An operating room wall mounting structure and method

By combining the overall frame design with the fixing mechanism, the problems of structural damage and complex installation during the replacement of electrolytic steel plates on the operating room walls were solved. This enabled precise fixing of the electrolytic steel plates and automated wiring, improving the efficiency and safety of the operating room.

CN119288157BActive Publication Date: 2025-11-04ANHUI HUAYI ENVIRONMENTAL TECH CO LTD
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Patent Information

Application Number
CN202411573563.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-06
Publication Date
2025-11-04
Estimated Expiration
2044-11-06

AI Technical Summary

Technical Problem

In the existing technology, the replacement of electrolytic steel plates on the operating room walls is prone to damage to the wall structure. The installation and disassembly are complicated, and the wiring and installation process is cumbersome, which increases the workload and difficulty for the staff.

Method used

The design employs a combination of an overall frame, a fixing mechanism, and a wire-binding mechanism. Through components such as an electrolytic steel plate connecting mechanism, a U-shaped connecting plate, a convex plate, a wire-binding mechanism, and a dual-axis motor, it achieves precise fixing of the electrolytic steel plate and automated wiring, simplifying the installation process.

Benefits of technology

It improves the stability and safety of wall mounting in operating rooms, reduces operation time and labor costs, ensures neat and secure wiring, and reduces the risk of messy wiring and detachment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of operating room wall installation structure and method, it is related to operating room technical field, including frame whole, the front side rectangular array of frame whole is fixedly connected with multiple fixed mechanisms, multiple the front side of fixed mechanism is movably connected with electrolytic steel plate connecting mechanism, multiple the front side of electrolytic steel plate connecting mechanism is fixedly connected with electrolytic steel plate, this application is provided with fixed mechanism, convex plate, by the cooperation of control panel and slide bar push-pull plate, the accurate fixation of electrolytic steel plate connecting mechanism can be realized, the stability and security of entire wall installation structure are ensured, to provide a reliable working environment for operating room, and solve the close combination of steel plate and wall, the wall structure can be damaged during replacement, and the problems that dismounting and replacement process are relatively complex, by being provided with line binding mechanism, various lines in operating room can be effectively arranged and fixed, to avoid line messy.
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Description

TECHNICAL FIELD

[0001] The application relates to the technical field of operating rooms, in particular to an operating room wall mounting structure and method. BACKGROUND

[0002] An operating room refers to a special room in a hospital for performing surgical operations, and the design and construction requirements are very strict to ensure a sterile environment and patient safety during the operation. As an important part of the operating room, the operating room wall mounting structure not only needs to meet the basic building requirements, but also needs to consider the installation, maintenance of medical equipment and the convenience of medical staff operation.

[0003] According to the patent document CN112376956A, a sterile operating room design installation structure and its construction method are disclosed, which relates to the technical field of sterile operating rooms, and comprises a top horizontal keel, a vertical keel, a horizontal electrolytic steel plate, an arc-shaped electrolytic steel plate, a vertical electrolytic steel plate and a support assembly. The vertical keel is fixed to the wall surface, the top horizontal keel is fixed to the vertical keel, the horizontal electrolytic steel plate is fixed to the bottom of the top horizontal keel, the top edge of the arc-shaped electrolytic steel plate is connected to one side edge of the horizontal electrolytic steel plate and is also fixed to the bottom of the top horizontal keel, the bottom edge of the arc-shaped electrolytic steel plate is connected to the top edge of the vertical electrolytic steel plate and is fixed to the inner side of the vertical keel, and the vertical electrolytic steel plate is also fixed to the inner side of the vertical keel. The support assembly is fixed to the connection between the top horizontal keel and the vertical keel, and the support assembly is provided with a concave arc-shaped surface that is adapted to abut against the arc-shaped electrolytic steel plate. The application has the effects of stable and firm structure.

[0004] The operating room wall is usually installed with electrolytic steel plates, which requires precise measurement and positioning to ensure that the steel plates are tightly attached to the wall, thereby achieving excellent sterile environment. During the installation process, professional fixing and connecting components such as bolts, nuts and buckles are used to ensure the stability of the electrolytic steel plates. However, this installation method may face challenges when replacing the electrolytic steel plates, as the tight combination of the steel plates and the wall may damage the wall structure during the replacement process, and the disassembly and replacement process is relatively complex, increasing the operation difficulty.

[0005] In addition, before installing the electrolytic steel plates, line layout needs to be performed in advance, and line pipes are used for orderly arrangement. This step requires workers to work at a high place, first preset the line pipes and then arrange the lines. Subsequently, during the installation of the electrolytic steel plates, it is still necessary to work at a high place to accurately install the wall plates. This process not only increases the workload of the workers, but also increases the overall installation difficulty. SUMMARY

[0006] The purpose of the present application is to provide a surgical room wall mounting structure to solve the problem that the existing technology may face challenges when replacing the electrolytic steel plate subsequently, the wall structure may be damaged during the replacement process due to the close combination of the steel plate and the wall, and the disassembly and replacement process is relatively complex, increasing the operation difficulty and the work of the staff at a high altitude, the line pipe is preset first, then the line arrangement is carried out, and then the electrolytic steel plate is installed, which still needs to be climbed again to accurately install the wall plate, which not only increases the workload of the staff, but also increases the overall installation difficulty.

[0007] To achieve the above purpose, the present application provides the following technical scheme: a surgical room wall mounting structure, comprising a frame whole, a plurality of fixing mechanisms are fixedly connected to the front side of the frame whole in a rectangular array, a plurality of electrolytic steel plate connecting mechanisms are movably connected to the front side of the plurality of fixing mechanisms, and a plurality of electrolytic steel plates are fixedly connected to the front side of the plurality of electrolytic steel plate connecting mechanisms;

[0008] The electrolytic steel plate connecting mechanism comprises a U-shaped connecting plate, a convex plate is fixedly connected to the rear middle part of the U-shaped connecting plate, limit grooves are formed in the top and bottom of the left and right sides of the U-shaped connecting plate, convex plate limit grooves are fixedly connected to the rear side of the top and bottom of the left and right sides of the convex plate, and a wire bundling mechanism is fixedly connected to the rear side of the top and bottom of the left and right sides of the U-shaped connecting plate away from the convex plate.

[0009] Preferably, the wire bundling mechanism comprises a wire bundling mechanism connecting block, a wire bundling tube shell is fixedly connected to the rear side of the wire bundling mechanism connecting block, connecting discs are fixedly connected to the top and bottom of the inner wall of the wire bundling tube shell, respectively, hinge grooves are formed in the outer walls of the two connecting discs, respectively, wire passing tubes are fixedly connected to the opposite sides of the two connecting discs, slide block are fixedly connected to the two sides of the opposite sides of the two connecting discs, and the middle parts of the wire passing tubes and the two connecting discs are designed to be hollow.

[0010] Preferably, the inner walls of the slide blocks of the upper and lower groups are slidably connected with push-pull sliding blocks, the inner sides of the two groups of push-pull sliding blocks are fixedly connected with semicircular wire clamps, the outer walls of the two groups of push-pull sliding blocks are rotatably connected with push-pull rotating rods, the one sides of the two groups of push-pull rotating rods away from the push-pull sliding blocks are rotatably connected with rotating rods, the outer walls of the one sides of the two groups of rotating rods away from the push-pull rotating rods are fixedly connected with push-pull plates, the outer walls of the middle parts of the two groups of rotating rods are rotatably connected to the inner sides of the hinge grooves, and the front and rear sides of the inner sides of the two push-pull plates are fixedly connected with bidirectional hydraulic rods.

[0011] Preferably, the fixing mechanism comprises a control plate, and the top and bottom of the front side of the control plate are movably connected with fixing clamps.

[0012] Preferably, the control panel comprises a control panel body, a transmission groove is formed in the middle of the front side of the control panel body, the top and bottom of the middle of the front side of the control panel body are fixedly connected with a rotating rod positioning block, and the left and right sides of the front side of the control panel body are fixedly connected with a sliding groove plate.

[0013] Preferably, the inner wall of the transmission groove is fixedly connected with a motor placing bin, the inner wall of the motor placing bin is fixedly connected with a double-shaft motor, the top and bottom of the output end of the double-shaft motor are fixedly connected with a conical tooth, the outer wall of the two conical teeth is threadedly connected with a second conical tooth, the inner wall of the two second conical teeth is fixedly connected with a control rod rotating rod, and the front end of the two control rod rotating rods extends to the front side of the rotating rod positioning block and is fixedly connected with a control rod.

[0014] Preferably, the two groups of sliding groove plates each comprise a sliding groove plate body, the outer side of the two groups of sliding groove plate bodies is fixedly connected with a gear rotating rod connecting block, the left and right sides of the side away from the sliding groove plate body of the two groups of gear rotating rod connecting blocks are fixedly connected with a moving rod sliding groove rod, the inner side of the four groups of moving rod sliding groove rods is slidably connected with a moving rod, the side away from the sliding groove plate body of the four groups of moving rods is fixedly connected with a line limiting clamping plate, and the inner side of the four groups of moving rods is fixedly connected with a rack.

[0015] Preferably, the inner wall of the two groups of gear rotating rod connecting blocks is fixedly connected with a gear rotating rod, the top end and the bottom end of the two groups of gear rotating rods are fixedly connected with a gear, and the gears fixed to the inner side of the moving rod sliding groove rod of the two groups of gear rotating rods are engaged with the rack.

[0016] Preferably, the two groups of fixed clamps each comprise two sliding rod push-pull plates, the top and bottom of the rear side of the two groups of sliding rod push-pull plates are rotatably connected, the outer side of the two groups of sliding rod push-pull plates is fixedly connected with a sliding rod, the side close to the sliding rod of the front side of the two groups of sliding rod push-pull plates is fixedly connected with a second connecting plate clamping plate, the rear side of the two groups of sliding rods is slidably connected to the front side of the sliding groove plate body, the front side of the two groups of sliding rods is fixedly connected with a second rack, the two groups of second racks are engaged with the gears fixed to the side close to the sliding groove plate body of the gear rotating rods, the side away from the sliding rod push-pull plate of the inner side of the two groups of sliding rods is fixedly connected with a connecting plate clamping plate, and the front side of the inner side of the two groups of connecting plate clamping plates and the two groups of second connecting plate clamping plates is fixedly connected with a limiting block.

[0017] In addition, the present application also relates to a surgical room wall surface mounting structure and method, comprising the following steps:

[0018] Step one: prepare the materials and tools needed for the wall surface installation of the operating room, including electrolytic steel plate, electrolytic steel plate connecting mechanism, frame whole, fixing mechanism;

[0019] Step two: Install the frame as a whole in the predetermined position of the operating room wall, and ensure that it is firm and stable;

[0020] Step three: Install the fixing mechanism on the front side of the frame as a whole, to prepare for the subsequent installation of the electrolytic steel plate connecting mechanism;

[0021] Step four: Connect the electrolytic steel plate with the electrolytic steel plate connecting mechanism, ensure that the connection is firm and reliable, and arrange the required lines in the inner wall of the line bundling mechanism while installing the electrolytic steel plate and the electrolytic steel plate connecting mechanism;

[0022] Step five: Move the electrolytic steel plate and the electrolytic steel plate connecting mechanism that have been connected together to the fixing mechanism fixed on the front side of the frame as a whole;

[0023] Step six: Start the double-shaft motor, drive the control rod and the rotation of the control rod, and then make the sliding rod push plate slide inward, driving the sliding rod to slide inward;

[0024] Step seven: Through the inward sliding of the sliding rod, the second connecting plate clamps the two sides of the convex plate and is clamped into the inner wall of the convex plate limiting groove through the limiting block, and at the same time, the connecting plate clamps the outer wall of the U-shaped connecting plate on both sides and is clamped into the inner wall of the two groups of limiting grooves of the U-shaped connecting plate through the limiting block, thereby realizing the fixation of the electrolytic steel plate connecting mechanism;

[0025] Step eight: While the sliding rod slides inward, the second rack engages with the gear fixed at one end of the sliding groove plate body, so that the gear rotates, and then through the engagement relationship between the gear at the other end of the gear rotating rod and the rack, the moving rod slides along the moving rod sliding groove of the sliding groove plate, and the sliding of the moving rod drives the line limiting clamp plate to move, thereby realizing the further fixation and limiting of the line;

[0026] Step nine: After completing all the installation steps, check the stability and safety of the entire operating room wall installation structure, ensure that there is no loosening or falling phenomenon, so as to ensure the normal operation and safe use of the operating room.

[0027] Compared with the prior art, the beneficial effects of the present application are:

[0028] 1、The line bundling mechanism can effectively arrange and fix various lines in the operating room, avoid disorderly lines, and reduce the inconvenience and risk caused by line problems during the operation; the design of the line bundling mechanism makes the arrangement and maintenance of the lines simple and fast, improves the use efficiency and safety of the operating room;

[0029] 2、The application can realize accurate fixing of the electrolytic steel plate connecting mechanism by setting the fixing mechanism and the convex plate, and through cooperation of the control plate and the slide rod push-pull plate, ensure the stability and safety of the whole wall surface installation structure, thereby providing a reliable working environment for the operating room, and solving the problems of close combination of the steel plate and the wall surface, possible damage to the wall surface structure during replacement, and relatively complex disassembly and replacement process;

[0030] 3、The application realizes accurate control of the slide rod push-pull plate by setting the combination of the double-shaft motor and the control lever rotating rod, thereby controlling the movement of the slide rod, so that the whole fixing process is highly automated, easy to operate, and greatly reduces the time and labor cost required for wall surface installation in the operating room.

[0031] 4、The application further fixes and limits the line by setting the sliding groove plate and the line limiting clamping plate, ensures that the line will not be displaced or fall off due to external force during the operation, thereby ensuring the smooth progress of the operation, makes the fixation of the line more firm, and facilitates the later line maintenance and replacement. BRIEF DESCRIPTION OF DRAWINGS

[0032] Figure 1 It is a schematic diagram of the main body of the operating room wall surface installation structure of the application;

[0033] Figure 2 It is a schematic diagram of the main body of the operating room wall surface installation structure of the application;

[0034] Figure 3 It is a schematic diagram of the electrolytic steel plate connecting mechanism of the operating room wall surface installation structure of the application;

[0035] Figure 4 It is a schematic diagram of the wire binding mechanism of the operating room wall surface installation structure of the application;

[0036] Figure 5 It is a schematic diagram of the wire binding mechanism of the operating room wall surface installation structure of the application;

[0037] Figure 6 It is a schematic diagram of the fixing mechanism of the operating room wall surface installation structure of the application;

[0038] Figure 7 It is a schematic diagram of the fixing mechanism of the operating room wall surface installation structure of the application;

[0039] Figure 8 It is a schematic diagram of the control plate of the operating room wall surface installation structure of the application;

[0040] Figure 9It is a groove plate three-dimensional separation structure schematic diagram of the operating room wall mounting structure of the application;

[0041] Figure 10 It is a fixed clip three-dimensional structure schematic diagram of the operating room wall mounting structure of the application.

[0042] In the figure, the label: 1, frame whole; 2, fixed mechanism; 21, control board; 211, control board main body; 212, transmission groove; 213, rotating rod positioning block; 214, sliding groove plate; 2141, sliding groove plate main body; 2142, gear rotating rod connecting block; 2143, gear rotating rod; 2144, gear; 2146, moving rod sliding groove rod; 2147, moving rod; 2148, rack; 2149, line limiting clamp plate; 215, motor placement bin; 216, double-shaft motor; 217, conical tooth; 218, second conical tooth; 219, control rod rotating rod; 2110, control rod; 22, fixed clip; 221, sliding rod push-pull plate; 222, sliding rod; 223, second rack; 224, connecting plate clamp plate; 225, limiting block; 226, second connecting plate clamp plate; 3, electrolytic steel plate connecting mechanism; 31, U-shaped connecting plate; 32, limiting groove; 33, convex plate; 34, convex plate limiting groove; 35, wire binding mechanism; 351, wire binding mechanism connecting block; 352, wire binding tube shell; 353, wire passing tube; 354, connecting disc; 355, hinged groove; 356, sliding groove block; 357, push-pull sliding block; 358, semicircular wire binding clamp; 359, push-pull rotating rod; 3510, rotating rod; 3511, push-pull plate; 3512, bidirectional hydraulic rod; 4, electrolytic steel plate. DETAILED DESCRIPTION

[0043] The technical solutions in the embodiments of the application will be clearly and completely described below with reference to the drawings in the embodiments of the application. Obviously, the described embodiments are only part of the embodiments of the application, rather than all the embodiments of the application. Based on the embodiments in the application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the application.

[0044] Embodiment: as Figures 1-2 shown, the application provides a technical solution of an operating room wall mounting structure, which comprises a frame whole 1, a plurality of fixed mechanisms 2 are fixedly connected to the front side of the frame whole 1 in a rectangular array, a plurality of electrolytic steel plate connecting mechanisms 3 are movably connected to the front side of the plurality of fixed mechanisms 2, and a plurality of electrolytic steel plates 4 are fixedly connected to the front side of the plurality of electrolytic steel plate connecting mechanisms 3.

[0045] Please refer to Figures 3-5The electrolytic steel plate connecting mechanism 3 comprises a U-shaped connecting plate 31, a convex plate 33 fixedly connected to the middle part of the rear side of the U-shaped connecting plate 31, a limiting groove 32 formed in the top and the bottom of the left and right sides of the U-shaped connecting plate 31, a convex plate limiting groove 34 fixedly connected to the top and the bottom of the left and right sides of the rear side of the convex plate 33, a wire bundling mechanism 35 fixedly connected to the top and the bottom of the left and right sides of the rear side of the U-shaped connecting plate 31 away from the convex plate 33, the wire bundling mechanism 35 comprising a wire bundling mechanism connecting block 351, a wire bundling tube shell 352 fixedly connected to the rear side of the wire bundling mechanism connecting block 351, a connecting disc 354 fixedly connected to the top and the bottom of the inner wall of the wire bundling tube shell 352, a hinged groove 355 formed in the outer wall of the left and right sides of the two connecting discs 354, a wire passing tube 353 fixedly connected to the opposite sides of the two connecting discs 354, a sliding groove block 356 fixedly connected to the two sides of the opposite sides of the two connecting discs 354, the middle part of the wire passing tube 353 and the two connecting discs 354 being hollow, a push-pull sliding block 357 slidingly connected to the inner wall of the upper and lower two groups of sliding groove blocks 356, a semicircular wire clamp 358 fixedly connected to the inner side of the two groups of push-pull sliding blocks 357, a push-pull rotating rod 359 rotationally connected to the outer wall of the two groups of push-pull sliding blocks 357, a rotating rod 3510 rotationally connected to the side of the push-pull rotating rod 359 away from the push-pull sliding block 357, a push-pull plate 3511 fixedly connected to the outer wall of the side of the two groups of rotating rods 3510 away from the push-pull rotating rod 359, the outer wall of the two groups of rotating rods 3510 being rotationally connected to the inner side of the hinged groove 355, and a bidirectional hydraulic rod 3512 fixedly connected to the front and rear sides of the inner side of the two push-pull plates 3511.

[0046] When it is necessary to install the electrolytic steel plate 4 to the wall surface of the operating room, first, the frame whole 1 is installed according to the structure of the wall surface of the operating room, then the electrolytic steel plate 4 is fixed to the front side of the U-shaped connecting plate 31, at this time, the electrolytic steel plate 4 and the electrolytic steel plate connecting mechanism 3 are not installed to the wall surface of the operating room, then the staff arranges the wires through the multiple wire bundling mechanisms 35 arranged on the rear side of the U-shaped connecting plate 31, the multiple groups of wires pass through the inner wall of the wire passing tube 353 and penetrate the inner wall of the wire bundling tube shell 352, when the wires are arranged by penetrating the inner wall of the wire bundling mechanism connecting block 351, the bidirectional hydraulic rod 3512 is started to move the push-pull plate 3511 inward, thereby pushing the push-pull rotating rod 359 to rotate, with the rotation of the push-pull rotating rod 359, the push-pull sliding block 357 slides along the inner wall of the sliding groove block 356, and finally the semicircular wire clamp 358 clamps the wires, in this way, the wires can be arranged neatly in the wire passing tube 353, avoiding the wires being exposed in disorder, thereby improving the neatness of the wire arrangement.

[0047] Please refer to Figures 6-10 and Figure 3The fixing mechanism 2 comprises a control plate 21, the top and bottom of the front side of the control plate 21 are movably connected with fixing clamps 22 respectively, the control plate 21 comprises a control plate body 211, a transmission groove 212 is formed in the middle of the front side of the control plate body 211, the top and bottom of the middle of the front side of the control plate body 211 are fixedly connected with rotating rod positioning blocks 213 respectively, the left and right sides of the inner sides of the two rotating rod positioning blocks 213 and the left and right sides of the outer sides of the two rotating rod positioning blocks 213 are fixedly connected with sliding groove plates 214 respectively on the front side of the control plate body 211, a motor placing bin 215 is fixedly connected to the inner wall of the middle of the transmission groove 212, a double-shaft motor 216 is fixedly connected to the inner wall of the motor placing bin 215, the top and bottom of the output end of the double-shaft motor 216 are fixedly connected with tapered teeth 217 respectively, the outer walls of the two tapered teeth 217 are threadedly connected with second tapered teeth 218 respectively, the inner walls of the two second tapered teeth 218 are fixedly connected with control rod rotating rods 219, the front ends of the two control rod rotating rods 219 extend to the front side of the rotating rod positioning block 213 and are fixedly connected with control rods 2110 respectively, the two groups of sliding groove plates 214 each comprise a sliding groove plate body 2141, the outer sides of the two groups of sliding groove plate bodies 2141 are fixedly connected with gear rotating rod connecting blocks 2142, the left and right sides of the sides, away from the sliding groove plate bodies 2141, of the two groups of gear rotating rod connecting blocks 2142 are fixedly connected with moving rod sliding groove rods 2146, the inner sides of the four groups of moving rod sliding groove rods 2146 are slidably connected with moving rods 2147, the sides, away from the sliding groove plate bodies 2141, of the four groups of moving rods 2147 are fixedly connected with line limiting clamp plates 2149, the inner sides of the four groups of moving rods 2147 are fixedly connected with racks 2148, the inner walls of the two groups of gear rotating rod connecting blocks 2142 are fixedly connected with gear rotating rods 2143, the top and bottom ends of the two groups of gear rotating rods 2143 are fixedly connected with gears 2144, the gears 2144, fixed to the inner sides of the two groups of gear rotating rods 2143, are engaged with the racks 2148, the two fixing clamps 22 each comprise two sliding rod push-pull plates 221, the front sides of the two groups of sliding rod push-pull plates 221 are rotatably connected to the top and bottom of the rear sides of the two control rods 2110, the outer sides of the two groups of sliding rod push-pull plates 221 are fixedly connected with sliding rods 222, the sides, close to the sliding rods 222, of the front sides of the two groups of sliding rod push-pull plates 221 are fixedly connected with second connecting plate clamp plates 226, the rear sides of the two groups of sliding rods 222 are slidably connected to the front sides of the sliding groove plate bodies 2141, the front sides of the two groups of sliding rods 222 are fixedly connected with second racks 223, the two groups of second racks 223 are engaged with the gears 2144, fixed to the sides, close to the sliding groove plate bodies 2141, of the two groups of gear rotating rod connecting blocks 2143, the sides, away from the sliding rod push-pull plates 221, of the inner sides of the two groups of sliding rods 222 are fixedly connected with connecting plate clamp plates 224, the front sides of the inner sides of the two groups of connecting plate clamp plates 224 and the two groups of second connecting plate clamp plates 226 are fixedly connected with limiting blocks 225;

[0048] When the line arrangement and through the beam mechanism 35 beam line complete and electrolytic steel plate 4 and electrolytic steel plate connecting mechanism 3 front side connection fixed, staff can help, for example, small crane equipment or other tools for operation, electrolytic steel plate 4 together with electrolytic steel plate connecting mechanism 3 close to the fixed mechanism 2 fixed on the frame body 1 front side, the convex plate 33 outside two sets of convex plate limiting groove 34 and U-shaped connecting plate 31 outside two sets of limiting groove 32 respectively with two sets of connecting plate clamp plate 224 and two sets of second connecting plate clamp plate 226 inside alignment, then start double shaft motor 216, double shaft motor 216 start transmission both ends of the tapered teeth 217 rotation and engage second tapered teeth 218, second tapered teeth 218 rotation thus drive control rod rotating rod 219 its front end control rod 2110, two control rod 2110 rotation thus drive the bottom of both sides of the slide rod push-pull plate 221 to the inside slide, thus drive two sets of slide rod 222 to the inside slide, through two sets of second connecting plate clamp plate 226 clamping both sides of the convex plate 33 and through its inside limiting block 225 card into the convex plate limiting groove 34 inner wall and through two sets of connecting plate clamp plate 224 to the inside and clamp U-shaped connecting plate 31 outer wall both sides and through its inside limiting block 225 card into the two sets of limiting groove 32 inside wall of U-shaped connecting plate 31 set, thus fixed on the electrolytic steel plate connecting mechanism 3 that has arranged line and fixed electrolytic steel plate 4, through this way, can ensure that the electrolytic steel plate connecting mechanism 3 and frame body 1 realize firm connection, thus guarantee the stability and safety of the operating room wall installation structure;

[0049] In addition, when two sets of slide rod 222 move to the inside, its front side second rack 223 and gear rotating rod 2143 close to the gear 2144 fixed at one end of the slide groove plate main body 2141 meshing, make gear rotating rod 2143 rotation, in turn through the gear 2144 at the other end of the gear rotating rod 2143 and the meshing relationship of rack 2148, make the moving rod 2147 along the moving rod sliding groove rod 2146 of slide groove plate 214, the movement of moving rod 2147 drive line limiting clamp plate 2149, thus realize further fixed and limited to line, the movement of line limiting clamp plate 2149 ensures the stable fixation of line on electrolytic steel plate connecting mechanism 3, prevent line loose or fall off due to vibration or other external force during use in operating room.

[0050] In addition, the present application also relates to a kind of operating room wall installation structure and method, comprising the following steps:

[0051] Step one: prepare the materials and tools needed for operating room wall installation, including electrolytic steel plate 4, electrolytic steel plate connecting mechanism 3, frame body 1, fixed mechanism 2;

[0052] Step two: install frame body 1 in the predetermined position of operating room wall, and ensure its firm and stable;

[0053] Step three: Install the fixing mechanism 2 on the front side of the frame 1, and prepare for the subsequent installation of the electrolytic steel plate connecting mechanism 3;

[0054] Step four: Connect the electrolytic steel plate 4 with the electrolytic steel plate connecting mechanism 3, ensure the connection is firm and reliable, and arrange the required lines in the inner wall of the wire bundling mechanism 35 while installing the electrolytic steel plate 4 and the electrolytic steel plate connecting mechanism 3;

[0055] Step five: Move the electrolytic steel plate 4 and the electrolytic steel plate connecting mechanism 3 that have been connected together to the fixing mechanism 2 fixed on the front side of the frame 1;

[0056] Step six: Start the double-shaft motor 216 to drive the rotation of the control rod rotating rod 219 and the control rod 2110, and then make the sliding rod push-pull plate 221 slide inward, driving the sliding rod 222 to slide inward;

[0057] Step seven: Through the inward sliding of the sliding rod 222, the second connecting plate clamp plate 226 clamps the two sides of the convex plate 33 and is clamped into the inner wall of the convex plate limiting groove 34 through the limiting block 225, and at the same time, the connecting plate clamp plate 224 clamps the outer wall of the two sides of the U-shaped connecting plate 31 and is clamped into the inner wall of the two groups of limiting grooves 32 opened in the U-shaped connecting plate 31 through the limiting block 225, thereby realizing the fixation of the electrolytic steel plate connecting mechanism 3;

[0058] Step eight: While the sliding rod 222 slides inward, the second rack 223 meshes with the gear 2144 fixed on one end of the sliding groove plate body 2141 of the gear rotating rod 2143, making the gear rotating rod 2143 rotate, and then through the meshing relationship between the gear 2144 at the other end of the gear rotating rod 2143 and the rack 2148, the moving rod 2147 slides along the moving rod sliding groove rod 2146 of the sliding groove plate 214, the sliding of the moving rod 2147 drives the movement of the wire limiting clamp plate 2149, thereby realizing the further fixation and limiting of the wire;

[0059] Step nine: After completing all the installation steps, check the stability and safety of the entire operating room wall installation structure to ensure that there is no loosening or falling phenomenon, so as to ensure the normal operation and safe use of the operating room.

[0060] Working principle: when the electrolytic steel plate 4 needs to be installed to the operating room wall, first, the frame body 1 is installed according to the structure of the operating room wall, then the electrolytic steel plate 4 is fixed to the front side of the U-shaped connecting plate 31, at this time the electrolytic steel plate 4 and the electrolytic steel plate connecting mechanism 3 are not installed with the operating room wall, then the staff arranges the lines through the multiple line binding mechanisms 35 arranged on the rear side of the U-shaped connecting plate 31, the multiple bundles of lines pass through the inner wall of the line pipe 353 and the inner wall of the line binding pipe shell 352, when the lines pass through the inner wall of the line binding mechanism connecting block 351 and are arranged, start the bidirectional hydraulic rod 3512, make the push-pull plate 3511 move inward, then push the push-pull rotating rod 359 to rotate, along with the rotation of the push-pull rotating rod 359, the push-pull sliding block 357 slides along the inner wall of the sliding groove block 356, finally the semicircular line binding clamp 358 clamps the lines, in this way, it can ensure that the lines are neatly arranged in the line pipe 353, avoid the lines being exposed in disorder, thereby improving the neatness of line arrangement;

[0061] When the line arrangement and the front side connection and fixation of the electrolytic steel plate 4 and the electrolytic steel plate connecting mechanism 3 through the bundling mechanism 35 are completed, the staff can operate by means of, for example, small crane equipment or other tools to move the electrolytic steel plate 4 together with the electrolytic steel plate connecting mechanism 3 to the fixed mechanism 2 fixed on the front side of the frame whole 1, align the two sets of male plate limiting grooves 34 on the outer side of the male plate 33 with the two sets of limiting grooves 32 on the outer side of the U-shaped connecting plate 31 respectively with the inner side of the two sets of connecting plate clamping plates 224 and the two sets of second connecting plate clamping plates 226, and then start the double-shaft motor 216, after the double-shaft motor 216 is started, the two ends of the conical teeth 217 are driven to rotate and engage the second conical teeth 218, the second conical teeth 218 rotate to drive the control rod rotating rod 219 to rotate the control rod 2110 at the front end, the two control rods 2110 rotate to drive the slide rod push-pull plate 221 on the two sides of the bottom to slide inward, thereby driving the two sets of slide rods 222 to slide inward, clamping the two sides of the male plate 33 through the two sets of second connecting plate clamping plates 226 and clamping the outer wall of the U-shaped connecting plate 31 through the two sets of connecting plate clamping plates 224 and the limiting blocks 225 on the inner side thereof, and clamping the inner wall of the two sets of limiting grooves 32 of the U-shaped connecting plate 31 through the limiting blocks 225 on the inner side thereof, thereby fixing the electrolytic steel plate connecting mechanism 3 which has arranged the line and fixed the electrolytic steel plate 4, in this way, it can ensure that the electrolytic steel plate connecting mechanism 3 and the frame whole 1 are firmly connected, thereby ensuring the stability and safety of the entire operating room wall mounting structure, in addition, when the two sets of slide rods 222 move inward, the second rack 223 at the front side thereof engages with the gear 2144 fixed at one end of the slide groove plate main body 2141 through the gear rotating rod 2143, so that the gear rotating rod 2143 rotates, and then through the engagement relationship between the gear 2144 at the other end of the gear rotating rod 2143 and the rack 2148, the moving rod 2147 slides along the moving rod sliding groove rod 2146 of the slide groove plate 214, the sliding of the moving rod 2147 drives the line limiting clamping plate 2149 to move, thereby realizing further fixation and limiting of the line, the movement of the line limiting clamping plate 2149 ensures the stable fixation of the line on the electrolytic steel plate connecting mechanism 3, preventing the line from loosening or falling off due to vibration or other external forces during use in the operating room.

[0062] It is apparent for those skilled in the art that the present application is not limited to the details of the above-described exemplary embodiments, but can be implemented in other concrete forms without departing from the spirit or essential characteristics of the present application. Therefore, the embodiments should be considered in all aspects as illustrative and not restrictive, the scope of the present application being defined by the appended claims rather than the above description, and all changes falling within the meaning and range of equivalency of the claims are intended to be embraced therein. Any reference signs in the claims should not be construed as limiting the claims to the figures in which the reference signs are used.

Claims

1. An operating room wall mounting structure, characterized in that: The frame includes an overall frame (1), and a plurality of fixing mechanisms (2) are fixedly connected to the front rectangular array of the overall frame (1). Electrolytic steel plate connecting mechanisms (3) are movably connected to the front of the plurality of fixing mechanisms (2), and electrolytic steel plates (4) are fixedly connected to the front of the plurality of electrolytic steel plate connecting mechanisms (3). The electrolytic steel plate connecting mechanism (3) includes a U-shaped connecting plate (31), a convex plate (33) is fixedly connected to the middle of the rear side of the U-shaped connecting plate (31), and limit grooves (32) are opened on the top and bottom of the left and right sides of the U-shaped connecting plate (31). Convex plate limit grooves (34) are fixedly connected to the rear side of the top and bottom of the left and right sides of the convex plate (33). A wire harness mechanism (35) is fixedly connected to the top and bottom of the left and right sides of the U-shaped connecting plate (31) away from the convex plate (33). The wire harnessing mechanism (35) includes a wire harnessing mechanism connecting block (351), a wire harness tube shell (352) is fixedly connected to the rear side of the wire harnessing mechanism connecting block (351), a connecting plate (354) is fixedly connected to the top and bottom of the inner wall of the wire harness tube shell (352), a hinge groove (355) is opened on both sides of the outer wall of the two connecting plates (354), a wire guide tube (353) is fixedly connected to the opposite side of the two connecting plates (354), and a sliding block (356) is fixedly connected to both sides of the opposite side of the two connecting plates (354). The middle part of the wire guide tube (353) and the two connecting plates (354) are all hollowed out. The inner walls of the upper and lower sets of sliding blocks (356) are slidably connected with push-pull sliders (357). The inner sides of the two sets of push-pull sliders (357) are fixedly connected with semi-circular wire clamps (358). The outer walls of the two sets of push-pull sliders (357) are rotatably connected with push-pull rotating rods (359). The side of the two sets of push-pull rotating rods (359) away from the push-pull sliders (357) is rotatably connected with rotating rods (3510). The outer walls of the two sets of rotating rods (3510) away from the push-pull rotating rods (359) are fixedly connected with push-pull plates (3511). The middle part of the outer walls of the two sets of rotating rods (3510) is rotatably connected to the inner side of the hinge groove (355). The front and rear sides of the inner sides of the two push-pull plates (3511) are respectively fixedly connected with bidirectional hydraulic rods (3512).

2. The operating room wall mounting structure according to claim 1, characterized in that: The fixing mechanism (2) includes a control plate (21), and the top and bottom of the front side of the control plate (21) are respectively movably connected with fixing clips (22).

3. The operating room wall mounting structure according to claim 2, characterized in that: The control board (21) includes a control board body (211). A transmission groove (212) is provided in the middle of the front side of the control board body (211). Rotary rod positioning blocks (213) are fixedly connected to the top and bottom of the middle of the front side of the control board body (211). Sliding plates (214) are fixedly connected to the left and right sides inside the two rotary rod positioning blocks (213) and the left and right sides outside the two rotary rod positioning blocks (213) on the front side of the control board body (211).

4. The operating room wall mounting structure according to claim 3, characterized in that: A motor placement chamber (215) is fixedly connected to the middle of the inner wall of the transmission groove (212). A dual-axis motor (216) is fixedly connected to the inner wall of the motor placement chamber (215). A conical tooth (217) is fixedly connected to the top and bottom of the output end of the dual-axis motor (216). A second conical tooth (218) is threadedly connected to the outer wall of each of the two conical teeth (217). A control rod (219) is fixedly connected to the inner wall of each of the two second conical teeth (218). The front ends of each of the two control rods (219) extend to the front side of the rod positioning block (213) and are fixedly connected to a control rod (2110).

5. The operating room wall mounting structure according to claim 4, characterized in that: Both sets of upper and lower slide plates (214) include slide plate bodies (2141). Gear rod connecting blocks (2142) are fixedly connected to the outer sides of both sets of slide plate bodies (2141). Moving rod slide bars (2146) are fixedly connected to the left and right sides of the two sets of gear rod connecting blocks (2142) away from the slide plate body (2141). Moving rods (2147) are slidably connected to the inner sides of the four sets of moving rod slide bars (2146). Line limiting clamps (2149) are fixedly connected to the side of the four sets of moving rods (2147) away from the slide plate body (2141). Racks (2148) are fixedly connected to the inner side of the four sets of moving rods (2147).

6. The operating room wall mounting structure according to claim 5, characterized in that: The inner walls of both sets of gear rod connecting blocks (2142) are fixedly connected with gear rods (2143), and the top and bottom ends of both sets of gear rods (2143) are fixedly connected with gears (2144). The gears (2144) fixed at the inner end of the two sets of gear rods (2143) near the moving rod slide bar (2146) mesh with the rack (2148).

7. The operating room wall mounting structure according to claim 6, characterized in that: Both of the fixing clamps (22) include two sliding rod push-pull plates (221). The front sides of the two sets of sliding rod push-pull plates (221) are rotatably connected to the top and bottom of the rear sides of the two control rods (2110). Sliding rods (222) are fixedly connected to the outer sides of the two sets of sliding rod push-pull plates (221). A second connecting plate clamp (226) is fixedly connected to the front side of the two sets of sliding rod push-pull plates (221) near the sliding rods (222). The rear sides of the two sets of sliding rods (222) are slidably connected to the front of the slide plate body (2141). On the side, the front sides of both sets of slide rods (222) are fixedly connected with second racks (223), and the two sets of second racks (223) mesh with gears (2144) fixed at the end of the gear rod (2143) near the slide plate body (2141). The inner side of both sets of slide rods (222) away from the slide rod push plate (221) is fixedly connected with connecting plate clamps (224), and the front sides of the inner sides of the two sets of connecting plate clamps (224) and the two sets of second connecting plate clamps (226) are fixedly connected with limit blocks (225).

8. A method for installing an operating room wall panel, utilizing the operating room wall panel installation structure described in claim 7, characterized in that: Includes the following steps: Step 1: Prepare the materials and tools required for the installation of the operating room wall, including electrolytic steel plate (4), electrolytic steel plate connecting mechanism (3), frame assembly (1), and fixing mechanism (2). Step 2: Install the entire frame (1) at the predetermined position on the operating room wall and ensure that it is firm and stable; Step 3: Install the fixing mechanism (2) on the front side of the frame (1) to prepare for the subsequent installation of the electrolytic steel plate connecting mechanism (3); Step 4: Connect the electrolytic steel plate (4) to the electrolytic steel plate connecting mechanism (3) to ensure a firm and reliable connection. While installing the electrolytic steel plate (4) and the electrolytic steel plate connecting mechanism (3), arrange the required wiring in the inner wall of the wiring mechanism (35). Step 5: Move the already connected electrolytic steel plate (4) and the electrolytic steel plate connecting mechanism (3) together toward the fixing mechanism (2) fixed on the front side of the frame (1); Step 6: Start the dual-axis motor (216) to drive the rotation of the control lever (219) and the control lever (2110), thereby causing the slide bar push plate (221) to slide inward, and driving the slide bar (222) to slide inward; Step 7: By sliding the inner side of the slide bar (222), the second connecting plate clamp (226) clamps the two sides of the convex plate (33) and is inserted into the inner wall of the convex plate limiting groove (34) by the limiting block (225). At the same time, the connecting plate clamp (224) clamps the two sides of the outer wall of the U-shaped connecting plate (31) and is inserted into the inner wall of the two sets of limiting grooves (32) opened in the U-shaped connecting plate (31) by the limiting block (225), thereby fixing the electrolytic steel plate connecting mechanism (3). Step 8: While the slide bar (222) slides inward, the second rack (223) meshes with the gear (2144) fixed at one end of the gear rod (2143) near the main body (2141) of the slide plate, causing the gear rod (2143) to rotate. Then, through the meshing relationship between the gear (2144) and the rack (2148) at the other end of the gear rod (2143), the moving rod (2147) slides along the moving rod slide bar (2146) of the slide plate (214). The sliding of the moving rod (2147) drives the line limiting clamp (2149) to move, thereby achieving further fixation and limiting of the line. Step Nine: After completing all installation steps, check the stability and safety of the entire operating room wall installation structure to ensure there is no loosening or detachment, so as to guarantee the normal operation and safe use of the operating room.

Citation Information

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