Support
By designing a bracket that includes guide rail and slide rail modules, multi-directional position adjustment of external devices for anesthesia machines has been achieved, solving the problems of complex structure, high cost and insufficient versatility of existing brackets, and improving the ease of operation and applicability.
Patent Information
- Application Number
- CN202520120936.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-16
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-01-16
AI Technical Summary
Existing anesthesia machine external device brackets have complex and costly structures. They are fixed in place, making them inconvenient to operate. They also lack versatility, making it difficult to adapt to the needs of different scenarios. Furthermore, they are difficult to disassemble and install, resulting in insufficient versatility and an inability to meet the needs of different scenarios.
A bracket was designed that includes a guide rail, a slide rail module, and a hanger. The vertical and horizontal positions of the external equipment can be adjusted by the sliding engagement of the slide rail module and the guide rail. It is equipped with a dust cover and positioning connectors to protect the slide rail and the slider, simplifying the structure and improving stability.
It enables multi-directional position adjustment of external devices, simplifies operation, reduces costs, and improves the versatility and stability of the bracket, making it suitable for various models of auxiliary equipment and different usage scenarios.
Smart Images

Figure CN223768593U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of medical auxiliary equipment technology, and in particular to a bracket for adjusting the position of an external device attached to an anesthesia machine. Background Technology
[0002] Anesthesia machine mount brackets are auxiliary devices used to support, fix, and move anesthesia machines in operating rooms, intensive care units (ICUs), or other medical settings. They aim to ensure the stable and safe operation of anesthesia machine auxiliary equipment while facilitating operation and adjustment by medical personnel. In addition to providing basic support, anesthesia machine mount brackets typically include trays, hooks, cable management channels, and other components or structures to expand functionality. This facilitates the placement of medications and auxiliary equipment (such as monitors and infusion pumps) and the organization of cables, thereby optimizing operating room layout, reducing equipment footprint, and providing more operating space to improve work efficiency. However, existing anesthesia machine mount brackets in the industry are currently complex in structure and expensive. Once the auxiliary equipment is mounted on the bracket, it remains stationary, hindering operation. These brackets can only be used with specific models of auxiliary equipment, and their inconvenience in disassembling and installing them for different scenarios results in insufficient versatility. Summary of the Invention
[0003] Therefore, it is necessary to provide a bracket for adjusting the position of external anesthesia machine devices that is simple in structure, low in cost, and highly versatile, in order to address the above-mentioned shortcomings.
[0004] A bracket for adjusting the position of an anesthesia machine's external attachment device is characterized by comprising a guide rail fixed to a main device, a slide rail module slidably connected to the guide rail, and a hanger fixedly connected to the slide rail module. The slide rail module includes a slide rail bracket slidably mounted on the guide rail and capable of rising and falling relative to the guide rail, and a horizontal sliding component mounted on the slide rail bracket and capable of moving horizontally. The hanger is fixedly connected to the horizontal sliding component and is used to mount the external attachment device. The hanger can drive the external attachment device to move horizontally when subjected to external tension, or drive the external attachment device to rise and fall vertically along the slide rail bracket when subjected to external tension.
[0005] In one embodiment, the horizontal sliding assembly includes a slide rail fixed to a slide rail bracket and extending along the length of the slide rail bracket, and a slider slidably disposed on the slide rail. The slider is fixedly connected to the bracket, and the bracket moves horizontally along the slide rail via the slider to adjust the horizontal position of the external device.
[0006] In one embodiment, the bracket further includes a dust cover that covers the slide rail and the slider and is fixedly connected to the slide rail bracket, and a positioning connector that connects the hanger and the slider. The hanger is located outside the dust cover and drives the external device to move along the length direction of the slide rail when subjected to external tension.
[0007] In one embodiment, the dust cover is a corrugated pipe, the positioning connector passes through the bracket and the dust cover and is inserted into the slider, the positioning connector is fixedly connected to the bracket, the dust cover and the slider, and the dust cover deforms when the bracket moves along the length of the slide rail.
[0008] In one embodiment, the dust cover is a rigid tube with a guide hole extending along the length of the slide rail. The positioning connector passes through the bracket and the guide hole and is inserted into the slider. The positioning connector can move along the guide hole under the drive of the bracket.
[0009] In one embodiment, the positioning connector includes a stud that passes through the hanger and dust cover and is inserted into the slider.
[0010] In one embodiment, the dust cover is a rigid tube, and the positioning connector includes a first magnetic component located inside the dust cover and fixed on the slider, and a second magnetic component located outside the dust cover and fixed on the hanger, wherein the first magnetic component and the second magnetic component are magnetically connected.
[0011] In one embodiment, the slide rail bracket includes a base, two baffles disposed opposite to each other on both sides of the base and fixedly connected to the base, a guide rail positioning seat fixed to the outer surface of one baffle and slidably engaged with the guide rail, a dust cover disposed between the two baffles and covering the slide rail and the slider, one end of the dust cover being fixedly connected to one baffle and the other end of the dust cover being fixedly connected to the other baffle; the cross-section of the guide rail positioning seat is a T-shaped structure, and a T-shaped groove is provided on the guide rail for slidably engaging with the guide rail positioning seat.
[0012] In one embodiment, the bracket further includes two mounting blocks disposed opposite to each other at both ends of the slide rail and fixedly connected to the upper surface of the base, wherein the slide rail is straddled on the two mounting blocks and fixedly connected to the mounting blocks.
[0013] In one embodiment, the mounting block has a T-shaped structure, including a horizontal block and a vertical block fixedly connected to the middle of the horizontal block and perpendicular to the horizontal block. The horizontal block is connected to a base screw, and the vertical block is connected to a slide rail screw.
[0014] In one embodiment, the guide rail positioning seat is fixed to the guide rail by removable mounting screws.
[0015] The bracket implementing this utility model has a simple structure, is easy to assemble, and has a low cost. Through the sliding cooperation between the slide rail bracket and the guide rail, the height of the external equipment in the vertical direction can be adjusted. By setting a horizontal sliding component, the position of the external equipment in the horizontal direction can be adjusted, thereby realizing multi-directional position adjustment of the external equipment, which is conducive to the operation of auxiliary equipment. It is applicable to various models of auxiliary equipment, and its disassembly and assembly are simple. It can be used in a variety of different application scenarios, thus improving the versatility of the bracket. Attached Figure Description
[0016] Figure 1 This is a structural diagram of the bracket in use in one embodiment of the present invention;
[0017] Figure 2 This is a structural schematic diagram of the bracket in another state during use, according to one embodiment of the present invention;
[0018] Figure 3 This is a schematic diagram of the support structure in one embodiment of the present invention;
[0019] Figure 4 This is an exploded view of the bracket in one embodiment of the present invention;
[0020] Figure 5 This is a schematic diagram of the support structure in another embodiment of the present invention;
[0021] Figure 6 This is a schematic diagram of the support structure in another embodiment of the present invention. Detailed Implementation
[0022] To make the above-mentioned objects, features, and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a full understanding of this utility model. However, this utility model can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this utility model. Therefore, this utility model is not limited to the specific embodiments disclosed below.
[0023] Please combine Figure 1-4This utility model discloses a bracket 10 with simple structure, low cost, low failure rate, and strong versatility. This bracket is used to adjust the position of external devices attached to an anesthesia machine. The bracket includes a guide rail 20 fixed to the main equipment, a slide rail module slidably connected to the guide rail 20, and a hanger 500 fixedly connected to the slide rail module. The slide rail module includes a slide rail bracket 100 slidably mounted on the guide rail 20 and movable relative to the guide rail 20, and a horizontal sliding component mounted on the slide rail bracket 100 and movable horizontally. The hanger 500 is fixedly connected to the horizontal sliding component and is used to mount the external device 30. The hanger 500 can move the external device 30 horizontally when subjected to external tension, or move the external device 30 vertically along the slide rail bracket 100 when subjected to external tension. The horizontal sliding component includes a slide rail 200 fixed to the slide rail bracket 100 and extending along the length of the slide rail bracket 100, and a slider 300 slidably mounted on the slide rail 200. The slider 300 is fixedly connected to the hanger 500. The hanger 500 moves horizontally along the slide rail 200 via the slider 300 to adjust the horizontal position of the external device 30. The guide rail 20 can be a guide rail built into the anesthesia machine (main equipment) itself, or a guide rail that can be detachably installed on the main equipment. It is used to suspend auxiliary equipment (external device 30). For example, such guide rails are often set on the left and right sides of the lower part of the anesthesia machine body and the left and right sides of the upper part of the machine body as structures for hanging auxiliary equipment. The external device 30 fixed on the hanger 500 includes various auxiliary equipment such as defibrillators, medical humidifiers, and negative pressure suction devices. In this solution, the vertical position of the external device 30 can be adjusted by the sliding cooperation between the slide rail bracket 100 and the guide rail 20. By setting a horizontal sliding component, the horizontal position of the external device 30 can be adjusted, thereby realizing the position adjustment of the external device 30 and facilitating operation by medical staff. In addition, after the slide rail bracket 100 is adjusted to the designated position along the guide rail 20, the bracket 500 can be limited by a fixing mechanism such as screws or pins to ensure the stability of the external equipment 30 installation.
[0024] Furthermore, the bracket also includes a dust cover 400 that covers the slide rail 200 and the slider 300 and is fixedly connected to the slide rail bracket 100, and a positioning connector 600 that connects the hanger 500 and the slider 300. The hanger 500 is located outside the dust cover 400 and moves the external device 30 along the length of the slide rail 200 when subjected to external tension. In this embodiment, the outside of the dust cover 400 refers to the part outside the area enclosed by the dust cover 400. By covering the slide rail 200 and the slider 300 with the dust cover 400, dust protection can be achieved for the slide rail 200 and the slider 300, avoiding the problem of difficulty in adjusting the position of the external device 30 due to external debris adhering to the slide rail 200, ensuring the normal sliding of the slider 300, and preventing bracket failure.
[0025] The slide rail bracket 100 supports the hanger 500 and the external device 30, and drives the hanger 500 and the external device 30 to rise and fall relative to the guide rail 20. In one embodiment, the slide rail bracket 100 includes a base 110, two baffles 120 disposed opposite to each other on both sides of the base 110 and fixedly connected to the base 110, and a guide rail positioning seat 130 fixed to the outer surface of one baffle 120 and slidably engaged with the guide rail 20. The two baffles 120 protrude from the upper surface of the base 110 to form a dust cover mounting portion. The dust cover 400 is disposed between the two baffles 120 and covers the slide rail 200 and the slider 300. One end of the dust cover 400 is fixedly connected to one baffle 120, and the other end of the dust cover 400 is fixedly connected to the other baffle 120. The guide rail positioning seat 130 has a T-shaped cross-section. A T-shaped groove 201 is provided on the guide rail 20 to slide and engage with the guide rail positioning seat 130. Thus, through the engagement of the guide rail positioning seat 130 and the T-shaped groove 201 on the guide rail 20, the guide rail positioning seat 130 can slide along the guide rail 20 while its sliding trajectory is limited, preventing the slide rail bracket 100 from wobbling during lifting and lowering, and preventing the guide rail positioning seat 130 from falling off the guide rail 20. Furthermore, the guide rail positioning seat 130 is fixed to the guide rail 20 by detachable mounting screws. Specifically, the guide rail 20 has several first threaded holes along its length, and the guide rail positioning seat 130 has second threaded holes. When the height of the slide rail bracket 100 is adjusted to the correct position, the mounting screws are sequentially passed through the second threaded holes and the corresponding first threaded holes and locked, thus fixing the slide rail bracket 100 to the guide rail 20 and limiting the installation height of the external equipment 30.
[0026] The dust cover 400 is detachably fixed to the slide rail bracket 100. In one embodiment, the dust cover 400 is screwed to the baffle 120. In another embodiment, the dust cover 400 has slots at both ends that penetrate the lower surface of the dust cover 400. By inserting the baffle 120 into the slots of the dust cover 400, the dust cover 400 and the baffle 120 can be connected in a limiting manner.
[0027] The bracket 10 also includes two mounting blocks 700 that are disposed opposite to each other at both ends of the slide rail 200 and fixedly connected to the upper surface of the base 110. The slide rail 200 is straddled on the two mounting blocks 700 and fixedly connected to the mounting blocks 700. Further, the mounting blocks 700 have a T-shaped structure, including a horizontal block and a vertical block fixedly connected to the middle of the horizontal block and perpendicular to the horizontal block. The horizontal block is screwed to the base 110, and the vertical block is screwed to the slide rail 200. Preferably, the upper part of the vertical block includes two spring pieces disposed opposite to each other. The inner side of the spring pieces (the side where the two spring pieces are close to each other) is provided with an arc groove. Thus, the arc grooves of the two spring pieces together form a circular clamping area. By inserting the slide rail 200 into this circular clamping area and tightening the locking screw located above the slide rail 200 and passing through the two spring pieces, the two spring pieces are brought close to each other, thereby clamping the slide rail 200 together and achieving a fixed connection between the slide rail 200 and the mounting blocks 700. It should be noted that, in order to improve the stability of the external device 30 moving along the length of the slide rail 200, two slide rails 200 are arranged in parallel on the base 110. Correspondingly, a slider 300 is slidably arranged on each slide rail 200. The bracket 500 is connected to the two sliders 300 one by one through two positioning connectors 600, so as to reduce the load on a single slide rail 200 and the shaking of the external device 30 during the sliding process, thereby improving the stability of the movement of the external device 30.
[0028] In this design, the hanger 500 is connected to the slider 300 in several alternative ways. The following describes the various connection methods between the hanger 500 and the slider 300. Please refer to... Figure 3 and Figure 4 In one embodiment, the dust cover 400 is a corrugated pipe, and the positioning connector 600 passes through the bracket 500 and the dust cover 400 and is inserted into the slider 300. The positioning connector 600 is fixedly connected to the bracket 500, the dust cover 400 and the slider 300. The dust cover 400 deforms when the bracket 500 moves along the length of the slide rail 200. The positioning connector 600 is used to limit the movement between the bracket 500, the dust cover 400 and the slider 300. Specifically, when the hanger 500 is subjected to an external pulling force along the length of the slide rail 200, the hanger 500 will drive the slider 300 to move along the length of the slide rail 200 via the positioning connector 600, so as to guide and limit the hanger 500. During this process, under the action of the hanger 500, the positioning connector 600 drives the part of the dust cover 400 that cooperates with the positioning connector 600 to move, so that the dust cover 400 deforms. While realizing the synchronous movement of the hanger 500 and the slider 300 and limiting the hanger 500, the dust cover 400 continuously covers the slide rail 200 and the slider 300, so as to realize the dust protection of the slide rail 200 and the slider 300.
[0029] Please see Figure 5In another embodiment, the dust cover 400 is a rigid tube with a guide hole 410 extending along the length of the slide rail 200. The positioning connector 600 passes through the hanger 500 and the guide hole 410 and is inserted into the slider 300. The positioning connector 600 can move along the guide hole 410 under the drive of the hanger 500. Thus, when the hanger 500 is subjected to an external pulling force along the length of the slide rail 200, the hanger 500 drives the slider 300 to move along the length of the slide rail 200 via the positioning connector 600. During this process, the positioning connector 600 moves within the guide hole 410 along the length of the guide hole 410 under the drive of the hanger 500, so as to continuously connect the hanger 500 and the slider 300, realize the synchronous movement of the hanger 500 and the slider 300, limit the hanger 500, and at the same time ensure that the dust cover 400 is continuously covered on the slide rail 200 and the slider 300, thereby protecting the slide rail 200 and the slider 300.
[0030] In the two embodiments described above, the positioning connector 600 includes a stud 610 that passes through the hanger 500 and the dust cover 400 and is inserted into the slider 300. When the dust cover 400 is a corrugated pipe, the positioning connector 600 also includes a handle 620 fixed to the top of the stud 610. By rotating the handle 620, the stud 610 is tightened, thereby fixing the hanger 500, the dust cover 400, and the slider 300 together, thus achieving the connection between the hanger 500 and the slider 300. When the dust cover 400 is a rigid pipe and a guide hole 410 is provided on the dust cover 400, the stud is used as a connecting post between the hanger 500 and the slider 300.
[0031] Please see Figure 6 In another embodiment, the dust cover 400 is a rigid tube, and the positioning connector 600 includes a first magnetic component (not shown) located inside the dust cover 400 and fixed to the slider 300, and a second magnetic component (not shown) located outside the dust cover 400 and fixed to the hanger 500. The first magnetic component and the second magnetic component are magnetically connected. Thus, there is no need to create corresponding holes in the dust cover 400. The dust cover 400 can continuously protect the slide rail 200 and the slider 300 from dust. When the hanger 500 is subjected to an external pulling force along the length of the slide rail 200, the hanger 500 moves along the length of the slide rail 200. With the cooperation of the first and second magnetic components, the slider 300 also moves synchronously along the length of the slide rail 200. The magnetic attraction between the first and second magnetic components continuously connects the hanger 500 and the slider 300, achieving synchronous movement of the hanger 500 and the slider 300 and limiting the position of the hanger 500.
[0032] In one embodiment, the bracket 500 has an n-shaped structure, an inverted L-shaped structure, or a flat plate structure. Preferably, in this embodiment, the bracket 500 has an n-shaped structure, including two vertical parts arranged opposite each other and a horizontal part located between the two vertical parts and fixedly connected to the top of the two vertical parts. The side of the horizontal part is provided with at least one mounting slot 510 for inserting the external device 30, and the mounting slot 510 is also provided with a threaded hole 520 so as to lock the external device 30 onto the bracket 500 by screws.
[0033] The bracket 10 implementing this utility model has a simple structure, is easy to assemble, and has a low cost. Through the sliding cooperation between the slide rail bracket 100 and the guide rail 20, the height of the external device 30 in the vertical direction can be adjusted. By setting a horizontal sliding component, the position of the external device 30 in the horizontal direction can be adjusted, thereby realizing multi-directional position adjustment of the external device 30, which is conducive to the operation of auxiliary equipment and applicable to various models of auxiliary equipment. It is easy to assemble and disassemble and can be used in various different usage scenarios, thus improving the versatility of the bracket.
[0034] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0035] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A bracket for adjusting the position of an anesthesia machine add-on device, characterized in that, The device comprises a guide rail fixed on a main device, a slide rail module in sliding connection with the guide rail, and a hanger fixedly connected with the slide rail module, wherein the slide rail module comprises a slide rail support in sliding installation on the guide rail and capable of lifting relative to the guide rail, and a horizontal sliding assembly installed on the slide rail support and capable of moving in a horizontal direction, the hanger is fixedly connected with the horizontal sliding assembly and used for installing an external hanger device, and the hanger can drive the external hanger device to move in a horizontal direction when an external pulling force is applied, or drive the external hanger device to lift along with the slide rail support in a vertical direction when an external pulling force is applied.
2. The stent of claim 1, wherein The horizontal sliding assembly comprises a slide rail fixed on the slide rail support and extending along the length direction of the slide rail support, and a slide block in sliding arrangement on the slide rail, wherein the slide block is fixedly connected with the hanger, and the hanger moves in a horizontal direction on the slide rail through the slide block to adjust the position of the external hanger device in a horizontal direction.
3. The stent of claim 2, wherein, The hanger further comprises a dust cover covering the slide rail and the slide block and fixedly connected with the slide rail support, and a positioning connecting piece connecting the hanger and the slide block, wherein the hanger is located outside the dust cover and drives the external hanger device to move in the length direction of the slide rail when an external pulling force is applied.
4. The stent of claim 3, wherein, The dust cover is a bellows, the positioning connecting piece passes through the hanger and the dust cover and is inserted into the slide block, the positioning connecting piece is fixedly connected with the hanger, the dust cover and the slide block, and the dust cover deforms when the hanger moves in the length direction of the slide rail.
5. The stent defined in Claim 3, wherein, The dust cover is a rigid pipe, a guide hole extending in the length direction of the slide rail is formed on the rigid pipe, the positioning connecting piece passes through the hanger and the guide hole and is inserted into the slide block, and the positioning connecting piece can move along the guide hole under the driving of the hanger.
6. The stent defined in claims 4 or 5, wherein, The positioning connecting piece comprises a stud passing through the hanger and the dust cover and inserted into the slide block.
7. The stent defined in Claim 3, wherein, The dust cover is a rigid pipe, the positioning connecting piece comprises a first magnetic piece located inside the dust cover and fixed on the slide block, and a second magnetic piece located outside the dust cover and fixed on the hanger, and the first magnetic piece is in magnetic attraction connection with the second magnetic piece.
8. The stent defined in Claim 2, wherein, The slide rail support comprises a base, two baffle plates oppositely arranged on both sides of the base and fixedly connected with the base, and a guide rail positioning seat fixed on the outer side of one baffle plate and in sliding cooperation with the guide rail, wherein the dust cover is arranged between the two baffle plates and covers the slide rail and the slide block, one end of the dust cover is fixedly connected with one baffle plate, and the other end of the dust cover is fixedly connected with the other baffle plate; the guide rail positioning seat has a T-shaped structure in cross section, and a T-shaped sliding groove in sliding cooperation with the guide rail positioning seat is formed on the guide rail.
9. The stent defined in Claim 8, wherein, Two mounting blocks oppositely arranged on both ends of the slide rail and fixedly connected with the upper surface of the base are further included, and the slide rail is cross-mounted on the two mounting blocks and fixedly connected with the mounting blocks.
10. The stent of claim 9, wherein, The mounting block has a T-shaped structure, comprising a horizontal block and a vertical block fixedly connected with the middle part of the horizontal block and perpendicular to the horizontal block, the horizontal block is screw-connected with the base, and the vertical block is screw-connected with the slide rail. The mounting block has a T-shaped structure, comprising a horizontal block and a vertical block fixedly connected with the middle part of the horizontal block and perpendicular to the horizontal block, the horizontal block is screw-connected with the base, and the vertical block is screw-connected with the slide rail.