body portion 221, that is, the two portions may be formed by an integral molding such as the die stamping, and the two portions may also be formed by the die stamping and then by the machining process. Apparently, the counter bore portion 222 and the main body portion 221 are not limited to an integrated structure, they may be machined separately and then be fixedly connected by welding or other connecting manners.
Reference is made to
According to the third embodiment, the outlet hole 22 includes a main body portion 221 and a gasket 223. The filter element 23 is mounted on the main body portion 221 via the gasket 223. The inner diameter of the gasket 223 is larger than that of the main body portion 221. The filter element 23 is mounted on the gasket 223, and a stopping mesh 15 is provided on the filter element 23 such that the filter element 23 is fixedly provided. According to the present embodiment, the filter element 23 is mounted via the gasket 223.
It should be noted that the above embodiments are only a part of the embodiments. In theory, any improvement made to the receiver may be an embodiment according to the present application as long as it can increase the filter area of the filter element 23 and decrease the flow resistance.
Further, in the above embodiments, the filter elements 23 are mounted in front of the outlet hole 22. In practice, the object of the present application may also be achieved by exchanging the inlet hole 21 and the outlet hole 22 in the above embodiments. That is, the fluid flows in through the hole 22 and is filtered by the filter element 23, and then flows, through the stop mesh 15, into the cavity of the receiver, and then flows out of the hole 21, thereby the object of the present application can be achieved. In a word, in the above two different arrangements, the hole 21 and the hole 22 can be summarized as a first passageway and a second passageway, wherein one of the first passageway and the second passageway acts as an inlet hole, and the remaining one of the first passageway and the second passageway acts as an outlet hole.
Another embodiment according to the present application is introduced hereinafter. As shown in
The receiver includes a first receiver body 31 and a second receiver body (not shown in the figure). Since the present application mainly relates to improvements to the structure of the first receiver body portion, i.e., the inlet and the outlet portions of the receiver, only related portions are shown in the figures. A receiver cavity 38 is formed in the receiver. The receiver cavity 38 may be provided with molecular sieve desiccants, and may also be provided with other filter elements. The first receiver body is provided with a first connecting hole 37 and a second connecting hole. The first connecting hole 37 corresponds to the first passageway and the second connecting hole corresponds to the second passageway. The second connecting hole includes a second connecting hole main body portion 36 and a counter bore portion which is provided towards the inside of the cavity 38. The counter bore portion includes a buffer space 313 and a filter element accommodating portion 314. Further, a limiting portion, which is a limiting step 32 in the present embodiment, is provided on the filter element accommodating portion 314. In particular, the cross section of the buffer space 313 is a combined shape which is approximately of an annular shape, with two ends thereof being transited via arcs. Particularly, the buffer space 313 may include at least four arcs. The height of the buffer space 313 is larger than that of the filter element, thereby achieving a better effect where the buffer space 313 is covered by the filter element. More preferably, the height of the buffer space 313 is at least 1.7 times that of the filter element. In this way, the flow resistance to the fluid can be reduced more effectively. The filter element accommodating portion 314 has a shape matching that of the filter element. The height of the filter element accommodating portion 314 is equal to or larger than that of the filter element. In the present embodiment, the shape of the filter element accommodating portion 314 is combined by a plurality of arcs. The buffer space 313 is covered by the filter element accommodating portion 314. Similarly, the cross-sectional area of the filter element accommodating portion 314 is larger than that of the buffer space 313, and is also larger than that of the second connecting hole main body portion 36. That is, in the flow passage of the second connecting hole of the receiver, the flow area at the position covered by the filter element is larger than those at other positions of the second connecting hole, and the cross-sectional area at the interface of the buffer space 313 and the filter element accommodating portion 314 is larger than that of the second connecting hole main body portion. Besides, the buffer space 313 provided between the filter element and the second connecting hole main body 36 serves as a transition space. In this way, the filter area of the filter element is the cross-sectional area at the interface of the buffer space 313 and the filter element accommodating portion 314.
In order to fix the filter element, a retaining plate 35 is provided on the filter element. The structure of the retaining plate 35 is shown in
Further, in order to ensure that the filter element is not deformed due to compression after being placed at the filter element accommodating portion 314, to thereby ensure the filtering performance thereof, in the present embodiment, a limiting portion is further provided on the filter element accommodating portion 314. Particularly, the limiting portion is configured as a limiting step 32 which is of a continuous semi-annular shape. Alternatively, the limiting step 32 may also be of a discontinuous annular shape. In the present embodiment, the limiting step 32 which functions as the limiting portion and the first receiver body are formed into one piece, for example, by stamping, or by stamping and subsequent finish machining. In the present embodiment, the filter element includes a filter 34 and a second metal filter screen 33. Particularly, the filter 34 may be a non-woven fabric. The height H1 of the stopping surface 355 of the retaining plate 35 with respect to the base surface of the retaining plate 35, that is, the height H1 that the stopping surface of the retaining plate for stopping the filter element extends towards the second connecting hole, is substantially equal to the height H2 from the step surface of the limiting step to the upper end surface of the first connecting hole. In particular, the ratio of the height H1 of the stopping surface 355 with respect to the base surface of the retaining plate 35 to the height H2 from the step surface of the limiting step to the upper end surface of the first connecting hole, i.e., H1/H2, is within a range of 0.90-1.05.
In the present embodiment, where assembling the receiver, the filter element is mounted in the first receiver body which has been machined, and then the retaining plate is mounted in the first receiver body such that the retaining plate, after being in place, abuts against the limiting portion and thus is fixedly mounted. It is possible that there is a gap between the retaining plate and the limiting portion after the retaining plate is in place, at this time, the end port portion 351 of the retaining plate 35 which faces the cavity is pressed and expanded, such that the end port portion 351 of the retaining plate 35 abuts against the inner wall of the cavity of the first receiver body and therefore is fixedly mounted, thereby preventing the fluid from flowing through the gap between the end port portion 351 of the retaining plate 35 and the inner wall of the first receiver body or reducing the amount of the fluid that flows through the gap, and preventing the retaining plate from rotating. After the retaining plate is fixed, in order to further ensure the position of the retaining plate, dots or an annular groove is provided on the first receiver body such that the axial position of the retaining plate 35 is limited and fixed. As shown in
As an improvement to the fourth embodiment mentioned above, a fifth embodiment is introduced below.
Another embodiment according to the present application is introduced below.
Another embodiment according to the present application is introduced below.
In the above embodiments, the limiting portions are formed integrally with the first receiver body. The present application is not limited to the above arrangements. The limiting portion may be assembled to the first receiver body. As shown in
In the present embodiment, the shape of the filter element accommodating portion 314 includes a plurality of arcs and straight lines. The buffer space 313 is covered by the filter element accommodating portion 314. Similarly, the cross-sectional area of the filter element accommodating portion 314 is larger than that of the buffer space 313, and is larger than that of the second connecting hole main body portion 36. That is, in the passage of the second connecting hole of the receiver, the flow area at the position covered by the filter element is larger than cross-sectional areas at other positions of the second connecting hole. The cross-sectional area at the interface of the buffer space 313 and the filter element accommodating portion 314 is larger than that of the second connecting hole main body portion. The buffer space 313 functions as a transition space between the filter element and the second connecting hole main body portion, and the flow area of the buffer space 313 is larger than that of the second connecting hole main body portion, in this way, the filter area of the filter element is the cross-sectional area at the interface of the buffer space 313 and the filter element accommodating portion 314. In the present embodiment, the gasket may include several gasket segments, for example, two segments. The material of the gasket may be metal or plastic. This kind of arrangement has advantages, for example, the height of the filter element accommodating portion 314 is relatively flexible, and may be adjusted according to actual requirements. Besides, there is no need to modify the extrusion die of the first receiver body. In cases where different filter elements are required, there is no need to modify the first receiver body and other dies and tools, while it only needs to modify the limiting gasket 32d and the retaining plate 35, which can improve the standardization of the production, and thus can save the manufacturing cost.
In the present embodiment, the filter element includes a filter 34 adjacent to the retaining plate 35 and a second metal filter screen 33 adjacent to the buffer space 313. The filter element may also be configured in such a way that the filter 34 is provided between two metal filter screens, which is not limited to the embodiments described herein.
In the present embodiment, where assembling the receiver, the limiting gasket 32d is firstly mounted in the first receiver body which has been machined, then is the filter element, and then is the retaining plate 35, such that the retaining plate 35, after being in place, abuts against the limiting portion and thus is fixedly mounted. Then the end port portion 351 of the retaining plate 35 facing the cavity is pressed and expanded such that the end port portion 351 of the retaining plate 35 abuts against the inner wall of the cavity of the first receiver body, thereby preventing the fluid from flowing through the gap between the end port portion 351 of the retaining plate 35 and the inner wall of the first receiver body or reducing the amount of the fluid that flows through the gap, and preventing the retaining plate 35 from rotating circumferentially. After the retaining plate 35 is fixed, dots are provided on the first receiver body to form inwardly protruded dots, or an annular groove is provided on the first receiver body to form an inwardly protruded annular line, such that the first receiver body is deformed at the position provided with the inwardly protruded dots or the inwardly protruded annular line to further limit and fix the retaining plate 35. In this way, the axial position of the retaining plate 35 is further fixed. As shown in
Yet another embodiment of the present application is introduced below.
In addition, a counter bore formed by cold extruding is provided in the above embodiments. The present application is not limited to the above embodiments. Alternatively, the counter bore may be formed by machining, for example, by machining one end of the second connecting hole facing the cavity of the receiver into a tapered hole with the inner end thereof having a relatively large diameter, such that the interface of the upper portion of the second connecting hole and the filter element accommodating portion has a large cross-sectional area. In this way, the filter area of the filter element can also be increased, and a transition buffer space can also be formed. Alternatively, the counter bore may be formed by providing a gasket.
In the above embodiments, the first connecting hole 37 may serve as an inlet hole of the receiver, then the second connecting hole main body portion 36 serves as an outlet hole of the receiver. In use, the fluid flows in through the first connecting hole 37, and then flows into the cavity 38 of the receiver after being filtered by the first filter screen 356 of the retaining plate 35. Then the fluid flows through the second through holes 353 and is filtered by the filter element, and then flows into the buffer space 313, and lastly flows out through the second connecting hole main body portion 36. Alternatively, the first connecting hole 37 may also serve as an outlet hole of the receiver, then the second connecting hole main body portion 36 serves as an inlet hole of the receiver. That is, the fluid flows into the buffer space 313 through the second connecting hole main body portion 36, then flows into the cavity 38 of the receiver through the filter element and the second through holes 353 of the retaining plate in sequence, and ultimately flows out through the first connecting hole 37 after being filtered by the first filter screen 356 of the retaining plate 35. That is, according to the present application, by providing a limiting portion at the inner end of the through hole in the first receiver body of the receiver, the retaining plate 35 will not incline towards the filter element after mounted, thereby the non-woven fabric filter of the filter element is protected from being compressed, the flow resistance is reduced, and the load of the automobile air conditioner is reduced. Also, by providing the buffer space 313 at the position of the passage covered with the filter element and increasing the flow area at the position of the passage covered with the filter element, the filter area is increased, and thus the flow resistance is reduced, and the load of the automobile air conditioner is reduced.
The heat exchanger and the receiver thereof according to the present application are described in detail in the above description. The expressions, such as upper, lower, inner, outer, front, back, and so on, referred to in the above description are only for ease of description, and should not be construed as limitations to the protection scope of the present application. The principle and embodiments of the present application are explained by way of examples. The description of the above embodiments is only used for the understanding of the method and the spirit of the present application. It should be noted that, those skilled in the art may make many improvements and modifications to the present application without departing from the principle of the present application, and these improvements and modifications also fall into the protection scope of the claims of the present application.
Number | Date | Country | Kind |
---|---|---|---|
2010 2 0611886 U | Nov 2010 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/CN2011/082334 | 11/17/2011 | WO | 00 | 2/6/2013 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2012/065558 | 5/24/2012 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
2148770 | Mittendorf | Feb 1939 | A |
2873856 | Jones | Feb 1959 | A |
4026685 | Grix | May 1977 | A |
4072615 | McConnell | Feb 1978 | A |
5289697 | Hutchison | Mar 1994 | A |
5425250 | Hutchison et al. | Jun 1995 | A |
5435153 | Hutchison et al. | Jul 1995 | A |
5515696 | Hutchison | May 1996 | A |
5557945 | Mangyo | Sep 1996 | A |
5611215 | Saito et al. | Mar 1997 | A |
5774982 | Hutchison et al. | Jul 1998 | A |
5865998 | Abraham et al. | Feb 1999 | A |
5910165 | Haramoto et al. | Jun 1999 | A |
6330810 | Yamazaki et al. | Dec 2001 | B1 |
6622517 | Whitlow et al. | Sep 2003 | B1 |
7465314 | Kiblawi | Dec 2008 | B2 |
20010032478 | McAllister et al. | Oct 2001 | A1 |
20030121278 | Ichimura et al. | Jul 2003 | A1 |
20040007012 | Lee et al. | Jan 2004 | A1 |
20050115270 | Furuta et al. | Jun 2005 | A1 |
20050279125 | Operschall | Dec 2005 | A1 |
20060060327 | Yu et al. | Mar 2006 | A1 |
20060065123 | Evans | Mar 2006 | A1 |
20060070724 | Yu et al. | Apr 2006 | A1 |
20080314252 | Min et al. | Dec 2008 | A1 |
20120217198 | Chen et al. | Aug 2012 | A1 |
Number | Date | Country |
---|---|---|
2391375 | Jun 2001 | CA |
2048946 | Dec 1989 | CN |
2278185 | Apr 1998 | CN |
2285677 | Jul 1998 | CN |
2285727 | Jul 1998 | CN |
2310271 | Mar 1999 | CN |
2316162 | Apr 1999 | CN |
2436895 | Jun 2001 | CN |
2563482 | Jul 2003 | CN |
2578136 | Oct 2003 | CN |
1477352 | Feb 2004 | CN |
1504708 | Jun 2004 | CN |
2624132 | Jul 2004 | CN |
2630756 | Aug 2004 | CN |
2637998 | Sep 2004 | CN |
2695881 | Apr 2005 | CN |
2767923 | Mar 2006 | CN |
2767924 | Mar 2006 | CN |
2837746 | Nov 2006 | CN |
1877229 | Dec 2006 | CN |
2847180 | Dec 2006 | CN |
1888745 | Jan 2007 | CN |
1924489 | Mar 2007 | CN |
2911557 | Jun 2007 | CN |
1995876 | Jul 2007 | CN |
101002061 | Jul 2007 | CN |
2929598 | Aug 2007 | CN |
200965377 | Oct 2007 | CN |
101074810 | Nov 2007 | CN |
200986352 | Dec 2007 | CN |
201007587 | Jan 2008 | CN |
201028903 | Feb 2008 | CN |
201074932 | Jun 2008 | CN |
201074933 | Jun 2008 | CN |
101311648 | Nov 2008 | CN |
201173649 | Dec 2008 | CN |
201203307 | Mar 2009 | CN |
201203311 | Mar 2009 | CN |
201233139 | May 2009 | CN |
201233141 | May 2009 | CN |
201233142 | May 2009 | CN |
201237408 | May 2009 | CN |
101487648 | Jul 2009 | CN |
101545703 | Sep 2009 | CN |
101545704 | Sep 2009 | CN |
101586897 | Nov 2009 | CN |
201387190 | Jan 2010 | CN |
201392060 | Jan 2010 | CN |
201397000 | Feb 2010 | CN |
101666568 | Mar 2010 | CN |
101672556 | Mar 2010 | CN |
201488414 | May 2010 | CN |
101769661 | Jul 2010 | CN |
101839594 | Sep 2010 | CN |
101839595 | Sep 2010 | CN |
101852669 | Oct 2010 | CN |
101893358 | Nov 2010 | CN |
201688950 | Dec 2010 | CN |
201852383 | Jun 2011 | CN |
102141329 | Aug 2011 | CN |
201945105 | Aug 2011 | CN |
102175067 | Sep 2011 | CN |
201983544 | Sep 2011 | CN |
102287977 | Dec 2011 | CN |
102305503 | Jan 2012 | CN |
202105537 | Jan 2012 | CN |
202109706 | Jan 2012 | CN |
102338515 | Feb 2012 | CN |
102353191 | Feb 2012 | CN |
202133201 | Feb 2012 | CN |
102419294 | Apr 2012 | CN |
102435526 | May 2012 | CN |
102445034 | May 2012 | CN |
202240177 | May 2012 | CN |
202254539 | May 2012 | CN |
202274684 | Jun 2012 | CN |
102538323 | Jul 2012 | CN |
102589212 | Jul 2012 | CN |
202328958 | Jul 2012 | CN |
102650481 | Aug 2012 | CN |
102650482 | Aug 2012 | CN |
202403469 | Aug 2012 | CN |
102679643 | Sep 2012 | CN |
202432775 | Sep 2012 | CN |
202442556 | Sep 2012 | CN |
102706049 | Oct 2012 | CN |
102721242 | Oct 2012 | CN |
102743915 | Oct 2012 | CN |
202470555 | Oct 2012 | CN |
202598968 | Dec 2012 | CN |
202605838 | Dec 2012 | CN |
EP 2110623 | Oct 2009 | CZ |
0666456 | Aug 1995 | EP |
0696714 | Feb 1996 | EP |
0921022 | Jun 1999 | EP |
1353134 | Oct 2003 | EP |
1363088 | Nov 2003 | EP |
1387134 | Feb 2004 | EP |
1764569 | Mar 2007 | EP |
06201232 | Jul 1994 | JP |
H07269993 | Oct 1995 | JP |
H08169227 | Jul 1996 | JP |
H09273836 | Oct 1997 | JP |
2002090006 | Mar 2002 | JP |
2004309127 | Nov 2004 | JP |
EP 1586834 | Oct 2005 | JP |
2006052938 | Feb 2006 | JP |
2007218441 | Aug 2007 | JP |
20010058434 | Jul 2001 | KR |
20010084509 | Sep 2001 | KR |
20020037084 | May 2002 | KR |
20020078060 | Oct 2002 | KR |
20020079084 | Oct 2002 | KR |
20020087175 | Nov 2002 | KR |
20030030501 | Apr 2003 | KR |
20030045273 | Jun 2003 | KR |
20030048910 | Jun 2003 | KR |
20030051158 | Jun 2003 | KR |
20030054364 | Jul 2003 | KR |
20030065614 | Aug 2003 | KR |
20030075988 | Sep 2003 | KR |
20030085221 | Nov 2003 | KR |
20040005239 | Jan 2004 | KR |
20040005241 | Jan 2004 | KR |
20040057358 | Jul 2004 | KR |
20040060061 | Jul 2004 | KR |
20040060069 | Jul 2004 | KR |
20040061531 | Jul 2004 | KR |
20040061532 | Jul 2004 | KR |
20040061629 | Jul 2004 | KR |
20040068393 | Jul 2004 | KR |
20040081661 | Sep 2004 | KR |
20040102686 | Dec 2004 | KR |
20050001841 | Jan 2005 | KR |
20050005810 | Jan 2005 | KR |
20050015761 | Feb 2005 | KR |
100692996 | Mar 2007 | KR |
20070025712 | Mar 2007 | KR |
20070081324 | Aug 2007 | KR |
100765919 | Oct 2007 | KR |
20080004857 | Jan 2008 | KR |
20080076226 | Aug 2008 | KR |
20080077529 | Aug 2008 | KR |
100855707 | Sep 2008 | KR |
20080098243 | Nov 2008 | KR |
20080100924 | Nov 2008 | KR |
20080100926 | Nov 2008 | KR |
20090041111 | Apr 2009 | KR |
20090080311 | Jul 2009 | KR |
20090080312 | Jul 2009 | KR |
20090080313 | Jul 2009 | KR |
20090096007 | Sep 2009 | KR |
20090106826 | Oct 2009 | KR |
20090118448 | Nov 2009 | KR |
20090118527 | Nov 2009 | KR |
20100025185 | Mar 2010 | KR |
20100081089 | Jul 2010 | KR |
101045047 | Jun 2011 | KR |
101045048 | Jun 2011 | KR |
20110088694 | Aug 2011 | KR |
9733129 | Sep 1997 | WO |
9804875 | Feb 1998 | WO |
0159373 | Aug 2001 | WO |
2006016761 | Feb 2006 | WO |
Entry |
---|
International Search Report dated Mar. 1, 2012 from corresponding International Patent Application No. PCT/CN2011/082334, 5 pages with English translation. |
Number | Date | Country | |
---|---|---|---|
20130220583 A1 | Aug 2013 | US |