CN220601849U - Energy-saving refrigerating evaporator for refrigerating equipment - Google Patents

Energy-saving refrigerating evaporator for refrigerating equipment Download PDF

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Publication number
CN220601849U
CN220601849U CN202322292786.6U CN202322292786U CN220601849U CN 220601849 U CN220601849 U CN 220601849U CN 202322292786 U CN202322292786 U CN 202322292786U CN 220601849 U CN220601849 U CN 220601849U
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China
Prior art keywords
transmission
groove
pipe
heat exchange
evaporator
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CN202322292786.6U
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Chinese (zh)
Inventor
沈丹娣
徐家庆
沈叶琳
徐梦琳
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Changzhou Jia Hao Refrigeration Equipment Co ltd
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Changzhou Jia Hao Refrigeration Equipment Co ltd
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Abstract

The utility model discloses an evaporator for refrigeration equipment, which belongs to the technical field of heat exchange of refrigerators, and particularly relates to an energy-saving refrigeration evaporator for refrigeration equipment, comprising a condensation heat exchange tube, wherein an annular transmission through groove is formed in a shell of the condensation heat exchange tube, a partition plate is arranged on the inner wall of the transmission through groove and divides the transmission through groove into a plurality of through grooves communicated with spaces, the plurality of through grooves are divided into a transmission through groove I and a transmission through groove II, and two ends of the condensation heat exchange tube are connected with separation covers. The separation cover is used for dividing the two media at the input end, gathering the two media at the output end, and the separation cover is convenient to use, and is matched with the first transmission through groove and the second transmission through groove on the inner side of the condensation heat exchange tube, so that the contact area between the two media is increased, and the heat exchange efficiency is increased.

Description

Energy-saving refrigerating evaporator for refrigerating equipment
Technical Field
The utility model relates to the technical field of heat exchange of refrigerators, in particular to an evaporator for energy-saving refrigeration equipment.
Background
With the continuous development of society, the refrigeration industry is widely applied to various industries, in the refrigeration industry, an evaporator is an important component, and the evaporator is used for rapidly exchanging heat with the outside air through the evaporator by low-temperature liquid, so that the effect of refrigeration is achieved by gasifying and absorbing heat.
The existing evaporator only exchanges heat with external air, but the existing evaporator is insufficient to be used, the contact area between the existing evaporator and the external air is low, and the heat exchange efficiency is affected.
Therefore, the utility model discloses an evaporator for energy-saving refrigeration equipment.
Disclosure of Invention
The present utility model has been made in view of the above and/or problems occurring in the prior art of an evaporator for a refrigeration appliance for energy saving refrigeration.
Therefore, the utility model aims to provide an evaporator for refrigeration equipment, which can solve the problems that the prior evaporator is only used for exchanging heat with external air, the prior evaporator is insufficient for use, the contact area between the prior evaporator and the external air is low, and the heat exchange efficiency is affected.
In order to solve the technical problems, according to one aspect of the present utility model, the following technical solutions are provided:
an evaporator for a refrigeration appliance for energy saving refrigeration, comprising: the condensing heat exchange tube comprises a shell, wherein an annular transmission through groove is formed in the shell of the condensing heat exchange tube, a partition plate is arranged on the inner wall of the transmission through groove, the partition plate is divided into a plurality of through grooves with communicated spaces, and the through grooves are divided into a transmission through groove I and a transmission through groove II.
As a preferred embodiment of the evaporator for a refrigeration apparatus for energy-saving refrigeration according to the present utility model, wherein: the two ends of the condensation heat exchange tube are connected with a separation cover, and a first transmission groove and a second transmission groove which correspond to the first transmission groove and the second transmission groove are formed in the separation cover.
As a preferred embodiment of the evaporator for a refrigeration apparatus for energy-saving refrigeration according to the present utility model, wherein: an annular collecting pipe is arranged on the outer side of the second transmission groove, and a cavity is formed in the inner wall of the annular collecting pipe.
As a preferred embodiment of the evaporator for a refrigeration apparatus for energy-saving refrigeration according to the present utility model, wherein: a first transmission pipe is arranged between the inner side of the annular collecting pipe and the outer side of the second transmission groove, and two ends of the first transmission pipe are respectively communicated with a cavity formed in the inner wall of the annular collecting pipe and the second transmission groove.
As a preferred embodiment of the evaporator for a refrigeration apparatus for energy-saving refrigeration according to the present utility model, wherein: the outer side of the annular collecting pipe is connected with a second transmission pipe, and one end of the second transmission pipe, which is close to the condensation heat exchange pipe, is communicated with a cavity formed in the inner wall of the annular collecting pipe.
As a preferred embodiment of the evaporator for a refrigeration apparatus for energy-saving refrigeration according to the present utility model, wherein: the top end of the separation cover is fixedly connected with a second annular collecting pipe, and a second cavity is formed in the inner wall of the second annular collecting pipe.
As a preferred embodiment of the evaporator for a refrigeration apparatus for energy-saving refrigeration according to the present utility model, wherein: the bottom end of the inner wall of the cavity II is provided with a notch which is connected and communicated with the top end of the transmission groove I.
As a preferred embodiment of the evaporator for a refrigeration apparatus for energy-saving refrigeration according to the present utility model, wherein: and a transmission pipe III is arranged on the side wall of the annular collecting pipe II, and one end of the transmission pipe III, which is close to the condensation heat exchange pipe, is communicated with a cavity II formed in the annular collecting pipe II.
Compared with the prior art:
two mediums needing heat exchange are respectively led into one of the first transmission through groove and the second transmission through groove, and the area and the efficiency of contact heat exchange are enlarged through the arrangement of the first transmission through groove and the second transmission through groove at intervals;
the separation cover is used for dividing the two media at the input end, gathering the two media at the output end, and the separation cover is convenient to use, and is matched with the first transmission through groove and the second transmission through groove on the inner side of the condensation heat exchange tube, so that the contact area between the two media is increased, and the heat exchange efficiency is increased.
Drawings
FIG. 1 is a front view of the present utility model;
FIG. 2 is a front view of a transfer tank of the present utility model;
FIG. 3 is a front view of a transfer slot of the present utility model;
fig. 4 is a front view of the condensing heat exchange tube of the present utility model.
In the figure: the condensation heat exchange tube 1, the transmission through groove, the division plate 3, the transmission through groove I4, the transmission through groove II 5, the separation cover 6, the transmission groove I61, the transmission groove II 62, the transmission pipe I63, the annular collecting pipe 64, the transmission pipe II 65, the annular collecting pipe II 66 and the transmission pipe III 67.
Detailed Description
For the purpose of making the objects, technical solutions and advantages of the present utility model more apparent, embodiments of the present utility model will be described in further detail below with reference to the accompanying drawings.
Embodiment one:
the utility model provides an evaporator for energy-saving refrigeration equipment, which has the advantages of convenient use and improved efficiency, and referring to fig. 1-4, the evaporator comprises a condensation heat exchange tube 1, wherein an annular transmission through groove is formed in a shell of the condensation heat exchange tube 1, a partition plate 3 is arranged on the inner wall of the transmission through groove and divides the transmission through groove into a plurality of through grooves communicated with spaces, the plurality of through grooves are divided into a transmission through groove I4 and a transmission through groove II 5, and the plurality of transmission through grooves I4 and the plurality of transmission through grooves II 5 are adjacently arranged.
When the heat exchanger is specifically used, a person skilled in the art respectively guides two media needing heat exchange into one of the first transmission through groove 4 and the second transmission through groove 5, and the area and the efficiency of contact heat exchange are enlarged through the arrangement of the first transmission through groove 4 and the second transmission through groove 5 at intervals.
Embodiment two:
the utility model provides an energy-saving refrigerating evaporator for refrigerating equipment, referring to fig. 1-4, both ends of a condensation heat exchange tube 1 are connected with a separation cover 6, a first transmission groove 61 and a second transmission groove 62 corresponding to a first transmission through groove 4 and a second transmission through groove 5 are formed on the separation cover 6, an annular collection tube 64 is arranged on the outer side of the second transmission groove 62, a cavity is formed in the inner wall of the annular collection tube 64, a first transmission tube 63 is arranged between the inner side of the annular collection tube 64 and the outer side of the second transmission groove 62, both ends of the first transmission tube 63 are respectively communicated with the cavity formed in the inner wall of the annular collection tube 64 and the second transmission groove 62, one end of the second transmission tube 65 close to the condensation heat exchange tube 1 is communicated with the cavity formed in the inner wall of the annular collection tube 64, a medium is connected with the second transmission tube 65, is split by the inner side of the annular collection tube 64 and transmitted into the second transmission groove 62, and is transmitted into the second transmission through the second transmission groove 5 corresponding to the second transmission groove 62 through the second transmission groove 62;
the top end of the separation cover 6 is fixedly connected with a second annular collecting pipe 66, a second cavity is formed in the inner wall of the second annular collecting pipe 66, a notch is formed in the bottom end of the inner wall of the second cavity, the notch is connected and communicated with the top end of the first transmission groove 61, a third transmission pipe 67 is arranged on the side wall of the second annular collecting pipe 66, one end of the third transmission pipe 67, which is close to the condensation heat exchange pipe 1, is communicated with the second cavity formed in the second annular collecting pipe 66, another medium is connected with the third transmission pipe 67, is separated and transmitted to each first transmission groove 61 through the notch formed in the bottom end of the second cavity formed in the inner wall of the second annular collecting pipe 66, is transmitted to the corresponding first transmission through groove 4 through each transmission groove 61, is gathered by the second annular collecting pipe 66 at the other end, and is led out.
When the condensing heat exchange tube is specifically used, a person skilled in the art connects two mediums needing heat exchange with one of a second transmission tube 65 and a third transmission tube 67 at the input end of the condensing heat exchange tube 1 respectively;
for example, one medium is connected with a second transmission pipe 65, is split by connecting the transmission pipe 63 through the inner side of the annular collecting pipe 64, is transmitted into each second transmission groove 62, and is transmitted into a second transmission through groove 5 which is formed in the inner wall of the condensation heat exchange pipe 1 and corresponds to the second transmission groove 62 through each second transmission groove 62;
the other medium is connected with a transmission pipe III 67, is separated and transmitted into each transmission groove I61 through a notch formed in the bottom end of a cavity II formed in the inner wall of the annular aggregation pipe II 66, and is transmitted into a corresponding transmission through groove I4 through each transmission groove 61;
the two heat exchange is carried out, the area and the efficiency of contact heat exchange are enlarged through the arrangement of the transmission through groove I4 and the transmission through groove II 5 at intervals, and after the heat exchange medium is transmitted to the output end of the condensation heat exchange tube 1, the heat exchange medium is gathered by the annular gathering tube 64 and the annular gathering tube II 66 respectively and is led out by the transmission tube II 65 and the transmission tube III 67.
Although the utility model has been described hereinabove with reference to embodiments, various modifications thereof may be made and equivalents may be substituted for elements thereof without departing from the scope of the utility model. In particular, the features of the disclosed embodiments may be combined with each other in any manner as long as there is no structural conflict, and the exhaustive description of these combinations is not given in this specification merely for the sake of omitting the descriptions and saving resources. Therefore, it is intended that the utility model not be limited to the particular embodiment disclosed, but that the utility model will include all embodiments falling within the scope of the appended claims.

Claims (8)

1. The utility model provides an energy-conserving refrigerated for refrigeration plant evaporimeter, includes condensation heat exchange tube (1), its characterized in that: annular transmission through grooves are formed in the shell of the condensation heat exchange tube (1), the partition plates (3) are mounted on the inner walls of the transmission through grooves and are divided into a plurality of through grooves with communicated spaces, and the transmission through grooves are divided into a transmission through groove I (4) and a transmission through groove II (5).
2. The evaporator for the refrigeration equipment, as set forth in claim 1, characterized in that both ends of the condensation heat exchange tube (1) are connected with a separation cover (6), and the separation cover (6) is provided with a first transmission groove (61) and a second transmission groove (62) corresponding to the first transmission groove (4) and the second transmission groove (5).
3. An evaporator for a refrigeration apparatus for energy saving refrigeration as set forth in claim 2 wherein an annular collecting pipe (64) is provided on the outer side of said second conveying tank (62), and a cavity is provided on the inner wall of said annular collecting pipe (64).
4. An evaporator for a refrigeration apparatus for energy saving and refrigeration as set forth in claim 3 wherein a first transfer pipe (63) is installed between the inner side of said annular collection pipe (64) and the outer side of said second transfer tank (62), and both ends of said first transfer pipe (63) are respectively communicated with a cavity opened in the inner wall of said annular collection pipe (64) and said second transfer tank (62).
5. The evaporator for the refrigeration equipment for energy-saving refrigeration as set forth in claim 4, wherein the outer side of the annular collecting pipe (64) is connected with a second transmission pipe (65), and one end of the second transmission pipe (65) close to the condensation heat exchange pipe (1) is communicated with a cavity formed in the inner wall of the annular collecting pipe (64).
6. An evaporator for a refrigeration apparatus according to claim 5, wherein the top end of the separation cover (6) is fixedly connected with a second annular collecting pipe (66), and a second cavity is formed in the inner wall of the second annular collecting pipe (66).
7. The evaporator for energy-saving refrigeration equipment as set forth in claim 6, wherein a notch is provided at the bottom end of the inner wall of the cavity two, and the notch is connected and communicated with the top end of the transmission groove one (61).
8. The evaporator for the refrigeration equipment for energy-saving refrigeration as set forth in claim 7, wherein a third transmission pipe (67) is installed on the side wall of the second annular collecting pipe (66), and one end of the third transmission pipe (67) close to the condensation heat exchange pipe (1) is communicated with a second cavity formed in the second annular collecting pipe (66).
CN202322292786.6U 2023-08-25 2023-08-25 Energy-saving refrigerating evaporator for refrigerating equipment Active CN220601849U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202322292786.6U CN220601849U (en) 2023-08-25 2023-08-25 Energy-saving refrigerating evaporator for refrigerating equipment

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202322292786.6U CN220601849U (en) 2023-08-25 2023-08-25 Energy-saving refrigerating evaporator for refrigerating equipment

Publications (1)

Publication Number Publication Date
CN220601849U true CN220601849U (en) 2024-03-15

Family

ID=90170790

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202322292786.6U Active CN220601849U (en) 2023-08-25 2023-08-25 Energy-saving refrigerating evaporator for refrigerating equipment

Country Status (1)

Country Link
CN (1) CN220601849U (en)

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