Square cabin type water taking and pressurizing pump station
By integrating the engine unit, piping system, and control cabinet into the container, the design solves the problem of limited use of traditional pump stations in confined spaces, enabling wider application and efficient emergency response.
Patent Information
- Application Number
- CN202423198764.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2034-12-24
AI Technical Summary
Existing water intake booster pump stations are designed to rely on vehicles, which limits their use in confined spaces or complex environments, affecting emergency response efficiency and application scope.
Adopting a modular design, the engine unit, piping system and control cabinet are highly integrated into the modular unit. Equipped with a boom hook, it can achieve modular independent operation, reduce the footprint and adapt to more usage scenarios.
It improves the adaptability and transportation convenience of pump stations in confined spaces, and expands the scope of application, including urban rescue and field operations.
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Figure CN223562237U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to water taking equipment technical field, concretely relates to a square cabin type water taking pressurizing pump station. BACKGROUND
[0002] At present, the design of water taking pressurizing pump station is usually to integrate the whole system in a vehicle.
[0003] Although this design is convenient to move, its movement and use must depend on the vehicle itself, resulting in that the whole vehicle occupies a great space in the use process. When this design encounters narrow space or environment where the vehicle cannot drive, the use of the pump station is obviously limited. For example, in the crowded urban blocks, the narrow mountain road or the complex terrain rescue site, the traditional large vehicle pump station is often difficult to reach or cannot be effectively deployed. This not only affects the efficiency of emergency response, but also limits the application range of the pump station in various scenes.
[0004] Therefore, in order to solve these problems, the design of the traditional pump station needs to be innovated to adapt to a wider use environment and demand. INVENTION CONTENTS
[0005] The purpose of the present application is to overcome the above technical deficiencies, and provide a square cabin type water taking pressurizing pump station to solve the technical problems of poor emergency response efficiency and insufficient application range in the prior art.
[0006] To achieve the above technical purpose, the following technical scheme is adopted in the present application:
[0007] The present application provides a square cabin type water taking pressurizing pump station, which comprises a square cabin, an engine set, a pipeline system, a control cabinet and a pull arm hook.
[0008] The square cabin has a hollow cavity.
[0009] The engine set is located at one end of the cavity.
[0010] The control cabinet is located at the other end of the cavity, and the control cabinet is electrically connected with the engine set.
[0011] The pipeline system is located between the engine set and the control cabinet, and the pipeline system is connected with the engine set and the control cabinet respectively.
[0012] The pull arm hook is fixedly connected to the outer side of the square cabin.
[0013] In some embodiments of the present application, the pipeline system comprises a booster pump and a water outlet pipeline, the booster pump is drivingly connected with the engine set, and the water outlet of the booster pump is communicated with the water outlet pipeline.
[0014] In some embodiments of the present application, a gearbox is further included, the gearbox comprising a gear input shaft and a gear output shaft, the gear input shaft being in meshing connection with the gear output shaft, the gear input shaft being in driving connection with the output shaft of the engine, the gear output shaft being in driving connection with the booster pump.
[0015] In some embodiments of the present application, the gear input shaft has a larger number of teeth than the gear output shaft.
[0016] In some embodiments of the present application, the pipeline system comprises a floating boat pump and a water inlet pipeline, the water inlet of the floating boat pump being in communication with the water inlet pipeline, the water outlet of the floating boat pump being in communication with the water outlet pipeline.
[0017] In some embodiments of the present application, the pipeline system further comprises a filter screen, the filter screen covering the water inlet of the water inlet pipeline.
[0018] In some embodiments of the present application, a wireless controller is further included, the control cabinet being in electrical connection with the engine group and the booster pump respectively, the wireless controller being in signal connection with the floating boat pump.
[0019] In some embodiments of the present application, the shelter has a cuboid shape, the length of the shelter being greater than the width of the shelter, a plurality of operation doors being arranged side by side on the long side of the shelter.
[0020] In some embodiments of the present application, a plurality of moving wheels are further included, the plurality of moving wheels being fixedly connected to the bottom corners of the shelter respectively.
[0021] In some embodiments of the present application, a plurality of supporting legs are further included, the plurality of supporting legs being connected to the bottom edges of the shelter respectively, the screw rod of each supporting leg being in rotational connection with the screw hole of the shelter.
[0022] Compared with the prior art, the technical scheme provided by the present application has the beneficial technical effects including:
[0023] The engine group, the pipeline system, and the control cabinet are highly integrated in the shelter, which is beneficial to reduce the floor area occupied by the pump station and can adapt to more use scenarios. At the same time, the shelter adopts a modular design and can work independently from the vehicle chassis, which can effectively solve the problem that the overall size of the vehicle is too large to use the pump station in a narrow space. The devices in the shelter are arranged in sequence from front to back, which can improve the space utilization rate and reduce the overall width of the pump station. The shelter is provided with a drawbar hook, which can be quickly transported by using a drawbar, thereby achieving convenient and fast transportation. BRIEF DESCRIPTION OF DRAWINGS
[0024] In order to more clearly illustrate the technical solutions in the present application, the drawings needed in the embodiments will be briefly introduced as follows:
[0025] Figure 1 is a structural schematic diagram of a square cabin type water taking and pressurizing pump station provided by the embodiments of the present application;
[0026] Figure 2 is an external schematic diagram of a square cabin type water taking and pressurizing pump station provided by the embodiments of the present application.
[0027] Reference signs:
[0028] Square cabin 1, engine set 2, booster pump 3, water outlet pipeline 4, water inlet pipeline 5, floating boat pump 6, control cabinet 7, pull arm hook 8. DETAILED DESCRIPTION
[0029] In order to make the objects, technical solutions and advantages of the present application more clearly understood, the present application will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and not intended to limit the present application.
[0030] Those skilled in the art can understand that, in the present specification, the expression "comprising" is an open-ended expression, which means that the features are present but other features are not excluded. The terms "upper", "lower", "left", "right", etc. are the example directions based on the drawings. The features limited by "first" and "second" implicitly include one or more of the features. The singular form expressions can also be used for the plural form. The meaning of "a plurality of" is two or more. The terms "mounting", "connecting", "connection" can be fixed connection, or detachable connection, or integral connection; can be directly connected, or indirectly connected through an intermediate medium, or the communication inside two elements. In addition, "connection" can include wireless connection.
[0031] The present application aims to overcome the above technical deficiencies, and proposes a square cabin type water taking and pressurizing pump station to solve the technical problems of poor emergency response efficiency and insufficient application range in the prior art.
[0032] In order to achieve the above technical purpose, the present application adopts the following technical solutions:
[0033] The present application provides a square cabin type water taking and pressurizing pump station, as shown in Figure 1 and Figure 2 , Figure 1 is a structural schematic diagram of a square cabin type water taking and pressurizing pump station provided by the embodiments of the present application;
[0034] Figure 2 is an external schematic diagram of a square cabin type water taking and pressurizing pump station provided by the embodiments of the present application.
[0035] A shelter type water taking and pressurizing pump station, comprising a shelter 1, an engine set 2, a pipeline system, a control cabinet 7 and a drawbar hook 8:
[0036] The shelter 1 has a hollow cavity;
[0037] The engine set 2 is located at one end of the cavity;
[0038] The control cabinet 7 is located at the other end of the cavity, and is electrically connected with the engine set 2;
[0039] The pipeline system is located between the engine set 2 and the control cabinet 7, and is connected with the engine set 2 and the control cabinet 7 respectively;
[0040] The drawbar hook 8 is fixedly connected to the outside of the shelter.
[0041] The engine set 2, the pipeline system and the control cabinet 7 are highly integrated in the shelter 1, which is beneficial to reduce the floor area of the pump station and adapt to more use scenarios. At the same time, the shelter 1 adopts a modular design and can work independently from the vehicle chassis, which can effectively solve the problem that the overall size of the vehicle is too large and the pump station cannot be used in a narrow space. The devices in the shelter 1 are arranged from front to back, which can improve the space utilization and reduce the overall width of the pump station. The shelter 1 is provided with a drawbar hook 8, which can be quickly transported by using a drawbar, and the transportation is convenient and fast.
[0042] The shelter 1 has a hollow cavity, and the engine set 2, the pipeline system and the control cabinet 7 are highly integrated inside. This design helps to reduce the floor area of the pump station and adapt to more use scenarios, including narrow spaces and complex terrains.
[0043] The engine set 2 located at one end of the cavity of the shelter 1 provides power for the pump station and is connected with the pipeline system through a speed-increasing box or other transmission devices to drive the water pump to work.
[0044] The pipeline system is located in the middle of the shelter 1 and is connected with the engine set 2, which is responsible for water extraction and pressurization. The design of the pipeline system considers the flow efficiency of fluid and the stability of the system.
[0045] The control cabinet 7 located at the other end of the shelter 1 is electrically connected with the engine set 2 and the pipeline system, which is used to monitor and control the working state of the system, including starting, stopping, pressure adjustment and other functions.
[0046] The drawbar hook 8 is fixedly connected to the outside of the side wall of the shelter 1, so that the shelter 1 can be quickly loaded and unloaded by a drawbar truck, improving the convenience and efficiency of transportation.
[0047] The shelter-type water intake and pressurization pump station is powered by the engine set 2, and the power is transmitted to the water pump in the pipeline system through the speed-increasing box to realize water extraction and pressurization. The control cabinet 7 monitors the running state of the pump station in real time to ensure stable and efficient work of the system.
[0048] The devices in the shelter 1 are arranged from front to back, effectively utilizing the space and reducing the overall width size.
[0049] The shelter 1 can be quickly assembled and disassembled, and is suitable for different working environments, especially in narrow spaces and complex terrains.
[0050] The shelter 1 can work independently without being limited by the size and driving capacity of the vehicle.
[0051] The design of the pull arm hook 8 enables the pump station to be quickly assembled, disassembled and transported, improving the efficiency of emergency response.
[0052] Due to the small footprint, the shelter-type pump station can be applied to more scenarios, including urban rescue, field operation, etc.
[0053] In some embodiments of the present application, the pipeline system includes a booster pump 3 and a water outlet pipeline 4, the booster pump 3 is drivingly connected with the engine set 2, and the water outlet of the booster pump 3 communicates with the water outlet pipeline 4.
[0054] The booster pump 3 is connected with the engine set 2 through a transmission device (such as a transmission belt, a gear, or a shaft coupling). After the engine set 2 is started, its power is transmitted to the booster pump 3 through the transmission device, so that the booster pump 3 can extract and pressurize the fluid.
[0055] The water inlet of the booster pump 3 is connected to a water intake device (such as a submersible pump or a floating boat pump 6) for extracting water from a water source. The extracted water is pressurized by the booster pump 3 and flows out from the water outlet of the booster pump 3.
[0056] The water outlet of the booster pump 3 communicates with the water outlet pipeline 4, and the pressurized water flow is delivered to the destination through the water outlet pipeline 4.
[0057] The driving connection of the booster pump 3 and the engine set 2 ensures that the pump station can efficiently extract and pressurize water to meet the water pressure requirements in different scenarios. Through the water outlet pipeline 4, the pressurized water can be stably delivered to a remote or high place, suitable for various water supply and drainage requirements. Integrating the booster pump 3 and the water outlet pipeline 4 in the shelter 1 makes the entire pump station structure compact, facilitating operation and deployment in limited space.
[0058] In some embodiments of the present application, a gear box is also included, which comprises a gear input shaft and a gear output shaft, the gear input shaft is in meshing connection with the gear output shaft, the gear input shaft is in driving connection with the output shaft of the engine, and the gear output shaft is in driving connection with the booster pump 3.
[0059] The gear box contains a gear input shaft and a gear output shaft, which are in meshing connection. The gear input shaft is connected to the output shaft of the engine, while the gear output shaft is connected to the booster pump 3.
[0060] When the engine starts, the power generated by its output shaft is transmitted to the gear box through the gear input shaft. In the gear box, the meshing action between the gears can increase or decrease the rotational speed (depending on the gear ratio), while transmitting the torque.
[0061] The gear box adjusts the speed and torque of the engine output through different gear ratios to adapt to the working requirements of the booster pump 3. If higher torque is needed, the gear box can be designed to increase torque at a lower speed; if higher speed is needed, it can be designed to increase speed at a lower torque.
[0062] The power adjusted by the gear box is transmitted to the booster pump 3 through the gear output shaft, driving the booster pump 3 to extract and pressurize water.
[0063] The gear box can adjust the transmission ratio between the engine and the booster pump 3 according to different working conditions, so that the pump station can adapt to different application scenarios. By optimizing the gear ratio, the booster pump 3 can operate at the best working point, improving the efficiency of the entire system.
[0064] In some embodiments of the present application, the number of teeth of the gear input shaft is greater than the number of teeth of the gear output shaft.
[0065] The gear input shaft (large gear) and the gear output shaft (small gear) in the gear box are in meshing connection. Since the large gear has more teeth than the small gear, when the large gear rotates, the small gear will rotate at a faster speed. This is because the rotational speed of the gear is proportional to the number of teeth.
[0066] At the same time of increasing the speed, the gear box will reduce the torque of the output shaft. This is because power (P) is the product of rotational speed (n) and torque (T) (P = n * T), and in the case of constant power, the increase of rotational speed will result in the decrease of torque.
[0067] The speed-increasing gear box can increase the rotational speed of the booster pump 3, thereby increasing the flow and pressure of water to meet higher water supply requirements. The engine is usually most efficient within its optimal working speed range, and the speed-increasing gear box can help the engine work within this range while providing the high rotational speed required by the booster pump 3. The speed-increasing gear box can reduce energy loss and improve transmission efficiency, thereby reducing energy consumption.
[0068] In some embodiments of the present application, the pipeline system comprises a floating pump 6 and an intake pipeline 5, the intake of the floating pump 6 is in communication with the intake pipeline 5, and the outlet of the floating pump 6 is in communication with the outlet pipeline 4.
[0069] The intake of the floating pump 6 is in communication with the intake pipeline 5, and the intake pipeline 5 is responsible for transporting water from the water source (such as rivers, lakes, ponds, etc.) to the intake of the floating pump 6. The floating pump 6 usually floats on the water surface, and the intake is located underwater, which can effectively extract water from the water source.
[0070] After the floating pump 6 is started, the water is sucked into the pump through the impeller or piston inside the pump, and the water is pressurized through mechanical action.
[0071] The pressurized water is discharged from the outlet of the floating pump 6 and transported to the destination through the outlet pipeline 4, such as a water storage tank, an irrigation system, a fire fighting system or other places where water is needed.
[0072] The floating pump 6 can be quickly deployed near the water source without complex infrastructure, and is suitable for temporary or emergency water supply needs. The floating pump 6 can adapt to different depths of water sources and is not limited by the terrain of the water source, and can work in various environments.
[0073] In some embodiments of the present application, the pipeline system further comprises a filter screen covering the intake of the intake pipeline 5.
[0074] Before the water source water enters the floating pump 6 through the intake pipeline 5, the water first passes through the filter screen covering the intake.
[0075] The function of the filter screen is to intercept and remove impurities in the water, such as leaves, grass, sand, suspended solids, etc., to prevent these impurities from entering the pump body.
[0076] The filter screen can prevent impurities from entering the pump body, reduce the wear and blockage of the pump, and thus prolong the service life of the pump. By reducing the impurities inside the pump, the operating efficiency of the pump can be improved, and the energy consumption can be reduced. The filter screen helps to improve the quality of the delivered water and reduce damage to downstream systems or equipment caused by impurities.
[0077] In some embodiments of the present application, a wireless controller is also included, the control cabinet 7 is electrically connected with the engine set 2 and the booster pump 3 respectively, and the wireless controller is in signal connection with the floating pump 6.
[0078] The control cabinet 7 serves as a central control unit and realizes centralized control of the engine set 2 and the booster pump 3 through electrical connection.
[0079] The control cabinet 7 receives signals from each device through electrical lines and sends control signals to each device according to preset programs or instructions from operators.
[0080] Operators can start or stop the engine set 2 and the booster pump 3 through the control cabinet 7.
[0081] The control cabinet 7 can monitor the working status of each device in real time, such as current, voltage, frequency, running time, etc., and automatically take measures such as power-off protection when detecting abnormalities.
[0082] The control cabinet 7 can automatically adjust the operating parameters of the devices according to the system requirements, such as the speed and flow of the pump.
[0083] The floating boat pump 6 is an independent water pump, and the operator operates the floating boat pump 6 through a wireless controller.
[0084] In some embodiments of the present application, the outline of the shelter 1 is a cube, the length of the shelter 1 is greater than the width of the shelter 1, and a plurality of parallel operation doors are arranged on the long side of the shelter 1.
[0085] The shelter 1 is designed as a cube, which has stable geometric shape, is convenient for the layout and fixation of internal devices, and is also convenient for the transportation and stacking of the shelter 1.
[0086] The design of the length of the shelter 1 being greater than the width can provide longer internal space, so that the installation capacity and configuration flexibility of internal devices can be increased without affecting the flexibility of the shelter 1.
[0087] The plurality of parallel operation doors arranged on the long side make it convenient for operators to enter the interior of the shelter 1 from different positions for operation, maintenance and repair.
[0088] In some embodiments of the present application, a plurality of mobile wheels are further included, and the plurality of mobile wheels are respectively fixedly connected to the bottom corners of the shelter 1.
[0089] The mobile wheels are installed at the corner positions of the bottom of the shelter 1 and connected to the structure of the shelter 1 through a fixing device. Such a layout can evenly distribute the weight of the shelter 1 and provide stable support.
[0090] The mobile wheels make the shelter 1 easy to move on the ground, which is convenient for transportation and deployment to different locations.
[0091] In some embodiments of the present application, a plurality of support feet are further included, and the plurality of support feet are respectively connected to the bottom edges of the shelter 1, and the screw rod of each support foot is rotationally connected to the screw hole of the shelter 1.
[0092] The support feet are fixed to the edges of the shelter 1 bottom, usually symmetrically distributed, to ensure that the shelter 1 remains level when placed.
[0093] The screw rod of each support foot can be screwed into the screw hole in the shelter 1 bottom. By rotating the screw rod, the length of the support foot can be adjusted, thereby adjusting the height and levelness of the shelter 1.
[0094] When the shelter 1 is placed on the ground, the support feet act as supports, helping to distribute the weight of the shelter 1, reducing the pressure on the ground, and providing additional stability.
[0095] This application is designed to reduce the footprint of the pump station by integrating the pump station and water intake device in a smaller width shelter 1, thereby adapting to more use scenarios. At the same time, the shelter 1 comes with a pull arm hook 8 that can be used with a pull arm for loading and transportation, making transportation convenient and independent of the chassis.
[0096] The shelter 1 water intake and pressurization pump station mainly consists of a shelter 1, an engine set 2, a booster pump 3, an outlet pipeline 4, an inlet pipeline 5, a floating boat pump 6, a control cabinet 7, and other components. Its working principle is that the pipeline pressurization pump is powered by an independent engine set 2, which transmits power to the pressurization pump through a speed increasing box. The pressurization pump works to pump water from the floating boat pump 6 through the inlet pipeline 5 and deliver it to a more distant place through the outlet pipeline 4 connected pipeline.
[0097] The control system in the control cabinet 7 controls the operation of the pressurization pump by adjusting the speed of the engine set 2, realizing one-key start control of sequential water intake and pressurization water delivery operations.
[0098] The shelter 1 water intake and pressurization pump station integrates all necessary components, including the engine set 2, the booster pump 3, the pipeline system, the control cabinet 7, etc., in a smaller width shelter 1, forming a compact integrated pump station.
[0099] The engine set 2 transmits power to the booster pump 3 through a speed increasing box. The speed increasing box can adjust the output speed and torque of the engine according to needs to adapt to different working conditions.
[0100] The floating boat pump 6 pumps water from the water source and sends it to the booster pump 3 through the inlet pipeline 5. The booster pump 3 pressurizes the water and delivers it to the destination through the outlet pipeline 4.
[0101] The control system in the control cabinet 7 is responsible for adjusting the speed of the engine set 2, thereby controlling the operation of the pressurization pump. One-key sequential start control can be realized, simplifying the operation process.
[0102] The pull arm hook 8 of the shelter 1 is designed to allow the entire pump station to be loaded and transported by a pull arm truck without the need for a chassis, improving the flexibility and convenience of transportation.
[0103] Compared with the prior art, the technical scheme provided by the application has the beneficial technical effects including:
[0104] The engine set 2, the pipeline system and the control cabinet 7 are highly integrated in the shelter 1, which is beneficial to reduce the floor area of the pump station and can adapt to more use scenarios. Meanwhile, the shelter 1 adopts a modular design and can work independently from the vehicle chassis, which can effectively solve the problem that the overall size of the vehicle is too large and the pump station cannot be used in a narrow space. The devices in the shelter 1 are arranged in sequence from front to back, which can improve the space utilization and reduce the overall width of the pump station. The shelter 1 is provided with a drawbar hook 8, which can be quickly transported by using a drawbar, and the transportation is convenient and fast.
[0105] Those skilled in the art can understand that the steps, measures and schemes in the various operations, methods and processes discussed in the application can be alternated, changed, rearranged, decomposed, combined or deleted.
[0106] The specific embodiments of the application described above do not constitute a limitation on the scope of protection of the application. Any various other corresponding changes and modifications made according to the technical concept of the application should be included in the scope of protection of the claims of the application.
Claims
1. A sheltered water intake booster pump station characterized by, The utility model relates to a kind of mobile power generation system, including: Shelter, the shelter has hollow cavity; Engine group, the engine group is located one end of the cavity; Control cabinet, the control cabinet is located the other end of the cavity, and the control cabinet is electrically connected with the engine group; Pipeline system, the pipeline system is located between the engine group and the control cabinet, and the pipeline system is connected with the engine group, the control cabinet respectively; Pull arm hook, the pull arm hook is fixedly connected to the outside of the shelter.
2. A sheltered water intake booster pump station according to claim 1, characterized in that The pipeline system includes booster pump and water outlet pipeline, the booster pump is drivingly connected with the engine group, and the water outlet of the booster pump is communicated with the water outlet pipeline.
3. A sheltered water intake booster pump station according to claim 2, wherein, Further including gear box, the gear box includes gear input shaft and gear output shaft, the gear input shaft is engagedly connected between the gear output shaft, the gear input shaft is drivingly connected with the output shaft of the engine, and the gear output shaft is drivingly connected with the booster pump.
4. A sheltered water intake booster pump station according to claim 3, wherein, The gear input shaft is greater than the gear output shaft in number of teeth.
5. A sheltered water intake booster pump station according to claim 2, wherein, The pipeline system includes floating boat pump and water inlet pipeline, the water inlet of the floating boat pump is communicated with the water inlet pipeline, and the water outlet of the floating boat pump is communicated with the water outlet pipeline.
6. A sheltered water intake booster pump station according to claim 5, wherein, The pipeline system further includes filter screen, and the filter screen covers the water inlet of the water inlet pipeline.
7. A sheltered water intake booster pump station according to claim 5, wherein, Further including wireless controller, the control cabinet is electrically connected with the engine group, the booster pump respectively, and the wireless controller is signal connected with the floating boat pump.
8. A sheltered water intake booster pump station according to claim 1, wherein, The profile of the shelter is cubic, the length of the shelter is greater than the width of the shelter, and a plurality of operation doors are arranged side by side on the long side of the shelter.
9. A sheltered water intake booster pump station according to claim 8, wherein, Further including a plurality of moving wheels, a plurality of the moving wheels are fixedly connected with the bottom corners of the shelter respectively.
10. A sheltered water intake booster pump station according to claim 8, wherein, Further including a plurality of support feet, a plurality of the support feet are connected with the bottom edges of the shelter respectively, and the screw rod of each support foot is rotationally connected with the screw hole of the shelter.