Disc body assembly and integral air conditioner

By incorporating a water collection area, water trough, and filter in the integrated air conditioner's panel assembly, and utilizing a pump to divert condensate, the problem of condensate corrosion on the condenser is solved, thus improving the air conditioner's lifespan and compactness.

CN120830930APending Publication Date: 2025-10-24GD MIDEA AIR CONDITIONING EQUIP CO LTD
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Patent Information

Application Number
CN202510458596.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2024-04-23
Filing Date
2025-04-11
Publication Date
2025-10-24

AI Technical Summary

Technical Problem

In existing integrated air conditioners, condensate water can easily accelerate the corrosion of the condenser, reducing the service life of the air conditioner.

Method used

A water receiving area and a water spraying tank are set in the plate assembly. The filter element filters the condensate. The pump body guides the condensate from the water receiving area to the water spraying tank, and the filter element reduces the impurity content in the condensate, preventing the condensate from directly contacting the first heat exchanger.

Benefits of technology

It reduces the corrosion of the first heat exchanger by condensate, extends the service life of the air conditioner, and improves the compactness and operational stability of the air conditioner.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention discloses a disc body assembly and an integral air conditioner, and relates to the technical field of air conditioning equipment, the disc body assembly is applied to the integral air conditioner, the integral air conditioner comprises a first heat exchanger and a second heat exchanger which are distributed in parallel, and the disc body assembly comprises a disc body and a filter part; the disc body is provided with a water receiving area and a water fetching groove which are communicated, the water receiving area is located below the second heat exchanger, and the water fetching groove is located below the first heat exchanger; the filtering piece is arranged on the disc body, and a condensate water flow path from the water receiving area to the water fetching groove through the filtering piece is formed in the disc body assembly. According to the technical scheme, corrosion of condensate water to the first heat exchanger is reduced, the compactness of the disc body is improved, and the service life of the integral air conditioner is guaranteed.
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Description

[0001] The present application claims priority to the Chinese patent application No. 202410490721.9, filed on April 23, 2024, and entitled "A kitchen air conditioner", the contents of which are to be understood as incorporated by reference into the present application. TECHNICAL FIELD

[0002] The present application relates to the technical field of air conditioning equipment, in particular to a disc body assembly and a whole air conditioner. BACKGROUND

[0003] For the whole air conditioner, the condensate water generated on the side of the evaporator will accumulate in the lower part of the evaporator, which is easy to cause the evaporator to bubble or the air conditioner to overflow, etc. In the related art, the condensate water generated by the evaporator is drained to the condenser. However, the current condensate water can accelerate the aging of the condenser, thereby reducing the service life of the whole air conditioner. SUMMARY

[0004] The main purpose of the present application is to provide a disc body assembly and a whole air conditioner, which aims to reduce the corrosion of the condensate water on the first heat exchanger, improve the compactness of the disc body, and ensure the service life of the whole air conditioner.

[0005] To achieve the above-mentioned purpose, the disc body assembly according to the present application is applied to a whole air conditioner, wherein the whole air conditioner comprises a first heat exchanger and a second heat exchanger arranged in parallel, and the disc body assembly comprises:

[0006] a disc body, wherein the disc body is provided with a water receiving area and a water hitting groove in communication, the water receiving area is located below the second heat exchanger, and the water hitting groove is located below the first heat exchanger; and

[0007] a filter, wherein the filter is arranged on the disc body, and the disc body assembly forms a condensate water flow path from the water receiving area to the water hitting groove through the filter.

[0008] In an embodiment, an avoidance space is formed between the first heat exchanger and the second heat exchanger, the disc body is provided with an avoidance through groove corresponding to the lower part of the avoidance space, and the filter is arranged in the avoidance through groove.

[0009] In an embodiment, the filter is arranged in a strip shape, the avoidance through groove is configured as a straight slot, the filter extends on the avoidance through groove, one end of the filter is in communication with the water receiving area, and the other end of the filter is in communication with the water hitting groove.

[0010] In an embodiment, an oil absorption felt is arranged in the filter, and the oil absorption felt forms a water filtering channel extending in an S shape.

[0011] In an embodiment, the disc assembly is further provided with a pump body, which is installed on the water receiving area and is communicated with the filter.

[0012] In an embodiment, the water receiving area is provided with a pump body installation position for installing the pump body, the bottom wall of the water receiving area is inclined downward in the direction close to the pump body installation position.

[0013] In an embodiment, the water receiving area is provided with a drainage section and a water receiving section, the water receiving section is adapted to the bottom of the second heat exchanger in a U shape, one end of the drainage section is communicated with the water receiving section, and the other end is communicated with the pump body installation position.

[0014] In an embodiment, the water receiving section is provided with a middle part higher than both ends, the bottom wall of the drainage section is lower than the lowest part of the bottom wall of the water receiving section and is inclined downward in the direction close to the pump body installation position.

[0015] In an embodiment, one end of the filter is communicated with the pump body through a pipe, and the other end is communicated with the water hitting groove.

[0016] In an embodiment, the integrated air conditioner further comprises a water level detection member, which is arranged on the water receiving area and is used for detecting the water level of the water receiving area.

[0017] In an embodiment, the water receiving area is provided with a detection installation position, the integrated air conditioner is further provided with a pump body, which is installed on the water receiving area and is communicated with the filter, and the detection installation position is higher than the position where the water receiving area is communicated with the pump body.

[0018] The application further provides an integrated air conditioner, which comprises a disc assembly as described above, a first heat exchanger and a second heat exchanger arranged in parallel, the second heat exchanger is used for heat exchange with indoor environment, and the first heat exchanger is used for heat exchange with outdoor environment.

[0019] In an embodiment, the first heat exchanger is configured as a condenser, and the second heat exchanger is configured as an evaporator.

[0020] In an embodiment, the integrated air conditioner further comprises a water hitting device, which is arranged on the disc and is between the water hitting groove and the first heat exchanger.

[0021] In an embodiment, the disc is configured as the bottom disc of the integrated air conditioner, or the disc is configured as the water receiving disc of the integrated air conditioner.

[0022] The technical scheme of the present application sets a water receiving area and a water hitting groove on the disc body, the water receiving area is correspondingly arranged below the second heat exchanger, the water hitting groove is correspondingly arranged below the first heat exchanger, the water receiving area can receive the condensed water generated by the second heat exchanger, the disc body is further provided with a filter element, the filter element filters the condensed water from the water receiving area, so as to reduce the impurity content of the condensed water in the water hitting groove, thereby reducing the impurity content attached to the first heat exchanger during the process that the water hitting groove hits water to the first heat exchanger, reducing the corrosion of the condensed water to the first heat exchanger, and ensuring the service life of the integrated air conditioner. BRIEF DESCRIPTION OF DRAWINGS

[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments or the prior art description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative effort on the basis of the drawings shown.

[0024] Figure 1 Figure 1 is a partial structure schematic view of an embodiment of the present application, which shows the disc body assembly provided by the present application installed in an integrated air conditioner.

[0025] Figure 2 Figure 2 is an enlarged view of part A in figure 1. Figure 1

[0026] Figure 3 Figure 3 is a schematic view of the water flowing direction of the disc body assembly in figure 1. Figure 1

[0027] Explanation of reference signs:

[0028] 100, disc body; 110, water receiving area; 111, pump body mounting position; 112, drainage section; 113, water receiving section; 114, detection mounting position; 120, water hitting groove; 130, avoiding through groove;

[0029] 200, filter element; 300, pump body; 400, pipe; 500, first heat exchanger; 600, second heat exchanger; 700, water level detection element; 800, water hitting device; 810, water hitting wheel.

[0030] The implementation, functional features and advantages of the present application will be further described with reference to the embodiments and the drawings. DETAILED DESCRIPTION

[0031] ​​With reference to the drawings of the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments of the present application, all the other embodiments obtained by a person of ordinary skill in the art without creative effort belong to the scope of the present application.

[0032] It should be noted that if the embodiments of the present application involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative positional relationship, movement condition, etc. between components in a certain posture, and if the certain posture changes, the directional indications also change accordingly.

[0033] In addition, if the embodiments of the present application involve descriptions such as "first", "second", etc., the descriptions of "first", "second", etc. are only for description purposes, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first", "second" can explicitly or implicitly include at least one of the features. In addition, "and / or" or "and / or" appearing throughout the text means that the three parallel schemes include A scheme, or B scheme, or A and B schemes are satisfied at the same time. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the fact that a person of ordinary skill in the art can realize it, and when the combination of technical solutions contradicts each other or cannot be realized, it should be considered that the combination of technical solutions does not exist and is not within the scope of protection required by the present application.

[0034] In the related art, for a whole air conditioner, the condensate water generated by the evaporator is drained to the lower part of the condenser, and then the condensate water is splashed to the condenser, which can promote the heat dissipation efficiency of the condenser and consume the condensate water, thereby reducing the possibility of condensate water leakage of the whole air conditioner. However, since the environment of the evaporator and the air conditioner is connected, air impurities in the current environment can enter the condensate water under the cooling effect of the evaporator, such as dust, grease, etc., and the impurities in the condensate water can also adhere to the surface of the condenser during the process of cooling the condenser, especially when the current condenser is in a high temperature state, the impurities can easily accelerate the corrosion of the copper sheets and fins of the condenser, thereby reducing the service life of the air conditioner.

[0035] The present application provides a disc assembly.

[0036] Please refer to Figures 1 to 3 In an embodiment of the present application, the disc assembly is applied to a whole air conditioner, the whole air conditioner includes a first heat exchanger 500 and a second heat exchanger 600 arranged in parallel, and the disc assembly includes:

[0037] The disc body 100 is provided with a water receiving area 110 and a water hitting groove 120 which are communicated with each other, the water receiving area 110 is located below the second heat exchanger 600, and the water hitting groove 120 is located below the first heat exchanger 500.

[0038] The filter 200 is arranged on the disc body 100, and the disc body assembly is formed with a condensate water flow path from the water receiving area 110 to the water hitting groove 120 through the filter 200.

[0039] The technical scheme of the present application sets the water receiving area 110 below the second heat exchanger 600 and the water hitting groove 120 below the first heat exchanger 500 on the disc body 100, the water receiving area 110 can receive the condensate water generated by the second heat exchanger 600, and the disc body 100 is further provided with the filter 200, which can filter the condensate water from the water receiving area 110 to reduce the impurity content of the condensate water in the water hitting groove 120, so that the impurity content adhered to the first heat exchanger 500 can be reduced during the process of the water hitting groove 120 hitting water towards the first heat exchanger 500, thereby reducing the corrosion of the condensate water to the first heat exchanger 500 and ensuring the service life of the integrated air conditioner.

[0040] It should be noted that the condensate water in the water receiving area 110 can be accumulated towards the water hitting groove 120 by height difference and gravity, or the condensate water in the water receiving area 110 can be pumped to the water hitting groove 120 by a water pump. The filter 200 is arranged on the condensate water flow path from the water receiving area 110 to the water hitting groove 120, and can be arranged in the water receiving area 110 or adjacent to the water hitting groove 120. Correspondingly, the condensate water flow path from the water receiving area 110 to the water hitting groove 120 through the filter 200 can be one or multiple parallel paths, and the filter 200 is arranged corresponding to each condensate water flow path. It can be understood that the filter 200 has different filtering capabilities according to different environments of the integrated air conditioner, such as a space with more oil in the kitchen, the filter 200 focuses on filtering oil, and a space with more dust, the filter 200 focuses on filtering dust. In addition, in one embodiment, when the integrated air conditioner is cooling, the first heat exchanger 200 is configured as a condenser, and the second heat exchanger 300 is configured as an evaporator, and in another embodiment, when the integrated air conditioner is heating, the first heat exchanger 200 is configured as an evaporator, and the second heat exchanger 300 is configured as a condenser. In the present technical scheme, the description is made around the cooling of the integrated air conditioner.

[0041] For the filtering capability of the filter 200, in one embodiment, please refer toFigure 1 and Figure 3 The filter element 200 is provided with oil-absorbing felt, which has an S-shaped water filtration channel. It is understood that in this embodiment, the unitary air conditioner is installed in an environment with a high oil content, such as a kitchen. Therefore, the oil-absorbing felt can effectively absorb the oil in the condensed water, thereby reducing the amount of oil in the condensed water that hits the first heat exchanger 500. This reduces the amount of oil adhering to the first heat exchanger 500 and the probability of oil corrosion on the first heat exchanger 500. Furthermore, the S-shaped water filtration channel increases the contact area and contact time between the oil and the oil-absorbing felt, thereby improving the oil absorption efficiency. The water filtration channel can be formed into the oil-absorbing felt, or the filter element 200 can be provided with the water filtration channel and then filled with oil-absorbing felt. Of course, in other embodiments, the filter element 200 can be provided with different adsorption capacities, such as dust filter cotton or activated carbon, depending on the environment in which the unitary air conditioner is located.

[0042] Regarding the flow of condensed water from the water receiving area 110 to the water tank 120, in one embodiment, please refer to Figures 1 to 3 The disc assembly is also provided with a pump body 300, which is installed in the water receiving area 110 and connected to the filter element 200. The pump body 300 can flow the condensed water in the water receiving area 110 toward the filter element 200 and then to the water trough 120, thereby ensuring that the condensed water flows toward the water trough 120, preventing the condensed water from flowing back from the water trough 120 to the water receiving area 110, ensuring the consumption of condensed water, and reducing the probability of water leakage in the integrated air conditioner. At the same time, using the pump body 300 to pump the condensed water to the water trough 120 improves the efficiency of the condensed water flowing from the water receiving area 110 to the water trough 120. The connection between the pump body 300 and the filter element 200, and the connection between the filter element 200 and the water trough 120 can be through the pipe 400. Of course, in other embodiments, the condensed water in the water receiving area 110 can also be gravity-drained to the water guide trough due to the height difference.

[0043] Further, in this embodiment, please refer to Figure 1 and Figure 2The water receiving area 110 is provided with a pump body mounting position 111 for mounting the pump body 300, the pump body mounting position 111 is at the lowest part of the water receiving area 110, and the bottom wall of the water receiving area 110 is inclined downward in the direction close to the pump body mounting position 111. The inclination of the bottom wall of the water receiving area 110 in the direction of the pump body mounting position 111 can ensure that the condensed water flows to the pump body mounting position 111 under the action of gravity. This avoids the accumulation of condensed water in the corners or hard-to-reach areas of the water receiving area 110, reduces the possibility of water accumulation in the disc body 100, and improves the efficiency of the condensed water flowing from the water receiving area 110 to the water tank 120, which is conducive to quickly reducing the condensed water content in the water tank 120 and reducing the possibility of condensed water overflowing from the water receiving area 110. Of course, in other embodiments, the pump body 300 can be arranged at other positions of the disc body 100, and the pump body 300 is connected to the lowest part of the bottom wall of the water receiving area 110 through the pipe 400; or the water receiving area 110 is centered on the pump body mounting position 111 and presents a ring-shaped staircase gradually decreasing in height towards the pump body mounting position 111, which realizes the automatic accumulation of condensed water towards the pump body mounting position 111 and slows down the flow rate of condensed water in the water receiving area 110, thereby reducing the possibility of condensed water overflowing from the water receiving area 110.

[0044] Further, in the present embodiment, please refer to Figures 1 to 3 The water receiving area 110 is provided with a drainage section 112 and a water receiving section 113, the water receiving section 113 is U-shaped and fitted at the bottom of the second heat exchanger 600, one end of the drainage section 112 is connected to the water receiving section 113, and the other end is connected to the pump body mounting position 111. Without loss of generality, the second heat exchanger 600 is arranged in a U-shape, which increases the efficiency of the second heat exchanger 600 in absorbing heat and refrigerating. Correspondingly, it also helps to evenly distribute the condensed water of the second heat exchanger 600 in the water receiving section 113, increases the efficiency of the condensed water dripping from the second heat exchanger 600, and disperses the dripping position of the first heat exchanger 500, reduces the risk of condensed water overflowing from the water receiving section 113, and guarantees the stability and reliability of the water receiving section 113 in collecting condensed water. At the same time, the water receiving section 113 can be used to fully collect the condensed water, and then flow to the pump body mounting position 111 through the drainage section 112, which clearly defines the flow direction of the condensed water in the water receiving area 110, improves the efficiency of the condensed water in the water receiving area 110 accumulating to the pump body mounting position 111, and thus guarantees that the pump body 300 can fully pump the condensed water in the water receiving area 110 to the water tank 120. Of course, in other embodiments, the water receiving area 110 can be arranged in a plate shape with the pump body mounting position 111 as the lowest position, and the condensed water dripping from the second heat exchanger 600 can be freely accumulated to the pump body mounting position 111 by gravity.

[0045] Specifically, in the present embodiment, please refer to Figure 1 and Figure 2, the water receiving section 113 is arranged with a middle part higher and two ends lower, the bottom wall of the drainage section 112 is lower than the lowest part of the bottom wall of the water receiving section 113, and extends downwardly in the direction close to the pump body mounting position 111. It can be understood that after the condensate water of the second heat exchanger 600 drops to the water receiving section 113, the water receiving section 113 arranged with a middle part higher and two ends lower causes the condensate water to flow to the two ends of the water receiving section 113 under the action of gravity, the bottom wall of the drainage section 112 is lower than the lowest part of the bottom wall of the water receiving section 113 and extends to the pump body mounting position 111, so that the condensate water is further guided to the pump body mounting position 111 by gravity. At the same time, the condensate water balance is also flowed to the pump body mounting position 111 from the two ends of the water receiving section 113, so as to reduce the accumulation of too much condensate water at some place of the water receiving section 113, and cause the condensate water to overflow. Of course, in other embodiments, the water receiving section 113 can also be arranged with a gradually lower end, and the drainage section 112 is connected to the pump body mounting position 111 through the lower end, so as to realize the function of one-way drainage.

[0046] For the connection mode of the pump body 300 and the filter 200, in an embodiment, please refer to Figure 1 and Figure 3 One end of the filter 200 is connected to the pump body 300 through the pipe 400, and the other end is connected to the water hitting groove 120. It should be noted that the positions of the pump body mounting position 111 and the filter 200 are flexible, and the pipe 400 is connected to the pump body 300 and the filter 200, so as to reduce the installation position requirements of the pump body 300 and the filter 200, and facilitate the internal component arrangement of the integrated air conditioner. At the same time, the structural requirements of the disc body 100 are also reduced, which is conducive to determining the position of the water receiving area 110 and reducing the risk of overflow of the condensate water in the water receiving area 110. Without loss of generality, the filter 200 can also be connected to the water hitting groove 120 through the pipe 400, so as to flexibly arrange the relative positions of the filter 200 and the water hitting groove 120, and improve the setting flexibility of the integrated air conditioner. Of course, in other embodiments, a flow channel can also be arranged on the disc body 100, and the pump body 300 can be connected to the filter 200 through the flow channel. Correspondingly, the filter 200 can also be connected to the water hitting groove 120 through the flow channel.

[0047] In an embodiment, please refer to Figure 1 and Figure 2The integrated air conditioner further comprises a water level detection member 700 arranged in the water receiving area 110 and configured to detect the water level of the water receiving area 110. When the second heat exchanger 600 generates more condensate water, the water level of the water receiving area 110 rises, and the condensate water can trigger the water level detection member 700. When the water level in the water receiving area 110 reaches a preset threshold, the water level detection member 700 sends a signal. At this time, it indicates that the condensate water content of the water receiving area 110 is too high. The integrated air conditioner controls the power of the second heat exchanger 600 to reduce or even stop the generation of condensate water, and at the same time, the rotation speed of the fan wheel is increased to accelerate the heat dissipation of the first heat exchanger 500 and timely discharge the water vapor generated on the first heat exchanger 500, that is, to reduce the accumulation of condensate water. In this way, the accumulation of condensate water in the water receiving area 110 can be controlled to avoid the condensate water in the disc body 100 from overflowing, thereby avoiding the damage of components in the integrated air conditioner, such as the second heat exchanger 600, from being soaked in water, or avoiding the pollution and damage of the surrounding environment caused by the overflow of condensate water, and ensuring the user experience. Of course, in other embodiments, a water level detection device can also be arranged in the water tank 120. When the water level of the water tank 120 reaches a preset water level, it indicates that the amount of condensate water collected in the water receiving area 110 is too much, and the power of the integrated air conditioner can be started to reduce the generation of condensate water, and the fan wheel can be accelerated to promote the discharge of the condensed water vapor. After a certain period of time, if the water level is still at the preset water level, the user is prompted to timely discharge the excessive condensate water in the water receiving area 110 and the water tank 120.

[0048] Further, in the present embodiment, please refer to Figure 1 and Figure 2The water receiving area 110 is provided with a detection installation position 114, and the disc assembly is further provided with a pump body 300, which is installed on the water receiving area 110 and is communicated with the filter 200. The detection installation position 114 is higher than the position of the pump body 300 communicated with the water receiving area 110. The detection installation position 114 is higher than the position of the pump body 300 communicated with the water receiving area 110, which indicates that the detection installation position 114 is higher than the pump body installation position 111, so that the water level detection member 700 can monitor the higher water level change, and meanwhile, the interference of the pump body 300 to pump the condensed water in the water receiving area 110 to the water hitting groove 120 is avoided, and it is ensured that the condensed water in the water receiving area 110 can flow to the water hitting groove 120 through the filter 200. When the condensed water in the water receiving area 110 accumulates to a certain degree, the water level detection member 700 sends an alarm or triggers a control mechanism to prevent the condensed water in the water receiving area 110 from continuing to increase, thereby avoiding the water overflow from the water receiving area 110 to cause damage to the internal part of the air conditioner or to cause influence on the external environment of the air conditioner. In addition, since the detection installation position 114 is higher than the pump body installation position 111, the influence of the slight change of the water level caused by the fluctuation of the condensed water or the working of the pump body 300 on the detection result of the water level detection member 700 is avoided, and the accuracy of the water level detection is improved. Without loss of generality, the detection installation position 114 can be configured as the highest position of the water receiving area 110 and is lower than the height of the circumferential water blocking edge of the water receiving area 110, so as to ensure that the water receiving area 110 has sufficient condensed water for the pump body 300 to pump to the water hitting groove 120, and the overflow of the condensed water from the water receiving area 110 is also avoided. Of course, in other embodiments, a float ball can also be arranged on the water receiving area 110, and the detection member is arranged above the water receiving area 110. When the float ball abuts against the detection position of the detection member, the detection member is triggered to control the water level of the condensed water of the whole air conditioner, such as reducing the power of the whole air conditioner to reduce the generation of the condensed water, and accelerating the fan to promote the discharge of the condensed water after vaporization.

[0049] In an embodiment, please refer to Figure 1 and Figure 3, the first heat exchanger 500 and the second heat exchanger 600 form an avoiding space, the disc body 100 is provided with an avoiding through slot 130 corresponding to the lower part of the avoiding space, and the filter 200 is arranged in the avoiding through slot 130. It can be understood that the water receiving area 110 is located at one side of the avoiding space, and the water hitting groove 120 is located at the other side of the avoiding space. The disc body 100 is provided with the avoiding through slot 130 corresponding to the lower part of the avoiding space between the first heat exchanger 500 and the second heat exchanger 600, and after the filter 200 is arranged on the avoiding through slot 130, the avoiding space can avoid external components, such as a ceiling batten (not shown in the figure), a vertical railing of a side wall of an environment space, or the avoiding space and the avoiding through slot 130 can be used for installation of the integrated air conditioner, so that the installation stability is enhanced. Here, the avoiding batten is described and introduced. In this way, the avoiding space and the avoiding through slot 130 at the lower part of the avoiding space avoid the ceiling batten, the space of the disc body 100 is fully utilized, and the interference of the batten on the flow of the condensed water from the water receiving area 110 to the water hitting groove 120 is reduced, and the compactness of the disc body 100 is improved.

[0050] In an embodiment, referring to Figure 1 and Figure 3 , the filter 200 is arranged in a strip shape, the avoiding through slot 130 is configured as a straight slot, the filter 200 extends on the avoiding through slot 130, one end of the filter 200 is communicated with the water receiving area 110, and the other end of the filter 200 is communicated with the water hitting groove 120. It should be noted that for the integrated air conditioner, the second heat exchanger 600 and the first heat exchanger 500 are arranged in parallel and partitioned, and correspondingly, the filter 200 is arranged at the lower part of the avoiding space between the second heat exchanger 600 and the first heat exchanger 500, and the filter 200 extends in a direction intersecting the distribution of the second heat exchanger 600 and the first heat exchanger 500. The filter 200 can provide sufficient installation space at this position to ensure the filtering capacity of the filter 200 for the condensed water and improve the compactness of the integrated air conditioner. For the form that the integrated air conditioner is installed on the top of a space such as a ceiling, the filter 200 is installed at this position, so that the avoiding space can be fully utilized. The installation of the filter 200 is facilitated, the influence of the arrangement of other components of the disc body 100 is reduced, and the installation influence between the integrated air conditioner and the batten is reduced. Therefore, the integrated air conditioner is arranged in a square and compact shape, and the installation of the integrated air conditioner is facilitated. Without loss of generality, the filter 200 can be detachably arranged on the disc body 100 or integrally and fixedly arranged on the disc body 100. Of course, in other embodiments, the filter 200 can be arranged outside the disc body 100 to be arranged close to the water receiving area 110 or the water hitting groove 120, so that the internal space of the integrated air conditioner is utilized.

[0051] For the avoidance of the straight slot 130 configuration, the corresponding, the avoidance of the space also along the avoidance of the slot 130 through the whole casing of the air conditioner, the avoidance of the slot 130 and the avoidance of the space formed by the depth can be the size of the casing in the vertical direction of 80% ~ 95%. The first heat exchanger 500 and the second heat exchanger 600 are located on the opposite sides of the avoidance of the slot 130 and the avoidance of the space, the first heat exchanger 500 and the second heat exchanger 600 are separated by the avoidance of the space, that is, the avoidance of the space forms a partition for the whole air conditioner, so that the components for heat exchange in the room are arranged on the side with the second heat exchanger 600, and the components for heat exchange in the outdoor are arranged on the side with the first heat exchanger 500. Correspondingly, the avoidance of the slot 130 also partitions the condensate water of the disc body assembly, the flow section for receiving the condensate water is on one side of the avoidance of the slot 130, such as the water receiving area 110, the flow section for processing the condensate water is on the avoidance of the slot 130, such as the filter 200, and the flow section for using the condensate water is on the other side of the avoidance of the slot 130, such as the water tank 120. Here, the partition of the avoidance of the slot 130 to the disc body 100 also corresponds to the partition of the avoidance of the space to the main part of the whole air conditioner, the groove bottom of the condensate water flow path corresponding to the groove section on the side of the first heat exchanger 500 has various height differences, and the groove bottom of the groove section on the side of the second heat exchanger 600 also has various height differences, so that the condensate water flow path has clear functional partition, which is convenient for subsequent detection, maintenance and other operations of the condensate water flow path on the disc body 100.

[0052] The application also provides a whole air conditioner, please refer to Figure 1 and Figure 3 The whole air conditioner comprises a first heat exchanger 500, a second heat exchanger 600 and a disc body assembly. The specific structure of the disc body assembly is described above. Since the whole air conditioner adopts all the technical solutions of the above embodiments, it has all the beneficial effects of the above embodiments, which will not be repeated here.

[0053] In the above-mentioned configuration of the all-in-one air conditioner as a kitchen air conditioner, the all-in-one air conditioner is installed on the top of the indoor space, such as the kitchen ceiling, toilet ceiling, etc., and the first heat exchanger 500 and the second heat exchanger 600 are arranged in parallel, forming a flat vertical rectangular avoidance space therebetween. The lower part of the avoidance space can be used to install the filter 200, reducing the interference of the filter 200 with other components on the disc body 100. When installing the all-in-one air conditioner, the avoidance space can avoid the interference of the ceiling keel, and the filter 200 can be installed on the upper part of the avoidance slot 150, which can improve the installation height of the all-in-one air conditioner. In combination with the filter 200 arranged in the avoidance slot 130, the space layout of the disc body 100 can be fully utilized, and the compactness of the disc body 100 can be improved.

[0054] In an embodiment, please refer to 1 to Figure 3 The all-in-one air conditioner further comprises a water beating device 800 arranged on the disc body 100 and between the water beating groove 120 and the first heat exchanger 500. It can be understood that the water beating device 800 can beat the accumulated water in the water beating groove 120 to the surface of the first heat exchanger 500. Due to the heat absorption effect of water evaporation, part of the heat on the first heat exchanger 500 can be taken away, especially the low-temperature condensed water, which helps to reduce the temperature of the first heat exchanger 500, thereby improving the heat dissipation efficiency of the first heat exchanger 500, so that the air conditioner can reach the set temperature faster during the refrigeration process, and the overall refrigeration efficiency is improved. Without loss of generality, the water beating device 800 comprises a water beating wheel 810 and a driving motor. The driving motor is installed on the disc body 100 and is drivingly connected to the water beating wheel 810 to rotate the water beating wheel 810 to beat the condensed water in the water beating groove 120 to the first heat exchanger 500. The condensed water can promote the cooling of the first heat exchanger 500, and at the same time, the condensed water can be consumed, reducing the need for a pipe 400 to discharge the condensed water. Of course, in other embodiments, a water spraying structure can be arranged at the bottom of the water beating groove 120 to spray the accumulated water in the water beating groove 120 to the first heat exchanger 500.

[0055] In an embodiment, please refer to Figure 1 and Figure 3, the disc body 100 is configured as a bottom disc of the integrated air conditioner. It can be understood that the disc body 100 integrates the functions of installation and condensate water receiving and drainage of the integrated air conditioner, improves the assembly convenience of the integrated air conditioner, and at the same time, the disc body 100 is configured as a bottom disc, integrates the support structure of the integrated air conditioner, and is beneficial to guarantee the structural stability of the disc body 100, thereby guaranteeing the structural strength of the water receiving area 110 and the water hitting groove 120, and further guaranteeing that the condensate water can be stably accumulated from the water receiving area 110 to the water hitting groove 120 for heat dissipation of the first heat exchanger 500. Alternatively, in another embodiment, the disc body 100 is configured as a water receiving disc of the integrated air conditioner. It can be understood that the disc body 100 is installed on the bottom disc of the integrated air conditioner, and the bottom disc is the load-bearing structure of the integrated air conditioner. The disc body 100 and the bottom disc are provided separately, which reduces the structural complexity of the bottom disc, is beneficial to the forming of the disc body 100 and the bottom disc, and at the same time, it is also convenient to adjust the setting position of the disc body 100, and guarantee that the water receiving area 110 and the water hitting groove 120 of the disc body 100 can be aligned with the lower part of the second heat exchanger 600 and the first heat exchanger 500 respectively.

[0056] Among them, referring to the above description about the avoidance space and the avoidance through groove 150, for the refrigerant pipe communicated by the first heat exchanger 500 and the second heat exchanger 600, please refer to Figure 1 and Figure 3 , the refrigerant pipe communicated by the first heat exchanger 500 and the second heat exchanger 600 is arranged along the groove bottom of the avoidance through groove 130. Make full use of the space of the groove bottom of the avoidance through groove 130, reduce the space occupation of the refrigerant pipe in the integrated air conditioner, so that the integrated air conditioner is more compact and the layout is more reasonable.

[0057] The above is only an exemplary embodiment of the present application, and does not limit the patent scope of the present application, and any equivalent structural transformation made by using the content of the present application specification and drawings, or direct / indirect application in other related technical fields is included in the patent protection scope of the present application.

Claims

1. A disk assembly, comprising: Applicable to an integrated air conditioner, the integrated air conditioner includes a first heat exchanger and a second heat exchanger distributed in parallel, and the disk assembly includes: a tray, the tray being provided with a water receiving area and a water trough which are connected to each other, the water receiving area being located below the second heat exchanger, and the water trough being located below the first heat exchanger; and A filter element is provided on the disc body, and the disc body assembly forms a condensed water flow path from the water receiving area through the filter element to the water trough.

2. The disc pack assembly of claim 1 wherein, An oil-absorbing felt is arranged in the filter element, and the oil-absorbing felt forms a water filtering channel extending in an S shape.

3. The disc pack of claim 1 wherein, The disc assembly is further provided with a pump body, which is installed in the water receiving area and is connected to the filter element.

4. The disk pack assembly of claim 3 wherein, The water receiving area is provided with a pump body installation position for installing the pump body, the pump body installation position is located at the lowest point of the water receiving area, and the bottom wall of the water receiving area is inclined downward in the direction close to the pump body installation position.

5. The disk pack assembly of claim 4 wherein, The water receiving area is provided with a drainage section and a water receiving section. The water receiving section is U-shaped and adapted to the bottom of the second heat exchanger. One end of the drainage section is connected to the water receiving section, and the other end is connected to the pump body installation position.

6. The disk pack assembly of claim 5 wherein, The water receiving section is arranged with a high middle portion and low ends. The bottom wall of the drainage section is lower than the lowest point of the bottom wall of the water receiving section and extends downwardly in a direction close to the pump body installation position.

7. The disc pack of claim 3 wherein, One end of the filter is connected to the pump body through a pipe, and the other end is connected to the water tank.

8. The disc pack of claim 1 wherein, The tray assembly further includes a water level detection component, which is disposed in the water receiving area and is used to detect the water level in the water receiving area.

9. The disc pack of claim 8 wherein, The water receiving area is provided with a detection installation position, and the disc assembly is further provided with a pump body. The pump body is installed in the water receiving area and connected to the filter element. The detection installation position is higher than the position where the water receiving area is connected to the pump body.

10. The disc assembly of any one of claims 1 to 9, wherein, An escape space is formed between the first heat exchanger and the second heat exchanger; The disc body is provided with an avoidance groove corresponding to the lower part of the avoidance space, and the filter is arranged in the avoidance groove.

11. The disc pack of claim 10 wherein, The filter is arranged in a strip shape, the avoidance groove is configured as a straight groove, the filter extends on the avoidance groove, one end of the filter is connected to the water receiving area, and the other end is connected to the water trough.

12. A unitary air conditioner characterized by include: A first heat exchanger and a second heat exchanger are arranged in parallel, wherein the second heat exchanger is used to exchange heat with an indoor environment, and the first heat exchanger is used to exchange heat with an outdoor environment; as well as The tray assembly according to any one of claims 1 to 11.

13. The unitary air conditioner of claim 12, wherein, The integrated air conditioner further includes a water pumping device, which is disposed on the tray and located between the water pumping tank and the first heat exchanger.

14. The unitary air conditioner of claim 12, wherein, The tray is configured as a chassis of the integrated air conditioner, or the tray is configured as a water receiving tray of the integrated air conditioner; And / or, the first heat exchanger is configured as a condenser, and the second heat exchanger is configured as an evaporator.