Intelligent household communication equipment terminal processor cooling device
By combining the sealing and fixing mechanisms, along with the insulating liquid delivery and water cooling mechanisms, the problems of low effectiveness and significant environmental impact of terminal processor cooling methods are solved, achieving efficient and stable cooling and extending the service life of the terminal processor.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- 罗思强
- Filing Date
- 2021-12-22
- Publication Date
- 2026-07-24
AI Technical Summary
Existing terminal processor cooling methods are not very effective and are greatly affected by the environment. In particular, they can easily cause short circuits or open circuits in high humidity or dry environments, affecting the normal operation of the system.
It employs a combination of sealing and fixing mechanisms, heat dissipation through heat-conducting metal, and a combination of insulating liquid delivery and water cooling mechanisms. It utilizes the circulation of insulating liquid and coolant for cooling, and works with a control module to achieve automated control.
It improves cooling efficiency, reduces the impact of environmental factors on the terminal processor, extends its service life, and enhances system stability and efficiency.
Smart Images

Figure CN114449842B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to a terminal processor cooling device, and more particularly to a terminal processor cooling device for smart home communication devices. Background Technology
[0002] With the rapid development of information and digital technologies, terminal processors are evolving at an increasingly fast pace, leading to a surge in the number of smart terminal processors configured and used in households. Terminal processors generate heat during operation, and if this heat is not dissipated effectively, it directly impacts their lifespan. Currently, to ensure normal operation, most terminal processors employ top-mounted fans for cooling. However, this fan-based cooling method is highly susceptible to environmental temperature fluctuations, affecting its effectiveness. High humidity can also cause short circuits, while dry air can easily lead to dust accumulation and open circuits, thus disrupting the system's normal operation.
[0003] Therefore, there is a need to develop a cooling device for the terminal processor of smart home communication devices that is highly effective in cooling and less affected by the environment. Summary of the Invention
[0004] In order to overcome the shortcomings of existing cooling methods, such as low effectiveness and significant environmental impact, the technical problem of this invention is to provide a cooling device for the terminal processor of a smart home communication device that has high cooling effectiveness and is less affected by the environment.
[0005] Technical solution: A cooling device for the terminal processor of a smart home communication device, comprising:
[0006] The device comprises a housing, a first mounting block, a first mounting rod, a top cover, a support mechanism, and a mounting mechanism. The housing is provided with multiple first mounting blocks evenly distributed on it. Each first mounting block has a first mounting rod slidably mounted inside it. The top cover is connected between the upper parts of the first mounting rods. The housing is provided with a support mechanism, and the support mechanism is provided with a mounting mechanism.
[0007] Furthermore, it is particularly preferred that the support mechanism includes a locking block, a first telescopic rod, a second mounting rod, and a fixing rod. The locking blocks are symmetrically arranged on both sides of the housing, and each locking block is equipped with a spring. The first telescopic rods are symmetrically arranged on both sides of the housing, and each first telescopic rod is equipped with a first elastic element. The tops of the first telescopic rods on the same vertical side are connected to the second mounting rods, and each second mounting rod is equipped with a fixing rod.
[0008] Furthermore, it is particularly preferred that the installation mechanism includes a holding bucket, a first guide rod, a first spring, and a second mounting block. The holding bucket is connected to one side of the fixing rod, and the first guide rods are symmetrically arranged on both sides of the holding bucket. The upper part of each first guide rod is slidably connected to a second mounting block, and the bottom of each second mounting block is connected to a first spring between itself and the first guide rod on the same side.
[0009] In addition, it is particularly preferred that a sealing mechanism is also included, which includes an electric push rod, a third mounting block, a sealing cover, a trigger switch, a pressure rod and a distance sensor. The container is symmetrically provided with electric push rods, and the upper part of the extension rod of the electric push rod is provided with a third mounting block. A sealing cover is provided between one side of the third mounting block. A trigger switch is provided on the top of the sealing cover, a pressure rod is provided at the bottom of the sealing cover, and a distance sensor is provided on the upper part of the pressure rod.
[0010] Furthermore, it is particularly preferred that the device also includes a fixing mechanism, which includes a base frame, a sealing plate, a heat-conducting metal, a second guide rod, a second spring, and a limiting block. The base frame is connected to one side of the second mounting block, and the base frame is provided with second guide rods on all four sides. A limiting block is slidably provided on each of the second guide rods, and a sealing plate is slidably placed between the tops of the limiting blocks. The top of the sealing plate and the bottom of the base frame are provided with heat-conducting metal, and a second spring is connected between each limiting block and the lower side of the second guide rod on the same side.
[0011] Furthermore, it is particularly preferred that the device also includes an insulating liquid delivery mechanism, which includes a first fixing bolt, an insulating liquid storage tank, a first water pipe, a first solenoid valve, a first water pump, a liquid level sensor, a second solenoid valve, and a second water pump. The insulating liquid storage tank is installed between the two sides of the second mounting rod. The first fixing bolts are symmetrically installed on the insulating liquid storage tank, and the first fixing bolts fix the insulating liquid storage tank to the second mounting rod. A first water pipe is provided between the bottom of the container and the bottom of the insulating liquid storage tank. A first solenoid valve is provided on one side of the first water pipe, a second solenoid valve is provided on one side of the first water pipe, a first water pump is provided on one side of the first water pipe, a second water pump is provided on one side of the first water pipe, and a liquid level sensor is provided on one side of the container.
[0012] Furthermore, it is particularly preferred that the device also includes a water cooling mechanism, which includes a second fixing bolt, a water tank, a second water pipe, a third water pump, and a temperature sensor. The water tank is installed between the two sides of the second mounting rod, and the second fixing bolts are symmetrically installed on the water tank. The second fixing bolts fix the water tank to the second mounting rod. The second water pipes are symmetrically arranged on both sides of the container, and the second water pipes are located inside the water tank. The third water pump is located in the middle of one side of the second water pipe, and the temperature sensor is located on one side of the container.
[0013] Furthermore, preferably, it also includes a control box, which is located at the bottom of the top cover. The control box includes a switching power supply, a power module, and a control module. The switching power supply supplies power to the entire device, and its output terminal is electrically connected to the power module. The power module is connected to a main power switch via a circuit, and the power module is electrically connected to the control module. The control module is connected to a DS1302 clock circuit and a 24C02 circuit. The temperature sensor, liquid level sensor, distance sensor, and trigger switch are all electrically connected to the control module. The first solenoid valve, the second solenoid valve, the first water pump, the second water pump, the third water pump, and the electric push rod are all connected to the control module via a relay control module.
[0014] The present invention has the following advantages: 1. The present invention prevents external factors from interfering with the operation of the terminal processor through the cooperation between the sealing mechanism and the fixing mechanism, and can extend the service life of the terminal processor.
[0015] 2. The cooling effect of this equipment is improved by the cooperation between the insulating liquid delivery mechanism and the water cooling mechanism, thereby increasing the working efficiency of the equipment. Attached Figure Description
[0016] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0017] Figure 2 This is a schematic diagram of the first partial three-dimensional structure of the present invention.
[0018] Figure 3 This is a three-dimensional structural diagram of the support mechanism of the present invention.
[0019] Figure 4 This is a three-dimensional structural diagram of the installation mechanism of the present invention.
[0020] Figure 5 This is a three-dimensional structural diagram of the first part of the sealing mechanism of the present invention.
[0021] Figure 6 This is a three-dimensional structural diagram of the second part of the sealing mechanism of the present invention.
[0022] Figure 7 This is a three-dimensional structural diagram of the first part of the fixing mechanism of the present invention.
[0023] Figure 8 This is a three-dimensional structural diagram of the second part of the fixing mechanism of the present invention.
[0024] Figure 9 This is a three-dimensional structural diagram of the first part of the insulating liquid delivery mechanism of the present invention.
[0025] Figure 10 This is a three-dimensional structural diagram of the second part of the insulating liquid delivery mechanism of the present invention.
[0026] Figure 11 This is a three-dimensional structural diagram of the third part of the insulating liquid delivery mechanism of the present invention.
[0027] Figure 12 This is a three-dimensional structural diagram of the first part of the water-cooling mechanism of the present invention.
[0028] Figure 13 This is a three-dimensional structural diagram of the second part of the water-cooling mechanism of the present invention.
[0029] Figure 14 This is a schematic diagram of the second partial three-dimensional structure of the present invention.
[0030] Figure 15 This is a circuit block diagram of the present invention.
[0031] Figure 16 This is the circuit schematic diagram of the present invention.
[0032] The above-mentioned drawings include the following reference numerals: 1. Housing; 2. First mounting block; 3. First mounting rod; 4. Top cover; 41. Control box; 5. Support mechanism; 51. Locking block; 52. First telescopic rod; 53. Second mounting rod; 54. Fixing rod; 6. Mounting mechanism; 61. Container; 62. First guide rod; 63. First spring; 64. Second mounting block; 7. Sealing mechanism; 71. Electric push rod; 72. Third mounting block; 73. Sealing cover; 74. Trigger switch; 75. Pressure rod; 76. Distance sensor; 8. Fixed mechanism, 81. Base frame, 82. Sealing plate, 83. Thermally conductive metal, 84. Second guide rod, 85. Second spring, 86. Limiting block, 9. Insulating liquid conveying mechanism, 91. First fixing bolt, 92. Insulating liquid storage tank, 93. First water pipe, 94. First solenoid valve, 95. First water pump, 96. Liquid level sensor, 97. Second solenoid valve, 98. Second water pump, 10. Water cooling mechanism, 101. Second fixing bolt, 102. Water tank, 103. Second water pipe, 104. Third water pump, 105. Temperature sensor. Detailed Implementation
[0033] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0034] Example 1
[0035] A cooling device for the terminal processor of a smart home communication device, such as Figure 1-4As shown, it includes a housing 1, a first mounting block 2, a first mounting rod 3, a top cover 4, a support mechanism 5, and a mounting mechanism 6. Four first mounting blocks 2 are evenly arranged on the upper side inside the housing 1. The first mounting rod 3 is slidably arranged inside each of the first mounting blocks 2. The top cover 4 is connected between the upper parts of the four first mounting rods 3. The support mechanism 5 is provided inside the housing 1, and the mounting mechanism 6 is provided on the support mechanism 5.
[0036] The support mechanism 5 includes a locking block 51, a first telescopic rod 52, a second mounting rod 53, and a fixing rod 54. The locking blocks 51 are symmetrically arranged on the left and right sides of the middle of the inside of the housing 1. Each locking block 51 is equipped with a spring. The first telescopic rods 52 are symmetrically arranged on the left and right sides of the bottom of the inside of the housing 1. Each first telescopic rod 52 is equipped with a first elastic element. The top of each first telescopic rod 52 on the same vertical side is connected to a second mounting rod 53. Each second mounting rod 53 is equipped with a fixing rod 54 in the middle of its inner side.
[0037] The mounting mechanism 6 includes a container 61, a first guide rod 62, a first spring 63, and a second mounting block 64. The container 61 is connected to the inner side of the fixing rod 54. The container 61 is symmetrically provided with first guide rods 62 on both the left and right sides inside the container 61. The upper part of the first guide rod 62 is slidably connected to the second mounting block 64. The bottom of the second mounting block 64 is connected to the first guide rod 62 on the same side with the first spring 63.
[0038] Users press the main power switch to power on the device, place the terminal processor into the container 61, and mount it between the second mounting blocks 64 to prevent it from shaking due to external installation. Then, manually move the top cover 4 downwards to seal the entire device and prevent external factors from interfering with the terminal processor's operation. The terminal processor generates heat during operation; if this heat is not released, it will affect its lifespan. Since the container 61 is made of metal and has internal space, the heat generated by the terminal processor can be dissipated through the thermal conductivity of the metal, thus achieving cooling.
[0039] Example 2
[0040] Based on Example 1, such as Figure 1 , Figure 2 and Figure 5-13 As shown, it also includes a sealing mechanism 7, which includes an electric push rod 71, a third mounting block 72, a sealing cover 73, a trigger switch 74, a pressure rod 75, and a distance sensor 76. The container 61 is symmetrically provided with electric push rods 71 on the front and back of the outer side. The upper part of the telescopic rod of the electric push rod 71 is provided with a third mounting block 72. The inner side of the third mounting block 72 is provided with a sealing cover 73. The top of the sealing cover 73 is provided with a trigger switch 74. The bottom of the sealing cover 73 is provided with a pressure rod 75. The upper part of the pressure rod 75 is provided with a distance sensor 76.
[0041] It also includes a fixing mechanism 8, which includes a base frame 81, a sealing plate 82, a heat-conducting metal 83, a second guide rod 84, a second spring 85, and a limiting block 86. The base frame 81 is connected to the inner side of the second mounting block 64. The bottom of the base frame 81 is provided with the second guide rod 84 on all four sides. The limiting block 86 is slidably provided on the second guide rod 84. The sealing plate 82 is slidably placed on the top of the limiting block 86. The top of the sealing plate 82 and the bottom of the base frame 81 are provided with heat-conducting metal 83. The limiting block 86 is connected to the lower side of the second guide rod 84 on the same side with the second spring 85.
[0042] After the equipment is powered on, the control module controls the distance sensor 76 to work. Users manually open the sealing plate 82, place the terminal processor into the container 61, and then reset the sealing plate 82. Users manually press down on the top cover 4, causing it to move downwards until it contacts the trigger switch 74. Pressing the trigger switch 74 sends a signal, which the control module receives and activates the electric push rod 71. The electric push rod 71 extends and retracts, causing the third mounting block 72, the trigger switch 74, and the sealing cover 73 to move downwards. This, in turn, causes the distance sensor 76 and the pressure rod 75 to move downwards. When the pressure rod 75 moves downwards and contacts the second mounting block 64, it causes the second mounting block 64 and its upper components to move downwards. As the component moves downward, the first spring 63 is compressed. When the pressure rod 75 moves downward and contacts the upper heat-conducting metal 83, it drives the upper heat-conducting metal 83 downward, which in turn drives the sealing plate 82 downward. The sealing plate 82 drives the limiting block 86 downward. At this time, the second spring 85 is compressed. After the distance sensor 76 detects that the distance between itself and the container 61 has reached the minimum preset value, it sends a signal. The control module receives the signal and controls the electric push rod 71 to stop. When the sealing cover 73 is sealed, the top cover 4 continues to move downward. The top cover 4 drives the container 61 downward, and the container 61 drives the second mounting rod 53 and the fixing rod 54 downward. At this time, the first telescopic rod 52 and the spring... When the component is compressed, the second mounting rod 53 moves downwards to contact the locking block 51, causing the locking block 51 and the spring to compress. When the second mounting rod 53 moves downwards to separate from the locking block 51, the spring returns to its original position, causing the locking block 51 to return to its original position, thus locking the second mounting rod 53. This makes the terminal processor more securely fixed, and the heat-conducting metal 83 improves the heat dissipation performance of the device. When the terminal processor stops running, the user manually moves the top cover 4 upwards to reset it, and then manually presses the trigger switch 74. The trigger switch 74 sends a signal, and the control module receives the signal to control the electric push rod 71 to start again. The electric push rod 71 extends and retracts, moving the sealing cover 73. The trigger switch 74, the third mounting block 72, the distance sensor 76, and the pressure rod 75 are reset. At this time, the first spring 63 is reset, which drives the second mounting block 64 and above to reset. At the same time, the second spring 85 is reset, which drives the limit block 86 and above to reset. After the distance sensor 76 detects that the distance between itself and the container 61 has reached the maximum preset value, it sends a signal. The control module receives the signal and controls the electric push rod 71 to stop working. At the same time, people manually press the locking block 51, which separates the locking block 51 from the second mounting rod 53. At this time, the elastic element is reset, which drives the first telescopic rod 52, the second mounting rod 53, the fixing rod 54, and the container 61 to reset. The container 61 drives the above components to reset.
[0043] It also includes an insulating liquid conveying mechanism 9, which includes a first fixing bolt 91, an insulating liquid storage tank 92, a first water pipe 93, a first solenoid valve 94, a first water pump 95, a liquid level sensor 96, a second solenoid valve 97, and a second water pump 98. The insulating liquid storage tank 92 is installed between the front sides of the second mounting rod 53. The first fixing bolts 91 are symmetrically installed on the left and right sides of the insulating liquid storage tank 92. The first fixing bolts 91 fix the insulating liquid storage tank 92 to the second mounting rod 53. The bottom of the holding tank 61 is provided between the bottom of the holding tank 61 and the bottom of the insulating liquid storage tank 92. The first solenoid valve 94 is provided on the left side of the first water pipe 93, and the second solenoid valve 97 is provided on the right side of the first water pipe 93. The first water pump 95 is provided on the left front side of the first water pipe 93, and the second water pump 98 is provided on the right front side of the first water pipe 93. The liquid level sensor 96 is provided on the upper right side of the holding tank 61.
[0044] It also includes a water cooling mechanism 10, which includes a second fixing bolt 101, a water tank 102, a second water pipe 103, a third water pump 104, and a temperature sensor 105. The water tank 102 is installed between the rear sides of the second mounting rod 53. The second fixing bolt 101 is symmetrically installed on the left and right sides of the water tank 102. The second fixing bolt 101 fixes the water tank 102 to the second mounting rod 53. The second water pipe 103 is symmetrically arranged on the left and right sides of the holding bucket 61. The second water pipe 103 is located inside the water tank 102. The third water pump 104 is located in the middle of the second water pipe 103 on the left side. The temperature sensor 105 is located on the upper left side of the holding bucket 61.
[0045] After the device is powered on, the control module controls the distance sensor 76 to operate. When the distance sensor 76 detects that the distance between itself and the container 61 has reached the minimum preset value, it sends a signal. The control module receives the signal and controls the first solenoid valve 94 and the first water pump 95 to open. The first water pump 95 transports the insulating liquid from the insulating liquid storage tank 92 into the left side of the first water pipe 93, and then through the first solenoid valve 94 into the container 61. The insulating liquid is non-conductive and has a cooling effect, preventing vibration during terminal processor operation. When the liquid level sensor 96 detects that the liquid level has reached the preset value, it sends a signal. The control module receives the signal and controls the first solenoid valve 94 and the first water pump 95 to close. When the temperature sensor 105 detects that the insulating liquid temperature exceeds the preset value, it sends a signal. The control module receives the signal and controls the third water pump 104 to start. The third water pump 104 transports the heated insulating liquid from the container 61 to the left side of the second water pipe 103. After entering the second water pipe 103, the insulating liquid is cooled by the coolant in the water tank 102. After cooling, the insulating liquid flows from the right side of the second water pipe 103 into the holding tank 61, which circulates the insulating liquid and improves the cooling effect. The temperature sensor 105 sends a signal after detecting that the temperature of the insulating liquid is lower than the initial value. The control module receives the signal and controls the third water pump 104 to shut down. When the terminal processor stops operating, the distance sensor 76 moves upward to reset. After the distance sensor 76 detects that the distance between it and the holding tank 61 has returned to the maximum preset value, it sends a signal. The control module receives the signal and controls the second solenoid valve 97 and the second water pump 98 to open. The second water pump 98 transports the insulating liquid in the holding tank 61 into the inside of the right side of the first water pipe 93, and then returns to the insulating liquid storage tank 92 through the second solenoid valve 97. The liquid level sensor 96 sends a signal after detecting that the liquid level has reached the initial value. The control module receives the signal and controls the second solenoid valve 97 and the second water pump 98 to shut down.
[0046] like Figure 5 , Figure 6 , Figure 10 , Figure 11 , Figure 12 , Figure 14 , Figure 15 and Figure 16As shown, it also includes a control box 41. The control box 41 is located at the bottom of the top cover 4. The control box 41 includes a switching power supply, a power module, and a control module. The switching power supply supplies power to the entire device. The output terminal of the switching power supply is electrically connected to the power module. The power module is connected to the main power switch via a line. The power module is electrically connected to the control module. The control module is connected to a DS1302 clock circuit and a 24C02 circuit. The temperature sensor 105, the liquid level sensor 96, the distance sensor 76, and the trigger switch 74 are all electrically connected to the control module. The first solenoid valve 94, the second solenoid valve 97, the first water pump 95, the second water pump 98, the third water pump 104, and the electric push rod 71 are all connected to the control module via a relay control module.
[0047] The above description is merely an embodiment of the present invention and is not intended to limit the present invention. All equivalent substitutions made within the principles of the present invention should be included within the scope of protection of the present invention. Contents not described in detail in this invention are existing technologies known to those skilled in the art.
Claims
1. A cooling device for the terminal processor of an intelligent home communication device, characterized in that, The assembly includes a housing (1), a first mounting block (2), a first mounting rod (3), a top cover (4), a support mechanism (5), and an installation mechanism (6). Multiple first mounting blocks (2) are evenly distributed on the housing (1). First mounting rods (3) are slidably disposed inside each first mounting block (2). A top cover (4) connects the upper parts of the first mounting rods (3). A support mechanism (5) is disposed inside the housing (1). An installation mechanism (6) is disposed on the support mechanism (5). The support mechanism (5) includes a locking block (51), a first telescopic rod (52), a second mounting rod (53), and a fixing rod (54). Locking blocks (51) are symmetrically disposed on both sides of the housing (1). Springs are disposed inside each locking block (51). The installation mechanism (6) includes a container (61), a first guide rod (62), a first spring (63), and a second mounting block (64). The container (61) is connected to one side of the fixed rod (54). The container (61) is symmetrically provided with first guide rods (62) on both sides. The upper part of the first guide rod (62) is slidably connected to the second mounting block (64). The bottom of the second mounting block (64) is connected to the first guide rod on the same side. A first spring (63) is connected between 62), and a sealing mechanism (7) is also included. The sealing mechanism (7) includes an electric push rod (71), a third mounting block (72), a sealing cover (73), a trigger switch (74), a pressure rod (75), and a distance sensor (76). The container (61) is symmetrically provided with electric push rods (71). The upper part of the telescopic rod of the electric push rod (71) is provided with a third mounting block (72). A sealing cover (73) is provided between one side of the third mounting block (72). A trigger switch (74) is provided on the top of the sealing cover (73). A pressure rod (75) is provided at the bottom of the sealing cover (73). A distance sensor (76) is provided on the upper part of the pressure rod (75). The container (62) also includes a fixing mechanism (8). The mechanism (8) includes a base frame (81), a sealing plate (82), a heat-conducting metal (83), a second guide rod (84), a second spring (85), and a limiting block (86). The base frame (81) is connected to one side of the second mounting block (64). The base frame (81) is provided with second guide rods (84) on all four sides. The limiting blocks (86) are slidably provided on the second guide rods (84). The sealing plate (82) is slidably placed on the top of the limiting blocks (86). The top of the sealing plate (82) and the bottom of the base frame (81) are provided with heat-conducting metal (83). The limiting blocks (86) are connected to the lower side of the second guide rods (84) on the same side by a second spring (85). The mechanism also includes an insulating liquid delivery mechanism (9).The insulating liquid delivery mechanism (9) includes a first fixing bolt (91), an insulating liquid storage tank (92), a first water pipe (93), a first solenoid valve (94), a first water pump (95), a liquid level sensor (96), a second solenoid valve (97), and a second water pump (98). The insulating liquid storage tank (92) is installed between one side of the second mounting rod (53). The first fixing bolt (91) is symmetrically installed on the insulating liquid storage tank (92). The first fixing bolt (91) fixes the insulating liquid storage tank (92) to the second mounting rod (53). The bottom of the container (61) and the bottom of the insulating liquid storage tank (92) are provided with a first water pipe (93). The first solenoid valve (94) is provided on one side of the first water pipe (93). The second solenoid valve (97) is provided on one side of the first water pipe (93). The first water pump (95) is provided on one side of the first water pipe (93). 93) A second water pump (98) is provided on one side, and a liquid level sensor (96) is provided on one side of the holding tank (61). It also includes a water cooling mechanism (10), which includes a second fixing bolt (101), a water tank (102), a second water pipe (103), a third water pump (104), and a temperature sensor (105). A water tank (102) is installed between the second mounting rods (53) on one side. Second fixing bolts (101) are symmetrically installed on the water tank (102), fixing the water tank (102) to the second mounting rods (53). Second water pipes (103) are symmetrically arranged on both sides of the holding tank (61), located inside the water tank (102). A third water pump (104) is provided in the middle of one side of the second water pipe (103), and a temperature sensor (105) is provided on one side of the holding tank (61).
2. The cooling device for the terminal processor of a smart home communication device as described in claim 1, characterized in that, It also includes a control box (41), and the bottom of the top cover (4) is equipped with a control box (41). The control box (41) includes a switching power supply, a power module and a control module. The switching power supply supplies power to the entire device. The output terminal of the switching power supply is electrically connected to the power module. The power module is connected to the main power switch through a line. The power module is electrically connected to the control module. The control module is connected to the DS1302 clock circuit and the 24C02 circuit. The temperature sensor (105), the liquid level sensor (96), the distance sensor (76) and the trigger switch (74) are all electrically connected to the control module. The first solenoid valve (94), the second solenoid valve (97), the first water pump (95), the second water pump (98), the third water pump (104) and the electric push rod (71) are all connected to the control module through the relay control module.