Energy-saving air conditioner water chilling unit

By designing cleaning and anti-blocking components in the energy-saving air-conditioning chiller, and using heat conduction blocks and transmission motors to scrape off dust from the heat dissipation network, the problem of reducing heat dissipation efficiency is solved, and energy consumption saving and utilization efficiency are improved.

CN223005111UActive Publication Date: 2025-06-20CHINA RAILWAY CONSTRUCTION ENGINEERING GROUP
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Patent Information

Application Number
CN202421873981.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-05
Publication Date
2025-06-20
Estimated Expiration
2034-08-05

AI Technical Summary

Technical Problem

After long-term use of existing energy-saving air-conditioning chillers, a large amount of dust is easily accumulated on the surface of the heat dissipation network, which reduces the heat dissipation efficiency and is inconvenient for cleaning, resulting in increased energy consumption and affects the energy-saving efficiency of use.

Method used

An energy-saving air-conditioning chiller unit including a main mechanism and a support and placement mechanism is designed. Clean and anti-blocking components are arranged in the main mechanism, including a thermal block and a transmission motor. The transmission motor drives the thermal block to move up and down, and scrapes away dust accumulation on the heat dissipation network.

Benefits of technology

By regularly cleaning the heat dissipation network, maintain heat dissipation efficiency, prevent energy consumption from increasing, improve the use efficiency and stability of the chiller unit, and achieve energy-saving effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an energy-saving air conditioner water chilling unit which comprises a main body mechanism and a supporting and placing mechanism, the supporting and placing mechanism is arranged below the main body mechanism, the main body mechanism comprises an energy-saving air conditioner device body, a water chilling unit body, heat dissipation meshes and a cleaning anti-blocking assembly, and the cleaning anti-blocking assembly comprises a heat conduction block. The heat conduction block is arranged between the heat dissipation meshes and a heat conduction shell of the water chilling unit body; the cleaning and anti-blocking assembly further comprises a mounting sliding groove, a transmission motor, a transmission shaft, a lead screw, a positioning nut and a first supporting rod; the first connecting rod is fixedly connected with the extending end of the first supporting rod and one end of the heat conduction block, the limiting sliding groove is formed in the inner wall of the energy-saving air conditioner device body and located on the other side of the heat dissipation meshes, the sliding rod is installed in the limiting sliding groove, and the sliding block is slidably connected to the sliding rod; the second supporting rod is fixedly connected to the sliding block and extends out of the limiting sliding groove; and the second connecting rod is fixedly connected with the extending end of the second supporting rod and the other end of the heat conduction block. The heat dissipation device is beneficial to cleaning accumulated dust and guaranteeing the heat dissipation efficiency.
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Description

Technical Field

[0001] The utility model relates to the field of refrigeration equipment, in particular to an energy-saving air-conditioning chiller unit. Background Art

[0002] When an energy-saving air-conditioning chiller unit is in use, it is necessary to use the energy-saving air-conditioning chiller unit for cooling operation to cool the air.

[0003] During the operation of the existing energy-saving air-conditioning chiller unit, it is necessary to discharge the heat generated by the operation of the energy-saving air-conditioning chiller unit through a heat dissipation net. However, after the equipment is used for a long time, a large amount of dust is likely to accumulate on the surface of the heat dissipation net. Excessive dust will reduce the heat dissipation efficiency of the heat dissipation net, and the existing technology is not convenient for cleaning and preventing blockage of the heat dissipation net, thereby reducing the working efficiency of the chiller unit, increasing the energy consumption of the chiller unit, and affecting the energy-saving efficiency of use. Summary of the Utility Model

[0004] The purpose of the utility model is to provide an energy-saving air-conditioning chiller unit, which can timely clean the dust accumulated on the heat dissipation shell of the chiller unit body and the heat dissipation net, maintain stable heat conduction and heat dissipation, stabilize the refrigeration efficiency of the chiller unit, prevent the increase of energy consumption, and thus achieve the energy-saving effect.

[0005] In order to solve the above problems, an energy-saving air-conditioning chiller unit is adopted, which includes a main body mechanism and a support and placement mechanism. The support and placement mechanism is arranged below the main body mechanism. The main body mechanism includes:

[0006] An energy-saving air-conditioning device body;

[0007] A chiller unit body, which is arranged inside the energy-saving air-conditioning device body;

[0008] Heat dissipation mesh holes, which are distributed on the shell of the energy-saving air-conditioning device body and are spaced from the chiller unit body;

[0009] The cleaning and anti-blocking component is arranged inside the energy-saving air-conditioning device body. It includes a heat-conducting block, which is arranged between the heat-dissipating mesh holes and the heat-conducting outer shell of the chiller body. One side of it is slidably connected to the heat-dissipating mesh holes, and the other side is slidably connected to the heat-conducting outer shell of the chiller body. The cleaning and anti-blocking component further includes an installation chute opened on the inner wall of the energy-saving air-conditioning device body and located on one side of the heat-dissipating mesh holes, a driving motor installed on the top wall of the installation chute, a transmission shaft installed on the driving motor and extending downward, a lead screw coaxially fixed to the transmission shaft, a positioning nut threadedly connected to the lead screw, a first support rod fixed to the positioning nut and extending out of the installation chute, a first connecting rod fixed to the extending end of the first support rod and one end of the heat-conducting block, a limiting chute opened on the inner wall of the energy-saving air-conditioning device body and located on the other side of the heat-dissipating mesh holes, a sliding rod installed in the limiting chute, a slider slidably connected to the sliding rod, a second support rod fixed to the slider and extending out of the limiting chute, and a second connecting rod fixed to the extending end of the second support rod and the other end of the heat-conducting block.

[0010] With such a structure, the heat-conducting block is convenient for moving up and down to scrape off the accumulated dust.

[0011] As a further improvement of the present utility model, a baffle is coaxially fixed between the transmission shaft and the lead screw, and the lower end of the lead screw is rotatably connected to a support block, and the support block is fixed to the bottom wall of the installation chute.

[0012] With such a structure, the baffle and the support block achieve stable upper and lower limits, and the baffle is beneficial to protecting the driving motor.

[0013] As a further improvement of the present utility model, cleaning brushes are installed on the upper and lower sides of the heat-conducting block.

[0014] With such a structure, the up and down movement of the cleaning brushes is convenient for improving the cleaning quality.

[0015] As a further improvement of the present utility model, the support and placement mechanism includes:

[0016] A load-bearing base installed on the bottom surface of the energy-saving air-conditioning device body;

[0017] Support legs installed at the four corner positions of the load-bearing base;

[0018] Foot pads installed on the bottom surface of the support legs.

[0019] With such a structure, it is convenient for stable support.

[0020] As a further improvement of the present utility model, a movable cover plate is arranged on the front bottom surface of the energy-saving air-conditioning device body, and the four corner positions of the movable cover plate are detachably connected to the energy-saving air-conditioning device body by fixing bolts.

[0021] As a further improvement of the present utility model, an air outlet is provided at the upper part of the front side of the energy-saving air-conditioning device body.

[0022] With such a structure, it is convenient to clean the dust inside the energy-saving air-conditioning device body.

[0023] The beneficial effects of the present utility model are as follows:

[0024] 1. For the energy-saving air-conditioning chiller, through the installation of the main body mechanism, the cleaning and anti-blocking ability of the present utility model is improved. During actual use, the heat dissipation mesh holes can be conveniently cleaned according to the usage needs, preventing blockage and affecting the heat dissipation efficiency, thereby improving the usage efficiency of the energy-saving air-conditioning chiller;

[0025] 2. Through the installation of the support and placement mechanism for the energy-saving air-conditioning chiller, the placement and support ability of the present utility model is improved. During actual use, the device can be stably supported and placed, improving the usage stability of the energy-saving air-conditioning chiller. Description of the Drawings

[0026] Figure 1 It is a three-dimensional structure schematic diagram of the present utility model;

[0027] Figure 2 It is a partial structure schematic diagram of the main body mechanism of the present utility model;

[0028] Figure 3 It is a structure schematic diagram of the cleaning and anti-blocking component of the present utility model;

[0029] Figure 4 It is a partial detailed enlarged structure schematic diagram of the cleaning and anti-blocking component of the present utility model.

[0030] Figure 5 It is a structure schematic diagram of the heat conduction block and the cleaning brush.

[0031] In the figure: 1. Main body mechanism; 101. Energy-saving air-conditioning device body; 102. Chiller body; 103. Heat dissipation mesh holes; 104. Cleaning and anti-blocking component; 1041. Installation chute; 1042. Driving motor; 1043. Transmission shaft; 1044. Baffle; 1045. Lead screw; 1046. Support block; 1047. Locknut; 1048. First support rod; 1049. First connecting rod; 10410. Limit chute; 10411. Slide bar; 10412. Slide block; 10413. Second support rod; 10414. Second connecting rod; 10415. Heat conduction block; 10416. Cleaning brush; 2. Support and placement mechanism; 201. Load-bearing base; 202. Support leg; 203. Placement foot pad; 204. Movable cover plate; 205. Fixed bolt; 206. Air outlet. Detailed Embodiments

[0032] Next, in combination with the accompanying drawings in the embodiments of the present utility model, the technical solutions in the embodiments of the present utility model will be clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the protection scope of the present utility model.

[0033] Embodiment 1

[0034] As Figures 1 - 5 shown, an energy-saving air-conditioning chiller includes a main body mechanism 1 and a support and placement mechanism 2. The support and placement mechanism 2 is arranged below the main body mechanism 1. The main body mechanism 1 includes:

[0035] An energy-saving air-conditioning device body 101;

[0036] A chiller unit body 102, which is arranged inside the energy-saving air-conditioning device body 101;

[0037] Heat dissipation mesh holes 103, which are distributed on the shell of the energy-saving air-conditioning device body 101 and are spaced from the chiller unit body 102;

[0038] A cleaning and anti-blocking component 104, which is arranged inside the energy-saving air-conditioning device body 101. It includes a heat conduction block 10415. The heat conduction block 10415 is arranged between the heat dissipation mesh holes 103 and the heat conduction shell of the chiller unit body 102. One side of it is slidably connected to the heat dissipation mesh holes 103, and the other side is slidably connected to the heat conduction shell of the chiller unit body 102. The cleaning and anti-blocking component 104 further includes an installation chute 1041 opened on the inner wall of the energy-saving air-conditioning device body 101 and located on one side of the heat dissipation mesh holes 103, a drive motor 1042 installed on the top wall of the installation chute 1041, a transmission shaft 1043 installed on the drive motor 1042 and extending downward, a lead screw 1045 coaxially fixed to the transmission shaft 1043, a positioning nut 1047 threadedly connected to the lead screw 1045, a first support rod 1048 fixed to the positioning nut 1047 and extending out of the installation chute 1041, a first connecting rod 1049 fixed to the extending end of the first support rod 1048 and one end of the heat conduction block 10415, a limit chute 10410 opened on the inner wall of the energy-saving air-conditioning device body 101 and located on the other side of the heat dissipation mesh holes 103, a slide rod 10411 installed in the limit chute 10410, a slider 10412 slidably connected to the slide rod 10411, a second support rod 10413 fixed to the slider 10412 and extending out of the limit chute 10410, and a second connecting rod 10414 fixed to the extending end of the second support rod 10413 and the other end of the heat conduction block 10415.

[0039] With such a structure, the heat-conducting block is convenient for moving up and down to scrape off the accumulated dust.

[0040] In this embodiment, a baffle 1044 is coaxially and fixedly connected between the transmission shaft 1043 and the lead screw 1045. The lower end of the lead screw 1045 is rotatably connected to a support block 1046, and the support block 1046 is fixedly connected to the bottom wall of the installation chute 1041.

[0041] With such a structure, the baffle 1044 and the support block 1046 achieve stable upper and lower limits, and the baffle 1044 is beneficial to protecting the drive motor 1042.

[0042] In this embodiment, cleaning brushes 10416 are installed on the upper and lower sides of the heat-conducting block 10415.

[0043] With such a structure, the up and down movement of the cleaning brush is convenient for improving the cleaning quality.

[0044] In this embodiment, the support and placement mechanism 2 includes:

[0045] A load-bearing base 201 installed on the bottom surface of the energy-saving air-conditioning device body 101;

[0046] Support legs 202 installed at the four corner positions of the load-bearing base 201;

[0047] Foot pads 203 installed on the bottom surface of the support legs 202.

[0048] With such a structure, it is convenient for stable support.

[0049] In this embodiment, a movable cover plate 204 is provided on the front bottom surface of the energy-saving air-conditioning device body 101, and the four corner positions of the movable cover plate 204 are detachably connected to the energy-saving air-conditioning device body 101 by fixing bolts 205.

[0050] In this embodiment, an air outlet 206 is provided on the upper part of the front side of the energy-saving air-conditioning device body 101.

[0051] With such a structure, it is convenient to clean the dust inside the energy-saving air-conditioning device body.

[0052] Working principle: When in use, first, the energy-saving air-conditioning chiller is stably placed at the position where it is needed through the support legs 202 and the placement foot pads 203. Later, according to the usage requirements, the drive motor 1042 is started to drive the transmission shaft 1043 to rotate, so that the transmission shaft 1043 drives the lead screw 1045 to rotate, causing the positioning nut 1047 to move up and down on the lead screw 1045, driving the slider 10412 to move on the slide bar 10411, and at the same time driving the heat-conducting block 10415 and the cleaning brush 10416 to move, cleaning the heat dissipation mesh holes 103 to prevent them from being blocked and not easily affecting the heat dissipation efficiency.

[0053] The above content is a further detailed description of the present utility model in combination with specific preferred embodiments. It cannot be determined that the specific implementation of the present utility model is only limited to these descriptions. For those skilled in the technical field to which the present utility model belongs, without departing from the concept of the present utility model, several equivalent substitutions or obvious modifications can be made, and if the performance or use is the same, they should all be regarded as falling within the protection scope of the present utility model.

Claims

1. An energy-saving air-conditioning chiller, comprising a main body (1) and a supporting and placing mechanism (2), wherein the supporting and placing mechanism (2) is arranged below the main body (1), and is characterized in that The main body (1) comprises: Energy-saving air conditioning device body (101); A chiller body (102), which is arranged in the energy-saving air conditioning device body (101); Heat dissipation mesh holes (103) are distributed on the shell of the energy-saving air conditioning device body (101) and are spaced apart from the water chiller body (102); A cleaning and anti-blocking component (104) is arranged in an energy-saving air conditioning device body (101), and comprises a heat-conducting block (10415). The heat-conducting block (10415) is arranged between a heat dissipation mesh hole (103) and a heat-conducting outer shell of a chiller body (102), one side of the heat-conducting block (10415) is slidably connected to the heat dissipation mesh hole (103), and the other side of the heat-conducting block (10415) is slidably connected to the heat dissipation mesh hole (103), and the other side of the heat-conducting outer shell of the chiller body (102). The cleaning and anti-blocking component (104) also comprises an installation slot (1041) provided on the inner wall of the energy-saving air conditioning device body (101) and located on one side of the heat dissipation mesh hole (103), a transmission motor (1042) installed on the top wall of the installation slot (1041), a transmission shaft (1043) installed on the transmission motor (1042) and extending downward, a screw rod (1045) coaxially fixed to the transmission shaft (1043), and a screw rod (1045) threadedly connected to the screw rod (1045). 45), a positioning nut (1047) on the positioning nut (1047) and extending out of the installation slot (1041), a first support rod (1048) fixedly connected to the positioning nut (1047) and extending out of the installation slot (1041), a first connecting rod (1049) fixedly connected the extended end of the first support rod (1048) and one end of the heat conductive block (10415), a limiting slot (10410) provided on the inner wall of the energy-saving air conditioning device body (101) and located on the other side of the heat dissipation mesh hole (103), a sliding rod (10411) installed in the limiting slot (10410), a sliding block (10412) slidably connected to the sliding rod (10411), a second support rod (10413) fixedly connected to the sliding block (10412) and extending out of the limiting slot (10410), and a second connecting rod (10414) fixedly connected the extended end of the second support rod (10413) and the other end of the heat conductive block (10415).

2. The energy-saving air-conditioning chiller according to claim 1, characterized in that A baffle (1044) is coaxially fixed between the transmission shaft (1043) and the screw rod (1045), and the lower end of the screw rod (1045) is rotatably connected to a support block (1046), and the support block (1046) is fixed to the bottom wall of the mounting slide groove (1041).

3. The energy-saving air-conditioning chiller according to claim 1, characterized in that Cleaning brushes (10416) are installed on the upper and lower sides of the heat conductive block (10415).

4. The energy-saving air-conditioning chiller according to claim 1, characterized in that The supporting and placing mechanism (2) comprises: A load-bearing base (201) installed on the bottom surface of the energy-saving air conditioning device body (101); Support legs (202) installed at the four corners of the load-bearing base (201); A foot pad (203) is mounted on the bottom surface of the supporting leg (202).

5. The energy-saving air-conditioning chiller according to claim 1, characterized in that A movable cover plate (204) is provided on the front bottom surface of the energy-saving air conditioning device body (101), and the movable cover plate (204) is detachably connected to the energy-saving air conditioning device body (101) by fixing bolts (205) at the four corners.

6. The energy-saving air-conditioning chiller according to claim 1, characterized in that An air outlet (206) is provided at the upper front portion of the energy-saving air conditioning device body (101).