High-applicability anaesthesia machine electronic component bearing structure
By designing a highly applicable electronic component bearing structure for anesthesia machines, the difficulty of adapting electronic components of different specifications is solved, flexible installation and stable fixation are achieved, and resource waste and mechanical damage are avoided.
Patent Information
- Application Number
- CN202511056365.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-30
- Publication Date
- 2025-09-16
AI Technical Summary
The electronic component carrying protective case of the existing pushable anesthesia machine is difficult to adapt to electronic components of different specifications, resulting in waste of resources and inconvenience in installation.
A highly applicable electronic component bearing structure for anesthesia machines is designed. Through the coordination of a base plate, a top plate, side plates, an auxiliary frame, a support plate, a threaded barrel, a threaded rod, a snap-on assembly, a clamping plate, a buffer assembly, and a fixing assembly, flexible installation and fixation of electronic components of different specifications can be achieved.
It achieves flexible adaptation to electronic components of different specifications, avoids waste of resources, ensures convenience and stability of installation, and protects components from damage due to mechanical stress.
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Figure CN120646371A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of medical devices, and in particular to a highly applicable electronic component bearing structure for anesthesia machines. Background Art
[0002] Anesthesia machine is a medical device used for clinical anesthesia. It mainly controls the concentration and flow of inhaled anesthetic gases (such as sevoflurane and isoflurane) and combines oxygen supply and ventilation support to enable patients to enter a reversible anesthesia state. Its core functions include: precisely adjusting the dosage of anesthetic drugs to ensure controllable anesthesia depth; maintaining the patient's respiratory and circulatory stability and providing mechanical ventilation support; integrated monitoring modules to provide real-time feedback on the patient's vital signs (such as heart rate, blood oxygen saturation, etc.). Anesthesia machines are widely used in medical scenarios such as operating rooms and emergency centers, and their performance directly affects anesthesia safety and surgical success rate.
[0003] Anesthesia machine electronic components refer to the various electronic components that constitute the anesthesia machine control system, monitoring system and actuators. These components are the core of the anesthesia machine to achieve automated control and precise monitoring. Their working stability directly determines the reliability of the equipment. The anesthesia machine may be subjected to vibration and impact during transportation, installation or use. The load-bearing structure can provide stable support for the components to avoid problems such as solder joint detachment and chip damage due to mechanical stress.
[0004] The existing support and protective shells used for the electronic components of push-type anesthesia machines are mostly customized according to their peripheral dimensions. When multiple anesthesia machines of different specifications are in use, multiple support and protective shells often need to be customized, which makes it difficult to adapt to different electronic components. There is a waste of resources and inconvenience in installation, so it needs to be improved. Summary of the Invention
[0005] In order to adapt to different electronic components, the present application provides a highly applicable electronic component supporting structure for an anesthesia machine.
[0006] The highly applicable electronic component bearing structure of anesthesia machines provided in this application adopts the following technical solutions: The cam is provided with two guide rails, and the guide rails are connected with the up-down knob of the two guide rails respectively.
[0007] By adopting the above technical solution, the three side panels are vertically connected to the bottom plate and the top plate to form two independent spaces, and the cables of the electronic components are passed through the threading port; the threaded barrel is rotatably connected to the support plate through a bearing, the threaded rod is threadedly matched with the threaded barrel, and the turntable is fixed at the end of the threaded barrel to facilitate the rotation of the threaded barrel; the two auxiliary frames are used to install other structures of the anesthesia machine; the clamping assembly is used to limit the rotation of the threaded barrel, the guide block is fixed to the bottom of the clamping plate and slidably matched with the guide groove to ensure the horizontal movement of the clamping plate; the buffer assembly is used to buffer the horizontal impact on the electronic components, the fixing assembly is used to vertically fix the electronic components, and the limit assembly is used to limit the structure installed in the auxiliary frame.
[0008] Optionally, the clamping assembly includes a circular ring fixedly connected to the outer surface of the threaded barrel and a limit box installed on the outer surface of the support plate, and a group of clamping grooves are opened on the outer surface of the circular ring.
[0009] Optionally, the inner wall of the limit box is slidably connected to a connecting plate, a clamping rod is installed on the bottom surface of the connecting plate, and the bottom end of the clamping rod is clamped with the inner wall of the slot, and a spring is installed between the upper surface of the connecting plate and the inner top wall of the limit box.
[0010] Optionally, a through groove is provided on the outer surface of the limit box, the inner wall of the through groove is slidably connected to a pull plate, and the pull plate is connected to the connecting plate, and two sliding grooves 1 are provided on the inner wall of the limit box, and the inner walls of the two sliding grooves 1 are slidably connected to a slider 1, and the slider 1 is connected to the connecting plate.
[0011] By adopting the above technical solution, when it is necessary to rotate the threaded barrel, the pull plate is pulled upward, and the pull plate drives the connecting plate to slide upward in the limit box, the slider one slides synchronously in the slide groove one, the clamping rod disengages from the clamping groove, and the limit on the threaded barrel is released. The threaded barrel is rotated, and the pull plate is released after the rotation is completed. Under the elastic force of spring one, the connecting plate drives the clamping rod to reset, and the clamping rod is reinserted into the clamping groove to limit the rotation of the threaded barrel.
[0012] Optionally, the buffer assembly includes a buffer plate, a group of rubber strips 1 are installed on the outer surface of the buffer plate, a group of dampers and a group of springs 2 are installed on the side of the buffer plate away from the rubber strips 1, and the end of the damper away from the buffer plate and the end of the spring 2 away from the buffer plate are both connected to the clamping plate.
[0013] Optionally, the fixing assembly includes a cavity opened inside the clamping plate, the inner wall of the cavity is slidably connected to a connecting strip, the outer surface of the connecting strip is slidably connected to two guide rods, and both ends of the guide rods are connected to the inner wall of the cavity.
[0014] Optionally, the inner wall of the cavity is rotatably connected to a screw rod, and the screw rod is threadedly connected to the connecting bar, and a rotating block is installed on the top end of the screw rod.
[0015] Optionally, two vertical plates are installed on the upper surface of the connecting strip, and the top ends of the vertical plates pass through the inner wall of the cavity and extend to the outside of the cavity. The top ends of the two vertical plates are installed with fixed plates, and the bottom surfaces of the two fixed plates are installed with a group of rubber strips 2.
[0016] By adopting the above technical solution, when the clamping plate moves, the rubber strip 1 on the buffer plate contacts the side of the electronic component, the spring 2 is compressed, the damper horizontally buffers and fixes the electronic component, the rotating block is rotated, driving the screw rod to rotate, the connecting strip moves downward under the action of the screw rod and the guide rod, the vertical plate drives the fixed plate to move downward, the rubber strip 2 contacts the upper surface of the electronic component, and the electronic component is fixed vertically.
[0017] Optionally, the limit assembly includes a limit frame hinged to the outer surface of the auxiliary frame, the limit frame and the auxiliary frame are connected by connecting bolts, two cylinders are fixedly embedded on the outer surface of the limit frame, the inner walls of the two cylinders are slidably connected to circular plates, the outer surfaces of the two circular plates are installed with connecting columns, and rubber plates are installed on the ends of the two connecting columns away from the circular plates.
[0018] Optionally, a spring three is installed on the side of the two circular plates away from the connecting column, and the end of the spring three away from the circular plate is connected to the inner wall of the cylinder. The inner wall of the cylinder is provided with two sliding grooves two, and the inner walls of the two sliding grooves two are slidably connected with a slider two, and the slider two is connected to the circular plate.
[0019] By adopting the above technical solution, when other structures of the anesthesia machine are installed in the auxiliary frame, the structure is placed in the auxiliary frame, the limit frame is rotated to cover the structure, the limit frame and the auxiliary frame are fixed with connecting bolts, the rubber plate is in contact with the structure, the connecting column drives the circular plate to slide in the cylinder, the slider 2 slides synchronously in the slide groove 2, and the circular plate compresses the spring 3 to achieve the limitation and buffering of the structure.
[0020] In summary, this application includes at least one of the following beneficial technical effects: 1. Through the coordination and arrangement between the bottom plate, top plate, side plate, auxiliary frame, support plate, threaded barrel, threaded rod, clamping assembly, clamping plate, buffer assembly and fixing assembly, the two top plates and three side plates divide the bottom plate into two spaces, so that multiple groups of components can be placed at the same time. When electronic components of different specifications need to be installed, the electronic components are placed inside the load-bearing protective shell body, and the limit of the threaded barrel is released by the provided clamping assembly. The threaded barrel can be rotated to extend the threaded rod, thereby driving the clamping plate to move, so that the buffer assembly can horizontally buffer and fix the electronic components. The provided fixing assembly can be used to conveniently fix the electronic components vertically, thereby conveniently carrying and protecting electronic components of different specifications, so that the structure can adapt to different electronic components and avoid waste of resources caused by customization; 2. Through the coordination arrangement among the supporting plate, the threaded barrel, the circular ring, the limit box, the card slot, the connecting plate, the clamping rod, the spring 1, the through slot, the pulling plate, the slide groove 1 and the slider 1, when it is necessary to release the limit of the threaded barrel, first pull the pulling plate upwards, and the pulling plate can drive the connecting plate to slide on the inner wall of the limit box, thereby driving the clamping rod to move, so that the clamping rod can be disengaged from the inside of the card slot, and the limit of the threaded barrel can be released, so that the threaded barrel can be easily rotated. After the threaded barrel is rotated, the pulling plate is released, and the connecting plate and the clamping rod can be reset under the elastic force of the spring 1, so that the clamping rod can be reinserted into the inside of the card slot to limit the threaded barrel again, avoiding unnecessary rotation of the threaded barrel; 3. Through the coordination arrangement among the supporting plate, the threaded barrel, the threaded rod, the turntable, the clamping plate, the buffer plate, the rubber strip 1, the damper 2, the spring 2, the cavity, the connecting strip, the guide rod, the screw rod, the rotating block, the vertical plate, the fixed plate and the rubber strip 2, when it is necessary to install electronic components of different specifications, the threaded barrel can be rotated to extend the end of the supporting plate, thereby driving the clamping plate to move, so that the rubber strip 1 can contact the electronic component, and the spring 2 can be compressed, so that the electronic component can be fixed horizontally, and then the rotating block is rotated, and the rotating block can drive the screw rod to rotate, and the screw rod can drive the connecting strip to move downward by utilizing the thread coordination between the screw rod and the connecting strip, so that the fixing plate can drive the rubber strip 2 to contact the upper surface of the electronic component, so that the electronic component can be fixed in the vertical direction, which can facilitate the installation of the electronic component; 4. Through the coordination among the auxiliary frame, the limiting frame, the connecting bolts, the cylinder, the circular plate, the connecting column, the rubber plate, the spring three, the slide groove two and the slider two, when it is necessary to install other structures of the anesthesia machine inside the auxiliary frame, the structure to be installed is placed inside the auxiliary frame, the limiting frame is rotated, and the limiting frame and the auxiliary frame are connected using the connecting bolts. This enables the rubber plate to contact the installed structure, the connecting column to retract into the inside of the cylinder, and the circular plate to compress the spring three, thereby facilitating the limitation of other structures of the anesthesia machine placed inside the auxiliary frame. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 This is a structural diagram of an embodiment of the present application and is a highly applicable electronic component supporting structure for an anesthesia machine.
[0022] Figure 2 yes Figure 1 A magnified view of the middle panel.
[0023] Figure 3 It is a schematic diagram of the connection structure between the support plate and the threaded barrel in an embodiment of the present application.
[0024] Figure 4 yes Figure 3 Magnified view of B.
[0025] Figure 5 It is a schematic diagram of the internal structure of the limit box of an embodiment of the present application.
[0026] Figure 6 It is a schematic diagram of the connection structure of the clamping plate and the buffer assembly in an embodiment of the present application.
[0027] Figure 7 It is a structural diagram of the fixing component of an embodiment of the present application.
[0028] Figure 8 It is a structural diagram of the auxiliary framework of the embodiment of the present application.
[0029] Figure 9 It is a structural diagram of the limiting component of an embodiment of the present application.
[0030] Figure 10 It is a schematic structural diagram of the cylinder of the embodiment of the present application.
[0031] Explanation of reference numerals: 1. load-bearing protective shell body; 101. bottom plate; 102. top plate; 103. side plate; 104. threading port 1; 105. threading port 2; 2. auxiliary frame; 3. support plate; 4. threaded cylinder; 5. threaded rod; 6. turntable; 7. clamping assembly; 701. ring; 702. limit box; 703. clamping groove; 704. connecting plate; 705. clamping rod; 706. spring 1; 707. through groove; 708. pull plate; 709. slide groove 1; 710. slide block 1; 8. clamping plate; 9. guide groove; 10. guide block; 1 1. Buffer assembly; 111. Buffer plate; 112. Rubber strip one; 113. Damper; 114. Spring two; 12. Fixing assembly; 121. Cavity; 122. Connecting strip; 123. Guide rod; 124. Screw; 125. Rotating block; 126. Vertical plate; 127. Fixing plate; 128. Rubber strip two; 13. Limiting assembly; 131. Limiting frame; 132. Connecting bolt; 133. Cylinder; 134. Circular plate; 135. Connecting column; 136. Rubber plate; 137. Spring three; 138. Slide groove two; 139. Slider two. DETAILED DESCRIPTION
[0032] The following is combined with Figure 1-10 This application is described in further detail.
[0033] Example 1 The embodiment of the present application discloses a highly applicable electronic component supporting structure for anesthesia machines. Figure 1 The highly applicable anesthesia machine electronic component carrying structure includes a carrying protective shell body 1, which includes a bottom plate 101. Two top plates 102 and three side plates 103 are installed on the front of the bottom plate 101. The outer surfaces of the two top plates 102 are each provided with two threading openings 104, and the outer surface of the bottom plate 101 is provided with two threading openings 2 105.
[0034] Reference Figure 1 and Figure 3 Two auxiliary frames 2 are installed on the outer surface of the load-bearing protective shell body 1, and two support plates 3 are installed on the outer surface of the bottom plate 101. The outer surfaces of the two support plates 3 are rotatably connected with threaded cylinders 4, and the inner walls of the two threaded cylinders 4 are threadedly connected with threaded rods 5. A turntable 6 is installed on the end of the two threaded cylinders 4 away from the threaded rods 5.
[0035] Reference Figure 2 、 Figure 3 、 Figure 4 and Figure 8 The outer surfaces of the two support plates 3 are both installed with clamping components 7, and the ends of the two threaded rods 5 away from the threaded tube 4 are both installed with clamping plates 8. The outer surface of the base plate 101 is provided with two groups of guide grooves 9, and the inner walls of the two groups of guide grooves 9 are slidably connected with guide blocks 10, and the guide blocks 10 are connected to the clamping plates 8. The outer surfaces of the two clamping plates 8 are both installed with two buffer components 11, and the interiors of the two clamping plates 8 are both installed with fixing components 12. The outer surfaces of the two auxiliary frames 2 are both installed with limiting components 13.
[0036] The load-bearing protective shell body 1 consists of a bottom plate 101, two top plates 102 and three side plates 103. The two top plates 102 are installed parallel to the front of the bottom plate 101. The three side plates 103 are respectively connected vertically to the bottom plate 101 and the top plate 102 to form two independent spaces. The first threading port 104 is opened on the outer surface of the top plate 102 for the electronic components and cables to pass through. The second threading port 105 is opened on the outer surface of the bottom plate 101 to facilitate the cable access. The two auxiliary frames 2 are symmetrically installed on the outer surface of the load-bearing protective shell body 1 for installing other structures of the anesthesia machine. The support plate 3 is vertically fixed on the outer surface of the bottom plate 101. The threaded barrel 4 is rotatably connected to the support plate 3 through a bearing. The threaded rod 5 is threadedly matched with the threaded barrel 4. The turntable 6 is fixed at the end of the threaded barrel 4 to facilitate the rotation of the threaded barrel 4.
[0037] The clamping assembly 7 is installed on the outer surface of the support plate 3 to limit the rotation of the threaded barrel 4. The clamping plate 8 is fixed at the end of the threaded rod 5. The guide groove 9 is opened on the outer surface of the base plate 101. The guide block 10 is fixed at the bottom of the clamping plate 8 and slides with the guide groove 9 to ensure that the clamping plate 8 moves horizontally. The buffer assembly 11 is installed on the outer surface of the clamping plate 8 to buffer the horizontal impact on the electronic components. The fixing assembly 12 is installed inside the clamping plate 8 to vertically fix the electronic components. The limiting assembly 13 is installed on the outer surface of the auxiliary frame 2 to limit the structure installed inside the auxiliary frame 2.
[0038] The working steps of this embodiment are as follows: like Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 8 As shown, when electronic components need to be installed, the electronic components are placed in the two spaces of the supporting protective shell body 1, the limit of the threaded barrel 4 is released by the clamping assembly 7, the turntable 6 is rotated to drive the threaded barrel 4 to rotate, and the threaded rod 5 is extended under the action of the thread, driving the clamping plate 8 to move, so that the buffer assembly 11 contacts the electronic components, horizontally buffers and fixes them, and then the electronic components are vertically fixed by the fixing assembly 12 to achieve the bearing and protection of electronic components of different specifications.
[0039] Example 2 like Figure 3 、 Figure 4 and Figure 5 As shown, the clamping assembly 7 includes a circular ring 701 fixedly connected to the outer surface of the threaded cylinder 4 and a limit box 702 installed on the outer surface of the support plate 3. The outer surface of the circular ring 701 is provided with a group of clamping grooves 703. The inner wall of the limit box 702 is slidably connected with a connecting plate 704. The bottom surface of the connecting plate 704 is provided with a clamping rod 705, and the bottom end of the clamping rod 705 is clamped with the inner wall of the clamping groove 703. A spring 706 is installed between the upper surface of the connecting plate 704 and the inner top wall of the limit box 702. The outer surface of the limit box 702 is provided with a through groove 707. The inner wall of the through groove 707 is slidably connected with a pull plate 708, and the pull plate 708 is connected to the connecting plate 704. The inner wall of the limit box 702 is provided with two sliding grooves 709. The inner walls of the two sliding grooves 709 are both slidably connected with a slider 710, and the slider 710 is connected to the connecting plate 704.
[0040] In this embodiment, the circular ring 701 is fixedly sleeved on the outer surface of the threaded cylinder 4, the limit box 702 is vertically fixed to the outer surface of the support plate 3, the card groove 703 is evenly opened on the outer surface of the circular ring 701, the connecting plate 704 is horizontally placed in the limit box 702, the card rod 705 is vertically fixed to the bottom surface of the connecting plate 704, the bottom end passes through the bottom of the limit box 702 and is engaged with the card groove 703, a spring 1 706 is installed between the upper surface of the connecting plate 704 and the inner top wall of the limit box 702 to provide a reset force, a through slot 707 is opened on the outer surface of the limit box 702, and the pull plate 708 passes through the through slot 707 and is fixedly connected to the connecting plate 704 to facilitate pulling the connecting plate 704, a slide groove 1 709 is opened on the inner wall of the limit box 702, a slider 1 710 is fixed on the side of the connecting plate 704 and slides with the slide groove 1 709 to limit the moving direction of the connecting plate 704.
[0041] The working steps of this embodiment are as follows: like Figure 3 、 Figure 4 and Figure 5 As shown, when it is necessary to rotate the threaded barrel 4, the pull plate 708 is pulled upward, and the pull plate 708 drives the connecting plate 704 to slide upward in the limit box 702, and the slider 1 710 slides synchronously in the slide groove 1 709, and the clamping rod 705 disengages from the clamping groove 703, releasing the limit on the threaded barrel 4, and rotating the threaded barrel 4. After the rotation is completed, the pull plate 708 is released, and under the elastic force of the spring 1 706, the connecting plate 704 drives the clamping rod 705 to reset, and the clamping rod 705 is reinserted into the clamping groove 703 to limit the rotation of the threaded barrel 4.
[0042] Example 3 like Figure 1 、 Figure 3 、 Figure 6 and Figure 7 As shown, the buffer assembly 11 includes a buffer plate 111, a group of rubber strips 112 are installed on the outer surface of the buffer plate 111, a group of dampers 113 and a group of springs 114 are installed on the side of the buffer plate 111 away from the rubber strips 112, and the end of the damper 113 away from the buffer plate 111 and the end of the spring 114 away from the buffer plate 111 are both connected to the clamping plate 8.
[0043] The fixing assembly 12 includes a cavity 121 opened inside the clamping plate 8, and the inner wall of the cavity 121 is slidably connected to a connecting strip 122, and the outer surface of the connecting strip 122 is slidably connected to two guide rods 123, and both ends of the guide rods 123 are connected to the inner wall of the cavity 121, and the inner wall of the cavity 121 is rotatably connected to a screw rod 124, and the screw rod 124 is threadedly connected to the connecting strip 122, and a rotating block 125 is installed at the top of the screw rod 124, and two vertical plates 126 are installed on the upper surface of the connecting strip 122, and the top of the vertical plate 126 passes through the inner wall of the cavity 121 and extends to the outside of the cavity 121, and the top of the two vertical plates 126 is installed with a fixing plate 127, and the bottom surface of the two fixing plates 127 is installed with a group of rubber strips 128.
[0044] In this embodiment, the buffer plate 111 is parallel to the clamping plate 8, and the rubber strip 112 is evenly fixed on the outer surface of the buffer plate 111 for contacting the electronic components and buffering. The damper 113 and the spring 2 114 are both vertically installed between the buffer plate 111 and the clamping plate 8. The damper 113 is used to attenuate vibration, and the spring 2 114 provides buffering elastic force.
[0045] The cavity 121 is opened inside the clamping plate 8, the connecting bar 122 is placed horizontally in the cavity 121, the guide rod 123 is vertically fixed to the inner wall of the cavity 121, passes through the connecting bar 122 and slides with the connecting bar 122 to limit the moving direction of the connecting bar 122, the screw rod 124 is installed on the inner wall of the cavity 121 through a bearing, and is threadedly engaged with the connecting bar 122, the rotating block 125 is fixed to the top of the screw rod 124 to facilitate the rotation of the screw rod 124, the vertical plate 126 is vertically fixed to the upper surface of the connecting bar 122, and the top extends to the outside through the top of the cavity 121, the fixed plate 127 is horizontally fixed to the top of the vertical plate 126, and the rubber strip 128 is evenly fixed on the bottom surface of the fixed plate 127 for contacting and fixing the upper surface of the electronic components.
[0046] The working steps of this embodiment are as follows: like Figure 1 、 Figure 3 、 Figure 6 and Figure 7As shown, when the clamping plate 8 moves, the rubber strip 112 on the buffer plate 111 contacts the side of the electronic component, the spring 2 114 is compressed, and the damper 113 works to horizontally buffer and fix the electronic component. The rotating block 125 is rotated to drive the screw rod 124 to rotate. The connecting strip 122 moves downward under the action of the screw rod 124 and the guide rod 123, and the vertical plate 126 drives the fixing plate 127 to move downward. The rubber strip 2 128 contacts the upper surface of the electronic component to vertically fix the electronic component.
[0047] Example 4 like Figure 8 、 Figure 9 and Figure 10 As shown, the limit assembly 13 includes a limit frame 131 hinged to the outer surface of the auxiliary frame 2, and the limit frame 131 and the auxiliary frame 2 are connected by a connecting bolt 132. The outer surface of the limit frame 131 is fixedly inlaid with two cylinders 133, and the inner walls of the two cylinders 133 are slidably connected to circular plates 134. The outer surfaces of the two circular plates 134 are installed with connecting columns 135, and the ends of the two connecting columns 135 away from the circular plates 134 are installed with rubber plates 136. The side surfaces of the two circular plates 134 away from the connecting columns 135 are installed with springs three 137, and the ends of the springs three 137 away from the circular plates 134 are connected to the inner wall of the cylinder 133. The inner wall of the cylinder 133 is provided with two sliding grooves two 138, and the inner walls of the two sliding grooves two 138 are slidably connected with sliders two 139, and the sliders two 139 are connected to the circular plates 134.
[0048] In this embodiment, the limit frame 131 is hinged to the auxiliary frame 2 through a hinge axis, and the connecting bolt 132 is used to connect the limit frame 131 and the auxiliary frame 2 to fix the position of the limit frame 131. The cylinder 133 is vertically fixed to the outer surface of the limit frame 131, and the circular plate 134 is horizontally placed in the cylinder 133 and slides with the inner wall of the cylinder 133. The connecting column 135 is vertically fixed to the outer surface of the circular plate 134, and the top passes through the top of the cylinder 133 and extends to the outside. The rubber plate 136 is fixed on the top of the connecting column 135 for contacting the mounting structure and buffering. Spring three 137 is installed between the side of the circular plate 134 away from the connecting column 135 and the inner wall of the cylinder 133 to provide a reset force. The second slide groove 138 is opened on the inner wall of the cylinder 133. The second slider 139 is fixed on the side of the circular plate 134 and slides with the second slide groove 138 to limit the moving direction of the circular plate 134.
[0049] The working steps of this embodiment are as follows: like Figure 8 、 Figure 9 and Figure 10As shown, when other structures of the anesthesia machine are installed in the auxiliary frame 2, the structure is placed in the auxiliary frame 2, the limiting frame 131 is rotated to cover the structure, the limiting frame 131 and the auxiliary frame 2 are fixed with the connecting bolts 132, the rubber plate 136 is in contact with the structure, the connecting column 135 drives the circular plate 134 to slide in the cylinder 133, the slider 139 slides synchronously in the chute 138, and the circular plate 134 compresses the spring 137 to achieve the limitation and buffering of the structure. The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A highly applicable electronic component bearing structure for an anesthesia machine, comprising a bearing protective shell body (1), characterized in that: The load-bearing protective shell body (1) comprises a bottom plate (101), two top plates (102) and three side plates (103) are installed on the front of the bottom plate (101), the outer surfaces of the two top plates (102) are provided with two threading openings (104), the outer surface of the bottom plate (101) is provided with two threading openings (105), the outer surface of the load-bearing protective shell body (1) is provided with two auxiliary frames (2), the outer surface of the bottom plate (101) is provided with two support plates (3), the outer surfaces of the two support plates (3) are both rotatably connected to threaded cylinders (4), the inner walls of the two threaded cylinders (4) are both threadedly connected to threaded rods (5), and the two threaded cylinders (4) are provided with threaded rods (5). ) is provided with a turntable (6) on one end away from the threaded rod (5), a clamping assembly (7) is provided on the outer surface of the two support plates (3), a clamping plate (8) is provided on one end away from the threaded cylinder (4) of the two threaded rods (5), two groups of guide grooves (9) are provided on the outer surface of the bottom plate (101), the inner walls of the two groups of guide grooves (9) are slidably connected with guide blocks (10), and the guide blocks (10) are connected to the clamping plates (8), two buffer assemblies (11) are provided on the outer surfaces of the two clamping plates (8), a fixing assembly (12) is provided inside the two clamping plates (8), and a limiting assembly (13) is provided on the outer surfaces of the two auxiliary frames (2).
2. The highly applicable electronic component supporting structure for anesthesia machines according to claim 1, characterized in that: The clamping assembly (7) comprises a circular ring (701) fixedly connected to the outer surface of the threaded barrel (4) and a limit box (702) mounted on the outer surface of the support plate (3); a group of clamping grooves (703) are formed on the outer surface of the circular ring (701).
3. The highly applicable electronic component supporting structure of anesthesia machine according to claim 2, characterized in that: The inner wall of the limit box (702) is slidably connected to a connecting plate (704), the bottom surface of the connecting plate (704) is installed with a clamping rod (705), and the bottom end of the clamping rod (705) is clamped with the inner wall of the clamping groove (703), and a spring (706) is installed between the upper surface of the connecting plate (704) and the inner top wall of the limit box (702).
4. The highly applicable electronic component supporting structure for anesthesia machines according to claim 3, characterized in that: The outer surface of the limit box (702) is provided with a through groove (707), the inner wall of the through groove (707) is slidably connected to a pull plate (708), and the pull plate (708) is connected to the connecting plate (704), and the inner wall of the limit box (702) is provided with two sliding grooves (709), the inner walls of the two sliding grooves (709) are both slidably connected to a slider (710), and the slider (710) is connected to the connecting plate (704).
5. The highly applicable electronic component supporting structure for anesthesia machines according to claim 1, characterized in that: The buffer assembly (11) includes a buffer plate (111), a group of rubber strips (112) are installed on the outer surface of the buffer plate (111), a group of dampers (113) and a group of springs (114) are installed on a side of the buffer plate (111) away from the rubber strips (112), and one end of the damper (113) away from the buffer plate (111) and one end of the spring (114) away from the buffer plate (111) are both connected to the clamping plate (8).
6. The highly applicable electronic component supporting structure for anesthesia machines according to claim 1, characterized in that: The fixing assembly (12) includes a cavity (121) opened inside the clamping plate (8), the inner wall of the cavity (121) is slidably connected to a connecting strip (122), the outer surface of the connecting strip (122) is slidably connected to two guide rods (123), and both ends of the guide rods (123) are connected to the inner wall of the cavity (121).
7. The highly applicable electronic component supporting structure for anesthesia machines according to claim 6, characterized in that: The inner wall of the cavity (121) is rotatably connected to a screw rod (124), and the screw rod (124) is threadedly connected to the connecting bar (122). A rotating block (125) is installed at the top end of the screw rod (124).
8. The highly applicable electronic component supporting structure for anesthesia machines according to claim 6, characterized in that: Two vertical plates (126) are installed on the upper surface of the connecting strip (122), and the top ends of the vertical plates (126) pass through the inner wall of the cavity (121) and extend to the outside of the cavity (121). The top ends of the two vertical plates (126) are both installed with a fixing plate (127), and the bottom surfaces of the two fixing plates (127) are both installed with a set of rubber strips (128).
9. The highly applicable electronic component supporting structure for anesthesia machines according to claim 1, characterized in that: The limiting assembly (13) includes a limiting frame (131) hinged to the outer surface of the auxiliary frame (2), the limiting frame (131) and the auxiliary frame (2) are connected by connecting bolts (132), the outer surface of the limiting frame (131) is fixedly inlaid with two cylinders (133), the inner walls of the two cylinders (133) are slidably connected to circular plates (134), the outer surfaces of the two circular plates (134) are installed with connecting columns (135), and the ends of the two connecting columns (135) away from the circular plates (134) are installed with rubber plates (136).
10. The highly applicable electronic component supporting structure for anesthesia machines according to claim 9, characterized in that: A spring three (137) is installed on one side of the two circular plates (134) away from the connecting column (135), and one end of the spring three (137) away from the circular plate (134) is connected to the inner wall of the cylinder (133). Two sliding grooves two (138) are provided on the inner wall of the cylinder (133). The inner walls of the two sliding grooves two (138) are both slidably connected to a slider two (139), and the slider two (139) is connected to the circular plate (134).