Animal electrocardiogram lead electrode

By designing a fitting mechanism, installation mechanism, docking mechanism, monitoring mechanism, wearing mechanism, and adhesive mechanism, the problem of unstable fixation of traditional animal electrocardiogram lead electrodes has been solved, enabling accurate monitoring and stable wearing of animal heart rate, improving the accuracy and stability of monitoring, and providing rich physiological parameter information.

CN224155660UActive Publication Date: 2026-04-24上海鸣科医疗科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
上海鸣科医疗科技有限公司
Filing Date
2024-08-19
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Traditional animal electrocardiogram lead electrodes do not fully consider the animal's activity habits, resulting in poor fixation, easy loosening and falling off, interruption of signal acquisition, affecting diagnostic accuracy and increasing costs.

Method used

It employs a fitting mechanism, installation mechanism, docking mechanism, monitoring mechanism, wearing mechanism, and adhesive mechanism, including a plastic frame, internal threaded sleeve, external threaded sleeve, heart rate sensor, temperature sensor, pressure sensor, LED beads, and adhesive mechanism. The design is flexible and adaptable to the animal's body curves to ensure a secure fit.

Benefits of technology

It enables accurate monitoring of animal heart rate, improves the accuracy and stability of monitoring, simplifies the user experience, provides strong support with diversified physiological parameter information, and enhances the user experience for animals through convenient wearing and adhesive design.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an animal electrocardiogram lead electrode, and relates to the technical field of animal medical treatment, the animal electrocardiogram lead electrode comprises a fitting mechanism, the upper end of the fitting mechanism is provided with a monitoring mechanism for monitoring heart rate, and the upper end of the fitting mechanism is provided with a mounting mechanism for assembling and mounting the monitoring mechanism and a docking mechanism; according to the animal electrocardiogram lead electrode, through the attaching mechanism, the mounting mechanism, the butt joint mechanism, the monitoring mechanism, the wearing mechanisms and the bonding mechanism, accurate monitoring of the heart rate of an animal, effective monitoring of the comfort degree and reliable guarantee of falling prevention are achieved; the flexible attaching mechanism can adapt to body curves of different animals, the monitoring accuracy and stability are improved, the diversified monitoring mechanism provides rich physiological parameter information, powerful support is provided for animal medical diagnosis, and the convenient wearing and bonding design greatly improves the use experience of the animals.
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Description

Technical Field

[0001] This application relates to the field of animal medical technology, and in particular to an animal electrocardiogram lead electrode. Background Technology

[0002] Animal electrocardiogram (ECG) lead electrodes, as a precision medical tool designed specifically for pets and laboratory animals, are designed to accurately capture and record the electrophysiological activity of the animal's heart, thereby enabling real-time monitoring and analysis of heart rate. This innovative device not only improves the efficiency and accuracy of veterinary diagnosis of heart diseases but also provides ECG data support for animal research. Through non-invasive or minimally invasive methods, the lead electrodes can be easily attached to the animal's body surface, ensuring stable and clear signal transmission, and providing a scientific basis for the development of animal health management and treatment plans.

[0003] Animal electrocardiogram (ECG) monitoring is crucial in the veterinary field, but the active nature of animals poses a significant challenge. Traditional electrode designs do not adequately consider animal activity habits, resulting in insecure fixation. When animals are active, electrodes are prone to loosening and falling off, interrupting signal acquisition, increasing operational difficulty and time costs. Loosening and falling off also lead to decreased data quality, with significant errors and noise, affecting the accuracy of veterinarians' diagnoses and the formulation of treatment plans. Frequent electrode replacements not only waste medical resources but may also damage the electrodes due to improper operation, exacerbating the cost burden. Therefore, those skilled in the art provide an animal ECG lead electrode. Utility Model Content

[0004] Addressing the challenges posed by the active nature of animals is a significant issue. Traditional electrode designs often fail to adequately consider animal activity patterns, resulting in unstable fixation. During animal activity, electrodes can easily loosen and fall off, interrupting signal acquisition, increasing operational difficulty and time costs. Loosening and falling off also lead to decreased data quality, significant errors and noise, affecting the accuracy of diagnoses and the formulation of treatment plans. Frequent electrode replacements not only waste medical resources but may also damage the electrodes due to improper handling, further exacerbating the cost burden. This application provides an animal electrocardiogram lead electrode.

[0005] The present application provides an animal electrocardiogram lead electrode with the following technical solution: it includes a bonding mechanism, the upper end of which is provided with a monitoring mechanism for monitoring heart rate, the upper end of which is provided with an installation mechanism and a docking mechanism for assembling and installing the monitoring mechanism, both sides of which are provided with a wearing mechanism for wearing and binding, and the upper and lower ends of the two wearing mechanisms are provided with two adhesive mechanisms for preventing the wearing from falling off.

[0006] By adopting the above technical solution, the bonding mechanism includes a plastic frame, a tin plate is fixedly sleeved inside the plastic frame, and plastic plates are fixedly connected to both the upper and lower ends of the plastic frame. Hanging holes are opened on both sides inside the plastic frame and the two plastic plates.

[0007] By adopting the above technical solution, the installation mechanism includes an internal threaded sleeve, which is fixedly sleeved at the center of the two plastic plates and the tin plate, and a bottom ring is fixedly connected to the lower end of the internal threaded sleeve.

[0008] By adopting the above technical solution, the docking mechanism includes an external threaded sleeve, which is threaded inside the internal threaded sleeve, and the external threaded sleeve and the internal threaded sleeve are detachably connected. The bottom end of the external threaded sleeve is in contact with the upper end of the bottom ring, and a top ring is fixedly sleeved on the upper outer side of the external threaded sleeve. The bottom end of the top ring is in contact with the upper end of the internal threaded sleeve.

[0009] By adopting the above technical solution, the monitoring mechanism includes a protective block, which is fixedly sleeved inside the external threaded sleeve. A heart rate sensor, a temperature sensor, a pressure sensor, and an LED bead are fixedly sleeved inside the lower part of the protective block. A power signal transmission interface is provided at the upper end of the protective block.

[0010] By adopting the above technical solution, the wearing mechanism includes two straps, with one end of the two straps close to each other and fixedly connected to the inside of six hanging holes, and a tensile layer is sleeved inside each of the two straps.

[0011] By adopting the above technical solution, both of the adhesive mechanisms include a sub-adhesive and a female adhesive. The two sub-adhesives are respectively fixedly connected to the upper ends of the two straps, and the two female adhesives are respectively fixedly connected to the lower ends of the two straps.

[0012] In summary, this application includes at least one of the following beneficial technical effects: the animal electrocardiogram lead electrode, through a fitting mechanism, installation mechanism, docking mechanism, monitoring mechanism, wearing mechanism, and adhesive mechanism, achieves accurate monitoring of animal heart rate, effective monitoring of comfort, and reliable protection against falling off. Its flexible fitting mechanism can adapt to the body curves of different animals, improving the accuracy and stability of monitoring. The diversified monitoring mechanism provides rich physiological parameter information, providing strong support for animal medical diagnosis. The convenient wearing and adhesive design greatly enhances the animal's user experience. Attached Figure Description

[0013] Figure 1 A schematic diagram of the three-dimensional structure of an electrocardiogram lead electrode for an animal;

[0014] Figure 2 A three-dimensional structural schematic diagram of an animal electrocardiogram lead electrode bonding mechanism;

[0015] Figure 3 A schematic diagram of the three-dimensional disassembled structure of an animal electrocardiogram lead electrode;

[0016] Figure 4A three-dimensional, disassembled structural diagram of an animal electrocardiogram lead electrode bonding mechanism;

[0017] Figure 5 A three-dimensional structural diagram of an animal electrocardiogram lead electrode mounting mechanism;

[0018] Figure 6 A three-dimensional structural schematic diagram of an animal electrocardiogram lead electrode docking mechanism;

[0019] Figure 7 A three-dimensional structural diagram of an animal electrocardiogram lead electrode monitoring mechanism;

[0020] Figure 8 A three-dimensional structural diagram of an animal electrocardiogram lead electrode monitoring mechanism from another perspective;

[0021] Figure 9 A three-dimensional cross-sectional schematic diagram of an animal electrocardiogram lead electrode bandage;

[0022] Figure 10 This is a schematic diagram of the three-dimensional structure of an electrocardiogram lead electrode patch for an animal.

[0023] Reference numerals: 1. Adhesion mechanism; 101. Plastic frame; 102. Tin plate; 103. Plastic plate; 104. Hanging hole; 2. Installation mechanism; 201. Internal threaded sleeve; 202. Bottom ring; 3. Docking mechanism; 301. External threaded sleeve; 302. Top ring; 4. Monitoring mechanism; 401. Protective block; 402. Heart rate sensor; 403. Temperature sensor; 404. Pressure sensor; 405. LED bead; 406. Power signal transmission interface; 5. Wearing mechanism; 501. Strap; 502. Tensile layer; 6. Adhesive mechanism; 601. Sub-adhesive; 602. Female adhesive. Detailed Implementation

[0024] The following is in conjunction with the appendix Figures 1-10 This application will be described in further detail.

[0025] This application discloses an animal electrocardiogram lead electrode.

[0026] Reference Figures 1-3An animal electrocardiogram (ECG) lead electrode includes a fitting mechanism 1. A monitoring mechanism 4 for monitoring heart rate is located at the upper end of the fitting mechanism 1. An installation mechanism 2 and a docking mechanism 3 for assembling and installing the monitoring mechanism 4 are also located at the upper end of the fitting mechanism 1. Wearing mechanisms 5 for securing the electrode are located on both sides of the fitting mechanism 1. Two adhesive mechanisms 6 are located at the upper and lower ends of the two wearing mechanisms 5 to prevent the electrode from falling off. This animal ECG lead electrode, through the fitting mechanism 1, installation mechanism 2, docking mechanism 3, monitoring mechanism 4, wearing mechanism 5, and adhesive mechanisms 6, achieves accurate monitoring of animal heart rate, effective monitoring of comfort, and reliable protection against falling off. Its flexible fitting mechanism 1 can adapt to the body curves of different animals, improving the accuracy and stability of monitoring. The diversified monitoring mechanism 4 provides rich physiological parameter information, providing strong support for animal medical diagnosis. The convenient wearing and adhesive design greatly enhances the animal's user experience.

[0027] Reference Figures 4-6The bonding mechanism 1 includes a plastic frame 101, with a tin plate 102 fixedly fitted inside the plastic frame 101. Plastic plates 103 are fixedly connected to both the upper and lower ends of the plastic frame 101. Hanging holes 104 are provided on both sides inside the plastic frame 101 and the two plastic plates 103. The mounting mechanism 2 includes an internal threaded sleeve 201, which is fixedly fitted at the center of the two plastic plates 103 and the tin plate 102. A bottom ring 202 is fixedly connected to the lower end of the internal threaded sleeve 201. The docking mechanism 3 includes an external threaded sleeve 301. 1. A threaded sleeve is inserted inside the inner threaded sleeve 201, and the outer threaded sleeve 301 is detachably connected to the inner threaded sleeve 201. The bottom end of the outer threaded sleeve 301 is in contact with the upper end of the bottom ring 202. A top ring 302 is fixedly sleeved on the upper outer side of the outer threaded sleeve 301, and the bottom end of the top ring 302 is in contact with the upper end of the inner threaded sleeve 201. The fitting mechanism 1 is the basis of the animal electrocardiogram lead electrode, and its core lies in its flexibility and adaptability. The plastic frame 101 serves as a supporting structure, and the tin plate 102 fixedly sleeved inside is mainly... The function is to help the plastic frame 101 and plastic plate 103 better conform to the animal's body curves during wearing, achieving adaptive bending, but not directly participating in the conductive process. This design allows the electrodes to fit tightly against the animal's skin surface, reducing signal interference caused by gaps or misalignments. The plastic plate 103 is located at the upper and lower ends of the plastic frame 101, which not only enhances the stability of the structure, but also provides a connection point for the wearing mechanism 5 through the hanging hole 104 on it. The installation mechanism 2 provides a foundation for the stable installation of the monitoring mechanism 4 through the design of the internal threaded sleeve 201. The internal threaded sleeve 201 is not only fixed at the center position of the plastic plate 103 and the tin plate 102, but also further enhances the stability of the connection through the bottom ring 202. The external threaded sleeve 301 of the docking mechanism 3 is connected to the internal threaded sleeve 201 by a thread, realizing detachable installation. This design makes it convenient for users to replace or maintain the monitoring mechanism 4 as needed. At the same time, the contact surface of the bottom ring 202 at the bottom of the external threaded sleeve 301 and the contact between the top ring 302 and the upper end of the internal threaded sleeve 201 ensure the tightness and stability of the connection.

[0028] Reference Figures 7-9The monitoring mechanism 4 includes a protective block 401, which is fixedly fitted inside the external threaded sleeve 301. A heart rate sensor 402, a temperature sensor 403, a pressure sensor 404, and an LED bead 405 are fixedly fitted inside the lower part of the protective block 401. A power signal transmission interface 406 is provided at the upper end of the protective block 401. The wearing mechanism 5 includes two straps 501, with their ends fixedly connected to six hanging holes 104. Each strap 501 has a tensile layer 502 fitted inside. The monitoring mechanism 4 is the core part of the electrocardiogram lead electrodes, integrating multiple sensors to achieve comprehensive monitoring of the animal's physiological state. The protective block 401, as the sensor carrier, is fixedly fitted inside the external threaded sleeve 301, providing protection and fixation. The heart rate sensor 402 can... Accurate monitoring of animal heart rate changes provides crucial data for medical diagnosis. Temperature sensor 403 monitors the animal's body temperature in real time, helping to assess its physiological state. Pressure sensor 404 is an important comfort monitoring element, capable of sensing pressure changes between the electrode and the animal's body, preventing discomfort caused by excessive tightness. In addition, LED beads 405 help users judge the fit between the fitting mechanism 1 and the monitoring mechanism 4 on the animal's body through their light emission, ensuring the stability of signal transmission. Wearing mechanism 5 achieves a secure fit of the electrode on the animal through the combination of two straps 501 and tensile layer 502. Straps 501 are tightly connected to fitting mechanism 1 through hanging hole 104, while tensile layer 502 enhances the durability and tensile strength of straps 501 to prevent the electrode from falling off during animal activity.

[0029] Reference Figures 9-10 Both adhesive mechanisms 6 include a sub-adhesive 601 and a female adhesive 602. The two sub-adhesives 601 are fixedly connected to the upper ends of the two straps 501, and the two female adhesives 602 are fixedly connected to the lower ends of the two straps 501. The sub-adhesives 601 and female adhesives 602 in the adhesive mechanism 6 are respectively set at the upper and lower ends of the straps 501. A firm fixing effect can be achieved through a simple adhesive operation. This design not only improves the wearing stability of the electrodes, but also simplifies the user's operation process.

[0030] The implementation principle of an animal electrocardiogram (ECG) lead electrode according to this application embodiment is as follows: The fitting mechanism 1 serves as the foundation of the animal ECG lead electrode. Its core advantage lies in its excellent flexibility and adaptability. The plastic frame 101 and the internally fixed tin plate 102 work together to effectively assist the plastic frame 101 and the plastic plates 103 at both ends to fit tightly to the animal's body curve during wearing, achieving adaptive bending and thus reducing signal interference. The plastic plate 103 not only stabilizes the structure but also provides a connection point for the wearing mechanism 5 through the hanging hole 104. The installation mechanism 2 uses the internal threaded sleeve 201 to securely install the monitoring mechanism 4 and enhances the connection through the bottom ring 202. For stability, the external threaded sleeve 301 and the internal threaded sleeve 201 of the docking mechanism 3 are threadedly connected, enabling detachable installation for easy replacement or maintenance. The monitoring mechanism 4 integrates multiple sensors, such as a heart rate sensor 402 to monitor heart rate changes, a temperature sensor 403 to monitor body temperature in real time, a pressure sensor 404 to monitor comfort, and an LED bead 405 to assist in judging fit and ensure stable signal transmission. The wearing mechanism 5 is securely worn on the animal by combining the strap 501 and the tensile layer 502. The sub-adhesive 601 and the female adhesive 6 are further improved by a simple adhesive operation, simplifying the user's operation process.

[0031] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. An animal electrocardiogram lead electrode, characterized in that: It includes a fitting mechanism (1), the upper end of which is provided with a monitoring mechanism (4) for monitoring heart rate, the upper end of which is provided with an installation mechanism (2) and a docking mechanism (3) for assembling and installing the monitoring mechanism (4), both sides of the fitting mechanism (1) are provided with a wearing mechanism (5) for wearing and binding, and the upper and lower ends of the two wearing mechanisms (5) are provided with two adhesive mechanisms (6) for preventing the wearing from falling off.

2. The animal electrocardiogram lead electrode according to claim 1, characterized in that: The bonding mechanism (1) includes a plastic frame (101), a tin plate (102) is fixedly fitted inside the plastic frame (101), and plastic plates (103) are fixedly connected to both the upper and lower ends of the plastic frame (101). Hanging holes (104) are opened on both sides inside the plastic frame (101) and the two plastic plates (103).

3. The animal electrocardiogram lead electrode according to claim 2, characterized in that: The installation mechanism (2) includes an internal threaded sleeve (201), which is fixedly sleeved at the center of the two plastic plates (103) and the tin plate (102), and a bottom ring (202) is fixedly connected to the lower end of the internal threaded sleeve (201).

4. An animal electrocardiogram lead electrode according to claim 3, characterized in that: The docking mechanism (3) includes an external threaded sleeve (301), which is threaded inside the internal threaded sleeve (201). The external threaded sleeve (301) and the internal threaded sleeve (201) are detachably connected. The bottom end of the external threaded sleeve (301) is in contact with the upper end of the bottom ring (202). A top ring (302) is fixedly sleeved on the upper side of the external threaded sleeve (301). The bottom end of the top ring (302) is in contact with the upper end of the internal threaded sleeve (201).

5. An animal electrocardiogram lead electrode according to claim 4, characterized in that: The monitoring mechanism (4) includes a protective block (401), which is fixedly sleeved inside the external threaded sleeve (301). A heart rate sensor (402), a temperature sensor (403), a pressure sensor (404), and an LED bead (405) are fixedly sleeved inside the lower part of the protective block (401). A power signal transmission interface (406) is provided at the upper end of the protective block (401).

6. An animal electrocardiogram lead electrode according to claim 2, characterized in that: The wearing mechanism (5) includes two straps (501), with one end of each strap (501) being fixedly connected to the inside of six hanging holes (104), and each strap (501) having a tensile layer (502) inside.

7. An animal electrocardiogram lead electrode according to claim 6, characterized in that: Both adhesive mechanisms (6) include a sub-adhesive (601) and a female adhesive (602). The two sub-adhesives (601) are fixedly connected to the upper ends of the two straps (501), and the two female adhesives (602) are fixedly connected to the lower ends of the two straps (501).