Tooling trolleys and workpiece processing equipment
By designing a tooling trolley with a rotatable handle and grouped sliding wheels, the inconvenience and safety issues of traditional tooling trolleys were solved, enabling efficient and safe transfer and transportation of workpieces, and enhancing production efficiency and stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN GOLDEN MILLIMETER TECHNOLOGY CO LTD
- Filing Date
- 2025-06-30
- Publication Date
- 2026-05-26
AI Technical Summary
Traditional tooling trolleys are inconvenient to operate during workpiece transfer, resulting in low production efficiency, workpiece damage and safety hazards, and unreasonable design makes workpieces prone to slipping in complex environments.
Design a tooling trolley including a frame, sliding wheels and a rotatable handle. The sliding surface is at the same height as the worktable. The workpiece can be smoothly transferred and loaded/unloaded through the transfer opening. The frame and handle are stably arranged. The sliding wheels are grouped to provide uniform support. The guide plate and moving wheels improve the flexibility of movement. The aging rack is equipped with an adjustable baffle to optimize heat dissipation.
It reduces the labor intensity of operators, improves the efficiency of workpiece loading, unloading and transfer, ensures the stability of workpieces during transportation, reduces the risk of workpiece slippage, and achieves safe and efficient transfer and stability of workpieces during transportation, thereby reducing the risk of workpiece slippage and improving production efficiency and safety.
Smart Images

Figure CN224277237U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of workpiece processing equipment, and more specifically, to a tooling trolley and workpiece processing equipment. Background Technology
[0002] In industrial production and material handling, tooling trolleys serve as crucial auxiliary equipment, widely used for workpiece transfer, storage, and transportation. Traditional tooling trolleys typically only possess basic load-bearing capabilities. The difference in height between their worktable and the structure supporting workpiece sliding necessitates frequent lifting and lowering of workpieces during transfer, increasing operator workload and increasing the risk of workpiece damage or personnel safety hazards due to improper operation. Furthermore, existing tooling trolleys lack well-designed workpiece loading and unloading channels, hindering operation and impacting production efficiency. Additionally, the illogical handle placement and support structure layout of traditional tooling trolleys make stable workpiece transport difficult, especially in complex workshop environments, leading to workpiece slippage. Therefore, there is an urgent need to design a tooling trolley with a more rational structure, convenient operation, and the ability to ensure safe workpiece transfer and transportation to meet the growing demands for efficiency and safety in industrial production. Utility Model Content
[0003] The purpose of this utility model is to provide a tooling trolley and workpiece processing equipment to solve the technical problem of low production efficiency caused by the inconvenience of transferring workpieces using the tooling trolley in the prior art.
[0004] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0005] Firstly, a tooling cart is provided, comprising:
[0006] frame;
[0007] A first workbench is provided on the frame, and the first workbench is provided with a first work surface;
[0008] Multiple sliding wheels are arranged at intervals on the frame, and the tops of the multiple sliding wheels together form a sliding surface for sliding support of the workpiece. The height of the sliding surface is equal to that of the first worktable surface.
[0009] Two handles are provided on the frame, and a transfer opening is formed between the two handles and the sliding surface;
[0010] The workpiece is capable of being transferred between the first worktable and the sliding surface, and can enter and exit the sliding surface through the transfer opening.
[0011] By adopting the above technical solutions, this structural design effectively reduces the labor intensity of operators and avoids damage caused by frequent lifting or lowering of workpieces; the reasonable transfer opening and consistent height design improve the efficiency of workpiece loading, unloading and transfer; the stable frame and handle layout ensure the stability of the tooling trolley during transportation, reduce the risk of workpiece slippage, and realize the safe and efficient transfer and transportation of workpieces.
[0012] In one embodiment, the sliding surface defines a workpiece sliding direction, and the handle includes a connecting post, a rotating shaft disposed on the connecting post, and a handle body connected to the rotating shaft; the connecting post is erected on the frame, the rotating shaft is arranged parallel to the workpiece sliding direction, the handle body is capable of rotating around the rotating shaft, the transfer opening is closed when the handle body rotates to a first position, and the transfer opening is opened when the handle body rotates to a second position.
[0013] In one embodiment, the two handle bodies are arranged facing each other when the transfer opening is closed; and the two handle bodies are arranged along a direction away from the sliding surface when the transfer opening is opened.
[0014] In one embodiment, the handle further includes a damping element disposed between the rotation shaft and the handle body, the damping element being used to provide resistance to limit the handle body to a first position or a second position.
[0015] In one embodiment, the frame is provided with multiple sets of sliding wheels, with adjacent sets of sliding wheels arranged in parallel at equal intervals, and each set of sliding wheels includes multiple sliding wheels arranged at equal intervals.
[0016] In one embodiment, the sliding wheel includes a wheel seat and a sliding ball disposed on the wheel seat. The wheel seat is disposed on the frame and has a sliding groove. The sliding ball is in clearance fit with the sliding groove, and the top of the sliding ball protrudes outside the opening of the sliding groove.
[0017] In one embodiment, the tooling trolley further includes a second workbench, which is detachably mounted on the frame and located above the sliding surface. The second workbench has a second work surface for contacting the first workbench.
[0018] In one embodiment, the tooling trolley further includes two guide plates, which are respectively located on both sides of the sliding surface in the sliding direction of the workpiece;
[0019] And / or, the tooling trolley further includes movable wheels located at the bottom of the frame;
[0020] And / or, the tooling trolley also includes a grounding chain located at the bottom of the frame.
[0021] Secondly, a workpiece processing device is provided, including an aging rack and the aforementioned tooling trolley, wherein the tooling trolley is used to dock with the aging rack.
[0022] By adopting the above technical solution, the workpiece processing equipment of this embodiment has the advantage of high processing efficiency, in addition to the advantages of the tooling trolley in the above embodiments.
[0023] In one embodiment, the aging rack is provided with a plurality of workpiece compartments, each of which is provided with a removable baffle for adjusting the direction of heat dissipation. Attached Figure Description
[0024] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0025] Figure 1 This is a three-dimensional structural diagram of the tooling trolley provided in this embodiment of the utility model.
[0026] Figure 2 This is a front view of the tooling trolley provided in an embodiment of the present invention, wherein the transfer opening is in a closed state.
[0027] Figure 3 This is a front view of the tooling trolley provided in this embodiment of the utility model, wherein the transfer opening is in the open state.
[0028] Figure 4 This is an exploded view of the handle provided in an embodiment of this utility model.
[0029] Figure 5 This is a three-dimensional structural diagram of the sliding wheel provided in an embodiment of this utility model.
[0030] Figure 6 This is a three-dimensional structural diagram of the aging rack provided in this embodiment of the utility model.
[0031] The labels for the attached figures are as follows:
[0032] 1. Frame; 2. First workbench; 3. Sliding casters; 4. Handle; 5. Guide plate; 6. Moving casters; 7. Grounding chain; 8. Aging rack;
[0033] 21. First worktable surface; 31. Sliding surface; 41. Transfer opening; X, workpiece sliding direction; 42. Connecting column; 43. Rotating shaft; 44. Handle body; 32. Wheel seat; 33. Sliding ball; 81. Workpiece compartment; 82. Baffle;
[0034] 321. Sliding groove. Detailed Implementation
[0035] To make the technical problems, technical solutions, and beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0036] It should be noted that when a component is referred to as "fixed to" or "set on" another component, it can be located directly on or indirectly on the other component. When a component is referred to as "connected to" another component, it can be directly or indirectly connected to the other component.
[0037] It should be understood that the terms "length", "width", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and do not indicate that the device or element must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0038] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating relative importance or the number of technical features. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified. The specific implementation of this utility model is described in more detail below with reference to specific embodiments:
[0039] like Figure 1 and Figure 2 As shown, an embodiment of this utility model provides a tooling trolley, comprising:
[0040] Framework 1;
[0041] The first workbench 2 is mounted on the frame 1, and the first workbench 2 is provided with a first workbench surface 21;
[0042] Multiple sliding wheels 3 are arranged at intervals on the frame 1. The tops of the multiple sliding wheels 3 are collectively formed with a sliding surface 31 for sliding support of the workpiece. The height of the sliding surface 31 is equal to that of the first worktable surface 21.
[0043] Two handles 4 are provided on the frame 1, and a transfer opening 41 is formed between the two handles 4 and the sliding surface 31;
[0044] The workpiece can be transferred between the first worktable surface 21 and the sliding surface 31, and can enter and exit the sliding surface 31 through the transfer opening 41.
[0045] Specifically, the tooling trolley includes a frame 1, a first workbench 2, multiple sliding wheels 3, and two handles 4.
[0046] Frame 1 serves as the basic support structure for the entire tooling trolley, providing an installation platform for other components;
[0047] The first workbench 2 is mounted on the frame 1, and its first workbench surface 21 is used to place and process workpieces.
[0048] Multiple sliding wheels 3 are arranged at intervals on the frame 1, and their tops together form a sliding surface 31, which can provide sliding support for the workpiece;
[0049] Two handles 4 are mounted on the frame 1, forming a transfer opening 41 between them and the sliding surface 31.
[0050] The working principle of the tooling trolley provided in this embodiment is as follows:
[0051] When a workpiece needs to be transferred, since the sliding surface 31 and the first worktable surface 21 are at the same height, the workpiece can be transferred smoothly between the two without lifting or lowering, reducing the number of operation steps. The existence of the transfer opening 41 allows the workpiece to enter and exit the sliding surface 31 conveniently and quickly from the outside. The operator can push the tooling trolley with the handle 4. During the movement, the rolling of the sliding wheels 3 can assist in the transfer of the workpiece.
[0052] By adopting the above technical solution, this structural design effectively reduces the labor intensity of operators and avoids damage caused by frequent lifting or lowering of workpieces; the reasonable transfer opening 41 and the consistent height design improve the efficiency of workpiece loading, unloading and transfer; the stable layout of the frame 1 and handle 4 ensures the stability of the tooling trolley during transportation, reduces the risk of workpiece slippage, and realizes safe and efficient transfer and transportation of workpieces.
[0053] Please refer to the following: Figure 3 and Figure 4 In one embodiment, the sliding surface 31 defines the workpiece sliding direction X, and the handle 4 includes a connecting post 42, a rotating shaft 43 disposed on the connecting post 42, and a handle body 44 connected to the rotating shaft 43; the connecting post 42 is erected on the frame 1, the rotating shaft 43 is arranged parallel to the workpiece sliding direction X, and the handle body 44 can rotate around the rotating shaft 43. When the handle body 44 rotates to the first position, the transfer opening 41 is closed, and when the handle body 44 rotates to the second position, the transfer opening 41 is opened.
[0054] Specifically, the handle 4 includes a connecting post 42, a rotating shaft 43, and a handle body 44: the connecting post 42 is vertically fixed to the frame 1, providing support for the entire handle 4 structure; the rotating shaft 43 is mounted on the connecting post 42, and its axis is parallel to the workpiece sliding direction X defined by the sliding surface 31; the handle body 44 is connected to the rotating shaft 43 and can rotate around the rotating shaft 43. This structural design gives the handle 4 a rotatable function, allowing the state of the transfer opening 41 to be controlled by rotation.
[0055] When it is necessary to close the transfer opening 41, the operator rotates the handle body 44 around the rotation axis 43 to the first position. At this time, the handle body 44 blocks the transfer opening 41, preventing the workpiece from entering or exiting the sliding surface 31 through the opening, thus preventing the workpiece from accidentally slipping during transportation. When it is necessary to open the transfer opening 41, the operator rotates the handle body 44 to the second position, moving the handle body 44 away from the transfer opening 41, making the transfer opening 41 open. This facilitates the transfer of the workpiece between the first worktable surface 21 and the sliding surface 31, or its entry and exit from the outside of the sliding surface 31. By rotating the handle body 44 between the first and second positions, the opening and closing of the transfer opening 41 is controlled, meeting the needs of different operating scenarios.
[0056] By adopting the above technical solution, the design of controlling the transfer opening 41 with a rotatable handle 4 brings about multiple technical benefits. In terms of safety, when the handle body 44 is in the first position, closing the transfer opening 41, it effectively prevents the workpiece from slipping out of the opening during transportation, improving the safety of workpiece transportation. In terms of operational convenience, when loading, unloading, or transferring workpieces, rotating the handle body 44 to the second position opens the transfer opening 41, making operation simple and quick, and improving the efficiency of workpiece loading, unloading, and transfer. At the same time, this rotatable handle 4 design allows the tooling trolley to flexibly switch between different working states, enhancing the practicality and adaptability of the equipment and meeting the multi-functional needs of tooling trolleys in industrial production.
[0057] In one embodiment, the two handle bodies 44 are arranged facing each other when the transfer opening 41 is closed; the two handle bodies 44 are arranged along a direction away from the sliding surface 31 when the transfer opening 41 is open.
[0058] Specifically, when the transfer opening 41 is closed, the two handle bodies 44 are positioned facing each other, forming a blocking structure at the transfer opening 41 to seal it and prevent the workpiece from accidentally moving out through it. When the transfer opening 41 is opened, the two handle bodies 44 are positioned away from the sliding surface 31, allowing them to move away from both the sliding surface 31 and the transfer opening 41. This creates a complete and unobstructed passageway for the workpiece to enter and exit the sliding surface 31 and to transfer between the first worktable surface 21 and the sliding surface 31. This structural arrangement, closely integrated with the sliding surface 31 and the transfer opening 41, achieves precise spatial control.
[0059] In actual operation, when the tooling trolley is in the workpiece transportation stage, to ensure workpiece safety, the operator rotates the two handle bodies 44 to face each other, closing the transfer opening 41. At this time, the handle bodies 44 form a stable barrier, effectively restricting workpiece movement and preventing slippage even when the trolley shakes. When it is necessary to load, unload, or transfer workpieces, the operator rotates the two handle bodies 44 in the direction away from the sliding surface 31, opening the transfer opening 41. At this time, without the handle bodies 44 obstructing the view, the workpiece can smoothly enter and exit through the transfer opening 41, or slide between the first worktable surface 21 and the sliding surface 31. The operation logic is clear, and the switching between the two states is convenient and efficient, meeting the fast-paced operation needs of industrial production.
[0060] In one embodiment, the handle 4 further includes a damping element disposed between the rotation shaft 43 and the handle body 44, the damping element being used to provide resistance to limit the handle body 44 to a first position or a second position.
[0061] Specifically, the handle 4's structure, based on the original connecting post 42, rotating shaft 43, and handle body 44, adds a damping component. This damping component is located between the rotating shaft 43 and the handle body 44, becoming a key component connecting the two. Its addition transforms the handle 4 structure from a simple rotating connection into an adjustable resistance control function.
[0062] When the operator rotates the handle body 44, the damping element begins to function. During the rotation of the handle body 44 to the first position (closing the transfer opening 41) or to the second position (opening the transfer opening 41), the damping element provides corresponding resistance. This resistance ensures that the handle body 44 does not change position arbitrarily due to slight external force shaking, collisions, or bumps during the movement of the trolley. The handle body 44 will only rotate from one position to another when the operator applies sufficient external force to overcome the damping resistance. For example, during workpiece transport, even if the tooling trolley is vibrated, the handle body 44 can be stably held in the first position (closing the transfer opening 41) due to the resistance of the damping element, preventing the transfer opening 41 from opening and the workpiece from slipping due to accidental rotation. When it is necessary to open the transfer opening 41 to load or unload workpieces, the operator actively applies force to overcome the damping resistance and rotates the handle body 44 to the second position. After completing the operation, the damping element can then stably limit the handle body 44 to that position until the next manual operation changes its state.
[0063] By adopting the above technical solution, the unexpected rotation of the handle body 44 due to accidental external force is effectively avoided, ensuring that the transfer opening 41 is always closed during transportation, greatly reducing the risk of workpiece falling, and further improving the safety performance of the tooling trolley in transporting workpieces; in terms of operational stability, the resistance provided by the damping component allows the operator to obtain clear operational feedback when rotating the handle body 44, clearly perceive the position switch, and after reaching the target position, the handle body 44 can be stably limited, avoiding repeated position adjustments and improving the accuracy and efficiency of operation.
[0064] In one embodiment, the frame 1 is provided with multiple sets of sliding wheels 3, with adjacent sets of sliding wheels 3 arranged in parallel at equal intervals, and each set of sliding wheels 3 includes multiple sliding wheels 3 arranged at equal intervals.
[0065] Specifically, the frame 1 of the tooling trolley serves as the basic load-bearing structure, on which multiple sets of sliding wheels 3 are installed. This design changes the traditional single-wheel layout, making the distribution of sliding wheels 3 on the frame 1 more systematic through grouping. The parallel spacing between adjacent sets of sliding wheels 3 ensures the uniformity and stability of the entire sliding surface 31; each set of sliding wheels 3 contains multiple equally spaced sliding wheels 3, forming a locally dense support structure. The multiple sets of sliding wheels 3, in conjunction with the frame 1, not only enhance the frame 1's support capacity for the workpiece, but also, through a regular layout, provide a reliable structural foundation for the smooth sliding of the workpiece on the sliding surface 31, making the entire tooling trolley structurally more scientific and rational.
[0066] When a workpiece is placed on a sliding surface 31 formed by the tops of multiple sets of sliding wheels 3, the supporting force on the workpiece is evenly distributed on the sliding surface 31 because adjacent sets of sliding wheels 3 are equally spaced and parallel, and the sliding wheels 3 within each set are equally spaced. During the transportation of the workpiece by pushing the tooling trolley, this uniform distribution of supporting force effectively disperses the weight of the workpiece, reduces the pressure on individual sliding wheels 3, and lowers the risk of damage to the sliding wheels 3 due to excessive localized force. Simultaneously, the equally spaced parallel arrangement ensures the synchronicity of the sliding wheels 3 during rolling, allowing the workpiece to slide smoothly on the sliding surface 31. This avoids tilting or jamming of the workpiece due to inconsistent spacing or uneven force on the sliding wheels 3, thus achieving safe and stable transfer and transportation of the workpiece on the sliding surface 31.
[0067] Please refer to the following: Figure 5 In one embodiment, the sliding wheel 3 includes a wheel seat 32 and a sliding ball 33 disposed on the wheel seat 32. The wheel seat 32 is disposed on the frame 1 and has a sliding groove 321. The sliding ball 33 is in clearance fit with the sliding groove 321, and the top of the sliding ball 33 protrudes outside the groove opening of the sliding groove 321.
[0068] Specifically, the sliding wheel 3 adopts a unique split-type structural design, consisting of a wheel seat 32 and a sliding ball 33. The wheel seat 32, as a basic component, is fixedly mounted on the frame 1, serving as a support and positioning element. The sliding groove 321 on the wheel seat 321 is a key structural feature. The sliding ball 33 is installed in a clearance fit with the sliding groove 321. This fit ensures that the sliding ball 33 can move flexibly within the sliding groove 321 while effectively limiting its range of motion, preventing the sliding ball 33 from detaching from the wheel seat 32. Simultaneously, the top of the sliding ball 33 protrudes beyond the opening of the sliding groove 321, directly contacting the workpiece and forming a support surface for workpiece sliding. This structural design breaks through the traditional single-roller model of the sliding wheel 3. Through its split construction and clearance fit, it provides a new structural foundation for the functionality of the sliding wheel 3, enabling it to better adapt to the sliding requirements of the workpiece when working with the frame 1.
[0069] When a workpiece is placed on a sliding surface 31 composed of multiple sliding wheels 3, the top of the sliding ball 33, which is in direct contact with the workpiece, bears the pressure of the workpiece. Due to the clearance fit between the sliding ball 33 and the sliding groove 321, the sliding ball 33 can roll freely within the sliding groove 321 when the workpiece is pushed or the tooling trolley moves. Compared to traditional roller sliding, this rolling method allows for more flexible multi-directional movement. Whether the workpiece slides linearly or turns on the sliding surface 31, the sliding ball 33 can adjust its contact angle and direction with the workpiece in a timely manner through its own rolling, reducing friction and resistance during the workpiece's sliding process. Furthermore, the limiting effect of the sliding groove 321 on the sliding ball 33 ensures that the sliding ball 33 will not shift or fall off during rolling, consistently and stably supporting the workpiece. This ensures that the workpiece slides smoothly and steadily on the sliding surface 31, effectively avoiding problems such as workpiece damage or reduced transportation efficiency caused by poor sliding.
[0070] In one embodiment, the tooling trolley further includes a second workbench, which is detachably mounted on the frame 1 and located above the sliding surface 31. The second workbench has a second work surface for docking with the first work surface 21.
[0071] Specifically, the tooling trolley's structure, based on the original frame 1, first worktable 2, sliding wheels 3, and handle 4, adds a second worktable. The second worktable is detachably mounted to the frame 1 and positioned above the sliding surface 31, a layout that makes more efficient use of the trolley's space. The second worktable has a second work surface that can connect with the first work surface 21, together forming a larger and more flexible working plane. The detachable mounting method allows the second worktable to be installed or removed according to actual usage needs, increasing the variability and adaptability of the tooling trolley structure. Furthermore, the positional relationship between the second worktable, the first worktable 2, and the sliding surface 31 clarifies its functional role within the overall tooling trolley structure, providing a structural foundation for meeting diverse workpiece processing and transportation needs.
[0072] When the working surface needs to be expanded, the operator installs the second workbench onto frame 1. Since the second workbench surface can mate with the first workbench surface 21, the two together form a continuous, flat large plane. Workpieces can then be placed, processed, or transferred on this expanded plane, facilitating the centralized processing of large or multiple workpieces. During workpiece transport, the second workbench is positioned above the sliding surface 31, ensuring it does not obstruct the workpiece's movement. The sliding wheels 3 continue to support and assist workpiece movement normally. When the second workbench is not needed, the operator can remove it from frame 1, restoring the tooling trolley to a relatively simple structure, making it convenient for use in confined spaces or scenarios with high space requirements. The entire operation is simple and convenient, allowing for quick switching of the tooling trolley's working mode according to different work scenarios and needs.
[0073] In one embodiment, the tooling trolley further includes two guide plates 5, which are located on both sides of the sliding surface 31 in the workpiece sliding direction X.
[0074] In one embodiment, the tooling trolley also includes movable wheels 6 located at the bottom of the frame 1;
[0075] In one embodiment, the tooling trolley also includes a grounding chain 7 located at the bottom of the frame 1.
[0076] Specifically, based on the original tooling trolley structure, three optional extended structures were proposed.
[0077] The guide plate 5 consists of two guide plates 5 respectively positioned on both sides of the sliding surface 31 in the sliding direction, forming boundary constraints on the workpiece sliding. The moving wheel 6 is installed at the bottom of the frame 1 and is used to change the position of the tooling trolley. The grounding chain 7 is also located at the bottom of the frame 1 and is in direct contact with the ground. The guide plate 5 optimizes the workpiece sliding path, the moving wheel 6 enhances the mobility of the tooling trolley, and the grounding chain 7 ensures the safety of equipment use. Together with the original structure such as the frame 1 and the worktable, they constitute a more complete tooling trolley system.
[0078] When in operation, the guide plate 5 guides the workpiece to slide along the predetermined direction of the sliding surface 31 through the physical boundaries on both sides, preventing the workpiece from deviating or slipping due to external interference during the sliding process, and ensuring the stability and accuracy of the workpiece sliding. The moving wheels 6 rely on their own rolling characteristics to allow operators to easily push and pull the tooling trolley, realizing its movement between different work areas such as workshops and warehouses. Compared with the movement method relying solely on the sliding wheels 3, the setting of the moving wheels 6 makes the overall movement of the tooling trolley more flexible and convenient. The grounding chain 7 maintains continuous contact with the ground during the operation of the tooling trolley, and conducts the static electricity generated by the tooling trolley to the ground in a timely manner, avoiding the safety hazards such as fire and explosion caused by static electricity accumulation. It is especially suitable for the transportation of workpieces such as electronic components that are sensitive to static electricity.
[0079] Please refer to the following: Figure 6 Secondly, a workpiece processing device is provided, characterized in that it includes an aging rack 8 and the aforementioned tooling trolley, the tooling trolley being used to dock with the aging rack 8.
[0080] By adopting the above technical solution, the workpiece processing equipment of this embodiment has the advantage of high processing efficiency, in addition to the advantages of the tooling trolley in the above embodiments.
[0081] In one embodiment, the aging rack 8 is provided with a plurality of workpiece compartments 81, each workpiece compartment 81 being provided with a removable baffle 82 for adjusting the direction of heat dissipation.
[0082] Specifically, the aging rack 8 is equipped with multiple workpiece compartments 81, which are the basic units for holding the workpieces to be aged. Each workpiece compartment 81 is equipped with a baffle 82, which has two main features: detachability and adjustable airflow direction. The detachable design allows the baffle 82 to be installed or removed according to actual usage needs, enhancing the flexibility of the workpiece compartment 81 structure; the function of adjusting the airflow direction indicates that the structural design of the baffle 82 can affect the airflow direction within the aging rack 8. This structural composition allows for more refined control of workpiece placement and heat dissipation management in the aging rack 8, which is significantly different from the single fixed structure of traditional aging racks 8, providing a structural basis for optimizing the performance of the aging rack 8.
[0083] When the aging rack 8 is running, the workpiece to be aged is placed in the workpiece chamber 81, at which point the baffle 82 plays a crucial role. On one hand, by adjusting the angle and position of the baffle 82, the airflow direction inside the aging rack 8 can be altered. For example, adjusting the baffle 82 to a specific angle can guide the cooling air to be more concentrated on the workpiece area with high heat generation, allowing heat to dissipate more quickly and preventing excessively high local temperatures from affecting the aging effect. On the other hand, its detachable nature allows operators to decide whether to install the baffle 82 based on the size, shape, and heat dissipation requirements of the workpiece. For workpieces with low heat dissipation requirements or large volumes that make it difficult to install the baffle 82, the baffle 82 can be removed, ensuring that the workpiece can be smoothly placed into the workpiece chamber 81 without affecting the natural airflow during the aging process. Through this working method, the baffle 82 effectively participates in and optimizes the heat dissipation process within the aging rack 8, ensuring that the workpiece completes aging in a suitable temperature environment.
[0084] It needs to be further explained that the transfer opening 41 is used to dock with the workpiece compartment 81, so that the workpiece can be transferred from the tooling trolley into the workpiece compartment 81.
[0085] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A tool cart, characterized in that, include: frame; A first workbench is provided on the frame, and the first workbench is provided with a first work surface; Multiple sliding wheels are arranged at intervals on the frame, and the tops of the multiple sliding wheels together form a sliding surface for sliding support of the workpiece. The height of the sliding surface is equal to that of the first worktable surface. Two handles are provided on the frame, and a transfer opening is formed between the two handles and the sliding surface; The workpiece is capable of being transferred between the first worktable and the sliding surface, and can enter and exit the sliding surface through the transfer opening.
2. The tool cart of claim 1, wherein, The sliding surface defines the workpiece sliding direction. The handle includes a connecting column, a rotating shaft disposed on the connecting column, and a handle body connected to the rotating shaft. The connecting column is erected on the frame, the rotating shaft is arranged parallel to the workpiece sliding direction, and the handle body can rotate around the rotating shaft. When the handle body rotates to the first position, the transfer opening is closed, and when the handle body rotates to the second position, the transfer opening is opened.
3. The tool cart of claim 2, wherein, The two handle bodies are positioned facing each other when the transfer opening is closed; the two handle bodies are positioned along a direction away from the sliding surface when the transfer opening is open.
4. The tooling trolley as described in claim 2, characterized in that, The handle also includes a damping element disposed between the rotating shaft and the handle body, the damping element being used to provide resistance to limit the handle body to a first position or a second position.
5. The tooling trolley as described in claim 1, characterized in that, The frame is provided with multiple sets of sliding wheels, with adjacent sets of sliding wheels arranged in parallel at equal intervals, and each set of sliding wheels includes multiple sliding wheels arranged at equal intervals.
6. The tooling trolley as described in claim 1, characterized in that, The sliding wheel includes a wheel seat and a sliding ball disposed on the wheel seat. The wheel seat is disposed on the frame and has a sliding groove. The sliding ball is in clearance fit with the sliding groove, and the top of the sliding ball protrudes outside the opening of the sliding groove.
7. The tooling trolley as described in any one of claims 1 to 6, characterized in that, The tooling trolley also includes a second workbench, which is detachably mounted on the frame and located above the sliding surface. The second workbench has a second work surface for contacting the first workbench.
8. The tooling trolley as described in any one of claims 2 to 6, characterized in that, The tooling trolley also includes two guide plates, which are respectively located on both sides of the sliding surface in the sliding direction of the workpiece; And / or, the tooling trolley further includes movable wheels located at the bottom of the frame; And / or, the tooling trolley also includes a grounding chain located at the bottom of the frame.
9. A workpiece processing equipment, characterized in that, It includes an aging rack and a tooling trolley as described in any one of claims 1 to 8, the tooling trolley being used to dock with the aging rack.
10. The workpiece processing equipment as described in claim 9, characterized in that, The aging rack is equipped with multiple workpiece compartments, each of which has a removable baffle for adjusting the direction of heat dissipation.