Electrocardio analyzer line arrangement device and electrocardio analyzer

The design of the ECG analyzer's wiring organization device solves the problem of wire tangling, enabling convenient wire organization and fixation, and improving operational convenience and portability.

CN224251387UActive Publication Date: 2026-05-19CHENGDE CENT HOSPITAL
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHENGDE CENT HOSPITAL
Filing Date
2025-01-07
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

During electrocardiogram (ECG) analysis, the numerous and complex wires can become tangled and intertwined, causing difficulties for medical staff and making it inconvenient to manage.

Method used

Design an electrocardiogram analyzer circuit straightening device, comprising a through strip groove, a mounting groove, a mounting shaft, a roller, and an elastic element. The elastic element drives the mounting bracket to approach and clamp the wires, and the wires are straightened and fixed by adjusting and driving components.

Benefits of technology

It effectively avoids wire entanglement, facilitates operation by medical staff, improves the fixation effect of the wires and the reliability of the device, and enhances portability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an electrocardio analyzer line arrangement device and an electrocardio analyzer. The electrocardio analyzer line arrangement device comprises a body, a plurality of through strip-shaped grooves are formed in the body, mounting grooves are formed in the two sides of a port of each strip-shaped groove, a mounting shaft is rotationally arranged in each mounting groove, and a mounting frame is fixedly arranged on each mounting shaft; a rolling shaft is rotationally arranged on the mounting frame, an elastic piece is arranged in the mounting groove, the rolling shaft is used for being in rolling contact with a wire, and an adjusting assembly is arranged in the strip-shaped groove; the electrocardiogram analyzer comprises an instrument main body and further comprises the electrocardiogram analyzer circuit arrangement device, a containing cavity is formed in the side wall of the instrument main body, one side of the containing cavity is provided with an opening, the body is arranged in the containing cavity, a sealing plate is arranged on the side wall of the instrument main body in a sliding mode, and the sealing plate is used for sealing the opening of the containing cavity. According to the device, wires can be collected and arranged, operation of medical staff is facilitated, and mutual winding of the wires is avoided.
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Description

Technical Field

[0001] This application relates to the field of medical device technology, and more specifically, to an electrocardiogram (ECG) analyzer circuit management device and an ECG analyzer. Background Technology

[0002] The content in this section provides only background information related to this application and may not constitute prior art.

[0003] An electrocardiogram (ECG) analyzer is a medical device used to record and analyze the electrical activity of the heart. By detecting the electrical signals generated by the heart with each beat, it generates an electrocardiogram (ECG) to help doctors diagnose heart diseases or assess heart function. The main functions of an ECG analyzer include recording ECGs, analyzing heart rate, diagnosing heart disease, assessing heart function, and storing and transmitting data. ECG analyzers are mainly used in hospitals and clinics, home health monitoring, sports medicine, and emergency situations. They are an indispensable tool in modern medicine, providing important support for the early detection and treatment of heart diseases.

[0004] When using an electrocardiogram (ECG) analyzer to examine a patient, electrode patches are usually attached to the patient's skin to detect electrical signals. However, a large number of electrode patches need to be attached for each test, and each electrode patch needs to be connected to a wire. This results in a large and complicated number of wires between the patient and the analyzer during each ECG analysis, which causes some trouble for medical staff in subsequent examination operations. At the same time, the tangled number of wires also makes it inconvenient to collect and organize them after the test. Summary of the Invention

[0005] In order to solve the above-mentioned technical problems, the purpose of this application is to provide an electrocardiogram (ECG) analyzer wiring organization device and an ECG analyzer, which can organize and organize the leads, making it convenient for medical staff to operate and preventing the leads from getting tangled.

[0006] On the one hand, this application provides a circuit management device for an electrocardiogram analyzer, which adopts the following technical solution.

[0007] An electrocardiogram (ECG) analyzer wiring organization device includes a main body with a through-type groove. Multiple through-type grooves are formed along the length of the main body, with both ends of each groove extending through. Mounting slots are formed on both sides of each groove's end. A mounting shaft is rotatably mounted vertically within each mounting slot. A mounting bracket is fixedly mounted on the mounting shaft, and a roller is rotatably mounted on the mounting bracket. An elastic element is provided within the mounting slot, driving a limiting element to deflect towards each other. The roller is used for rolling contact with the lead wire. An adjustment assembly is provided within the groove, used to adjust the distance between two rollers.

[0008] In some possible embodiments, a receiving groove is provided in the mounting groove, the elastic element is set as a torsion spring, the end of the mounting shaft is rotatably disposed in the receiving groove, the elastic element is sleeved on the mounting shaft, one end of the elastic element is fixedly connected to the mounting shaft, and the other end is fixedly connected to the inner wall of the receiving groove.

[0009] In some possible embodiments, the adjustment assembly includes an abutment block and a slider. A groove is formed on the bottom wall of the strip groove, and the slider is slidably disposed in the groove. There are two sliders and two abutment blocks. The abutment blocks are fixedly connected to the sliders one-to-one. A driving assembly is disposed in the groove. The driving assembly is used to drive the sliders to move in a direction that is closer to or further away from each other. The abutment block is disposed on the top of the slider, and the side wall of the abutment block is used to abut against the side of the mounting bracket that is closer to it.

[0010] In some possible embodiments, the drive assembly includes a drive shaft and a lead screw, the drive shaft being rotatably mounted on the body, the lead screw being rotatably mounted in the slide groove along the length of the slide groove, the drive shaft being drively connected to the lead screw, and the slider being threadedly sleeved on the lead screw.

[0011] In some possible embodiments, a slide groove is provided in each strip groove, a slider is slidably arranged in each slide groove, a lead screw is provided in each slide groove, and the two lead screws of adjacent slide grooves are coaxially connected by a drive shaft. A knob is coaxially fixed at the end of the drive shaft away from the main body. The diameter of the knob is larger than that of the drive shaft, and anti-slip texture is provided on the knob.

[0012] In some possible embodiments, the groove is formed as a T-shaped groove, the slider is set as a T-shaped block, and ball bearings are embedded on the side wall of the slider for rolling contact with the inner wall of the groove. A sliding layer is covered on the side wall of the abutment block for sliding contact with the side wall of the mounting bracket.

[0013] In some possible embodiments, the mounting bracket includes a first connecting bracket and a second connecting bracket. One end of the first connecting bracket is fixedly connected to the top of the mounting bracket, and the other end is inclined toward the mounting shaft. One end of the second connecting bracket is fixedly connected to the bottom of the mounting bracket, and the other end is inclined toward the mounting shaft. The ends of the first connecting bracket and the second connecting bracket near the mounting shaft are connected. Rollers are rotatably mounted on both the first connecting bracket and the second connecting bracket.

[0014] On the other hand, this application also provides an electrocardiogram analyzer, which adopts the following technical solution.

[0015] An electrocardiogram (ECG) analyzer includes an instrument body and an ECG analyzer circuit organization device as described above. A receiving cavity is formed on the side wall of the instrument body, with an opening on one side of the receiving cavity. The instrument body is disposed within the receiving cavity. A sealing plate is slidably disposed on the side wall of the instrument body to close the opening of the receiving cavity.

[0016] In some possible embodiments, a guide rail is fixedly installed on the side wall of the instrument body. The guide rail is horizontally positioned below the opening of the receiving cavity. A guide block is slidably installed on the guide rail. The sealing plate is fixedly connected to the guide block. A protrusion is fixedly installed on the side wall of the sealing plate.

[0017] In summary, the technical solutions of this application have at least the following advantages and beneficial effects:

[0018] 1. In actual use, the wires are passed through the strip groove, and the mounting bracket tends to deflect towards each other under the action of the elastic element, thereby clamping the wires. Then, the body moves along the direction of the wire extension, and several wires can be straightened one by one. This can effectively avoid the wires from getting tangled and twisted, so that medical staff can gather and organize the wires, which is convenient for medical staff to operate.

[0019] 2. During the movement of the main body, the elastic element acts on the mounting shaft, thereby causing the mounting bracket to deflect towards each other, so that the rollers on the mounting brackets on both sides are in close contact with the wire in the strip groove. At this time, the fixing effect of the wire can be effectively improved, preventing the wire from falling out of the strip groove, and further improving the reliability of the device in actual use.

[0020] 3. After the wires are arranged, the drive component moves the sliders away from each other, which in turn moves the abutting blocks away from each other. The abutting blocks abut against the mounting bracket, which in turn causes the mounting bracket to deflect away from each other, thereby causing the rollers to disengage from the wires. At this point, the wires can be removed from the slot. The operation is simple and convenient, and it has good practicality.

[0021] 4. After the wires are arranged, open the sealing plate to place the main body into the receiving cavity. The sealing plate then seals the opening of the receiving cavity, improving the overall portability of the device and making it easier for medical staff to carry. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the circuit organizing device according to an embodiment of this application;

[0023] Figure 2 This is a cross-sectional view of the main body of the circuit organizing device according to an embodiment of this application;

[0024] Figure 3 for Figure 2 Enlarged view of part A in the image;

[0025] Figure 4 This is a schematic diagram of the mounting bracket according to an embodiment of this application;

[0026] Figure 5 This is a schematic diagram of the main body of the instrument according to an embodiment of this application.

[0027] Icons: 1. Main body; 11. Strip groove; 12. Mounting groove; 13. Mounting shaft; 14. Mounting bracket; 15. Roller; 16. Elastic element; 17. Receiving groove; 2. Adjustment assembly; 21. Abutment block; 22. Slider; 23. Slide groove; 3. Drive assembly; 31. Drive shaft; 32. Lead screw; 33. Transmission shaft; 34. Knob; 35. Anti-slip texture; 36. Ball bearing; 41. First connecting frame; 42. Second connecting frame; 5. Instrument body; 51. Receiving cavity; 52. Sealing plate; 53. Guide rail; 54. Guide block; 55. Protrusion. Detailed Implementation

[0028] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. The components of the embodiments of this application described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.

[0029] The following is for reference Figures 1 to 4 This application will be described in further detail.

[0030] On the one hand, this application provides a circuit management device for an electrocardiogram analyzer.

[0031] Reference Figure 1 An electrocardiogram (ECG) analyzer wiring organization device includes a body 1, on which multiple strip-shaped grooves 11 are formed along the length of the body 1. Both ends of the strip-shaped grooves 11 are through-holes. Mounting slots 12 are formed on both sides of the ends of the strip-shaped grooves 11. Figure 2 and Figure 3 As shown, a mounting shaft 13 is rotatably mounted vertically in each mounting slot 12, a mounting bracket 14 is fixedly mounted on the mounting shaft 13, and a roller 15 is rotatably mounted on the mounting bracket 14. An elastic element 16 is provided in the mounting slot 12, which is used to drive the limiting element to deflect in a direction that brings them closer together. The roller 15 is used to make rolling contact with the wire. An adjustment component 2 is provided in the strip groove 11, which is used to adjust the distance between the two rollers 15.

[0032] Reference Figure 3A receiving groove 17 is provided in the mounting groove 12. In one embodiment of this application, the elastic element 16 is set as a torsion spring. The end of the mounting shaft 13 is rotatably disposed in the receiving groove 17. The elastic element 16 is sleeved on the mounting shaft 13. One end of the elastic element 16 is fixedly connected to the mounting shaft 13, and the other end is fixedly connected to the inner wall of the receiving groove 17.

[0033] In actual use, when the wires are passed through the strip groove 11, the mounting bracket 14 tends to deflect towards each other under the action of the elastic element 16, thereby clamping the wires. Then, the body 1 moves along the direction of the wire extension, and several wires can be straightened one by one, which can effectively avoid the wires from getting tangled and twisted, so that medical staff can gather and organize the wires, making it convenient for medical staff to operate.

[0034] Reference Figure 2 and Figure 3 As one embodiment of this application, the adjustment component 2 includes an abutment block 21 and a slider 22. A groove 23 is provided on the bottom wall of the strip groove 11. The slider 22 is slidably disposed in the groove 23. There are two sliders 22 and two abutment blocks 21. The abutment blocks 21 and the sliders 22 are fixedly connected one-to-one. A drive component 3 is provided in the groove 23. The drive component 3 is used to drive the sliders 22 to move in a direction that is closer to or further away from each other. The abutment block 21 is disposed on the top of the slider 22. The side wall of the abutment block 21 is used to abut against the side of the mounting bracket 14 that is close to each other.

[0035] Reference Figure 3 In one embodiment of this application, the drive assembly 3 includes a drive shaft 31 and a lead screw 32. The drive shaft 31 is rotatably mounted on the body 1, and the lead screw 32 is rotatably mounted within the slide groove 23 along its length. The drive shaft 31 and the lead screw 32 are connected in a transmission manner, and the slider 22 is threadedly sleeved on the lead screw 32. In another embodiment of this application, helical grooves with opposite directions of rotation are provided at both ends of the lead screw 32. As the lead screw 32 deflects, it can drive the sliders 22 at both ends to move in a direction that approaches or moves away from each other.

[0036] After the wires are arranged, the drive assembly 3 drives the slider 22 to move away from each other, which in turn drives the abutment block 21 to move away from each other. The abutment block 21 abuts against the mounting bracket 14, which in turn drives the mounting bracket 14 to deflect away from each other, thereby causing the roller 15 to disengage from the wires. At this time, the wires can be removed from the strip groove 11. The operation is simple and convenient and has good practicality.

[0037] Among them, reference Figure 2 and Figure 3Each strip groove 11 is provided with a sliding groove 23, and a slider 22 is slidably arranged in each sliding groove 23. A lead screw 32 is provided in each sliding groove 23. The two lead screws 32 of adjacent sliding grooves 23 are coaxially connected by a transmission shaft 33. A knob 34 is coaxially fixed at the end of the drive shaft 31 away from the body 1. The diameter of the knob 34 is larger than that of the drive shaft 31. Anti-slip texture 35 is provided on the knob 34.

[0038] In one embodiment of this application, the slide groove 23 is formed as a T-shaped groove, and the slider 22 is formed as a T-shaped block; in another possible embodiment of this application, the slide groove 23 may also be formed as a dovetail groove, and the slider 22 is formed as a dovetail block adapted to the slide groove 23; a ball bearing 36 is embedded in the side wall of the slider 22, the ball bearing 36 is used to roll in contact with the inner wall of the slide groove 23, and a sliding layer is covered on the side wall of the abutment block 21, the sliding layer is used to slide in contact with the side wall of the mounting bracket 14.

[0039] By setting the ball bearing 36, the friction between the slider 22 and the groove 23 can be effectively reduced, thereby facilitating the movement of the slider 22 within the groove 23. As one embodiment of this application, the material of the sliding layer is set as polytetrafluoroethylene, which can effectively reduce the friction between the abutment block 21 and the side wall of the mounting bracket 14 during the sliding process.

[0040] Reference Figure 4 The mounting bracket 14 includes a first connecting bracket 41 and a second connecting bracket 42. One end of the first connecting bracket 41 is fixedly connected to the top of the mounting bracket 14, and the other end is inclined toward the mounting shaft 13. One end of the second connecting bracket 42 is fixedly connected to the bottom of the mounting bracket 14, and the other end is inclined toward the mounting shaft 13. The ends of the first connecting bracket 41 and the second connecting bracket 42 are connected to the ends near the mounting shaft 13. Rollers 15 are rotatably sleeved on both the first connecting bracket 41 and the second connecting bracket 42.

[0041] Reference Figure 1 and Figure 2 By setting the first connecting bracket 41 and the second connecting bracket 42, a diamond-shaped channel is formed between the two mounting brackets 14. During the cable management process, the wires pass through this channel, which can effectively prevent the wires from falling out of the strip groove 11 and improve the practicality of the device.

[0042] On the other hand, this application also provides an electrocardiogram analyzer.

[0043] Reference Figure 5An electrocardiogram (ECG) analyzer includes an instrument body 5 and an ECG analyzer circuit arrangement device as described above. A receiving cavity 51 is provided on the side wall of the instrument body 5, with an opening on one side of the receiving cavity 51. The main body 1 is disposed in the receiving cavity 51. A sealing plate 52 is slidably disposed on the side wall of the instrument body 5 to close the opening of the receiving cavity 51.

[0044] like Figure 5 As shown, a guide rail 53 is fixedly installed on the side wall of the instrument body 5. The guide rail 53 is set horizontally below the opening of the receiving cavity 51. A guide block 54 is slidably installed on the guide rail 53. The sealing plate 52 is fixedly connected to the guide block 54. A protrusion 55 is fixedly installed on the side wall of the sealing plate 52.

[0045] After the wires are arranged, the sealing plate 52 is opened, and the main body 1 can be placed into the receiving cavity 51. The opening of the receiving cavity 51 is then sealed by the sealing plate 52, which improves the overall portability of the device and makes it easier for medical staff to carry.

[0046] The above are merely preferred embodiments of this application and are not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A circuit organization device for an electrocardiogram analyzer, characterized in that: The device includes a main body (1), on which a through-strip groove (11) is provided. Multiple through-strip grooves (11) are provided along the length of the main body (1). Both ends of the through-strip groove (11) are provided. Mounting grooves (12) are provided on both sides of the port of the through-strip groove (11). Mounting shafts (13) are rotatably provided in each mounting groove (12) in the vertical direction. Mounting brackets (14) are fixedly provided on the mounting shafts (13). Rollers (15) are rotatably provided on the mounting brackets (14). Elastic members (16) are provided in the mounting grooves (12). The elastic members (16) are used to drive the limiting members to deflect in a direction that brings them closer to each other. The rollers (15) are used to make rolling contact with the wire. Adjustment components (2) are provided in the through-strip grooves (11). The adjustment components (2) are used to adjust the distance between the two rollers (15).

2. The electrocardiogram analyzer circuit organization device according to claim 1, characterized in that: A receiving groove (17) is provided in the mounting groove (12). The elastic element (16) is set as a torsion spring. The end of the mounting shaft (13) is rotatably set in the receiving groove (17). The elastic element (16) is sleeved on the mounting shaft (13). One end of the elastic element (16) is fixedly connected to the mounting shaft (13), and the other end is fixedly connected to the inner wall of the receiving groove (17).

3. The electrocardiogram analyzer circuit organization device according to claim 1, characterized in that: The adjustment component (2) includes an abutment block (21) and a slider (22). A groove (23) is provided on the bottom wall of the strip groove (11). The slider (22) is slidably disposed in the groove (23). There are two sliders (22) and two abutment blocks (21). The abutment blocks (21) and sliders (22) are fixedly connected in a one-to-one correspondence. A drive component (3) is provided in the groove (23). The drive component (3) is used to drive the sliders (22) to move towards each other or away from each other. The abutment block (21) is disposed on the top of the slider (22). The side wall of the abutment block (21) is used to abut against the side of the mounting bracket (14) that is close to each other.

4. The electrocardiogram analyzer circuit organization device according to claim 3, characterized in that: The drive assembly (3) includes a drive shaft (31) and a lead screw (32). The drive shaft (31) is rotatably mounted on the body (1). The lead screw (32) is rotatably mounted in the slide groove (23) along the length direction of the slide groove (23). The drive shaft (31) and the lead screw (32) are connected in a transmission. The slider (22) is threaded onto the lead screw (32).

5. The electrocardiogram analyzer circuit organization device according to claim 4, characterized in that: Each strip groove (11) is provided with a sliding groove (23), each sliding groove (23) is provided with a slider (22), each sliding groove (23) is provided with a lead screw (32), and the two lead screws (32) of adjacent sliding grooves (23) are coaxially connected by a transmission shaft (33). A knob (34) is coaxially fixed at the end of the drive shaft (31) away from the body (1). The diameter of the knob (34) is larger than that of the drive shaft (31), and anti-slip texture (35) is provided on the knob (34).

6. The electrocardiogram analyzer circuit organization device according to claim 5, characterized in that: The groove (23) is a T-shaped groove, the slider (22) is a T-shaped block, and a ball (36) is embedded on the side wall of the slider (22). The ball (36) is used to roll in contact with the inner wall of the groove (23). A sliding layer is covered on the side wall of the abutment block (21). The sliding layer is used to slide in contact with the side wall of the mounting bracket (14).

7. The electrocardiogram analyzer circuit organization device according to claim 1, characterized in that: The mounting bracket (14) includes a first connecting bracket (41) and a second connecting bracket (42). One end of the first connecting bracket (41) is fixedly connected to the top of the mounting bracket (14), and the other end is inclined toward the mounting shaft (13). One end of the second connecting bracket (42) is fixedly connected to the bottom of the mounting bracket (14), and the other end is inclined toward the mounting shaft (13). The first connecting bracket (41) and the second connecting bracket (42) are connected to the end of the second connecting bracket (42) near the mounting shaft (13). Rollers (15) are rotatably sleeved on both the first connecting bracket (41) and the second connecting bracket (42).

8. An electrocardiogram analyzer, comprising an instrument body (5), characterized in that: It also includes an electrocardiogram analyzer circuit arrangement device as described in any one of claims 1-7, wherein a receiving cavity (51) is provided on the side wall of the instrument body (5), the receiving cavity (51) is opened on one side, the body (1) is disposed in the receiving cavity (51), and a sealing plate (52) is slidably disposed on the side wall of the instrument body (5), the sealing plate (52) is used to close the opening of the receiving cavity (51).

9. An electrocardiogram analyzer according to claim 8, characterized in that: A guide rail (53) is fixedly installed on the side wall of the instrument body (5). The guide rail (53) is set horizontally below the opening of the receiving cavity (51). A guide block (54) is slidably installed on the guide rail (53). The sealing plate (52) is fixedly connected to the guide block (54). A protrusion (55) is fixedly installed on the side wall of the sealing plate (52).