Pipeline hook
By designing a pipeline hook and using the design of the hooking body and storage body, convenient storage and hanging of the electrocardiogram monitor pipeline is achieved, which solves the problem of inconvenient storage of lead wires in the existing technology, and improves work efficiency and pipeline stability.
Patent Information
- Application Number
- CN202421204981.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-29
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-05-29
AI Technical Summary
The lead wires of existing electrocardiogram monitors are inconvenient to store, which affects work efficiency and can easily lead to broken or unfixed pipelines, affecting rescue in emergencies.
A pipeline hook is designed, including a hook and a storage body. The storage body is equipped with multiple storage hooks. The hook is equipped with a hook. The angle between the hook and the storage hook is 180°, so as to realize the classified storage and hanging of the electrocardiogram monitor pipeline.
It realizes convenient storage, sorting and use of the electrocardiogram monitor pipeline, improves work efficiency, reduces the risk of pipeline breakage, and facilitates access to the required pipeline in emergencies.
Smart Images

Figure CN223009142U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of medical instruments, and particularly relates to a pipeline hook. Background Art
[0002] An electrocardiogram monitor is a monitoring device that can continuously monitor the changes of physiological parameters such as the heart rate, heart rhythm, blood pressure, respiration, and blood oxygen saturation of patients. It is one of the most commonly used medical instruments with an alarm function in hospitals. Although the models of electrocardiogram monitors used clinically are different, most of their output pipelines are the same, and all include a blood pressure measurement pipeline (connected to a cuff), a blood oxygen measurement pipeline (connected to a blood oxygen clip), an electrocardiogram measurement pipeline (connected to electrode patches), and a power plug. Among them, the electrocardiogram measurement pipeline includes five different wires, which also makes the number of pipelines on the electrocardiogram monitor relatively large. When the instrument is in a standby state, it is necessary to collect and organize these output pipelines. Nursing staff usually habitually wind all the pipelines into an oval shape and then wrap and fix them with a cuff. However, this is neither convenient for next use nor easy to cause the pipelines to break and be damaged; when it is necessary to use them next time, the output pipelines are messy and dragged, and it is difficult to comb them after the wire ends are wound, which brings inconvenience to rescue and nursing work.
[0003] At present, in order to improve the collection of electrocardiogram monitor pipelines and reduce the workload of nursing staff, a variety of devices for pipeline collection have emerged. Most of these devices are made into a part of the electrocardiogram monitor. For example, a common electrocardiogram monitor lead wire collection device that collects and manages the lead wires in a centralized manner. When in use, the lead wires can be taken out according to the required length. However, in actual extraction operations, there are still situations where the lead wires are wound. And after the lead wires are pulled out to the required length, the unused part of the wire collecting tube will scatter, affecting the environmental cleanliness, and there are often jamming situations during collection, which also affects the work efficiency. For another example, some hospitals adopt the method of winding the electrocardiogram monitor lead wires in circles according to the conventional use order and then tying them separately with ropes in series. When in use, the loops are untied one by one. Although it is convenient to use, if you want to take the lead wire at the innermost part, you need to untie all the knots on the outside and then take it, which is time-consuming and laborious. And due to material limitations, some of the fixing ropes are not easy to untie, etc., which affect the work efficiency of nursing staff during use and even affect the rescue of critically ill patients in emergency situations. Content of the Utility Model
[0004] The utility model aims to provide a pipeline hook to solve the problems that the lead wires of the existing electrocardiogram monitor are inconvenient to collect and use, and affect the work efficiency.
[0005] To achieve the above purpose, the utility model adopts the following technical scheme: A pipeline hook includes a hanging body and a storage body. The storage body is provided with a plurality of storage hooks from top to bottom. The hanging body is provided with a hanging hook, the hanging hook is located at the top of the storage body, and the angle between the hanging hook and all the storage hooks is 180°.
[0006] The beneficial effects of this solution are as follows: 1. The hanging body is used to hang the hook on the electrocardiogram monitor, and the storage body is used to store all the pipelines on the electrocardiogram monitor. The hanging body is connected to the storage body, so that during the standby period, the pipelines are stored and sorted out and then hung on the electrocardiogram monitor, achieving the purpose of more convenient storage, sorting and use of the pipelines.
[0007] 2. After the pipelines are classified and wound into coils and then hung on different storage hooks respectively, the contact area of the pipelines with the air is large during the hanging period. After disinfection, the pipelines can dry more quickly and fully, thus avoiding the influence of moisture on the instrument performance.
[0008] 3. Different from the conventional electrocardiogram monitor pipeline storage device, the hook has the function of being carried around, which can facilitate the nursing staff to take it out at any time to store and sort out each pipeline, further improving the work efficiency.
[0009] 4. The open row design can take out any pipeline during use without affecting the fixation of the remaining lines, better meeting the needs of emergency situations and priority monitoring items in nursing.
[0010] Preferably, the thicknesses of both the hanging body and the storage body are greater than or equal to 1 cm.
[0011] Preferably, the side surface of the storage body facing away from the storage hook is a supporting surface, and the supporting surface is a vertical surface.
[0012] Preferably, the top of the hanging body is fixed to the storage body.
[0013] Preferably, the top of the hanging body is rotatably connected to the storage body.
[0014] The beneficial effects of this solution are as follows: During the period when the hook stores and places the pipelines, after the hanging hook is hung on the handle of the electrocardiogram monitor, under the action of its own gravity and the gravity of the pipelines, the entire supporting surface of the storage body vertically droops downward, and then better and more fully fits the side surface perpendicular to the electrocardiogram monitor, which can further improve the stability of the pipelines during storage after hanging.
[0015] Preferably, blocking blocks are slidably provided at the ends of the storage hooks. The top of the blocking block is provided with a first wedge surface and a second wedge surface, and the first wedge surface and the second wedge surface make the top of the blocking block in an inverted V shape.
[0016] The beneficial effects of this solution are as follows: While the first wedge surface and the second wedge surface facilitate the operation of pushing the pipeline into or out of the storage hook, the added blocking block improves the limit protection of the pipeline hanging in the storage hook, further improving the stability of the pipeline during the hanging period.
[0017] Preferably, a connection groove is provided at the end of the storage hook, a spring is vertically provided in the connection groove, and the bottom of the blocking block is fixed to the top of the spring; in the natural state of the spring, the bottom of the blocking block is located in the connection groove, and the top of the blocking block contacts the bottom surface of the upper storage hook. Brief Description of the Drawings
[0018] Figure 1 It is a three-dimensional view during the use of the hook in Embodiment 1 of the present utility model;
[0019] Figure 2 It is a front view of the hook in Embodiment 1 of the present utility model;
[0020] Figure 3 It is a structural schematic diagram of the hook in Embodiment 2 of the present utility model;
[0021] Figure 4 It is a structural schematic of the hook in Embodiment 3 of the present utility model. Detailed Description of the Preferred Embodiments
[0022] The following is a further detailed description through specific embodiments:
[0023] The reference numerals in the accompanying drawings of the specification include: hanging body 1, hanging hook 11, receiving body 2, receiving hook 21, supporting surface 22, power cord 31, blood oxygen measurement pipeline 32, blood pressure measurement pipeline 33, electrocardiogram measurement pipeline 34, pin shaft 4, blocking block 5, first wedge surface 51, second wedge surface 52.
[0024] Embodiment 1
[0025] Embodiment 1 is basically as shown in the attached Figure 1-2 shown, such as Figure 1 shown, a pipeline hook includes a hanging body 1 and a receiving body 2. The hanging body 1 is used to hang the hook on an electrocardiogram monitor, and the receiving body 2 is used to receive and store all the pipelines on the electrocardiogram monitor. The hanging body 1 is connected to the receiving body 2, and then during the standby period, the pipelines are received and sorted and then hung on the electrocardiogram monitor to achieve the receiving and sorting of the pipelines.
[0026] In this embodiment, the top of the hanging body 1 is fixed to the receiving body 2. The hanging body 1 and the receiving body 2 are both made of silica gel, and their fixing method is integrally formed. The plastic material can reduce the manufacturing cost of the hook while reducing the weight of the hook, so that the hook is different from the conventional electrocardiogram monitor pipeline receiver, has the function of being carried around, and can facilitate the nursing staff to take it out at any time to receive and sort each pipeline, further improving work efficiency.
[0027] Such as Figure 1As shown in the figure, the storage body 2 is provided with a plurality of storage hooks 21 from top to bottom. Through the multiple storage hooks 21 provided, multiple pipelines on the electrocardiogram monitor are classified and hung for storage. In this embodiment, four storage hooks 21 are provided, and the power cord 31, the blood oxygen measurement pipeline 32, the blood pressure measurement pipeline 33, and the electrocardiogram measurement pipeline 34 are sequentially hung from top to bottom. The storage hooks 21 are arranged by sequentially opening special-shaped card holes on the right side of the long-strip storage body 2 to ensure the strength of the overall structure of the storage body 2. When it is necessary to store and organize the pipelines, it is necessary to first spray disinfectant on all pipelines for disinfection treatment, and then classify and roll up the pipelines into circles and hang them on different storage hooks 21 respectively. This makes the contact area between the pipelines and the air large during hanging, and the pipelines can dry more quickly and fully after disinfection, thereby avoiding the influence of moisture on the performance of the instrument.
[0028] As Figure 2 shown, a hanging hook 11 is provided on the hanging body 1, and the angle between the hanging hook 11 and all the storage hooks 21 is 180°, that is, the hanging hook 11 and the storage hooks 21 are on the same horizontal plane and in opposite directions. In order to facilitate use, a handle is rotatably connected to the top of the electrocardiogram monitor. This hook can be directly hung on the handle of the electrocardiogram monitor through the hanging hook 11. When the electrocardiogram monitor is placed, the handle is attached to the top surface of the electrocardiogram monitor. During operation, the hook can be first hung on the handle through the hanging hook 11, and then the pipelines are disinfected and rolled up one by one. Finally, all the pipelines are classified and rolled up on the storage hooks 21 and then stored on the electrocardiogram monitor through the hanging hook 11. This is not only beautiful and tidy but also convenient to preferentially take out the most needed pipeline for monitoring according to the specific condition of the patient next time, improving work efficiency and better monitoring the patient.
[0029] The thicknesses of both the hanging body 1 and the storage body 2 are greater than or equal to 1 cm, and the specific thickness in this embodiment is 2 cm. Combining Figure 1 shown, define the side surface of the storage body 2 facing away from the storage hooks 21 as the support surface 22. By setting the support surface 22 to have a certain width, the support effect of the support surface 22 on the hook can be ensured. After the integrally formed hook is hung, the storage body 2 will tilt outward relative to the side wall of the electrocardiogram monitor. By increasing the width of the support surface 22, the situation that the hook shakes left and right and the pipeline drops after the pipeline is hung can be avoided.
[0030] Combining Figure 2 and Figure 1As shown, the support surface 22 in this embodiment is a vertical surface, and all the storage hooks 21 are vertically arranged with respect to the storage body 2. After the disinfected pipelines are layered and hung on each storage hook 21, the support surface 22 is inclined so that the top of the electrocardiogram measurement pipeline 34 coiled into a circle at the bottom contacts the storage hook 21, and the bottom contacts and supports the side wall of the electrocardiograph monitor. Except for contacting the storage hook 21 at the top, the bottom of the blood pressure measurement pipeline 33, the blood oxygen measurement pipeline 32, and the power cord 31 in sequence upward only contacts the pipeline below, so as to ensure that the coiled pipelines can contact the air to the greatest extent, further accelerating the volatilization speed of the disinfectant and ensuring the quality of the pipelines and instruments.
[0031] In this solution, the hook is fixed on the handle of the electrocardiograph monitor, and multiple storage hooks 21 are sequentially arranged below to realize the classified storage and hanging of the pipelines. The overall material of the hook has a certain elasticity and strong supporting force, does not deform after being repeatedly taken for many times, and has good anti-slip performance, which can effectively fix each pipeline without displacement. The open-type row connection design can take out any pipeline during use without affecting the fixation of the remaining lines, better meeting the needs in nursing for emergency situations and the need to have priority monitoring items.
[0032] Embodiment 2
[0033] As Figure 3 shown, a pipeline hook is different from Embodiment 1 in that: the top between the hanging body 1 and the storage body 2 in this embodiment is not fixedly connected, but rotatably connected.
[0034] The rotational connection between the hanging body 1 and the storage body 2 is specifically as Figure 3 shown: a card slot is provided at the right end of the hanging part, and a pin shaft 4 is fixed in the slot. The left end of the storage body 2 is fitted into the card slot of the hanging part, and the left end of the storage body 2 is rotatably sleeved on the pin shaft 4.
[0035] After setting the hanging body 1 and the storage body 2 to be rotatably connected, during the storage of the pipelines by the hook, after the hanging hook 11 is hooked on the handle of the electrocardiogram monitor, under the action of its own gravity and the gravity of the pipelines, the entire support surface 22 of the storage body 2 hangs vertically downward, and then better and more fully fits the side surface perpendicular to the electrocardiograph monitor, which can further improve the stability of the pipeline storage after hanging.
[0036] Embodiment 3
[0037] As Figure 4 shown, a pipeline hook is different from Embodiment 1 in that: blocking blocks 5 are provided at the ends of the storage hooks 21. The top of the blocking block 5 is provided with a first wedge surface 51 and a second wedge surface 52, and the first wedge surface 51 and the second wedge surface 52 make the top of the blocking block 5 in an inverted V shape, and the lower end of the blocking block 5 is elastically connected to the end of the storage hook 21.
[0038] In this embodiment, the elastic connection method is specifically as follows: a connection groove is vertically and inwardly formed at the end of the storage hook 21, a spring is vertically fixed in the connection groove, the bottom of the blocking block 5 is fixed to the top of the spring, and it is ensured that in the natural state of the spring, the bottom of the blocking block 5 is located in the connection groove, and the top of the blocking block 5 contacts the bottom surface of the upper storage hook 21. The first inclined surfaces 51 all face the outside of the card hole, and the second inclined surfaces 52 all face the inside of the card hole. When the pipeline needs to be placed into the card hole of the storage hook 21, the first inclined surface 51 causes the blocking block to slide downward to create a passage for the pipeline; the second inclined surface 52 also provides guarantee for the removal of the pipeline.
[0039] While the first inclined surface 51 and the second inclined surface 52 facilitate the operation of pushing the pipeline into or out of the storage hook 21, the added blocking block 5 improves the limit protection for the pipeline hung in the storage hook 21, further improving the stability of the pipeline during hanging.
[0040] The above are only embodiments of the present utility model. Specific technical solutions and / or common knowledge such as characteristics well known in the art are not described in detail herein. It should be noted that for those skilled in the art, without departing from the technical solution of the present utility model, several deformations and improvements can still be made, which should also be regarded as the protection scope of the present utility model, and these will not affect the implementation effect of the present invention and the practicality of the patent. The protection scope required by this application shall be subject to the content of its claims, and the specific implementation manners described in the specification can be used to interpret the content of the claims.
Claims
1. A pipeline hook, characterized by: It includes a hanging body and a storage body. The storage body is provided with a plurality of storage hooks from top to bottom. The hanging body is provided with a hanging hook. The hanging hook is located at the top of the storage body, and the angle between the hanging hook and all the storage hooks is 180°. The thickness of the hanging body and the storage body are both greater than or equal to 1 cm; the side of the storage body facing away from the storage hook is a support surface, and the support surface is a vertical surface; the ends of the storage hooks are slidably provided with a blocking block, the top of the blocking block is provided with a first wedge surface and a second wedge surface, and the first wedge surface and the second wedge surface make the top of the blocking block in an inverted V shape; the end of the storage hook is provided with a connecting groove, a spring is vertically provided in the connecting groove, and the bottom of the blocking block is fixed to the top of the spring; when the spring is in a natural state, the bottom of the blocking block is located in the connecting groove, and the top of the blocking block contacts the bottom surface of the upper storage hook; The top of the blocking block is provided with a first wedge surface and a second wedge surface, and the first wedge surface and the second wedge surface make the top of the blocking block in an inverted V shape, and the lower end of the blocking block is elastically connected to the end of the storage hook; the elastic connection method is specifically: a connecting groove is opened vertically inward at the end of the storage hook, a spring is vertically fixed in the connecting groove, the bottom of the blocking block is fixed to the top of the spring, and it is ensured that when the spring is in a natural state, the bottom of the blocking block is located in the connecting groove, and the top of the blocking block contacts the bottom surface of the upper storage hook; the first wedge surface is facing the outside of the card hole, and the second wedge surface is facing the inside of the card hole. When the pipeline needs to be placed in the card hole in the storage hook, the first wedge surface makes the blocking block slide downward to make way for the pipeline; the second wedge surface also provides protection for the removal of the pipeline.
2. A pipeline hook according to claim 1, characterized in that: The hanging body is fixed to the top of the storage body.
3. The pipeline hook according to claim 1, characterized in that: The hanging body and the top of the storage body are rotatably connected.