A mobile, portable workstation

CN224834514UActive Publication Date: 2026-10-09JIANGSU PHILBO INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522441091.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-18
Publication Date
2026-10-09
Estimated Expiration
2035-11-18

AI Technical Summary

Technical Problem

然而,现有用于安装这些设备的工作站,在结构设计上存在明显缺陷

Benefits of technology

与现有技术相比,本装置通过在框架底架设置多个模块安装块,为预埋件生产所需的各个机械臂和配套模块提供了标准化的安装基准,无需针对不同设备单独适配,大幅简化了安装流程;同时,框架由底架和多个竖梁构成,安装门与侧板可灵活拆卸,便于后期对内部设备进行更换、检修与维护,能更好地适应现代化生产中设备快速迭代和灵活调整的需求;

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a mobile portable workstation, including frame, a plurality of installation door and side plate and module mounting block, the frame includes the chassis and a plurality of vertical beam, a plurality of installation door and side plate all are installed between the vertical beam of adjacent side, every installation door all is equipped with the observation window, a plurality of module mounting blocks are installed on the corresponding position of chassis, two end top plate and a plurality of intermediate top plate and connecting piece, a plurality of intermediate top plate are located between two end top plate, two end top plate and a plurality of intermediate top plate constitute the slope top, the upper end of frame is installed with two straight U type channel steel. This workstation can be installed indoors also can be installed in the outdoor, simultaneously, it is convenient to install each mechanical arm and the matching module produced by pre -buried spare in the workstation, and when the workstation is located in the outdoor, has good drainage effect, avoids the situation of the workstation internal waterlogging.
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Description

Technical Field

[0001] This utility model relates to the field of embedded parts processing technology, and in particular to a mobile portable workstation. Background Technology

[0002] In modern industrial production or steel reinforcement production, especially in scenarios such as embedded parts production, small-scale machining, and temporary outdoor operations, increasingly higher demands are being placed on the flexibility, functionality, and adaptability of workstations. Traditional workstations are mostly fixed structures, which are difficult to move once installed and cannot flexibly adjust their working positions according to production needs. When it is necessary to carry out temporary operations in different workshops, different factory areas, or even outdoors, the limitations of traditional fixed workstations become increasingly apparent, greatly restricting the improvement of production efficiency and the expansion of the work scope. In the production of embedded parts, multiple robotic arms, along with supporting control and detection modules, need to be integrated and installed to achieve automated production. However, existing workstations used to install these devices have significant structural design flaws. On the one hand, most workstations lack standardized modular installation structures, making the installation process of robotic arms and supporting modules complex and cumbersome. They require individual adaptation to the dimensions and installation requirements of different equipment, which not only increases installation difficulty but also reduces the convenience of equipment replacement and maintenance, making it difficult to meet the demands of rapid equipment iteration and flexible adjustment in modern production. On the other hand, the production of embedded parts in the construction industry often requires outdoor work sites. Existing workstations cannot be moved quickly, and their protective performance is insufficient to meet usage requirements. Outdoor operations frequently encounter rainy weather, and the roof structure of traditional workstations is poorly designed, lacking an effective drainage system. Rainwater easily accumulates on the roof and can even seep into the workstation's interior through the roof panel joints. This not only damages the electrical equipment and mechanical components inside the workstation, affecting the normal operation and lifespan of the equipment, but may also cause serious problems such as electrical faults and safety accidents, posing significant safety hazards to production operations. Furthermore, while some workstations do consider outdoor use, their overall structure is fragmented and not a unified whole, making them inconvenient for transportation and on-site assembly. They cannot quickly respond to the needs of temporary outdoor operations, requiring numerous steps such as disassembly in the factory, outdoor transportation, outdoor installation, outdoor debugging, and trial production, which wastes both time and manpower.

[0003] Therefore, a mobile, portable workstation needs to be designed to solve the above problems. Utility Model Content

[0004] The purpose of this utility model is to address the shortcomings of existing technologies by proposing a mobile portable workstation that can be installed indoors or outdoors. It facilitates the installation of various robotic arms and supporting modules for pre-embedded parts production within the workstation. Furthermore, when the workstation is located outdoors, it has excellent drainage, preventing water from entering the workstation.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: A mobile portable workstation includes a frame, multiple mounting doors and side panels, and modular mounting blocks. The frame includes a base frame and multiple vertical beams. The mounting doors and side panels are installed between adjacent vertical beams. Each mounting door has an observation window. The modular mounting blocks are installed at corresponding positions on the base frame. The workstation also includes two end top plates, multiple intermediate top plates, and connectors. The intermediate top plates are located between the two end top plates, forming a sloping top. Two straight U-shaped channel steels are installed at the upper end of the frame. Both ends of the end top plates and intermediate top plates are located within the straight U-shaped channel steels. The connectors connect the end top plates, intermediate top plates, and straight U-shaped channel steels together using multiple screws.

[0006] Preferably, drainage channels are provided in the multiple vertical beams located at the four corners, and both ends of each straight U-shaped channel are located above the corresponding drainage channel. Multiple bent U-shaped channels are fixedly connected to the upper ends of two straight U-shaped channels. The bent U-shaped channels are located below the splice joint between the end top plate, the middle top plate, and two adjacent middle top plates.

[0007] Preferably, two bolted connecting columns are fixedly connected above both the top end plate and the middle top plate, and two hanging rings are welded to the upper end of the frame.

[0008] Preferably, the upper end of the base frame is fixedly connected to multiple inner plates, and the multiple inner plates and the corresponding mounting doors form an electrical installation area, in which an electrical control cabinet is installed.

[0009] Preferably, a dust removal fan is installed in the electrical installation area, two dust suction ports are installed in the frame, a horizontal plate is installed at the upper end of the frame, an integrated air conditioner is installed on the horizontal plate, and the air inlet of the dust removal fan is connected to the two dust suction ports through a dust suction channel.

[0010] Preferably, indicator lights are installed on both the left and right sides of the frame, and the indicator lights are multi-color LED lights.

[0011] Compared with existing technologies, the advantages of this device are: Compared with existing technologies, this device provides a standardized installation benchmark for each robotic arm and supporting module required for the production of embedded parts by setting multiple modular mounting blocks on the frame base, eliminating the need for separate adaptation for different equipment and greatly simplifying the installation process. At the same time, the frame is composed of a base and multiple vertical beams, and the installation door and side panels can be flexibly disassembled, which facilitates the replacement, inspection and maintenance of internal equipment in the later stage, and can better adapt to the needs of rapid equipment iteration and flexible adjustment in modern production. Compared with existing technologies, this device not only designs the end and middle top plates as sloping tops to guide rainwater to flow quickly and avoid water accumulation, but also sets drainage channels in the four corner vertical beams, with the two ends of the straight U-shaped channel steel corresponding to the drainage channels above them. At the same time, the curved U-shaped channel steel covers the area below the splice seam of the top plate, allowing rainwater to flow quickly into the drainage channels and be discharged along the straight and curved U-shaped channel steel. This effectively prevents rainwater from seeping into the interior from the splice seam, protects electrical equipment and mechanical parts from damage, and greatly improves the reliability and safety of outdoor operations. Compared to existing technologies, this device integrates a dust removal fan within the electrical installation area. The fan is connected to the suction port, forming a complete dust removal system through the suction channel. This system can promptly remove dust and debris generated during the production of embedded parts, eliminating the need for additional dust removal equipment, saving costs and improving space utilization. Simultaneously, it standardizes the division of the electrical installation area, resulting in more organized installation of electrical control cabinets and avoiding messy wiring. For safety, multi-color LED indicator lights are installed on both sides of the device, allowing operators to monitor the equipment's operating status in real time and promptly detect any abnormalities. Hanging rings are welded to the upper part of the frame, and bolted connecting columns facilitate safe hoisting during transportation and provide stable fixation during outdoor operations, preventing displacement and ensuring stable and safe operation. An integrated air conditioner is also included to dissipate heat from the electrical installation area.

[0012] Compared with existing technologies, this portable workstation can be used immediately after being moved to its location, without having to go through many steps such as in-factory disassembly, outdoor transportation, outdoor installation, outdoor debugging, and trial production, thus reducing equipment installation time and labor costs. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the structure of a mobile portable workstation proposed in this utility model; Figure 2 for Figure 1 A structural diagram from another perspective; Figure 3 for Figure 2 Front-view sectional view; Figure 4 for Figure 1 A half-section view.

[0014] In the diagram: 1. Frame, 2. Mounting door, 3. Side panel, 4. Hanging ring, 5. Module mounting plate, 6. End top plate, 7. Middle top plate, 8. Drainage channel, 9. Indicator light, 10. Bolted connection column, 11. Electrical control cabinet, 12. Integrated air conditioner, 13. Dust removal fan, 14. Straight U-shaped channel steel, 15. Inner panel, 16. Bent U-shaped channel steel, 17. Dust suction port. Detailed Implementation

[0015] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0016] Reference Figures 1-4 A mobile portable workstation includes a frame 1, multiple mounting doors 2, side panels 3, and modular mounting blocks 5. The frame 1 serves as the load-bearing and supporting foundation of the entire workstation and is made of high-strength metal to ensure structural stability. Indicator lights 9 are installed on both the left and right sides of the frame 1. The indicator lights 9 are multi-color LEDs, with different colors corresponding to different working states such as normal operation, fault alarm, and standby, allowing operators to monitor the workstation's operation in real time. The frame 1 includes a base frame and multiple vertical beams. The multiple mounting doors 2 and side panels 3 are installed between the vertical beams on adjacent sides. Each mounting door 2 has an observation window. The multiple modular mounting blocks 5 are installed in corresponding positions on the base frame. The installation door 2 is rotatably connected to the vertical beam via hinges, and the side plate 3 is detachably connected to the vertical beam via bolts, facilitating later opening for internal equipment maintenance. The workstation also has openings in the front and rear areas for easy placement of raw materials. The workstation consists of two end top plates 6, multiple intermediate top plates 7, and connecting parts. The connecting parts are metal angle brackets with good load-bearing capacity. The multiple intermediate top plates 7 are located between the two end top plates 6, forming a sloping roof. The upper end of the frame 1 is equipped with two straight U-shaped channel steels 14. Both ends of the end top plates 6 and the intermediate top plates 7 are located within the straight U-shaped channel steels 14. The multiple connecting parts connect the end top plates 6, intermediate top plates 7, and straight U-shaped channel steels 14 together with multiple screws.

[0017] The vertical beams at the four corners are equipped with drainage channels 8. Both ends of each straight U-shaped channel 14 are located above the corresponding drainage channel 8, allowing rainwater collected in the straight U-shaped channel 14 to flow directly into the drainage channel 8, thus preventing rainwater from accumulating inside the channel. The upper ends of two straight U-shaped channel 14 are fixedly connected to multiple bent U-shaped channel 16. The bent U-shaped channel 16 are located below the joint between the end top plate 6 and the middle top plate 7, as well as the joint between two adjacent middle top plates 7, which can effectively intercept rainwater seeping in from the joint and prevent rainwater from dripping directly onto the equipment inside the workstation.

[0018] Two bolted connecting columns 10 are fixedly connected above the top plate 6 and the middle top plate 7. Two hanging rings 4 are welded to the upper end of the frame 1. The hanging rings 4 are symmetrically arranged on both sides of the width direction of the frame 1. The bolted connecting columns 10 and the hanging rings can be used with the connecting bolts or hooks of the hoisting equipment to realize the overall hoisting and transportation of the workstation.

[0019] The upper end of the base frame is fixedly connected to multiple inner panels 15. The multiple inner panels 15 and the corresponding installation doors 2 constitute an electrical installation area. An electrical control cabinet 11 is installed in the electrical installation area. A dust removal fan 13 is installed in the electrical installation area. Two dust suction ports 17 are installed inside the frame 1. A horizontal plate is installed at the upper end of the frame 1. An integrated air conditioner 12 is installed on the horizontal plate. The integrated air conditioner 12 is used to dissipate heat in the electrical installation area. The air inlet of the dust removal fan 13 is connected to the two dust suction ports 17 through a dust suction channel.

[0020] The functional principle of this utility model can be explained through the following operation: When installing the equipment related to the production of embedded parts indoors, the base frame of the frame 1 is placed stably first. Using the multiple pre-set modular installation blocks 5 on the base frame as a standardized installation benchmark, each robotic arm and its supporting modules are directly fixed on the modular installation blocks 5 without additional adaptation or adjustment. When the equipment needs to be maintained or replaced later, the installation door 2 and side plate 3 installed between the adjacent vertical beams of the frame 1 can be removed to quickly access the internal equipment. After the maintenance operation is completed, the installation door 2 and side plate 3 are reinstalled. The operating status of the internal equipment can also be observed in real time through the observation window on the installation door, thereby realizing flexible installation and convenient maintenance of the modules. When installing outdoors, after the frame 1 is installed, the end top plate 6 and the middle top plate 7 can be bolted to the crane by connecting the bolts to the column 10. Then, the middle top plate 7 and the end top plate 6 can be hoisted onto the frame 1. When it is necessary to replace the internal module, the top plate above the specified module can be removed, and then the module can be replaced using the crane. When the workstation is in an outdoor rainy environment, the outdoor drainage and protection function comes into play. The sloping roof, composed of two end top plates 6 and multiple intermediate top plates 7, guides rainwater to flow to both sides using its own slope, preventing rainwater from accumulating at the top. During the rainwater flow, some rainwater will enter the straight U-shaped channel steel 14 at both ends of the end top plates 6 and intermediate top plates 7. At the same time, the curved U-shaped channel steel 16 covering the joints between the end top plates 6 and intermediate top plates 7 and adjacent intermediate top plates 7 will intercept the rainwater seeping in from the joints and guide it into the straight U-shaped channel steel 14. Finally, the rainwater in the straight U-shaped channel steel 14 flows along the channel to both ends and falls into the drainage channels 8 in the four corner vertical beams of the frame 1. The rainwater is quickly discharged to the outside of the workstation through the drainage channels 8, effectively preventing rainwater from entering the interior and damaging the equipment. In terms of dust removal and purification, when the workstation generates dust and debris during operation, the dust removal fan 13 in the electrical installation area is activated. The air inlet of the dust removal fan 13 generates negative pressure, which draws in the dust and debris around the two dust suction ports 17 in the frame 1 through the dust suction channel. The dust and debris are filtered by the dust removal fan 12, and the impurities are intercepted in the dust removal fan 12. The purified air is discharged from the workstation. The electrical installation area is formed by multiple inner panels 15 fixed to the upper end of the base frame and corresponding installation doors 2. The electrical control cabinet 11 is installed in this area to provide power and control support for equipment such as the dust removal fan 13. Regarding safe operation and mobile fixation, when the workstation is running, the indicator lights 9 on the left and right sides of the frame 1 will display corresponding colors according to the equipment's operating status. Operators can judge whether the equipment is operating normally in real time by observing the color changes of the indicator lights 9 and promptly detect any abnormalities. When the workstation needs to be moved, the hanging rings 4 welded to the upper end of the frame 1 are used in conjunction with hoisting equipment to lift the entire workstation and transport it to the target location. Then, the workstation is connected to the ground or fixed base by bolts through the bolted connecting columns 10 fixed above the end top plate 6 and the middle top plate 7, achieving stable fixation and preventing displacement of the workstation during operation.

[0021] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A mobile portable workstation, characterized in that... ,include: The frame (1), multiple mounting doors (2) and side panels (3) and modular mounting blocks (5) are provided. The frame (1) includes a base frame and multiple vertical beams. The multiple mounting doors (2) and side panels (3) are installed between the vertical beams on adjacent sides. Each mounting door (2) is provided with an observation window. The multiple modular mounting blocks (5) are installed at the corresponding positions on the base frame. Two end top plates (6) and multiple intermediate top plates (7) and connectors, the multiple intermediate top plates (7) are located between the two end top plates (6), the two end top plates (6) and multiple intermediate top plates (7) form a sloping top, two straight U-shaped channel steels (14) are installed at the upper end of the frame (1), both ends of the end top plates (6) and the intermediate top plates (7) are located inside the straight U-shaped channel steels (14), and the multiple connectors connect the end top plates (6), the intermediate top plates (7) and the straight U-shaped channel steels (14) together by multiple screws.

2. A mobile portable workstation according to claim 1, characterized in that: Drainage channels (8) are provided in the multiple vertical beams located at the four corners. Both ends of each straight U-shaped channel steel (14) are located above the corresponding drainage channel (8). Multiple bent U-shaped channel steels (16) are fixedly connected to the upper ends of the two straight U-shaped channel steels (14). The bent U-shaped channel steels (16) are located below the splice joint of the end top plate (6), the middle top plate (7), and the two adjacent middle top plates (7).

3. A mobile portable workstation according to claim 1, characterized in that: Two bolted columns (10) are fixedly connected above the top plate (6) and the middle plate (7), and two hanging rings (4) are welded to the upper end of the frame (1).

4. A mobile portable workstation according to claim 1, characterized in that: The upper end of the base frame is fixedly connected to multiple inner plates (15), and the multiple inner plates (15) and the corresponding installation door (2) constitute an electrical installation area, in which an electrical control cabinet (11) is installed.

5. A mobile portable workstation according to claim 4, characterized in that: A dust removal fan (13) is installed in the electrical installation area. Two dust suction ports (17) are installed in the frame (1). A horizontal plate is installed at the upper end of the frame (1). An integrated air conditioner (12) is installed on the horizontal plate. The air inlet of the dust removal fan (13) is connected to the two dust suction ports (17) through a dust suction channel.

6. A mobile portable workstation according to claim 1, characterized in that: Indicator lights (9) are installed on both the left and right sides of the frame (1), and the indicator lights (9) are multi-color LED lights.