Optimization method and device for applet management software development
By designing and installing components and heat dissipation components in the mini program management software development device, the problems of slow CPU running speed and rising temperature are solved, stable fixation and effective heat dissipation of the CPU main body are achieved, and operation efficiency is improved.
Patent Information
- Application Number
- CN202510299685.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-14
- Publication Date
- 2025-06-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the long-term use of existing mini program management software development devices, the CPU runs slowly, resulting in an increase in CPU temperature and affecting the use efficiency.
An optimization device for small program management software development is designed to achieve stable fixation and effective heat dissipation of the CPU main body by setting up installation components and heat dissipation components. The installation components include limit blocks, extrusion plates, gears, etc., for fixing and clamping the CPU body; the heat dissipation components include blades and a driving motor for blowing and cooling the inside of the chassis.
Through this optimization device, the stability and efficiency of the CPU body during operation are improved, and the chassis is blocked due to heat accumulation.
Smart Images

Figure CN120215646A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of program input devices, and particularly to an optimization method and device for small program management software development. Background Art
[0002] Software development is the process of building a software system or the software part of a system according to user requirements. Software is divided into system software and application software, and it does not only include programs that can run on a computer. Files related to these programs are generally considered to be part of the software. The general process of software design ideas and methods includes designing the functions of the software and the algorithms and methods for implementation, the overall structure design and module design of the software, programming and debugging, program linking and testing, and then writing and submitting the program.
[0003] According to a program input device for small program management software development proposed in Chinese Patent CN215416464U, in this device, the SATA interface end of a mobile hard disk is aligned with the SATA interface induction slot and inserted to establish a connection between the hard disk and the computer device, and program files are imported into the internal of the mobile hard disk. When program output is required, the hard disk and the computer device are connected in the same way. If the program code is large, the microcomputer processing chip box can be connected by means of a conversion cable. Then, a group of microcomputer processing chip boxes are used as the output end, and the program code inside the program disk main body can be read through the analysis and processing chip inside the microcomputer processing chip box, and the complete code information is read and fed back through an external computer device for debugging.
[0004] There are some deficiencies in the existing small program management software development devices. Since a large number of data will run simultaneously in the CPU during the long-term use of the small program management software development device, the large amount of running data is likely to cause the small program to run slowly during use. A slowly running small program is likely to cause the temperature of the CPU to rise, affecting the usage efficiency of the CPU. Therefore, when the small program is running, it is necessary to transfer the heat generated by the CPU so that the optimized CPU can run normally. For this reason, we propose an optimization method and device for small program management software development. Summary of the Invention
[0005] The purpose of the present invention is to provide an optimization method and device for small program management software development, which solves the problems raised in the above background art.
[0006] To achieve the above object, the present invention provides the following technical solution: An optimization device for the development of a mini-program management software, comprising a chassis, and an installation component disposed inside the chassis. The installation component includes a limiting block fixedly connected to the inner wall of the chassis. A plug block is slidably connected to the side inner wall of the limiting block. A cross plate is fixedly connected to the other side of the plug block. A cross column is slidably connected to the inner wall of the cross plate. An L-shaped displacement plate is slidably connected to the outer wall of the cross column. An extrusion plate is fixedly connected to the top of the L-shaped displacement plate. A limiting column is fixedly connected to the side wall of the extrusion plate. A CPU main body is slidably connected to one side of the extrusion plate. The other end outer wall of the limiting column is slidably connected to the side inner wall of the CPU main body. A positioning block is slidably connected to the outer wall of the CPU main body. A screw rod is threadedly connected to the inner wall of the positioning block. An adjusting block is fixedly connected to the top outer wall of the screw rod. The bottom of the screw rod is rotatably connected to a rectangular clamping block. The outer wall of the rectangular clamping block is slidably connected to the top inner wall of the cross plate. A pull rod is fixedly connected to the other side of the extrusion plate. The outer wall of the pull rod is slidably connected to a side plate. The bottom of the side plate is fixedly connected to the top side of the L-shaped displacement plate. A spring is fixedly connected to the side wall of the side plate. The other end of the spring is fixedly connected to the side wall of the extrusion plate. By setting the installation component, it is convenient to fix the position of the CPU main body after the rectangular clamping blocks at the four corners of the CPU main body are inserted into the top inner wall of the cross plate, thereby improving the stability of the CPU main body during operation.
[0007] Preferably, the installation component further includes a bottom plate fixedly connected to the bottom of the cross plate. A fixing frame is fixedly connected to the bottom of the bottom plate. A forward and reverse motor is fixedly connected to the bottom inner wall of the fixing frame. A first output shaft is fixedly connected to the output end of the forward and reverse motor. A gear is fixedly connected to the top outer wall of the first output shaft. A rack is meshed with the outer wall of the gear. A connecting block is fixedly connected to the top of the rack. The other end of the connecting block is fixedly connected to the bottom of the L-shaped displacement plate. By setting the gear and the rack, it is convenient to clamp and fix CPU main bodies of different sizes during the relative movement of the two L-shaped displacement plates.
[0008] Preferably, a heat dissipation component is provided at the bottom of the inner wall of the chassis. The heat dissipation component includes a fixed seat fixedly connected to the bottom of the inner wall of the chassis. A first driving motor is fixedly connected to the top inner wall of the fixed seat. The output end of the first driving motor is fixedly connected to a reciprocating lead screw. A socket block is threadedly connected to the outer wall of the reciprocating lead screw. The top of the socket block is movably connected to a movable rod through a hinge. The other end of the movable rod is movably connected to a lifting block through a hinge. A second driving motor is fixedly connected to the side wall of the movable rod. The output end of the second driving motor is fixedly connected to a second output shaft. A blade is fixedly connected to the top outer wall of the second output shaft. The blade is located below the CPU main body. A heat dissipation slot is provided at the top of the chassis. By providing the heat dissipation component, it is convenient to blow air and dissipate heat inside the chassis through the rotation of the blade, improving the optimization effect of the device on the CPU main body inside the chassis.
[0009] Preferably, support pads are fixedly connected to the bottom of the chassis. The number of the support pads is four. The four support pads are of equal size. The four support pads are fixedly connected to the four corners of the bottom of the chassis at equal intervals. By providing the four support pads, it is convenient to stably support the chassis through the four support pads.
[0010] Preferably, a box door is movably connected to the front of the chassis through a hinge. A glass plate is fixedly connected to the inner wall of the box door. A handle is fixedly connected to the front of the box door. By providing the handle, the box door and the glass plate, it is convenient for the operator to open and close the box door by pulling the handle.
[0011] Preferably, the inner side wall of the limit block is adapted to the outer wall of the insertion block. The other side of the insertion block is fixedly connected to the outer wall of the cross plate.
[0012] Preferably, the number of the L-shaped displacement plates is two. The two L-shaped displacement plates are of equal size. The two L-shaped displacement plates are symmetrically distributed along the central plane of the cross plate. By providing the two L-shaped displacement plates, it is convenient to stably support the CPU main body.
[0013] An optimization method for the development of a small program management software includes the following steps:
[0014] S1. First, place the CPU main body on the top of the cross plate, and limit the CPU main body by tightening the adjustment block to make the rectangular clamping block;
[0015] S2. Secondly, after the CPU main body is limited, clamp and fix the CPU main body through the extrusion plates on both sides;
[0016] S3. Subsequently, start the forward and reverse motor to engage the gear with the rack, and make the two L-shaped displacement plates approach each other relatively to clamp and fix both sides of the CPU main body;
[0017] S4. Then, by starting the second drive motor, the second output shaft rotates, and the CPU main body is cooled by blowing air through the blades.
[0018] S5. Finally, by starting the first drive motor, the reciprocating lead screw rotates, prompting the movable rod to rotate, and the blades blow air to dissipate heat at different positions inside the chassis.
[0019] The present invention provides an optimization method and device for small program management software development. The optimization method and device for small program management software development have the following beneficial effects:
[0020] (1) For the optimization device for small program management software development, by setting up an installation component, when developing small program software, it is necessary to install the CPU main body inside the chassis. When installing the CPU main body, the operator places the CPU main body above the cross plate and pulls the pull rods on both sides, causing the springs to contract and the pressing plates to move. Then, the CPU main body is placed in the middle of the two pressing plates. Subsequently, the pull rods are released, and under the reaction of the springs, the pressing plates will be reset, squeezing the outer wall of the CPU main body and prompting the limit posts to embed into the side interior of the CPU main body, so that the bottom of the CPU main body contacts the top of the cross plate. Subsequently, the operator rotates the adjustment block, prompting the screw rod to rotate. After the screw rod rotates, it will drive the rectangular clamping block to move downward, prompting the rectangular clamping block to embed into the top of the cross plate. Repeat this step. After the rectangular clamping blocks at the four corners of the CPU main body are embedded into the inner wall of the top of the cross plate, the position of the CPU main body is fixed, improving the stability of the CPU main body during operation. By setting gears and racks, in order to facilitate the clamping and fixing of CPU main bodies of different sizes, it is necessary to adjust the distance between the two L-shaped displacement plates. At this time, the operator starts the forward and reverse motor, prompting the first output shaft to rotate. During the rotation of the first output shaft, the gear will be prompted to rotate. During the rotation of the gear, it will mesh with the rack, prompting the rack to move, and prompting the connecting block to drive the L-shaped displacement plate to move. When the two L-shaped displacement plates move relatively, the CPU main bodies of different sizes are clamped and fixed;
[0021] (2) The optimization device for software development of the applet management software, by setting up a heat dissipation component, during the process of applet development, in order to avoid the CPU main body generating excessive heat after long-term operation, causing the chassis to freeze, it is necessary to dissipate heat inside the chassis to optimize the CPU main body and improve the operating efficiency of the CPU main body. At this time, the operator turns on the second driving motor to make the second output shaft rotate. During the rotation of the second output shaft, the blades will be driven to rotate, enabling the blades to blow air and dissipate heat inside the chassis. While the blades are blowing air and dissipating heat inside the chassis, the operator turns on the first driving motor to make the reciprocating screw rod rotate. During the rotation of the reciprocating screw rod, the two socket blocks will move relative to each other. When the two socket blocks move relative to each other, the movable rod will be driven to rotate, causing the blowing position of the blades inside the chassis to change, thereby effectively blowing air and dissipating heat at different positions inside the chassis, improving the optimization effect of the device on the CPU main body inside the chassis. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is a three-dimensional structural schematic diagram of the present invention;
[0023] Figure 2 is a partial cross-sectional view of the present invention;
[0024] Figure 3 is a structural schematic diagram of the installation component in the present invention;
[0025] Figure 4 is a partial structural schematic diagram of the installation component in the present invention;
[0026] Figure 5 is a side structural schematic diagram of the installation component in the present invention;
[0027] Figure 6 is a partial exploded view of the installation component in the present invention;
[0028] Figure 7 is a structural schematic diagram of the heat dissipation component in the present invention;
[0029] Figure 8 is Figure 7 a partial enlarged view of part A in
[0030] In the figure: 1, chassis; 2, support pad; 3, cabinet door; 4, glass plate; 5, handle; 61, mounting assembly; 611, limit block; 612, insertion block; 613, cross plate; 614, cross column; 615, L-shaped displacement plate; 616, bottom plate; 617, fixing bracket; 618, forward and reverse motor; 619, first output shaft; 6110, gear; 6111, rack; 6112, connecting block; 6113, extrusion plate; 6114, CPU main body; 6115, positioning block; 6116, screw; 6117, adjusting block; 6118, rectangular clamping block; 6119, pull rod; 6120, side plate; 6121, spring; 6122, limit post; 62, heat dissipation assembly; 621, fixing seat; 622, first driving motor; 623, reciprocating lead screw; 624, socket block; 625, movable rod; 626, lifting block; 627, second driving motor; 628, second output shaft; 629, blade; 6210, heat dissipation slot. Detailed implementation manner
[0031] In order to have a clearer understanding of the technical features, objectives, and effects of the present invention, the specific implementation manner of the present invention will now be described with reference to the accompanying drawings.
[0032] A preferred embodiment of an optimization device for small program management software development provided by the present invention is as follows Figures 1 to 8As shown: An optimization device for the development of mini-program management software, including a chassis 1 and an installation component 61 arranged inside the chassis 1. The installation component 61 includes a limiting block 611 fixedly connected to the inner wall of the chassis 1. A plug block 612 is slidably connected to the side inner wall of the limiting block 611. The other side of the plug block 612 is fixedly connected to a cross plate 613. A cross column 614 is slidably connected to the inner wall of the cross plate 613. An L-shaped displacement plate 615 is slidably connected to the outer wall of the cross column 614. The top of the L-shaped displacement plate 615 is fixedly connected to a pressing plate 6113. A limiting column 6122 is fixedly connected to the side wall of the pressing plate 6113. A CPU main body 6114 is slidably connected to one side of the pressing plate 6113. The other end outer wall of the limiting column 6122 is slidably connected to the side inner wall of the CPU main body 6114. A positioning block 6115 is slidably connected to the outer wall of the CPU main body 6114. A screw rod 6116 is threadedly connected to the inner wall of the positioning block 6115. The top outer wall of the screw rod 6116 is fixedly connected to an adjusting block 6117. The bottom of the screw rod 6116 is rotatably connected to a rectangular clamping block 6118. The outer wall of the rectangular clamping block 6118 is slidably connected to the top inner wall of the cross plate 613. The other side of the pressing plate 6113 is fixedly connected to a pull rod 6119. The outer wall of the pull rod 6119 is slidably connected to a side plate 6120. The bottom of the side plate 6120 is fixedly connected to the top of the side of the L-shaped displacement plate 615. A spring 6121 is fixedly connected to the side wall of the side plate 6120. The other end of the spring 6121 is fixedly connected to the side wall of the pressing plate 6113. By setting the installation component 61, when developing mini-program software, it is necessary to install the CPU main body 6114 inside the chassis 1. When it is necessary to install the CPU main body 6114, the operator places the CPU main body 6114 above the cross plate 613 and pulls the pull rods 6119 to both sides, causing the spring 6121 to contract and the pressing plate 6113 to move. Then, the CPU main body 6114 is placed in the middle of the two pressing plates 6113. Subsequently, the pull rods 6119 are released. Under the reaction of the spring 6121, the pressing plate 6113 will be reset, causing the pressing plate 6113 to squeeze the outer wall of the CPU main body 6114 and the limiting column 6122 to embed into the side of the CPU main body 6114, so that the bottom of the CPU main body 6114 contacts the top of the cross plate 613. Subsequently, the operator rotates the adjusting block 6117 to cause the screw rod 6116 to rotate. After the screw rod 6116 rotates, it will drive the rectangular clamping block 6118 to move downward, causing the rectangular clamping block 6118 to embed into the top of the cross plate 613. Repeat this step. After the rectangular clamping blocks 6118 at the four corners of the CPU main body 6114 are embedded into the top inner wall of the cross plate 613, the position of the CPU main body 6114 is fixed, improving the stability of the CPU main body 6114 during operation.
[0033] The installation component 61 further includes a bottom plate 616 fixedly connected to the bottom of the horizontal plate 613. A fixing frame 617 is fixedly connected to the bottom of the bottom plate 616. A forward and reverse motor 618 is fixedly connected to the inner wall of the bottom of the fixing frame 617. An output shaft 619 is fixedly connected to the output end of the forward and reverse motor 618. A gear 6110 is fixedly connected to the outer wall of the top of the output shaft 619. A rack 6111 is meshed with the outer wall of the gear 6110. A connecting block 6112 is fixedly connected to the top of the rack 6111. The other end of the connecting block 6112 is fixedly connected to the bottom of the L-shaped displacement plate 615. By providing the gear 6110 and the rack 6111, in order to facilitate the clamping and fixing of CPU bodies 6114 of different sizes, it is necessary to adjust the distance between the two L-shaped displacement plates 615. At this time, the operator turns on the forward and reverse motor 618 to cause the output shaft 619 to rotate. During the rotation of the output shaft 619, the gear 6110 will be caused to rotate. During the rotation of the gear 6110, it will be meshed with the rack 6111 to cause the rack 6111 to move, and cause the connecting block 6112 to drive the L-shaped displacement plate 615 to move. When the two L-shaped displacement plates 615 move relatively, the CPU bodies 6114 of different sizes are clamped and fixed.
[0034] The preferred embodiment of an optimization device for developing a small program management software provided by the present invention is as follows Figures 1 to 8As shown in the figure: A heat dissipation component 62 is provided at the bottom of the inner wall of the chassis 1. The heat dissipation component 62 includes a fixed seat 621 fixedly connected to the bottom of the inner wall of the chassis 1. A first driving motor 622 is fixedly connected to the top inner wall of the fixed seat 621. The output end of the first driving motor 622 is fixedly connected to a reciprocating lead screw 623. A socket block 624 is threadedly connected to the outer wall of the reciprocating lead screw 623. The top of the socket block 624 is movably connected to a movable rod 625 through a hinge. The other end of the movable rod 625 is movably connected to a lifting block 626 through a hinge. A second driving motor 627 is fixedly connected to the side wall of the movable rod 625. The output end of the second driving motor 627 is fixedly connected to a second output shaft 628. A blade 629 is fixedly connected to the outer wall of the top of the second output shaft 628. The blade 629 is located below the CPU main body 6114. A heat dissipation slot 6210 is opened at the top of the chassis 1. By setting the heat dissipation component 62, during the process of mini-program development, in order to avoid the CPU main body 6114 generating excessive heat after long-term operation, causing the chassis 1 to freeze, it is necessary to dissipate heat from the inside of the chassis 1, so as to optimize the CPU main body 6114 and improve the operating efficiency of the CPU main body 6114. At this time, the operator turns on the second driving motor 627 to cause the second output shaft 628 to rotate. During the rotation of the second output shaft 628, the blade 629 will be caused to rotate, so that the blade 629 blows air to dissipate heat from the inside of the chassis 1. While the blade 629 blows air to dissipate heat from the inside of the chassis 1, the operator turns on the first driving motor 622 to cause the reciprocating lead screw 623 to rotate. During the rotation of the reciprocating lead screw 623, the two socket blocks 624 will be caused to move relatively. When the two socket blocks 624 move relatively, the movable rod 625 will be caused to rotate, causing the blowing position of the blade 629 on the inside of the chassis 1 to change, thereby effectively blowing air to dissipate heat from different positions inside the chassis 1, improving the optimization effect of the device on the CPU main body 6114 inside the chassis 1.
[0035] Furthermore, support pads 2 are fixedly connected to the bottom of the chassis 1. The number of support pads 2 is four. The four support pads 2 are of equal size. The four support pads 2 are equidistantly fixedly connected to the four corners of the bottom of the chassis 1. By setting the four support pads 2, it is convenient to stably support the chassis 1 through the four support pads 2.
[0036] Furthermore, a door 3 is movably connected to the front of the chassis 1 through a hinge. A glass plate 4 is fixedly connected to the inner wall of the door 3. A handle 5 is fixedly connected to the front of the door 3. By setting the handle 5, the door 3 and the glass plate 4, it is convenient for the operator to open and close the door 3 by pulling the handle 5.
[0037] Furthermore, the inner side wall of the limiting block 611 is adapted to the outer wall of the inserting block 612. The other side of the inserting block 612 is fixedly connected to the outer wall of the cross plate 613.
[0038] In addition, there are two L-shaped displacement plates 615. The two L-shaped displacement plates 615 are of equal size and are symmetrically distributed along the central plane of the cross plate 613. By setting the two L-shaped displacement plates 615, it is convenient to stably support the CPU main body 6114.
[0039] Working principle: When developing a small program software, it is necessary to install the CPU main body 6114 inside the chassis 1. When it is necessary to install the CPU main body 6114, the operator places the CPU main body 6114 above the cross plate 613 and pulls the pull rods 6119 to both sides, causing the springs 6121 to contract and the pressing plates 6113 to move. Then, the CPU main body 6114 is placed in the middle of the two pressing plates 6113. Subsequently, the pull rods 6119 are released. Under the reaction of the springs 6121, the pressing plates 6113 will be reset, causing the pressing plates 6113 to press against the outer wall of the CPU main body 6114 and the limiting columns 6122 to embed into the side of the CPU main body 6114, so that the bottom of the CPU main body 6114 contacts the top of the cross plate 613. Subsequently, the operator rotates the adjusting block 6117, causing the screw rod 6116 to rotate. After the screw rod 6116 rotates, it will drive the rectangular clamping block 6118 to move downward, causing the rectangular clamping block 6118 to embed into the top of the cross plate 613. Repeat this step. After the rectangular clamping blocks 6118 at the four corners of the CPU main body 6114 are embedded into the inner wall of the top of the cross plate 613, the position of the CPU main body 6114 is fixed, improving the stability of the CPU main body 6114 during operation;
[0040] In order to facilitate the clamping and fixing of CPU main bodies 6114 of different sizes, it is necessary to adjust the distance between the two L-shaped displacement plates 615. At this time, the operator turns on the forward and reverse motor 618, causing the first output shaft 619 to rotate. During the rotation of the first output shaft 619, the gear 6110 will be driven to rotate. During the rotation of the gear 6110, it will engage with the rack 6111, causing the rack 6111 to move, driving the connecting block 6112 to move the L-shaped displacement plate 615. When the two L-shaped displacement plates 615 move relative to each other, the CPU main bodies 6114 of different sizes can be clamped and fixed;
[0041] During the process of developing a mini-program, in order to prevent the CPU main body 6114 from generating excessive heat after long-term operation and causing the chassis 1 to freeze, it is necessary to dissipate heat inside the chassis 1 to optimize the CPU main body 6114 and improve its operating efficiency. At this time, the operator turns on the second drive motor 627 to cause the second output shaft 628 to rotate. During the rotation of the second output shaft 628, the blades 629 are caused to rotate, enabling the blades 629 to blow air and dissipate heat inside the chassis 1. While the blades 629 are blowing air and dissipating heat inside the chassis 1, the operator turns on the first drive motor 622 to cause the reciprocating lead screw 623 to rotate. During the rotation of the reciprocating lead screw 623, the two socket blocks 624 move relative to each other. When the two socket blocks 624 move relative to each other, the movable rod 625 is caused to rotate, causing the blowing position of the blades 629 inside the chassis 1 to change, thereby effectively blowing air and dissipating heat at different positions inside the chassis 1 and improving the optimization effect of the device on the CPU main body 6114 inside the chassis 1.
[0042] An optimization method for developing a mini-program management software, comprising the following steps:
[0043] S1. First, place the CPU main body 6114 on the top of the cross plate 613, and limit the CPU main body 6114 by tightening the adjusting block 6117 to make the rectangular clamping block 6118;
[0044] S2. Secondly, after limiting the CPU main body 6114, clamp and fix the CPU main body 6114 by means of the pressing plates 6113 on both sides;
[0045] S3. Subsequently, start the forward and reverse motor 618 to engage the gear 6110 with the rack 6111, and make the two L-shaped displacement plates 615 approach each other relatively to clamp and fix both sides of the CPU main body 6114;
[0046] S4. Then, start the second drive motor 627 to rotate the second output shaft 628, and blow air and dissipate heat from the CPU main body 6114 through the blades 629;
[0047] S5. Finally, start the first drive motor 622 to rotate the reciprocating lead screw 623, and cause the movable rod 625 to rotate, enabling the blades 629 to blow air and dissipate heat at different positions inside the chassis 1.
[0048] The above are only illustrative specific embodiments of the present invention and are not intended to limit the scope of the present invention. Any equivalent changes and modifications made by those skilled in the art without departing from the concept and principles of the present invention shall fall within the scope of protection of the present invention. Moreover, it should be noted that the components of the present invention are not limited to the above overall application. Each technical feature described in the specification of the present invention can be used alone according to actual needs or multiple features can be combined for use. Therefore, the present invention should logically cover other combinations and specific applications related to this case.
Claims
1. An optimization device for small program management software development, comprising a chassis (1), and an installation component (61) arranged inside the chassis (1), characterized in that: The mounting assembly (61) comprises a limit block (611) fixedly connected to the inner wall of the chassis (1); an insert block (612) is slidably connected to the inner wall of the side of the limit block (611); a transverse plate (613) is fixedly connected to the other side of the insert block (612); a transverse column (614) is slidably connected to the inner wall of the transverse plate (613); an L-shaped displacement plate (615) is slidably connected to the outer wall of the transverse column (614); an extrusion plate (6113) is fixedly connected to the top of the L-shaped displacement plate (615); a limit column (6122) is fixedly connected to the side wall of the extrusion plate (6113); a CPU body (6114) is slidably connected to one side of the extrusion plate (6113); an outer wall of the other end of the limit column (6122) is slidably connected to the inner wall of the side of the CPU body (6114); and the outer wall of the CPU body (6114) is fixedly connected to the inner wall of the side of the CPU body (6114). The wall is slidably connected to a positioning block (6115), the inner wall of the positioning block (6115) is threadedly connected to a screw (6116), the top outer wall of the screw (6116) is fixedly connected to an adjustment block (6117), the bottom of the screw (6116) is rotatably connected to a rectangular block (6118), the outer wall of the rectangular block (6118) is slidably connected to the top inner wall of the cross plate (613), the other side of the extrusion plate (6113) is fixedly connected to a pull rod (6119), the outer wall of the pull rod (6119) is slidably connected to a side plate (6120), the bottom of the side plate (6120) is fixedly connected to the top of the side of the L-shaped displacement plate (615), the side wall of the side plate (6120) is fixedly connected to a spring (6121), the other end of the spring (6121) is fixedly connected to the side wall of the extrusion plate (6113).
2. The optimization device for mini-program management software development according to claim 1, characterized in that: The mounting assembly (61) further comprises a bottom plate (616) fixedly connected to the bottom of the transverse plate (613); a fixing frame (617) is fixedly connected to the bottom of the bottom plate (616); a forward and reverse motor (618) is fixedly connected to the bottom inner wall of the fixing frame (617); an output end of the forward and reverse motor (618) is fixedly connected to a first output shaft (619); a gear (6110) is fixedly connected to the top outer wall of the first output shaft (619); a rack (6111) is meshed with the outer wall of the gear (6110); a connecting block (6112) is fixedly connected to the top of the rack (6111); the other end of the connecting block (6112) is fixedly connected to the bottom of the L-shaped displacement plate (615).
3. The optimization device for mini-program management software development according to claim 1, characterized in that: A heat dissipation assembly (62) is provided at the bottom of the inner wall of the chassis (1), and the heat dissipation assembly (62) comprises a fixing seat (621) fixedly connected to the bottom of the inner wall of the chassis (1), a first drive motor (622) is fixedly connected to the inner wall of the top of the fixing seat (621), a reciprocating screw rod (623) is fixedly connected to the output end of the first drive motor (622), a sleeve block (624) is threadedly connected to the outer wall of the reciprocating screw rod (623), and a movable rod (624) is movably connected to the top of the sleeve block (624) via a hinge. 625), the other end of the movable rod (625) is movably connected to a lifting block (626) through a hinge, the side wall of the movable rod (625) is fixedly connected to a second driving motor (627), the output end of the second driving motor (627) is fixedly connected to a second output shaft (628), the top outer wall of the second output shaft (628) is fixedly connected to a blade (629), and the blade (629) is located below the CPU body (6114), and a heat dissipation groove (6210) is opened on the top of the chassis (1).
4. The optimization device for mini-program management software development according to claim 1, characterized in that: The bottom of the chassis (1) is fixedly connected with a support pad (2), the number of the support pads (2) is four, the four support pads (2) are equal in size, and the four support pads (2) are equidistantly fixedly connected to the four corners of the bottom of the chassis (1).
5. The optimization device for mini-program management software development according to claim 1, characterized in that: The front of the cabinet (1) is movably connected to a cabinet door (3) via a hinge, the inner wall of the cabinet door (3) is fixedly connected to a glass plate (4), and the front of the cabinet door (3) is fixedly connected to a handle (5).
6. The optimization device for mini-program management software development according to claim 1, characterized in that: The inner side wall of the limit block (611) is matched with the outer wall of the insert block (612), and the other side of the insert block (612) is fixedly connected to the outer wall of the transverse plate (613).
7. The optimization device for mini-program management software development according to claim 1, characterized in that: There are two L-shaped displacement plates (615), the two L-shaped displacement plates (615) are equal in size, and the two L-shaped displacement plates (615) are symmetrically distributed along the central plane of the transverse plate (613).
8. An optimization method for mini-program management software development, applicable to an optimization device for mini-program management software development as claimed in any one of claims 1 to 7, characterized in that: The following steps are involved: S1. First, place the CPU body 6114 on the top of the horizontal plate 613, and tighten the adjustment block 6117 to limit the position of the CPU body 6114 by the rectangular clamping block 6118; S2. After the CPU body 6114 is limited, the CPU body 6114 is clamped and fixed by the squeezing plates 6113 on both sides; S3, then start the forward and reverse motor 618 to make the gear 6110 mesh with the rack 6111, so that the two L-shaped displacement plates 615 are relatively close to each other, so as to clamp and fix the two sides of the CPU body 6114; S4, then start the second driving motor 627 to rotate the second output shaft 628, and use the blades 629 to blow air to dissipate heat from the CPU body 6114; S5. Finally, the first driving motor 622 is started to rotate the reciprocating screw rod 623, and the movable rod 625 is caused to rotate, so that the blades 629 can blow air to dissipate heat at different positions inside the chassis 1.
Citation Information
Patent Citations
Program input device for applet management software development
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