Air energy water heater with condensate water recovery device

CN224650001UActive Publication Date: 2026-08-18GUANGDONG LUOLUO NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202521438173.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-09
Publication Date
2026-08-18
Estimated Expiration
2035-07-09

AI Technical Summary

Technical Problem

[0004]本实用新型的目的在于提供一种带冷凝水回收装置的空气能热水器,通过设置收集机构,具体是顺时针转动旋钮,使丝杆带动梯形凸块向下移动,使三角形块沿着梯形凸块斜面滑动,并通过两个三角形块带动夹块相互靠近,最终将两个夹块与凸块插接在一起,如此能够通过孔旋钮的转动方向对下料斗的安装与拆卸进行控制,便于对容器内部定期清洗容器以及时清除水垢,防止水垢淤积而导致容器腐蚀受损,保障容器的使用寿命,解决了现有对冷凝水进行长时间收集处理后会在容器的内壁形成水垢,水垢内的化学物质容易引发腐蚀反应,但这些容器通常为一体式设计,不便于通过定期拆分清洗容器及时清除水垢,进而影响容器的使用寿命的问题

Benefits of technology

[0028]1、本实用新型通过设置收集机构,具体是顺时针转动旋钮,使丝杆带动梯形凸块向下移动,使三角形块沿着梯形凸块斜面滑动,并通过两个三角形块带动夹块相互靠近,最终将两个夹块与凸块插接在一起,如此能够通过孔旋钮的转动方向对下料斗的安装与拆卸进行控制,便于对容器内部定期清洗容器以及时清除水垢,防止水垢淤积而导致容器腐蚀受损,保障容器的使用寿命。

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Abstract

The utility model discloses a kind of air energy water heaters with condensate water recovery device, it is related to air energy water heater technical field.The utility model includes collection mechanism, the collection mechanism includes collection mechanism including air energy water heater, the left side of the air energy water heater is provided with fixed plate, the left side top of the fixed plate is equipped with upper hopper, the lower portion of the upper hopper is equipped with lower hopper.The utility model is by being arranged collection mechanism, specifically is clockwise rotating knob, makes screw rod drive trapezoidal boss to move downwards, makes triangular block along trapezoidal boss bevel slide, and by two triangular blocks drive clamp block mutually close, finally two clamp block and boss are inserted together, so it can be controlled to the installation and disassembly of lower hopper by the rotating direction of hole knob, it is convenient to regularly clean container inside container and timely remove scale, prevent scale deposition and cause container corrosion damage, guarantee the service life of container.
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Description

Technical Field

[0001] This utility model belongs to the technical field of air source water heaters, and in particular relates to an air source water heater with a condensate recovery device. Background Technology

[0002] Air source heat pump water heaters are a common type of home appliance. When the water heater is working, it produces condensate water, which can be collected and used for various purposes such as irrigating plants and flushing toilets. This not only effectively saves water resources and reduces water bills, but also alleviates the pressure of water shortages to a certain extent, contributing to the sustainable development of society.

[0003] After long-term collection and treatment of condensate, scale will form on the inner wall of the container. The chemical substances in the scale can easily cause corrosion. However, these containers are usually designed as one piece, which makes it inconvenient to remove the scale in time by regularly disassembling and cleaning the container, thus affecting the service life of the container. To address this, we have proposed an air source water heater with a condensate recovery device. Utility Model Content

[0004] The purpose of this invention is to provide an air source water heater with a condensate recovery device. Specifically, by rotating a knob clockwise, a lead screw moves a trapezoidal protrusion downwards, causing a triangular block to slide along the inclined surface of the protrusion. The two triangular blocks then bring the clamping blocks closer together, ultimately connecting them to the protrusion. This allows for control of the installation and removal of the hopper by rotating the knob, facilitating regular cleaning of the container to remove scale and prevent corrosion caused by scale buildup, thus extending the container's lifespan. This invention solves the problem that existing condensate collection systems often result in scale formation on the inner wall of the container after prolonged use, where the chemical substances in the scale can easily trigger corrosion. However, these containers are typically one-piece designs, making it difficult to regularly disassemble and clean the container to remove scale, which in turn affects the container's lifespan.

[0005] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:

[0006] This utility model is an air source water heater with a condensate recovery device, including a collection mechanism including an air source water heater. A fixing plate is provided on the left side of the air source water heater, and a feeding hopper is installed on the top left side of the fixing plate. A feeding hopper is installed below the feeding hopper. A round hole is opened on the top of the feeding hopper, and the drain pipe of the air source water heater is inserted into the round ring at the top of the feeding hopper.

[0007] The fixing mechanism includes a toothed ring, on the top of which a gear is meshed with the toothed ring, and three sliding rods are rotatably connected to the right side of the toothed ring;

[0008] The drain pipe of the air source water heater is inserted into the top ring of the feeding hopper to collect condensate, and the drain pipe of the air source water heater is set at the center of the three slide bars to fix the drain pipe.

[0009] Furthermore, the collection mechanism includes an air-energy component for maintaining the balance of the collection mechanism;

[0010] A collection component is disposed on the left side of the air source heat pump assembly and is in contact with the air source heat pump assembly;

[0011] A discharge assembly, wherein the discharge assembly is disposed at the bottom of the discharge assembly, and the discharge assembly is used to discharge accumulated water;

[0012] The top of the unloading assembly extends into the interior of the collecting assembly.

[0013] Furthermore, the fixing mechanism includes a fixing component, which is disposed on top of the collecting component, and a conduit is disposed inside the fixing component;

[0014] An auxiliary component is disposed outside the fixing component, and the left side of the auxiliary component extends into the top of the collecting component;

[0015] The fixing components are in contact with each other.

[0016] Furthermore, the air source component includes a bracket, which is sleeved on the outer side of the bottom outer wall of the air source water heater, and the inner wall of the bracket is installed on the bottom outer wall of the air source water heater;

[0017] The collecting component includes two slots, which are respectively installed on the top and bottom of the left side of the fixed plate. The upper hopper is located on the left side of the top slot, and the lower hopper is located on the left side of the bottom slot. A rectangular plate one is installed on the left side of the upper hopper, and a rectangular plate two is installed on the left side of the lower hopper. The rectangular plates one and two are mirror images of each other. By setting the insertion relationship between the plug and the slot, the rectangular plates one and two can be quickly positioned on the left side of the fixed plate.

[0018] In this embodiment, each of the four right corners of rectangular plate one and rectangular plate two is equipped with a plug, which is inserted into the slot.

[0019] Furthermore, the air source heat pump assembly includes a rectangular outer shell, which is mounted at the center of the left side of the rectangular plate. Slide rails are installed on the left and right sides of the inner wall of the rectangular outer shell. Triangular blocks are slidably connected to the front and back of the top of the rectangular outer shell. Two of the triangular blocks are mirror images of each other with the rectangular outer shell as the center. A trapezoidal protrusion is located at the center of each of the two rectangular outer shells. The outer wall of the trapezoidal protrusion is slidably connected to the slide rails. The inclined surface of the trapezoidal protrusion contacts the inclined surface of the triangular block. A groove is formed at the center of the inclined surface of each of the two triangular blocks on the side closest to each other. The trapezoidal protrusion has protrusions installed on both its front and back sides. The protrusions of the trapezoidal protrusion are slidably connected to the inner wall of the slide groove. A lead screw is rotatably connected to the bottom center of the trapezoidal protrusion. The lead screw passes through the rectangular shell and extends downward. A knob is installed at the bottom of the lead screw. The lead screw is threadedly connected to the rectangular shell. A clamping block is installed on the top of the triangular block. A protrusion is set at the center of the two clamping blocks. The protrusion and the clamping block are adapted to each other. By setting the slide rail, the vertical displacement of the trapezoidal protrusion can be limited to prevent the triangular block and the trapezoidal protrusion from getting stuck due to deflection.

[0020] Among them, the two clamping blocks are equipped with irregularly shaped protrusions at the center of one side close to each other. The front and back of the protrusions are provided with irregularly shaped grooves, and the outer wall of the clamping block protrusions is inserted into the inner wall of the protrusion grooves.

[0021] Furthermore, the unloading assembly includes a filter plate installed at the bottom of the hopper. A discharge valve is provided below the hopper and installed at the center of the bottom of the hopper. A valve handle is installed on the left side of the discharge valve. The discharge valve can discharge the condensate collected inside the upper and lower hoppers to the outside, and the valve handle can control the operation of the discharge valve.

[0022] The discharge valve is connected to the inside of the discharge hopper.

[0023] Furthermore, the fixing assembly includes a large ring, a gear ring rotatably connected to the right side of the large ring, and a gear extending to the left through the fixing plate and rotatably connected to the left side of the gear. The right side of the gear ring is connected to the left side of a small ring via several connectors. Three rotating blocks are rotatably connected between the small ring and the connectors. The rotating blocks are sleeved on the outside of the slide rod, and the slide rod is slidably connected to the rotating blocks. A motor is provided on the left side of the gear, and the right side of the motor is mounted on the left outer wall of the large ring. The coupling at the output end of the motor on the right side is mounted on the left outer wall of the gear. By setting the meshing connection between the gear ring and the gear, the rotation of the gear can drive the gear ring to rotate, thereby driving the slide rod to clamp the item.

[0024] The fixing component includes a circular outer shell, which is fitted around the outside of the small circular ring. The left outer wall of the circular outer shell is installed on the right outer wall of the large circular ring. Several slots are opened on the outer walls of the three sliding rods that are close to each other.

[0025] Furthermore, the auxiliary components include a drain pipe and an L-shaped conduit. The drain pipe is located at the bottom center of the top cover, and its rear bottom is installed on the top outer wall of the air source water heater. The left side of the drain pipe extends through the large ring into the L-shaped conduit. By setting the top cover, the drain pipe can be protected from the outside to prevent it from breaking due to factors such as gravel, ensuring that the drain pipe can stably deliver the air source water heater into the L-shaped conduit.

[0026] The bottom of the L-shaped conduit penetrates the feeding hopper and extends downwards, and the outer wall of the L-shaped conduit is installed on the inner wall of the feeding hopper where it is penetrated.

[0027] This utility model has the following beneficial effects:

[0028] 1. This utility model features a collection mechanism. Specifically, rotating the knob clockwise causes the lead screw to move the trapezoidal protrusion downwards, allowing the triangular block to slide along the inclined surface of the trapezoidal protrusion. The two triangular blocks then move the clamping blocks closer together, ultimately connecting the two clamping blocks to the protrusion. This allows for control of the installation and disassembly of the hopper by rotating the knob, facilitating regular cleaning of the container's interior and timely removal of scale. This prevents scale buildup that could lead to corrosion and damage, thus ensuring the container's lifespan.

[0029] 2. This utility model uses a fixing mechanism, specifically, starting a motor to rotate a gear. When the gear rotates, it will drive the bottom gear ring to rotate in the opposite direction through meshing. This causes the rotating block between the gear and the small ring to move while pulling the sliding rod to rotate, causing several sliding rods to converge towards the center of the gear ring. This fixes the guide pipe at the center of the gear ring, preventing the guide pipe from slipping off the center of the fixing component and failing to collect condensate, thus ensuring the stable operation of the collection component.

[0030] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0031] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0032] Figure 1This is a schematic diagram of the overall structure of this utility model;

[0033] Figure 2 This is a schematic cross-sectional view of the feeding hopper of this utility model;

[0034] Figure 3 This is a schematic diagram of the trapezoidal protrusion structure of this utility model;

[0035] Figure 4 This is a schematic cross-sectional view of the top cover of this utility model;

[0036] Figure 5 This is a schematic diagram of the toothed ring structure of this utility model.

[0037] The attached diagram lists the components represented by each number as follows:

[0038] 1. Collection mechanism; 11. Air source heat pump assembly; 111. Air source heat pump water heater; 112. Bracket; 12. Collection assembly; 121. Fixing plate; 122. Slot; 1231. Feed hopper; 1232. Discharge hopper; 1241. Rectangular plate one; 1242. Rectangular plate two; 1243. Insert block; 1251. Rectangular shell; 1252. Slide rail; 1261. Triangular block; 1262. Trapezoidal protrusion; 127. Slide groove; 1281. Lead screw; 1282. Knob; 1291. Protrusion; 1292. Clamping block; 13. Unloading assembly; 131. Filter plate; 132. Unloading valve; 133. Valve handle; 2. Fixing mechanism; 21. Fixing assembly; 211. Large ring; 212. Gear ring; 213. Gear; 214. Small ring; 215. Connector; 216. Slide rod; 217. Rotating block; 218. Motor; 219. Ring housing; 22. Auxiliary assembly; 221. Top cover; 222. Drain pipe; 223. L-shaped conduit. Detailed Implementation

[0039] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.

[0040] Please see Figures 1-5As shown, this utility model is an air source water heater with a condensate recovery device. It includes a collection mechanism 1 comprising an air source water heater 111. A fixing plate 121 is provided on the left side of the air source water heater 111. A feeding hopper 1231 is installed on the top left side of the fixing plate 121, and a discharging hopper 1232 is installed below the feeding hopper 1231. A circular hole is opened at the top of the feeding hopper 1231, and the drain pipe of the air source water heater 111 is inserted into the circular ring at the top of the feeding hopper 1231. The fixing mechanism 2 includes a gear ring 212, with a gear 213 meshing at the top of the gear ring 212. Three sliding rods 216 are rotatably connected to the right side of the gear ring 212. The drain pipe of the air source water heater 111 is inserted into the circular ring at the top of the feeding hopper 1231 to collect condensate, and the drain pipe of the air source water heater 111 is positioned at the center of the three sliding rods 216 to fix the drain pipe. The collection mechanism 1 includes an air-source heat pump assembly 11, which is used to maintain the balance of the collection mechanism 1; a collection assembly 12, which is located to the left of the air-source heat pump assembly 11 and is in contact with the air-source heat pump assembly 11; and a discharge assembly 13, which is located at the bottom of the discharge assembly 13 and is used to discharge accumulated water; wherein the top of the discharge assembly 13 extends into the interior of the collection assembly 12. The fixing mechanism 2 includes a fixing assembly 21, which is located on top of the collection assembly 12 and has a conduit inside; and an auxiliary assembly 22, which is located outside the fixing assembly 21 and extends to the top of the collection assembly 12 on its left side; wherein the fixing assembly 21 is in contact with the fixing assembly 21. The air source heat pump assembly 11 includes a bracket 112, which is sleeved on the outer side of the bottom outer wall of the air source heat pump water heater 111. The inner wall of the bracket 112 is installed on the bottom outer wall of the air source heat pump water heater 111. The collection assembly 12 includes two slots 122, which are respectively installed on the top and bottom of the left side of the fixing plate 121. The upper hopper 1231 is located on the left side of the top slot 122, and the lower hopper 1232 is located on the left side of the bottom slot 122. A rectangular plate 1241 is installed on the left side of the upper hopper 1231, and a rectangular plate 2 1242 is installed on the left side of the lower hopper 1232. The rectangular plate 1241 and the rectangular plate 2 1242 are mirror images of each other. Insert blocks 1243 are installed at the four corners on the right side of the rectangular plate 1241 and the rectangular plate 2 1242. The insert blocks 1243 are inserted into the slots 122.The air source heat pump assembly 11 includes a rectangular housing 1251, which is mounted at the center of the left side of a rectangular plate 1242. Slide rails 1252 are mounted on the left and right sides of the inner wall of the rectangular housing 1251. Triangular blocks 1261 are slidably connected to the front and back of the top of the rectangular housing 1251. The two triangular blocks 1261 are mirror images of the rectangular housing 1251. A trapezoidal protrusion 1262 is located at the center of the two rectangular housings 1251. The outer wall of the trapezoidal protrusion 1262 is connected to the slide rail 1251. 2. Sliding connection: The inclined surface of the trapezoidal protrusion 1262 contacts the inclined surface of the triangular block 1261. A groove 127 is provided at the center of the inclined surface of each of the two triangular blocks 1261 on their closest sides. Protrusions are installed on both the front and back of the trapezoidal protrusion 1262. The protrusions of the trapezoidal protrusion 1262 are slidably connected to the inner wall of the groove 127. A lead screw 1281 is rotatably connected to the center of the bottom of the trapezoidal protrusion 1262. The lead screw 1281 passes through the rectangular outer shell 1251 and extends downwards. A knob 1282 is installed at the bottom of the lead screw 1281. The lead screw 1281 is threadedly connected to the rectangular housing 1251. A clamping block 1292 is mounted on the top of the triangular block 1261. A protrusion 1291 is provided at the center of the two clamping blocks 1292, and the protrusion 1291 is adapted to the clamping block 1292. Rotating the knob 1282 clockwise causes the lead screw 1281 to drive the trapezoidal protrusion 1262 downward, causing the triangular block 1261 to slide along the inclined surface of the trapezoidal protrusion 1262. The two triangular blocks 1261 drive the clamping blocks 1292 to move closer to each other, ultimately bringing the two clamping blocks 1292 closer together. The 92 is inserted into the protrusion 1291, so that the installation and disassembly of the hopper 1232 can be controlled by rotating the knob 1282. This facilitates regular cleaning of the container and timely removal of scale, preventing scale buildup and corrosion damage, and ensuring the service life of the container. Two clamping blocks 1292 have irregularly shaped protrusions installed at their center points on one side. Both the front and back of the protrusions 1291 have irregularly shaped grooves, and the outer wall of the protrusions of the clamping blocks 1292 is inserted into the inner wall of the grooves of the protrusions 1291. The unloading assembly 13 includes a filter plate 131, which is installed at the bottom of the hopper 1232. A discharge valve 132 is located below the hopper 1232, at the center of the bottom. A valve handle 133 is installed on the left side of the discharge valve 132. The discharge valve 132 is connected to the interior of the hopper 1232.The fixed assembly 21 includes a large ring 211, a gear ring 212, and a gear 213 rotatably connected to the right side of the large ring 211. The gear 213 extends to the left through the fixed plate 121 and is rotatably connected to the gear 213. The right side of the gear ring 212 is connected to the left side of a small ring 214 via several connectors 215. Three rotating blocks 217 are rotatably connected between the small ring 214 and the connectors 215. The rotating blocks 217 are sleeved on the outside of the slide rod 216, and the slide rod 216 is slidably connected to the rotating blocks 217. A motor 218 is provided on the left side of the gear 213. The right side of the motor 218 is mounted on the left outer wall of the large ring 211. The coupling at the right output end of the motor 218 is mounted on the left outer wall of the gear 213. Starting the motor 218 causes the gear 213 to rotate. When gear 213 rotates, it drives the bottom gear ring 212 to rotate in the opposite direction through meshing connection. This causes the rotating block 217 between gear 213 and small ring 214 to pull the slide rod 216 to rotate while it is displaced. This causes several slide rods 216 to converge towards the center of gear ring 212, fixing the guide tube at the center of gear ring 212. This prevents the guide tube from slipping off the center of the fixing component 21 and failing to collect condensate, ensuring that the collection component 12 can operate stably. The fixing component 21 includes a ring shell 219, which is sleeved on the outside of small ring 214. The left outer wall of the ring shell 219 is installed on the right outer wall of large ring 211. Several slots are opened on the outer walls of the three slide rods 216 that are close to each other. The auxiliary component 22 includes a drain pipe 222 and an L-shaped conduit 223. The drain pipe 222 is located at the bottom center of the top cover 221. The rear bottom of the drain pipe 222 is installed on the top outer wall of the air source water heater 111. The left side of the drain pipe 222 extends through the large ring 211 into the L-shaped conduit 223. The bottom of the L-shaped conduit 223 penetrates the feed hopper 1231 and extends downward. The outer wall of the L-shaped conduit 223 is installed on the inner wall of the feed hopper 1231 where it is penetrated.

[0041] A specific application of this embodiment is as follows: In use, firstly, the bracket 112 is installed on the left side of the air source water heater 111, the top cover 221 is installed at the center of the top of the air source water heater 111, then the drain pipe 222 is installed on the rear side of the top of the air source water heater 111, and then the drain pipe 222 passes through the annular outer shell 219 on the left side, so that the drain pipe 222 is connected to the L-shaped conduit 223. Then the motor 218 causes the gear 213 to drive the gear ring 212 to move in the opposite direction through meshing connection, and at the same time, it drives the rotating block 217 to move, so that the rotating block 217 pulls the three slide rods 216 closer to each other through sliding connection and positions the drain pipe 222 at the center of the annular outer shell 219.

[0042] Next, start the air source water heater 111 to put it into working condition. When the air source water heater 111 is working, it will produce condensate. This condensate will be sent into the drain pipe 222, and then into the L-shaped conduit 223 through the drain pipe 222. Finally, the condensate will be sent into the upper hopper 1231 and the lower hopper 1232. After passing through the filter plate 131 and undergoing simple filtration, it will be collected at the bottom of the lower hopper 1232. When the condensate in the lower hopper 1232 reaches a certain capacity, the valve handle 133 can be turned to discharge the condensate from the discharge valve 132. This collected condensate can be reused to reduce water waste.

[0043] Finally, after prolonged use, scale and other corrosive substances will accumulate on the inner walls of the feeding hopper 1231 and the discharging hopper 1232, affecting their service life. They require continued cleaning. When the knob 1282 is turned clockwise to rotate the lead screw 1281, the lead screw 1281 will gradually spiral downwards, causing the trapezoidal protrusion 1262 to shift. This causes the triangular blocks 1261 on the front and back of the trapezoidal protrusion 1262 to gradually move closer together, allowing the clamping block 1292 to be inserted into the protrusion 1291, completing the installation of the feeding hopper 1231 and the discharging hopper 1232. When the knob 1282 is turned counterclockwise to rotate the lead screw... When 1281 rotates, the lead screw 1281 will gradually spiral downward, causing the trapezoidal protrusion 1262 to gradually move upward and push the two triangular blocks 1261 away from each other, separating the protrusion 1291 from the clamping block 1292. Then, the rectangular plate one 1241 and the rectangular plate two 1242 are pulled forward to pull the insert 1243 out of the slot 122. Then, the feed hopper 1232 is removed and the feed hopper 1231 is removed. Then, the inner walls of the feed hopper 1231 and the feed hopper 1232 are carefully cleaned with cleaning fluid to prevent residual scale from corroding the inner walls of the feed hopper 1231 and the feed hopper 1232 and affecting their working performance. After cleaning, the feed hopper 1231 and the feed hopper 1232 are reset for the next round of collection.

[0044] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0045] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the present utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the present utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.

Claims

1. An air source heat pump water heater with a condensate recovery device, characterized in that, include: The collection mechanism (1) includes an air source water heater (111), a fixing plate (121) is provided on the left side of the air source water heater (111), a feeding hopper (1231) is installed on the top left side of the fixing plate (121), a feeding hopper (1232) is installed below the feeding hopper (1231), a round hole is opened on the top of the feeding hopper (1231), and the drain pipe of the air source water heater (111) is inserted into the ring at the top of the feeding hopper (1231); The fixing mechanism (2) includes a toothed ring (212), the top of which is meshed with a gear (213), and the right side of the toothed ring (212) is rotatably connected with three slide rods (216). The drain pipe of the air source water heater (111) is inserted into the top ring of the feed hopper (1231) to collect condensate, and the drain pipe of the air source water heater (111) is set at the center of the three slide bars (216) to fix the drain pipe.

2. An air source heat pump water heater with a condensate recovery device according to claim 1, characterized in that, The collection mechanism (1) includes an air energy component (11) for maintaining the balance of the collection mechanism (1); A collection component (12) is disposed on the left side of the air energy component (11) and is in contact with the air energy component (11); Discharge assembly (13), wherein the discharge assembly (13) is disposed at the bottom of the discharge assembly (13), and the discharge assembly (13) is used to discharge accumulated water; The top of the unloading assembly (13) extends into the interior of the collecting assembly (12).

3. An air source heat pump water heater with a condensate recovery device according to claim 1, characterized in that, The fixing mechanism (2) includes a fixing component (21), which is disposed on the top of the collecting component (12), and a conduit is disposed inside the fixing component (21); An auxiliary component (22) is disposed outside the fixing component (21), and the left side of the auxiliary component (22) extends into the top of the collecting component (12); The fixing component (21) is in contact with the fixing component (21).

4. An air source water heater with a condensate recovery device according to claim 2, characterized in that, The air source heat pump assembly (11) includes a bracket (112), which is sleeved on the outer side of the bottom outer wall of the air source heat pump water heater (111), and the inner wall of the bracket (112) is installed on the bottom outer wall of the air source heat pump water heater (111). The collecting component (12) includes two slots (122), which are respectively installed on the top and bottom of the left side of the fixing plate (121). The feeding hopper (1231) is located on the left side of the top slot (122), and the feeding hopper (1232) is located on the left side of the bottom slot (122). A rectangular plate one (1241) is installed on the left side of the feeding hopper (1231), and a rectangular plate two (1242) is installed on the left side of the feeding hopper (1232). The rectangular plate one (1241) and the rectangular plate two (1242) are mirror images of each other. Among them, the four corners on the right side of the first rectangular plate (1241) and the second rectangular plate (1242) are each equipped with a plug (1243), and the plug (1243) is inserted into the slot (122).

5. An air source water heater with a condensate recovery device according to claim 4, characterized in that, The air energy component (11) includes a rectangular shell (1251), which is installed at the center of the left side of the rectangular plate (1242). Slide rails (1252) are installed on the left and right sides of the inner wall of the rectangular shell (1251). Triangular blocks (1261) are slidably connected to the front and back of the top of the rectangular shell (1251). Two triangular blocks (1261) are mirror images of each other with the rectangular shell (1251) as the center. A trapezoidal protrusion (1262) is provided at the center of the two rectangular shells (1251). The outer wall of the trapezoidal protrusion (1262) is slidably connected to the slide rail (1252). (1262) The inclined surface contacts the inclined surface of the triangular block (1261). A groove (127) is provided at the center of the inclined surface of each of the two triangular blocks (1261) on one side. A protrusion is installed on both the front and back of the trapezoidal protrusion (1262). The protrusion of the trapezoidal protrusion (1262) is slidably connected to the inner wall of the groove (127). A lead screw (1281) is rotatably connected to the center of the bottom of the trapezoidal protrusion (1262). The lead screw (1281) penetrates the rectangular outer shell (1251) and extends downwards. A knob (1282) is installed at the bottom of the lead screw (1281). The lead screw (1281) is threadedly connected to the rectangular outer shell (1251). A clamping block (1292) is installed on the top of the triangular block (1261), and a protrusion (1291) is provided at the center of the two clamping blocks (1292), and the protrusion (1291) is adapted to the clamping block (1292); Among them, the two clamping blocks (1292) are equipped with irregular protrusions at the center of one side of each other. The front and back of the protrusions (1291) are provided with irregular grooves. The outer wall of the protrusion of the clamping block (1292) is inserted into the inner wall of the groove of the protrusion (1291).

6. An air source heat pump water heater with a condensate recovery device according to claim 2, characterized in that, The unloading assembly (13) includes a filter plate (131), which is installed at the bottom inside the hopper (1232). A discharge valve (132) is provided below the hopper (1232), which is installed at the center of the bottom of the hopper (1232). A valve handle (133) is installed on the left side of the discharge valve (132). The unloading valve (132) is internally connected to the unloading hopper (1232).

7. An air source heat pump water heater with a condensate recovery device according to claim 3, characterized in that, The fixing component (21) includes a large ring (211), the large ring (211), the gear ring (212) is rotatably connected to the right side of the large ring (211), the gear (213) extends to the left through the fixing plate (121) and is rotatably connected, the right side of the gear ring (212) is connected to the left side of the small ring (214) through several connectors (215), the small ring (214) and the connectors (215) are rotatably connected by three rotating blocks (217), the rotating blocks (217) are sleeved on the outside of the slide rod (216), the slide rod (216) and the rotating blocks (217) are slidably connected, a motor (218) is provided on the left side of the gear (213), the right side of the motor (218) is installed on the left outer wall of the large ring (211), and the coupling at the right output end of the motor (218) is installed on the left outer wall of the gear (213); The fixing component (21) includes a circular outer shell (219), which is fitted on the outside of the small circular ring (214). The left outer wall of the circular outer shell (219) is installed on the right outer wall of the large circular ring (211). Several slots are opened on the outer walls of the three sliding rods (216) that are close to each other.

8. An air source heat pump water heater with a condensate recovery device according to claim 3, characterized in that, The auxiliary component (22) includes a drain pipe (222) and an L-shaped conduit (223). The drain pipe (222) is located at the bottom center of the top cover (221). The bottom rear side of the drain pipe (222) is installed on the top outer wall of the air source water heater (111). The left side of the drain pipe (222) extends through the large ring (211) into the L-shaped conduit (223). The bottom of the L-shaped conduit (223) penetrates the feed hopper (1231) and extends downwards, and the outer wall of the L-shaped conduit (223) is installed on the inner wall of the feed hopper (1231) where it is penetrated.