Modular environment self-adaptive assembly type intelligent water pump house
By designing a combined structure of solenoid valve, conveying pipe and cooling fan in the intelligent water pump room, the problem that the water pump room cannot dissipate heat during long-term operation is solved, and the effect of effectively reducing cooling and improving heat dissipation efficiency is achieved.
Patent Information
- Application Number
- CN202510673776.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-06-20
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing smart water pump room cannot effectively dissipate heat during long-term operation, resulting in overheating of the equipment, reducing efficiency or even damage, affecting the normal operation of the water supply system.
A modular environmental adaptive prefabricated intelligent water pump room is designed, adopting the first solenoid valve, the third conveying pipe, the screw conveying pipe and other structures. The spiral conveying pipe is driven to rotate through the heat dissipation fan, taking away the heat carried by the water, and adjusting the size of the ventilation opening through the opening and closing mechanism to improve the heat dissipation efficiency.
It effectively reduces the internal temperature of the water pump room, extends the service life of the equipment, and improves the normal operation efficiency of the water transfer system.
Smart Images

Figure CN120174943A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of intelligent pump houses, specifically a modular environment-adaptive prefabricated intelligent pump house. Background Art
[0002] The water supply system usually sets up a storage tank to reserve a certain amount of water, and then meets the required water pressure and water volume inside the building through the pumping method of water pumps. The fire water supply system often adopts a temporary high-pressure system. When the water source cannot be guaranteed, the required fire water volume should be reserved according to the specifications. Once a fire occurs in the building, the initial fire water volume is provided by the elevated water tank, and during the fire continuation time, the fire water pump should be started to pump the water in the storage tank to meet the water pressure and water volume of the fire water supply system; due to the influence of factors such as building design and terrain, the drainage system in the building often also needs to set up sewage pump units, etc. Therefore, a prefabricated pump house is required.
[0003] Patent No. CN116025031A discloses a prefabricated movable intelligent pump house, including a housing. A spray control system is arranged inside the housing. A water storage tank is fixedly installed inside the housing. A flange is connected to the water storage tank and is connected to a water distributor through Flange 1. Six pipes are connected to the water distributor and the pipes are connected to the nozzles. A chassis is placed inside the housing. A vertical frame is fixedly installed on the chassis. A support frame for fixing and supporting is fixedly installed on the vertical frame. The water storage tank is fixedly installed on the support frame. A bottom plate is also placed on the chassis. A pressure stabilizing tank and a booster pump 1 are placed on the bottom plate. The intelligent spray system is divided into a pipeline system, a boosting system, a water replenishing system and a control system. By referring to the technical path of automatic water spraying and fire extinguishing of the wet automatic sprinkler system and combining the principle of automatic control, a general preliminary design scheme is proposed to achieve a more intelligent and reasonable spray scheme.
[0004] However, when this device is in use, it is unable to dissipate the heat generated inside the house. Since the water pump equipment will generate a large amount of heat during long-term operation, if the heat is not dissipated in time, it may cause the equipment to overheat, reduce efficiency or even be damaged, affecting the normal operation of the water conveyance system, and it is necessary to dissipate the heat of the equipment to ensure its service life. Summary of the Invention
[0005] To solve the problems raised in the above background art, the present invention provides a modular environment-adaptive prefabricated intelligent pump house.
[0006] To achieve the above object, the present invention provides the following technical solutions: a modular environment-adaptive prefabricated intelligent water pump house, including a water pump house main body, a water storage tank is fixed at the bottom end inside the water pump house main body, a first conveying pipe is communicated with the bottom end of the water storage tank, one end of the first conveying pipe is communicated with a water pump main body, the output end of the water pump main body is communicated with a second conveying pipe, one end of the second conveying pipe is communicated with a pressure stabilizing tank, a heat dissipation mechanism is arranged at the top end of the pressure stabilizing tank, an opening and closing mechanism is installed inside the water pump house main body, and a cleaning mechanism is installed inside the water pump house main body; The heat dissipation mechanism includes a first solenoid valve, a third conveying pipe and a spiral conveying pipe. The first solenoid valve is installed outside the water storage tank. One end of the first solenoid valve is installed with a third conveying pipe. One end of the third conveying pipe is communicated with a spiral conveying pipe. One end of the spiral conveying pipe is communicated with a fourth conveying pipe. One end of the fourth conveying pipe is installed with a second solenoid valve. One end of the fourth conveying pipe is communicated with the pressure stabilizing tank; The cleaning mechanism includes a mounting frame and a cooling fan. The mounting frame is fixed inside the water pump house main body, and a cooling fan is rotatably connected inside the mounting frame.
[0007] Preferably, the input end of the first solenoid valve is communicated with the water storage tank. The spiral conveying pipe is arranged on the inner wall of the water pump house main body and is located at the heat dissipation end of the cooling fan.
[0008] Preferably, a second transmission rod is fixed outside the cooling fan. A reciprocating screw rod is fixed inside the water pump house main body. A transmission wheel is fixed on the outer part of the reciprocating screw rod. A cleaning rod is threadedly connected to the outer part of the reciprocating screw rod.
[0009] Preferably, there are four groups of the mounting frames and the cooling fans, and the mounting frames and the cooling fans are symmetrically distributed about the central axis of the water pump house main body. The second transmission rod and the transmission wheel are meshed and connected. There are four groups of the reciprocating screw rods, and the reciprocating screw rods are symmetrically distributed about the central axis of the water pump house main body.
[0010] Preferably, there are two groups of the cleaning rods, which are symmetrically distributed about the central axis of the reciprocating screw rod. A number of groups of bristles are arranged on the outer part of the cleaning rod, and the bristles are arranged at equal intervals about the central axis of the cleaning rod.
[0011] Preferably, the opening and closing mechanism includes a first connecting rod, a baffle and a servo motor. The first connecting rod is rotatably connected inside the water pump house main body. A baffle is fixed on the outer part of the first connecting rod. A servo motor is fixed inside the water pump house main body. A first transmission rod is fixed on the rotating end of the servo motor, and a meshing belt is sleeved on the outer part of the first transmission rod.
[0012] Preferably, the first connecting rod is provided with several groups distributed in an array, the baffle is provided with two groups symmetrically distributed about the central axis of the first connecting rod, and the inner wall of the first transmission rod is provided with several groups of teeth.
[0013] Preferably, the inner wall of the meshing belt is provided with a plurality of groups of teeth, the first transmission rod is meshingly connected to the meshing belt, the outer wall of the first connecting rod is provided with a plurality of groups of teeth, and the first connecting rod is meshingly connected to the meshing belt.
[0014] Preferably, a door is rotatably connected to the interior of the water pump room body, a water inlet pipe is installed at one end of the water pump room body, a water outlet pipe is installed at one end of the water pump room body, and a control console is fixed inside the water pump room body.
[0015] Preferably, the door is provided with two groups symmetrically distributed about the central axis of the pump room body, the output end of the water inlet pipe is connected to the water storage tank, and the output end of the second delivery pipe is connected to the water outlet pipe.
[0016] Compared with the prior art, the present invention has the following beneficial effects: The present invention arranges the coordination of the first solenoid valve, the third delivery pipe, the spiral delivery pipe and other structures, so that the device can open the first solenoid valve, so that the water inside the water storage tank enters the spiral delivery pipe through the third delivery pipe, and is delivered to the fourth delivery pipe and the pressure-stabilizing tank through the spiral delivery pipe, so that the water passes through the inside of the cooling fan during delivery, so that the water can distribute the heat of the device during delivery, and is distributed to the heat dissipation end of the cooling fan through the spiral delivery pipe. When the water passes through, the cooling fan can take away the heat carried by the water when rotating, thereby cooling it.
[0017] The present invention arranges the coordination of the first connecting rod, the baffle, the servo motor and other structures so that the device can drive the meshing belt to move by starting the servo motor to drive the first transmission rod to rotate, and then synchronously drive the first connecting rod to rotate through the meshing belt and multiple groups of first connecting rods, so that the vents can be opened or closed when the first connecting rod and the baffle rotate, so that the device can improve the heat dissipation efficiency by changing the size of the vents.
[0018] The present invention cooperates with structures such as a mounting frame, a cooling fan, and a second transmission rod so that the device can dissipate heat inside the device and dissipate heat on the way of transportation by starting the cooling fan, thereby avoiding the temperature inside the device being too high, resulting in reduced efficiency or even damage. When the cooling fan rotates, the second transmission rod is simultaneously driven to rotate, so that the second transmission rod drives the transmission wheel and the reciprocating screw to rotate, and then the rotation of the reciprocating screw drives the two groups of cleaning rods to reciprocate, so that the cleaning rods clean the baffles they contact when they move, thereby achieving the purpose of facilitating the device to dissipate heat inside and clean the baffles at the same time. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of the overall internal structure of the present invention; Figure 3 is a schematic diagram of the conveying assembly structure of the present invention; Figure 4 is a schematic diagram of the heat dissipation and ventilation assembly structure of the present invention; Figure 5 is a schematic diagram of the internal structure of the heat dissipation and ventilation assembly of the present invention; Figure 6 is of the present invention Figure 5 schematic diagram of the enlarged partial cross-sectional structure at A in; Figure 7 is a schematic diagram of the cleaning mechanism structure of the present invention; Figure 8 is a schematic diagram of the heat dissipation mechanism structure of the present invention; Figure 9 is a schematic diagram of the opening and closing mechanism structure of the present invention.
[0020] In the figure: 1, main body of the pump house; 2, door; 3, water inlet pipe; 4, water storage tank; 5, first conveying pipe; 6, main pump body; 7, second conveying pipe; 8, water outlet pipe; 9, pressure stabilizing tank; 10, heat dissipation mechanism; 1001, first solenoid valve; 1002, third conveying pipe; 1003, spiral conveying pipe; 1004, fourth conveying pipe; 1005, second solenoid valve; 11, control console; 12, opening and closing mechanism; 1201, first connecting rod; 1202, baffle; 1203, servo motor; 1204, first transmission rod; 1205, meshing belt; 13, cleaning mechanism; 1301, mounting frame; 1302, heat dissipation fan; 1303, second transmission rod; 1304, reciprocating screw; 1305, transmission wheel; 1306, cleaning rod. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0022] As Figures 1 to 9As shown in the figure, the present invention provides a modular environment - adaptive prefabricated intelligent pump house, which includes a pump house main body 1. At the bottom end inside the pump house main body 1, a water storage tank 4 is fixed. At the bottom end of the water storage tank 4, a first delivery pipe 5 is connected. One end of the first delivery pipe 5 is connected to a pump main body 6. The output end of the pump main body 6 is connected to a second delivery pipe 7. One end of the second delivery pipe 7 is connected to a pressure stabilizing tank 9. At the top end of the pressure stabilizing tank 9, a heat dissipation mechanism 10 is provided. Inside the pump house main body 1, a switching mechanism 12 is installed. Inside the pump house main body 1, a cleaning mechanism 13 is installed. Inside the pump house main body 1, a door 2 is rotatably connected. At one end of the pump house main body 1, a water inlet pipe 3 is installed. At one end of the pump house main body 1, a water outlet pipe 8 is installed. Inside the pump house main body 1, a control console 11 is fixed. There are two groups of doors 2, which are symmetrically distributed about the central axis of the pump house main body 1. The output end of the water inlet pipe 3 is connected to the water storage tank 4. The output end of the second delivery pipe 7 is connected to the water outlet pipe 8.
[0023] Adopting the above - mentioned scheme: Water is transported into the interior of the water storage tank 4 through the water inlet pipe 3, and the water is transported through the first delivery pipe 5, the pump main body 6, the second delivery pipe 7, and the water outlet pipe 8. The pressure stabilizing tank 9 can stabilize the pressure during water transportation. This method belongs to the prior art in this field and will not be elaborated here.
[0024] As Figures 1 to 9 As shown in the figure, the heat dissipation mechanism 10 includes a first solenoid valve 1001, a third delivery pipe 1002, and a spiral delivery pipe 1003. The first solenoid valve 1001 is installed outside the water storage tank 4. One end of the first solenoid valve 1001 is installed with a third delivery pipe 1002. One end of the third delivery pipe 1002 is connected to a spiral delivery pipe 1003. One end of the spiral delivery pipe 1003 is connected to a fourth delivery pipe 1004. One end of the fourth delivery pipe 1004 is installed with a second solenoid valve 1005. One end of the fourth delivery pipe 1004 is connected to the pressure stabilizing tank 9. The input end of the first solenoid valve 1001 is connected to the water storage tank 4. The spiral delivery pipe 1003 is arranged on the inner wall of the pump house main body 1 and is located at the heat dissipation end of the heat dissipation fan 1302.
[0025] Adopting the above - mentioned scheme: By opening the first solenoid valve 1001, the water inside the water storage tank 4 enters the spiral delivery pipe 1003 through the third delivery pipe 1002, and is transported to the fourth delivery pipe 1004 and the pressure stabilizing tank 9 through the spiral delivery pipe 1003, so that the water passes through the inside of the heat dissipation fan 1302 during transportation. When the water is transported, it can share the heat of the device, and is distributed at the heat dissipation end of the heat dissipation fan 1302 through the spiral delivery pipe 1003. When the water passes by, the heat dissipation fan 1302 can take away the heat carried by the water when rotating, thereby cooling it, increasing the efficiency of cooling the equipment inside the device, and thus improving the heat dissipation efficiency of the device.
[0026] As Figures 1 to 9As shown in the figure, the cleaning mechanism 13 includes a mounting frame 1301 and a cooling fan 1302. The mounting frame 1301 is fixed inside the main body 1 of the pump house. A cooling fan 1302 is rotatably connected inside the mounting frame 1301. A second transmission rod 1303 is fixed to the outside of the cooling fan 1302. A reciprocating screw rod 1304 is fixed inside the main body 1 of the pump house. A transmission wheel 1305 is fixed to the outside of the reciprocating screw rod 1304. A cleaning rod 1306 is threadedly connected to the outside of the reciprocating screw rod 1304. There are four groups of the mounting frame 1301 and the cooling fan 1302, and the mounting frame 1301 and the cooling fan 1302 are symmetrically distributed about the central axis of the main body 1 of the pump house. The second transmission rod 1303 and the transmission wheel 1305 are meshed and connected. There are four groups of the reciprocating screw rods 1304, and the reciprocating screw rods 1304 are symmetrically distributed about the central axis of the main body 1 of the pump house. There are two groups of the cleaning rods 1306, which are symmetrically distributed about the central axis of the reciprocating screw rod 1304. A number of groups of bristles are arranged on the outside of the cleaning rod 1306, and the bristles are arranged at equal intervals about the central axis of the cleaning rod 1306.
[0027] Adopting the above solution: By starting the cooling fan 1302, the inside of the device can be cooled, and the water during transportation can also be cooled, thereby avoiding the reduction of efficiency or even damage caused by excessive temperature inside the device. When the cooling fan 1302 rotates, the second transmission rod 1303 is synchronously driven to rotate, so that the second transmission rod 1303 drives the transmission wheel 1305 and the reciprocating screw rod 1304 to rotate. Then, the rotation of the reciprocating screw rod 1304 drives the two cleaning rods 1306 to perform reciprocating motion, so that the cleaning rods 1306 clean the contact baffle 1202 when moving, avoiding excessive dust and impurities at the position of the baffle 1202 and affecting the overall heat dissipation channel of the device.
[0028] As Figures 1 to 9 As shown in the figure, the opening and closing mechanism 12 includes a first connecting rod 1201, a baffle 1202 and a servo motor 1203. The first connecting rod 1201 is rotatably connected inside the main body 1 of the pump house. A baffle 1202 is fixed to the outside of the first connecting rod 1201. A servo motor 1203 is fixed inside the main body 1 of the pump house. A first transmission rod 1204 is fixed to the rotating end of the servo motor 1203. An engaging belt 1205 is sleeved on the outside of the first transmission rod 1204. There are several groups of the first connecting rods 1201 arranged in an array. There are two groups of the baffles 1202, which are symmetrically distributed about the central axis of the first connecting rod 1201. A number of groups of teeth are arranged on the inner wall of the first transmission rod 1204. A number of groups of teeth are arranged on the inner wall of the engaging belt 1205. The first transmission rod 1204 and the engaging belt 1205 are meshed and connected. A number of groups of teeth are arranged on the outer wall of the first connecting rod 1201. The first connecting rod 1201 and the engaging belt 1205 are meshed and connected.
[0029] Adopting the above solution: Starting the servo motor 1203 to drive the first transmission rod 1204 to rotate can drive the meshing belt 1205 to move. Furthermore, through the meshing connection between the meshing belt 1205 and multiple groups of first connecting rods 1201, the first connecting rods 1201 are synchronously driven to rotate, so that when the first connecting rods 1201 and the baffle 1202 rotate, they can open or close the ventilation opening, enabling the device to improve the heat dissipation efficiency by changing the size of the ventilation opening. And when the external environment is harsh, the ventilation opening can be closed to prevent the external environment from affecting the interior of the device and causing damage to the equipment.
[0030] The working principle and usage process of the present invention: Water is transported to the inside of the water storage tank 4 through the water inlet pipe 3, and the water is transported through the first delivery pipe 5, the water pump main body 6, the second delivery pipe 7, and the water outlet pipe 8. The pressure stabilizing tank 9 can stabilize the pressure during water transportation. This method belongs to the prior art in this field and will not be elaborated here. And the device opens the first solenoid valve 1001, so that the water inside the water storage tank 4 enters the spiral delivery pipe 1003 through the third delivery pipe 1002, and is transported to the fourth delivery pipe 1004 and the pressure stabilizing tank 9 through the spiral delivery pipe 1003, so that the water passes through the inside of the cooling fan 1302 during transportation, enabling the water to share the heat of the device during transportation. And through the spiral delivery pipe 1003 distributed at the heat dissipation end of the cooling fan 1302, when the water passes through, the cooling fan 1302 can take away the heat carried by the water during rotation, thereby cooling it, increasing the efficiency of cooling the equipment inside the device, and thus improving the heat dissipation efficiency of the device. By starting the cooling fan 1302, the inside of the device can be cooled, as well as the water during transportation, thereby preventing the temperature inside the device from being too high, resulting in reduced efficiency or even damage. When the cooling fan 1302 rotates, the second transmission rod 1303 is synchronously driven to rotate, so that the second transmission rod 1303 drives the transmission wheel 1305 and the reciprocating screw rod 1304 to rotate. Furthermore, the rotation of the reciprocating screw rod 1304 drives two groups of cleaning rods 1306 to perform reciprocating motion, so that when the cleaning rods 1306 move, they clean the contacted baffle 1202, preventing excessive dust and impurities at the position of the baffle 1202 from affecting the overall heat dissipation channel of the device. And the servo motor 1203 can be started to drive the first transmission rod 1204 to rotate, which can drive the meshing belt 1205 to move. Furthermore, through the meshing connection between the meshing belt 1205 and multiple groups of first connecting rods 1201, the first connecting rods 1201 are synchronously driven to rotate, so that when the first connecting rods 1201 and the baffle 1202 rotate, they can open or close the ventilation opening, enabling the device to improve the heat dissipation efficiency by changing the size of the ventilation opening. And when the external environment is harsh, the ventilation opening can be closed to prevent the external environment from affecting the interior of the device and causing damage to the equipment.
[0031] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements not only includes those elements but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.
[0032] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. The modular environment-adaptive prefabricated intelligent water pump house, including the main body of the water pump house (1), is characterized in that: At the bottom inside the main body (1) of the pump house, a water storage tank (4) is fixed. At the bottom of the water storage tank (4), a first delivery pipe (5) is connected. One end of the first delivery pipe (5) is connected to a pump main body (6). The output end of the pump main body (6) is connected to a second delivery pipe (7). One end of the second delivery pipe (7) is connected to a pressure stabilizing tank (9). At the top of the pressure stabilizing tank (9), a heat dissipation mechanism (10) is provided. Inside the main body (1) of the pump house, an opening and closing mechanism (12) is installed. Inside the main body (1) of the pump house, a cleaning mechanism (13) is installed; The heat dissipation mechanism (10) includes a first solenoid valve (1001), a third delivery pipe (1002), and a spiral delivery pipe (1003). The first solenoid valve (1001) is installed outside the water storage tank (4). One end of the first solenoid valve (1001) is provided with a third delivery pipe (1002). One end of the third delivery pipe (1002) is connected to a spiral delivery pipe (1003). One end of the spiral delivery pipe (1003) is connected to a fourth delivery pipe (1004). One end of the fourth delivery pipe (1004) is provided with a second solenoid valve (1005). One end of the fourth delivery pipe (1004) is connected to the pressure stabilizing tank (9); The cleaning mechanism (13) includes a mounting frame (1301) and a heat dissipation fan (1302). The mounting frame (1301) is fixed inside the main body (1) of the pump house. Inside the mounting frame (1301), a heat dissipation fan (1302) is rotatably connected.
2. The modular environment-adaptive prefabricated intelligent water pump house according to claim 1, is characterized in that: The input end of the first solenoid valve (1001) is connected to the water storage tank (4). The spiral delivery pipe (1003) is arranged on the inner wall of the main body (1) of the pump house. The spiral delivery pipe (1003) is located at the heat dissipation end of the heat dissipation fan (1302).
3. The modular environment-adaptive prefabricated intelligent water pump house according to claim 1, is characterized in that: Outside the heat dissipation fan (1302), a second transmission rod (1303) is fixed. Inside the main body (1) of the pump house, a reciprocating screw rod (1304) is fixed. Outside the reciprocating screw rod (1304), a transmission wheel (1305) is fixed. Outside the reciprocating screw rod (1304), a cleaning rod (1306) is threadedly connected.
4. The modular environment-adaptive prefabricated intelligent water pump house according to claim 3, is characterized in that: There are four groups of the mounting frame (1301) and the heat dissipation fan (1302). The mounting frame (1301) and the heat dissipation fan (1302) are symmetrically distributed about the central axis of the main body (1) of the pump house. The second transmission rod (1303) and the transmission wheel (1305) are meshed and connected. There are four groups of the reciprocating screw rods (1304). The reciprocating screw rods (1304) are symmetrically distributed about the central axis of the main body (1) of the pump house.
5. The modular environment-adaptive prefabricated intelligent water pump house according to claim 3, is characterized in that: There are two groups of the cleaning rods (1306) which are symmetrically distributed about the central axis of the reciprocating screw rod (1304). Outside the cleaning rod (1306), a number of groups of bristles are provided. The bristles are arranged at equal intervals about the central axis of the cleaning rod (1306).
6. The modular environment-adaptive prefabricated intelligent water pump house according to claim 1, is characterized in that: The opening and closing mechanism (12) includes a first connecting rod (1201), a baffle (1202), and a servo motor (1203). The first connecting rod (1201) is rotatably connected inside the main body (1) of the pump house. A baffle (1202) is fixed to the outside of the first connecting rod (1201). A servo motor (1203) is fixed inside the main body (1) of the pump house. A first transmission rod (1204) is fixed to the rotating end of the servo motor (1203). An engaging belt (1205) is sleeved on the outside of the first transmission rod (1204).
7. The modular environment-adaptive prefabricated intelligent water pump house according to claim 6, is characterized in that: A number of groups of the first connecting rods (1201) are arranged in an array. Two groups of the baffles (1202) are symmetrically distributed about the central axis of the first connecting rod (1201). A number of groups of teeth are provided on the inner wall of the first transmission rod (1204).
8. The modular environment-adaptive prefabricated intelligent water pump house according to claim 6, is characterized in that: A number of groups of teeth are provided on the inner wall of the engaging belt (1205). The first transmission rod (1204) and the engaging belt (1205) are engaged and connected. A number of groups of teeth are provided on the outer wall of the first connecting rod (1201). The first connecting rod (1201) and the engaging belt (1205) are engaged and connected.
9. The modular environment-adaptive prefabricated intelligent water pump house according to claim 1, is characterized in that: A door (2) is rotatably connected inside the main body (1) of the pump house. A water inlet pipe (3) is installed at one end of the main body (1) of the pump house. A water outlet pipe (8) is installed at one end of the main body (1) of the pump house. A control console (11) is fixed inside the main body (1) of the pump house.
10. The modular environment-adaptive prefabricated intelligent water pump house according to claim 9, is characterized in that: Two groups of the doors (2) are symmetrically distributed about the central axis of the main body (1) of the pump house. The output end of the water inlet pipe (3) is communicated with a water storage tank (4). The output end of the second delivery pipe (7) is communicated with a water outlet pipe (8).
Citation Information
Patent Citations
Assembly type movable intelligent water pump house
CN116025031A
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CN206637772U
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