Instrument pipeline restraint device for intensive care unit

Through the constraint components and adjustment slot structure, the problem of chaotic pipeline fixation in the intensive care unit is solved, flexible classification and efficient management of pipelines are achieved, and operational efficiency and adjustment convenience are improved.

CN223366053UActive Publication Date: 2025-09-23WEST CHINA HOSPITAL SICHUAN UNIV
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Patent Information

Application Number
CN202422293619.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-09-23
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

The existing fixing methods of the pipelines in the ICU are chaotic, resulting in interlacing and entanglement, cumbersome operation, lack of flexibility and efficiency, and inconvenient height or level adjustment.

Method used

It adopts a constraint component and adjustment groove structure, including a wire hub, an adjustment drum, a connecting rod and an elastic component. The pipeline is fixed and released by adjusting the counterclockwise and clockwise rotation of the drum. Combined with the functions of the limit block and the elastic component, the convex wire trough and guide groove are used for classification guidance and support.

Benefits of technology

It realizes flexible classification management of pipelines, reduces interlacing and entanglement, improves operational efficiency, facilitates height and level adjustment, and improves nursing efficiency in the intensive care unit.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an intensive care unit instrument pipeline restraining device which comprises a plurality of restraining assemblies and an adjusting groove, the restraining assemblies are connected with the adjusting groove in a sliding mode through lifting rods, each restraining assembly comprises a wire collecting barrel and an adjusting rotary barrel, a plurality of wire grooves are formed in the outer wall of each wire collecting barrel, and each adjusting rotary barrel is connected to one end of the corresponding wire collecting barrel in a sleeved mode. A plurality of guide grooves corresponding to the wire grooves are formed in the adjusting rotary drum, the guide grooves penetrate through the side wall of the adjusting rotary drum to divide the adjusting rotary drum into a plurality of arc-shaped components, a center piece is arranged at the end, away from the wire collecting drum, of the adjusting rotary drum, and the arc-shaped components are connected with the center piece through connecting rods. According to the utility model, the plurality of wire ducts for fixing the pipelines are arranged, so that the pipelines can be classified and guided conveniently, and the pipelines can be quickly adjusted and refixed when being broken down or replaced; the pipeline can be fixed and unfixed by twisting the adjusting rotary drum, and meanwhile, the pipeline can be further limited under the action of cooperation of the limiting block and the elastic assembly.
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Description

Technical Field

[0001] The utility model relates to the technical field of medical auxiliary equipment, in particular to a pipeline restraint device for an instrument in a intensive care unit. Background Art

[0002] In modern medical intensive care units, various monitoring instruments and treatment devices are widely used to ensure accurate patient monitoring and timely treatment. These devices are typically equipped with multiple tubes and wires, such as blood lines, respiratory lines, electrical cables, and sensor cables. The proper placement and securing of these tubes and wires is crucial to the proper functioning of the equipment and patient safety.

[0003] Currently, the layout of tubing in intensive care units often relies on traditional fixing methods, such as straps, clips, or simple hooks. However, these traditional fixing methods are chaotically distributed, which can lead to tubing becoming tangled, entangled, or compressed during use. Furthermore, securing or unsecuring the tubing is cumbersome, resulting in inflexible and inefficient tubing management. Furthermore, traditional fixing methods make it difficult to adjust the height or level of the tubing, which in turn makes the layout and classification of the tubing inflexible. Utility Model Content

[0004] In order to solve the above technical problems, the utility model provides a monitoring room instrument pipeline restraint device.

[0005] In order to achieve the above-mentioned purpose, the technical solution adopted by the present utility model is as follows:

[0006] A intensive care unit instrument pipeline restraint device includes several restraint components and adjustment slots. The restraint components are slidably connected to the adjustment slots through lifting rods. The restraint components include a wire hub and an adjustment rotary cylinder. The outer wall of the wire hub is provided with multiple wire grooves parallel to the axis of the wire hub. The adjustment rotary cylinder is sleeved on one end of the wire hub. The adjustment rotary cylinder is provided with multiple guide grooves corresponding to the wire grooves. The guide grooves pass through the side walls of the adjustment rotary cylinder to separate the adjustment rotary cylinder into several arc-shaped parts. A center piece is provided at the end of the adjustment rotary cylinder away from the wire hub. The several arc-shaped parts are connected to the center piece through several connecting rods.

[0007] Furthermore, several connecting rods are connected to the right end face of the arc-shaped component, and the movable path of the connecting rods does not exceed the extension line of any wire trough. The multiple guide grooves correspond one-to-one with the multiple wire troughs. Under normal conditions, the pipeline is placed into the wire trough through the guide grooves. During this process, the connecting rods will not affect the placement of the pipeline. The adjustment drum is then rotated counterclockwise. During this process, any connecting rod moves between two adjacent wire troughs, so its rotation is not affected by the longer pipeline. After the adjustment drum is rotated, the arc-shaped component covers the upper end of the wire trough, thereby confining the pipeline within the wire trough.

[0008] Furthermore, a receiving groove is provided at the bottom of the left end of the arc-shaped component, into which a limit block and an elastic component are rotatably connected. One end of the limit block is rotatably connected to the receiving groove. When the limit block is compressed, the free end of the limit block compresses the elastic component, and the top of the limit block does not exceed the plane of the inner ring of the arc-shaped component.

[0009] Furthermore, one end of the elastic component is fixed within the receiving groove, and the free end of the stopper is movably mounted to the movable end of the elastic component. When the adjustment drum rotates counterclockwise, the receiving groove is positioned above the wire trough. When the pipeline is positioned within the wire trough, there is still space between the pipeline and the wire trough. At this point, the elastic component pushes the stopper outward from its compressed state, and the free end of the stopper abuts the pipeline within the wire trough, further squeezing and securing the pipeline.

[0010] Furthermore, the elastic component is disposed on a side close to the end face of the arc-shaped component. When the pipeline needs to be released or adjusted, the adjusting drum is rotated clockwise, and the outer wall of the hub presses against the limit block. During the continuous adjustment of the adjusting drum, the elastic component is gradually compressed until the limit block is completely inserted into the receiving groove.

[0011] Furthermore, the cross section of the cable trough is a convex-shaped structure. The convex-shaped cable trough can form multiple support points in the trough, fixing the pipeline on a larger contact area, thereby effectively reducing the movement and sliding of the pipeline in the cable hub.

[0012] Furthermore, the slot width of the wire trough is the same as the slot width of the guide groove. The slot width of the guide groove is the same as the wire trough, so that the pipeline can be smoothly guided by the guide groove and directly enter the wire trough without being stuck or difficult to insert due to width mismatch.

[0013] Furthermore, fixed hanging plates are provided at both ends of the adjustment slot, the slot opening of the adjustment slot is arranged upward, and a tightening component for tightening the lifting rod is provided on the adjustment slot. The fixed hanging plates can fix the adjustment slot at a specified position, such as a wall or instrument equipment, to ensure the stability of the entire device. The slot opening of the adjustment slot is arranged upward, which is helpful for installing and horizontally adjusting the lifting rod. The lifting rod slides freely and adjusts its height in the adjustment slot, making it convenient for the operator to adjust the position and length of the lifting rod when needed. The tightening component can achieve tightening and locking of the lifting rod through a mechanical structure to prevent it from accidentally sliding in the adjustment slot.

[0014] Compared with the prior art, the present invention has the following beneficial effects:

[0015] 1. The utility model provides multiple wire troughs for fixing pipelines, which facilitates the classification and guidance of pipelines, reduces the complexity of pipelines, and can be quickly adjusted and re-fixed when pipelines fail or are replaced, thereby improving the efficiency of medical care in the intensive care unit;

[0016] 2. The utility model can fix and release the pipeline by twisting the adjusting drum. At the same time, the pipeline can be further limited by the cooperation of the limit block and the elastic component, making the pipeline management flexible and efficient.

[0017] 3. The utility model facilitates the height or level adjustment of the pipeline, which makes the layout and classification adjustment of the pipeline more flexible and convenient. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a three-dimensional structural schematic diagram of the utility model;

[0019] Figure 2 This is a schematic diagram of the constraint component structure Figure 1 ;

[0020] Figure 3 This is a schematic diagram of the constraint component structure Figure 2 ;

[0021] Figure 4 is a planar cross-sectional view of the adjustment drum;

[0022] Figure identification: 1-adjusting slot, 2-lifting rod, 3-wire hub, 4-adjusting rotating drum, 401-arc-shaped component, 5-wire slot, 6-guide slot, 7-center piece, 8-connecting rod, 9-accommodating slot, 10-limiting block, 11-elastic component, 12-fixed hanging plate. DETAILED DESCRIPTION

[0023] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below in conjunction with embodiments and drawings. The schematic implementation methods of the present invention and their descriptions are only used to explain the present invention and are not intended to limit the present invention.

[0024] Example 1

[0025] like Figure 1-4As shown, the utility model discloses a intensive care unit instrument pipeline restraint device, including several restraint components and an adjustment slot 1, the restraint component is slidably connected to the adjustment slot 1 through a lifting rod 2, the restraint component includes a wire hub 3 and an adjustment rotary drum 4, the outer wall of the wire hub 3 is arranged with a plurality of wire grooves 5 parallel to the axis of the wire hub 3, the adjustment rotary drum 4 is sleeved on one end of the wire hub 3, and the adjustment rotary drum 4 is provided with a plurality of guide grooves 6 corresponding to the wire grooves 5, the guide grooves 6 pass through the side wall of the adjustment rotary drum 4 to divide the adjustment rotary drum 4 into a plurality of arc-shaped parts 401, and a center piece 7 is provided at the end of the adjustment rotary drum 4 away from the wire hub 3, and the plurality of arc-shaped parts 401 are connected to the center piece 7 through a plurality of connecting rods 8.

[0026] Several connecting rods 8 are connected to the right end face of the arc-shaped component 401, and the movable path of the connecting rods 8 does not exceed the extension line of any wire trough 5. Specifically, the multiple guide grooves 6 correspond to the multiple wire troughs 5 one by one. Under normal conditions, the pipeline is placed into the wire trough 5 through the guide grooves 6. During this process, the connecting rods 8 will not affect the placement of the pipeline. Then, the adjustment drum 4 is rotated counterclockwise. During this process, any connecting rod 8 moves between two adjacent wire troughs 5, so its rotation will not be affected by the longer pipeline. After the rotation of the adjustment drum 4 is completed, the arc-shaped component 401 covers the upper end of the wire trough 5, thereby confining the pipeline within the wire trough 5.

[0027] The left bottom end of the arcuate component 401 is provided with a receiving slot 9, into which a limit block 10 and an elastic component 11 are rotatably connected. Specifically, one end of the limit block 10 is rotatably connected to the receiving slot 9. When the limit block 10 is under pressure, the free end of the limit block 10 compresses the elastic component 11, and the top of the limit block 10 does not exceed the plane of the inner ring of the arcuate component 401.

[0028] One end of the elastic component 11 is fixed within the receiving groove 9, and the free end of the stopper 10 is movably disposed at the movable end of the elastic component 11. Specifically, after the adjustment drum 4 rotates counterclockwise, the receiving groove 9 is located above the wire trough 5. When the pipeline is located within the wire trough 5, there is still space between the pipeline and the wire trough 5. At this time, the elastic component 11 pushes the stopper 10 outward from its compressed state. The free end of the stopper 10 abuts against the pipeline within the wire trough 5, further squeezing and securing the pipeline.

[0029] The elastic component 11 is provided on a side close to the end face of the arc-shaped component 401. Specifically, when the pipeline needs to be released or adjusted, the adjusting drum 4 is rotated clockwise. At this time, the outer wall of the hub 3 squeezes the limit block 10. During the continuous adjustment of the adjusting drum 4, the elastic component 11 is gradually compressed until the limit block 10 completely enters the receiving groove 9.

[0030] The cross section of the wire duct 5 is a convex structure. Specifically, the convex wire duct 5 can form multiple support points in the duct, fixing the pipeline on a larger contact area, thereby effectively reducing the movement and sliding of the pipeline in the wire hub 3.

[0031] The slot width of the cable trough 5 is identical to the slot width of the guide slot 6. Specifically, the guide slot 6 has the same slot width as the cable trough 5, allowing the pipeline to smoothly pass through the guide slot 6 and directly enter the cable trough 5 without getting stuck or having difficulty inserting due to a mismatch in width. This design simplifies the operation process, reduces the resistance and difficulty of pipeline placement, and improves work efficiency.

[0032] Fixed hanging plates 12 are provided at both ends of the adjustment slot 1, and the slot opening of the adjustment slot 1 is set upward. The adjustment slot 1 is provided with a tightening component for tightening the lifting rod 2. Specifically, the fixed hanging plate 12 can fix the adjustment slot 1 to a specified position, such as a wall or instrument equipment, to ensure the stability of the entire device. Preferably, the fixed hanging plate 12 is any one of a suction cup, an adhesive hanging plate or a magnetic suction cup. The slot opening of the adjustment slot 1 is set upward, which is helpful for installing and horizontally adjusting the lifting rod 2. The lifting rod 2 slides freely and adjusts its height in the adjustment slot 1, which makes it convenient for the operator to adjust the position and length of the lifting rod 2 when needed. The tightening component can achieve tightening and locking of the lifting rod 2 through a mechanical structure (such as a bolt or a spring) to prevent it from accidentally sliding in the adjustment slot 1.

[0033] Example 2

[0034] Based on the first embodiment, this embodiment proposes a specific implementation process of an instrument and pipeline restraint device in an intensive care unit.

[0035] The specific implementation principle process is as follows:

[0036] Select a suitable location (such as a wall or instrument equipment), and use a fixed hanging plate 12 (such as a suction cup, an adhesive hanging plate or a magnetic cup) to fix the adjustment slot 1. Set several constraint components as needed, and adjust the height and position of the lifting rod 2 according to the use requirements to make it consistent with the height of the pipeline. Use the tightening components (such as bolts or springs) on the adjustment slot 1 to fix the lifting rod 2 in the set position to prevent it from accidentally sliding in the adjustment slot 1. Rotate the adjustment drum 4 so that the notch of the wire trough 5 corresponds to the notch of the guide groove 6. Insert multiple pipelines into the corresponding wire troughs 5 respectively. Since the wire trough 5 has a convex structure, the pipeline is not easy to fall out. Then rotate the adjustment drum 4 counterclockwise, and the arc-shaped component 401 gradually covers the top of the wire trough 5. During the rotation process, the free end of the limit block 10 presses against the pipeline in the wire trough 5 to further squeeze and fix it. When the pipeline needs to be adjusted or released, rotate the adjustment drum 4 clockwise. During the rotation, the outer wall of the hub 3 gradually squeezes the limit block 10, causing the elastic component 11 to be gradually compressed, and the limit block 10 gradually returns to the receiving groove 9. Continue to rotate the adjustment drum 4 until all the arc-shaped parts 401 are completely offset from the wire groove 5, and the pipeline can be freely removed.

[0037] Of course, the present invention may have many other implementation methods. Without departing from the spirit and essence of the present invention, technicians familiar with the field may make various corresponding changes and deformations based on the present invention, but these corresponding changes and deformations should all fall within the scope of protection of the claims attached to the present invention.

Claims

1. A monitoring room instrument pipeline restraint device, characterized by: The invention comprises several constraint components and adjustment grooves (1), wherein the constraint components are slidably connected to the adjustment grooves (1) through a lifting rod (2), and the constraint components comprise a wire hub (3) and an adjustment rotating cylinder (4), wherein the outer wall of the wire hub (3) is provided with a plurality of wire grooves (5) parallel to the axis of the wire hub (3), and the adjustment rotating cylinder (4) is sleeved on one end of the wire hub (3), and the adjustment rotating cylinder (4) is provided with a plurality of guide grooves (6) corresponding to the wire grooves (5), and the guide grooves (6) pass through the side wall of the adjustment rotating cylinder (4) to separate the adjustment rotating cylinder (4) into a plurality of arc-shaped parts (401), and a center piece (7) is provided at one end of the adjustment rotating cylinder (4) away from the wire hub (3), and the plurality of arc-shaped parts (401) are connected to the center piece (7) through a plurality of connecting rods (8).

2. The apparatus for restraining instrument and pipelines in an intensive care unit according to claim 1, characterized in that: Several connecting rods (8) are connected to the right end surface of the arc-shaped component (401), and the movable path of the connecting rod (8) does not exceed the extension line of any wire groove (5).

3. The instrument and pipeline restraint device for a ICU according to claim 1, characterized in that: A receiving groove (9) is provided at the bottom of the left end of the arc-shaped component (401), and a limiting block (10) and an elastic component (11) are rotatably connected in the receiving groove (9).

4. The apparatus and pipeline restraint device for an intensive care unit according to claim 3, characterized in that: One end of the elastic component (11) is fixed in the accommodating groove (9), and the free end of the limiting block (10) is movably arranged at the movable end of the elastic component (11).

5. The instrument and pipeline restraint device for an intensive care unit according to claim 4, characterized in that: The elastic component (11) is arranged on a side close to the end surface of the arc-shaped component (401).

6. The instrument and pipeline restraint device for an intensive care unit according to claim 1, characterized in that: The cross section of the wire trough (5) is a convex-shaped structure.

7. The instrument and pipeline restraint device for an intensive care unit according to claim 1, characterized in that: The slot width of the wire slot (5) is the same as the slot width of the guide slot (6).

8. The instrument and pipeline restraint device for an intensive care unit according to claim 1, characterized in that: Fixed hanging plates (12) are provided at both ends of the adjustment groove (1), the groove opening of the adjustment groove (1) is arranged upward, and a tightening component for tightening the lifting rod (2) is provided on the adjustment groove (1).