A process design kit test machine
Patent Information
- Application Number
- CN202522074151.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-26
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-09-26
AI Technical Summary
这类测试装置往往为固定式结构,显示器与输入设备缺乏集成化设计,测试时需要额外的支撑台面,整体占用空间较大
工艺设计工具包测试机通过在底座上设置第一盖板和第二盖板,并在第二盖板表面安装挡条,同时在底座右侧配置可展开的第一支撑架,使得第二盖板能够在水平状态下稳定支撑鼠标。该结构在测试过程中为使用者提供了额外的操作平台,有效解决了现有测试装置缺乏集成化操作支撑的问题,提高了测试时的便利性和舒适度。
Smart Images

Figure CN224668197U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of testing device technology, and specifically relates to a process design toolkit testing machine. Background Technology
[0002] Currently, functional verification and usage testing of process design toolkits typically require a combination of computer, monitor, and input devices. These testing setups are often fixed structures, lacking integrated design for the monitor and input devices, and necessitate additional support surfaces, resulting in a significant overall space requirement. Furthermore, testers often need to adjust the equipment height according to their own height or posture in different environments, but existing testing machines lack flexible height adjustment mechanisms, easily leading to insufficient operator comfort and potential fatigue during prolonged testing.
[0003] Meanwhile, during the connection process of the toolkit data loading and storage interface, traditional devices often only provide a basic plug-in structure with fixed interface positions, lacking reasonable layout and protection measures. The interface is easily damaged during frequent plugging and unplugging, affecting test stability. When the test is completed or the equipment is idle, existing devices generally do not have an effective folding and storage structure. Components such as the monitor and mouse are exposed and easily damaged during handling or storage. In addition, the overall device is large in size, making it inconvenient to move and store, and it is difficult to meet the requirements of modern experimental scenarios for flexibility and space utilization. Utility Model Content
[0004] In view of the problems existing in the prior art, the purpose of this utility model is to provide a process design toolkit testing machine that can take into account the functions of support, adjustment and folding protection.
[0005] To achieve the above objectives, this utility model provides the following technical solution: A process design toolkit testing machine includes a base, a door panel installed at the front opening of the base, and evenly arranged ventilation openings on both the left and right sides of the base. A support plate is fixed to the inner side of the upper port of the base. A cavity is opened on the upper surface of the support plate near the right end. A keyboard is placed on the support plate and a mouse is placed in the cavity. A rotatable vertical and foldable monitor is installed on the upper surface of the support plate near the rear. The host is placed inside the base. A storage interface connected to the host is fixed on the upper surface of the support plate. The first cover plate and the second cover plate are rotatably installed on the left and right sides of the upper port of the base, respectively. Two front and rear expandable and foldable support frames are installed on the right side of the base near the upper end. When the first support frame is unfolded, it supports the first cover plate to rotate to the right and to a horizontal state.
[0006] Furthermore, the lower side of the base is fixed with evenly distributed rollers, and the lower side of the base is also equipped with evenly distributed support legs. The inner side of the base is provided with a lifting frame that drives the support legs to extend and retract downwards, and the inner side of the base is fixed with a lifting mechanism that drives the lifting frame to rise and fall.
[0007] Furthermore, the lower end of the outrigger is fixed with a pad, and the upper end of the outrigger is fixed with a threaded head.
[0008] Furthermore, the lifting frame includes two longitudinally arranged lifting plates and guide plates fixed on the left and right inner side walls of the base. The guide plates guide the lifting plates to move up and down. The outriggers are fixed to the lower side of the lifting plates by threaded heads. The rear ends of the left and right lifting plates are fixedly connected by connecting plates.
[0009] Furthermore, the lifting mechanism includes a motor fixed to the lower end of the base, and the upper end of the motor's output shaft passes through the bottom of the base and is fixed with a lead screw threaded through the connecting plate.
[0010] Furthermore, the first support frame includes a fixed block fixed to the right side of the base and a horizontally arranged support rod, one end of which is fixed with a rotating shaft that is vertically inserted into the fixed block.
[0011] Furthermore, two baffles are fixed to the surface of the second cover plate near the front and rear sides, and the distance between the two baffles is the same as the width of the support rod.
[0012] Furthermore, a rotating plate is fixed to the lower end of the display, and a second support frame is fixed to the support plate on both the left and right sides of the rotating plate. A damping shaft is fixed on the second support frame, and semi-circular insertion holes for insertion into the damping shaft are opened on both sides of the rotating plate.
[0013] Compared with the prior art, the beneficial effects of this utility model are: The process design toolkit testing machine features a first and second cover plate on the base, with a stop bar installed on the surface of the second cover plate. An expandable first support frame is also located on the right side of the base, allowing the second cover plate to stably support the mouse in a horizontal position. This structure provides users with an additional operating platform during testing, effectively solving the problem of insufficient integrated operation support in existing testing devices and improving convenience and comfort during testing.
[0014] The process design toolkit testing machine incorporates components such as a motor, lead screw, lifting frame, lifting plate, guide plate, and support legs within its base. The motor drives the lead screw to raise and lower the connecting plate, which in turn drives the lifting plate and support legs to extend and retract synchronously, thereby achieving overall height adjustment. This height adjustment structure can accommodate the operating needs of users of different heights, avoiding the inconvenience and fatigue caused by the fixed height of traditional testing devices, and significantly improving the ergonomics of the testing environment.
[0015] The process design toolkit testing machine features ventilation openings on its base. During operation, the main unit and motor utilize these openings for airflow and heat dissipation, effectively reducing the impact of temperature increases on electronic components. This heat dissipation structure ensures long-term stable operation of the main unit and motor, resolving the insufficient heat dissipation problem inherent in traditional equipment during continuous testing.
[0016] The process design toolkit testing machine features a rotating plate and a damping hinge at the bottom of the display, allowing the display to switch between vertical and folded positions. When not in use, it is protected by a first and second cover plate, while the mouse can be stored in a recessed cavity. This storage and protection structure effectively solves the problems of exposed and easily damaged displays and mice, as well as large space occupation, in existing testing equipment when idle. It achieves protection of core components and compact storage of the equipment, meeting the requirements of experimental environments for flexibility and space utilization. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the unfolded structure of this utility model; Figure 3 This is a schematic diagram of the support leg of this utility model; Figure 4 This is a schematic diagram of the lifting frame of this utility model; Figure 5 This is a schematic diagram of the lifting mechanism of this utility model; Figure 6 This is a schematic diagram of the first support frame of this utility model; Figure 7 This is a schematic diagram of the second cover plate of this utility model; Figure 8 This is a schematic diagram of the display of this utility model.
[0018] The attached diagram lists the components represented by each number as follows: 1. Base; 2. Door panel; 3. First cover plate; 4. Second cover plate; 41. Stop bar; 5. First support frame; 51. Fixing block; 52. Rotating shaft; 53. Support rod; 6. Ventilation vent; 7. Keyboard; 8. Support plate; 9. Storage interface; 10. Monitor; 101. Damping rotating shaft; 102. Second support frame; 103. Rotating plate; 104. Socket; 11. Mouse; 12. Lifting mechanism; 121. Motor; 122. Lead screw; 13. Roller; 14. Main unit; 15. Support leg; 151. Threaded head; 152. Foot pad; 16. Lifting frame; 161. Lifting plate; 162. Connecting plate; 163. Guide plate. Detailed Implementation
[0019] To make the objectives and advantages of this utility model clearer, the following detailed description is provided in conjunction with embodiments. It should be understood that the following text is merely used to describe one or more specific embodiments of this utility model and does not strictly limit the scope of protection specifically claimed by this utility model.
[0020] Example 1: like Figure 1 and Figure 2 As shown, a process design toolkit testing machine includes a base 1, which is a hollow structure for internal installation of main functional components; a door panel 2 is installed at the front opening of the base 1, which allows for maintenance of the internal main unit 14 and lifting mechanism 12; and evenly arranged ventilation openings 6 are provided on both the left and right sides of the base 1, which are used to achieve air convection heat dissipation, ensuring the heat dissipation effect of the main unit 14 and motor 121 during long-term operation, and avoiding performance degradation due to overheating.
[0021] A support plate 8 is fixed to the inner side of the upper port of the base 1. The support plate 8 is used to support the input device and the display device. A cavity is opened on the upper surface of the support plate 8 near the right end. The cavity is used to store the mouse 11 and prevent the mouse 11 from being exposed and worn when not in use. A keyboard 7 is placed on the upper surface of the support plate 8. The keyboard 7 is electrically connected to the host 14 to realize test operation input. The mouse 11 is placed in the cavity. The mouse 11 is connected to the host 14 through a data cable to ensure the sensitivity of the input operation. A rotatable vertical and foldable display 10 is installed on the upper surface of the support plate 8 near the rear. The display 10 is folded and unfolded through a rotating plate 103 and a damping pivot 101. The host 14 is placed inside the base 1. The host 14 is the core computing component for toolkit testing. A storage interface 9 connected to the host 14 is fixed on the upper surface of the support plate 8. The storage interface 9 is used to load and test the toolkit data to realize the interaction between the process design toolkit and the testing machine.
[0022] A first cover plate 3 and a second cover plate 4 are rotatably installed on the left and right edges of the upper port of the base 1, respectively. When closed, the first cover plate 3 and the second cover plate 4 can cover the display 10 and play a protective role. On the right side of the base 1, near the upper end, there are two front and rear unfoldable and foldable first support frames 5. The first support frame 5 includes a fixing block 51, a pivot 52 and a support rod 53. When unfolded, the first support frame 5 is used to provide horizontal support for the second cover plate 4, so that the second cover plate 4 can be used as an operating platform to place the mouse 11, thereby improving the convenience and comfort of the testing process.
[0023] like Figure 2As shown, the lower side of the base 1 is fixed with evenly distributed rollers 13, which ensure the flexibility of the testing machine when folded; the lower side of the base 1 is also equipped with evenly distributed support legs 15, which support the overall weight of the equipment; the inner side of the base 1 is provided with a lifting frame 16 that drives the support legs 15 to extend and retract downwards, and the lifting frame 16 can achieve height adjustment; the inner side of the base 1 is fixed with a lifting mechanism 12 that drives the lifting frame 16 to rise and fall, and the lifting mechanism 12 achieves precise adjustment through the linkage of motor 121 and lead screw 122 to ensure that the equipment can adapt to the height needs of different users.
[0024] like Figure 3 As shown, the lower end of the outrigger 15 is fixed with a pad 152, which contacts the ground to increase the stability of the support; the upper end of the outrigger 15 is fixed with a threaded head 151, which is threadedly engaged with the lifting plate 161 to ensure that the outrigger 15 remains stable when it extends and retracts.
[0025] like Figure 4 As shown, the lifting frame 16 includes two longitudinally arranged lifting plates 161 and guide plates 163 fixed on the left and right inner sidewalls of the base 1. The guide plates 163 are used to guide the lifting plates 161 up and down to prevent deviation during lifting. The support legs 15 are fixed to the lower side of the lifting plates 161 by threaded heads 151 to ensure a stable connection between the support legs 15 and the lifting plates 161. The rear ends of the left and right lifting plates 161 are fixedly connected by a connecting plate 162. The connecting plate 162 is used to transmit the lifting power of the lead screw 122, thereby realizing the overall synchronous lifting.
[0026] like Figure 5 As shown, the lifting mechanism 12 includes a motor 121 fixed at the lower end of the base 1, which provides power for height adjustment; the upper end of the output shaft of the motor 121 passes through the bottom of the base 1 and is fixed with a lead screw 122, which is threaded through the connecting plate 162. When the lead screw 122 rotates, it drives the connecting plate 162 and the lifting plate 161 to rise and fall as a whole, thereby realizing the synchronous extension and retraction adjustment of the support leg 15, and thus completing the adjustment of the height of the entire testing machine.
[0027] like Figure 6 As shown, the first support frame 5 includes a fixing block 51 fixed to the right side of the base 1 and a horizontally arranged support rod 53. One end of the support rod 53 is fixed with a rotating shaft 52 that is vertically inserted into the fixing block 51. When the support rod 53 is unfolded, it cooperates with the stop bar 41 to support the second cover plate 4, so that the second cover plate 4 can stably support the mouse 11 when it is horizontally unfolded.
[0028] like Figure 7As shown, two baffles 41 are fixed on the surface of the second cover plate 4 near the front and rear sides. The spacing between the baffles 41 is the same as the width of the support rod 53. When the support rod 53 is unfolded, it fits between the two baffles 41, thereby achieving effective support for the second cover plate 4 and enabling the second cover plate 4 to serve as a test operation platform, thus improving the practicality of the equipment.
[0029] like Figure 8 As shown, a rotating plate 103 is fixed to the lower end of the display 10. A second support frame 102 fixed to the support plate 8 is provided on both the left and right sides of the rotating plate 103. A damping shaft 101 is fixed on the second support frame 102. The damping shaft 101 can provide damping force during rotation to prevent the display 10 from falling or flipping up quickly. Semi-circular insertion holes 104 are provided on both sides of the rotating plate 103 to be inserted into the damping shaft 101. The insertion holes 104 ensure that the display 10 can be smoothly switched between the vertical state and the folded state, meeting the dual needs of testing and storage.
[0030] Example 2: See Figures 1-8 In this embodiment, the operation of a process design toolkit testing machine is as follows: When process design toolkit testing is required, the first support frame 5 on the upper right side of the base 1 is rotated to unfold the support rod 53. One end of the support rod 53 is hinged to the fixing block 51 via a pivot 52. After unfolding, the support rod 53 is inserted between the front and rear baffles 41 on the surface of the second cover plate 4, so that the second cover plate 4 is in a horizontal support state, thereby forming the operating platform of the mouse 11. Subsequently, the operator lifts the first cover plate 3 and rotates the display 10 to a vertical working state via the damping pivot 101. The lower end of the display 10 is connected to the second support frame 102 via a rotating plate 103, and the insertion hole 104 is inserted into the damping pivot 101, so that the display 10 can be stably kept vertical.
[0031] During input device use, the operator places the keyboard 7 on the support plate 8, and the mouse 11 is stored inside the recess or placed on the horizontal surface of the second cover plate 4. The host 14 interacts with the data of the process design toolkit through the storage interface 9, which is used for data loading and test file transfer. The host 14 generates heat during operation. At this time, the ventilation vents 6 on both sides of the base 1 provide air circulation to ensure internal heat dissipation and prevent the host 14 and motor 121 from being affected by high temperature, thus ensuring stability.
[0032] When height adjustment is required to accommodate different heights or operating habits, the operator activates the motor 121 installed at the lower end of the base 1. The motor 121 drives the lead screw 122 to rotate, and the lead screw 122 engages with the connecting plate 162 via threads. The connecting plate 162 then drives the two lifting plates 161 to move up and down. Guided by the guide plate 163, the lifting plates 161 maintain stable operation. The lower end of the lifting plates 161 is connected to the support legs 15 via threaded heads 151. The lower end of the support legs 15 is equipped with feet 152, which remain in contact with the ground during lifting, thus achieving height adjustment of the entire testing machine. This adjustment method ensures that the testing machine can accommodate operators of different heights, improving operating comfort.
[0033] When moving the testing machine, the operator controls the lifting mechanism 12 to retract the support legs 15, causing the rollers 13 to contact the ground. The rollers 13 are evenly distributed on the underside of the base 1, allowing the testing machine to move flexibly between different positions. When the testing machine is not in use, the operator folds the monitor 10 up above the support plate 8, and then rotates the first cover plate 3 and the second cover plate 4 to cover the outside of the monitor 10, thus protecting the monitor 10. At the same time, the operator can also fold the support rod 53 next to the fixing block 51 to avoid it being exposed and taking up space. At this time, the mouse 11 can be stored inside the cavity, while the keyboard 7 and storage interface 9 remain on the support plate 8. The overall structure achieves integrated folding and storage of the input device, display device, and host 14, reducing space occupation and improving flexibility.
[0034] The working principle of this utility model is as follows: When testing the tool bag, the first cover plate 3 and the second cover plate 4 are opened, and the support rod 53 on the right side of the base 1 is rotated to unfold it. When the second cover plate 4 is unfolded to the horizontal state, the support rod 53 is stuck between the two stop bars 41, thereby completing the horizontal support of the second cover plate 4, which facilitates the placement of the user's hands and mouse 11. Then the monitor 10 is rotated to the vertical state and the testing machine is started. When adjusting the height according to the user's height, the motor 121 drives the lead screw 122 to rotate. The rotating lead screw 122 drives the connecting plate 162 to rise and fall. The connecting plate 162 then drives the lifting plate 161 to rise and fall. At this time, the guide plate 163 guides the lifting plate 161 to rise and fall. The rise and fall of the lifting plate 161 adjusts the extension and retraction of the support leg 15, thereby completing the adjustment of the height of the entire testing machine. Finally, the data of the tool kit is loaded and plugged in through the storage interface 9 to test the tool kit. When the testing machine is not in use, the mouse 11 is retracted into the cavity, and the monitor 10 is folded up. Then, the first cover plate 3 and the second cover plate 4 are rotated and placed on the upper side of the monitor 10 for sealing and protection. Then, the support rod 53 is folded up, and the support leg 15 is retracted so that the roller 13 is grounded for support. This completes the folding and retraction and flexible movement of the testing machine when it is not in use. This not only protects the main components but also reduces the space occupied and meets the needs of flexible use.
[0035] The above description is merely a preferred embodiment of this utility model. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principle of this utility model, and these improvements and modifications should also be considered within the scope of protection of this utility model. Structures, devices, and operating methods not specifically described or explained in this utility model, unless otherwise specified or limited, shall be implemented using conventional methods in the field.
Claims
1. A process design toolkit testing machine, comprising a base (1), characterized in that: A door panel (2) is installed at the front opening of the base (1), and ventilation openings (6) are evenly arranged on both the left and right sides of the base (1). A support plate (8) is fixed inside the upper port of the base (1). A cavity is opened on the upper surface of the support plate (8) near the right end, and a keyboard (7) is placed on the support plate (8). A mouse (11) is placed in the cavity. A rotatable vertical and foldable display (10) is installed on the upper surface of the support plate (8) near the rear. A host (14) is placed inside the base (1). A storage interface (9) connected to the host (14) is fixed on the upper surface of the support plate (8). The first cover plate (3) and the second cover plate (4) are respectively rotatably installed on the left and right sides of the upper port of the base (1). Two front and rear unfoldable and foldable first support frames (5) are installed on the right side of the base (1) near the upper end. When the first support frame (5) is unfolded, it supports the first cover plate (3) when it is rotated to the right to a horizontal state. The base (1) is fixed with evenly distributed rollers (13) on its lower side, and the base (1) is also equipped with evenly distributed support legs (15). The base (1) is provided with a lifting frame (16) that drives the support legs (15) to extend and retract downwards, and the base (1) is fixed with a lifting mechanism (12) that drives the lifting frame (16) to rise and fall. The first support frame (5) includes a fixing block (51) fixed to the right side of the base (1) and a horizontally arranged support rod (53). One end of the support rod (53) is fixed with a rotating shaft (52) that is vertically inserted into the fixing block (51). Two baffles (41) are fixed on the surface of the second cover plate (4) near the front and rear sides, and the distance between the two baffles (41) is the same as the width of the support rod (53).
2. The process design toolkit testing machine according to claim 1, characterized in that: The lower end of the support leg (15) is fixed with a pad (152), and the upper end of the support leg (15) is fixed with a threaded head (151).
3. The process design toolkit testing machine according to claim 2, characterized in that: The lifting frame (16) includes two longitudinally arranged lifting plates (161) and guide plates (163) fixed on the left and right inner side walls of the base (1). The guide plates (163) guide the lifting plates (161) to rise and fall. The support legs (15) are fixed to the lower side of the lifting plates (161) by threaded heads (151). The rear ends of the two lifting plates (161) are fixedly connected by connecting plates (162).
4. The process design toolkit testing machine according to claim 3, characterized in that: The lifting mechanism (12) includes a motor (121) fixed at the lower end of the base (1), and the upper end of the output shaft of the motor (121) passes through the bottom of the base (1) and is fixed with a screw (122) threaded through the connecting plate (162).
5. The process design toolkit testing machine according to claim 1, characterized in that: The lower end of the display (10) is fixed with a rotating plate (103). The left and right sides of the rotating plate (103) are provided with a second support frame (102) fixed on the support plate (8). The second support frame (102) is fixed with a damping shaft (101). The rotating plate (103) has semi-circular insertion holes (104) on both sides for inserting into the damping shaft (101).