Silica gel patch quick release structure for medical electrocardio equipment
By using silicone patches and 'double helix DNA' lead wire fixing components in medical ECG equipment, the pain, marking and entanglement problems of existing equipment are solved, and an efficient and environmentally friendly operating process is achieved, which is suitable for a variety of people and equipment.
Patent Information
- Application Number
- CN202422346592.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-26
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-09-26
AI Technical Summary
Existing medical ECG equipment uses the principle of negative pressure from a suction ball to adsorb on the human body surface, which can cause pain to some people, easily form red marks, is difficult to adsorb, is prone to falling off, increases operating time and cost, and is not environmentally friendly.
Silicone patches are used instead of suction balls and disposable electrodes, combined with 'double helix DNA' style lead wire fixing components and adapter components to achieve quick installation and removal and anti-entanglement of lead wires, supporting the sharing of electrocardiographs and electrocardiogram monitors.
It improves operational efficiency, reduces waste of consumables, lowers costs, enhances environmental protection, simplifies operating procedures, and is suitable for a variety of people.
Smart Images

Figure CN223365556U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of medical equipment, in particular to a quick-detachable structure of a silicone patch for medical electrocardiograph equipment. Background Art
[0002] Medical ECG equipment is an important type of medical electronic instrument, mainly used for monitoring and diagnosing the heart's electrical activity. This type of equipment includes many types, such as ECG monitors and electrocardiographs, which can record and analyze the heart's electrical signals to help doctors diagnose heart disease.
[0003] Existing medical ECG equipment typically utilizes the principle of negative pressure from a suction ball, adsorbing onto the skin and other tissues on the human body's surface. This can be painful for some people and easily leaves red marks. For thin individuals, obese women, those with dry skin, and those with excessive hair, the suction ball is difficult to adhere to and easily falls off, increasing ECG operation time and wasting both patient and physician time. Disposable ECG electrodes are also used, which not only increases consumable costs but also creates waste and is unfriendly to the environment. Furthermore, the lines need to be straightened before and after the ECG, making the operation cumbersome and increasing work time.
[0004] Therefore, in response to the above-mentioned existing medical ECG equipment, which usually uses the negative pressure principle of a suction ball to adsorb on the skin tissue on the surface of the human body, it is painful for some people and easily forms red marks. For thin, obese women, dry skin, and hairy subjects, the suction ball is difficult to adsorb and is easy to fall off, which increases the operation time for the ECG and wastes the time of patients and doctors. Disposable ECG electrodes are used, which not only increases the cost of consumables, but also creates garbage and is not friendly to green environmental protection. In addition, the lines need to be straightened before and after the ECG, which is cumbersome and increases working time. By setting a silicone patch instead of the suction ball and disposable electrode, it not only has good adhesion and strong breathability, but can also be recycled after washing with water or disinfecting with alcohol, which is more economical and environmentally friendly, can better meet various usage needs, and has market economic benefits. In addition, by setting a "double helix DNA" type lead wire fixing component, the lead wire will not be entangled or knotted no matter how it is rotated, and there is no need to straighten the wire before and after each ECG, which can greatly improve work efficiency. Utility Model Content
[0005] In order to overcome the problem that existing medical ECG equipment usually uses the negative pressure principle of the suction ball to adsorb on the skin tissue on the surface of the human body, which causes certain pain to some people and is easy to form red marks. For thin people, obese women, dry skin, and hairy subjects, the suction ball is difficult to adsorb and is easy to fall off, which increases the operation time for ECG and wastes the time of patients and doctors. Or disposable ECG electrodes are used, which not only increases the cost of consumables, but also creates garbage and is not friendly to green environmental protection. In addition, the lines need to be straightened before and after the ECG, the operation is cumbersome, and the working time is increased.
[0006] The technical solution of the utility model is: a silicone patch quick-release structure for medical electrocardiograph equipment, comprising a detection head, a quick-release assembly, a fixing assembly, an adapter assembly, a lead wire, a connector and an electrode female buckle. The detection heads are arranged in three groups, and the three groups of detection heads are fixedly connected to the connectors through lead wires. The lower end of one group of detection heads is detachably connected to a quick-release assembly for fitting with the patient's skin. The outer sides of the three groups of lead wires are provided with a fixing assembly for preventing the wire harness from being entangled. The end of the connector away from the lead wire is fixedly connected to an adapter assembly for connecting to the electrocardiograph equipment.
[0007] Preferably, a silicone patch is provided to replace the suction ball and disposable electrode sheet, which not only has good adhesion and strong air permeability, but can also be recycled after washing with water or disinfecting with alcohol, which is more economical and environmentally friendly, can better meet various usage needs, and has market economic benefits. In addition, by providing a "double helix DNA" type lead wire fixing component, the lead wire will not be entangled or knotted no matter how it is rotated, and there is no need to organize the wires before and after each electrocardiogram, which can greatly improve work efficiency. By providing an adapter component for connection, the two sets of lead wires of the electrocardiograph and the electrocardiogram monitor can be shared, which is more convenient and quick.
[0008] Preferably, the detection head and the quick-release assembly are detachably connected via an electrode female buckle, and the electrode female buckle is fixedly mounted on the lower end of the detection head and electrically connected thereto.
[0009] Preferably, the quick-release assembly includes a silicone patch body, an electrode base and an electrode male buckle. The electrode base is fixedly installed on one end of the silicone patch body close to the detection head, and the electrode base is fixedly connected to the end of the silicone patch body away from the silicone patch body. The electrode male buckle and the electrode female buckle are buckled together and electrically connected.
[0010] Preferably, the fixing assembly includes a double helical sleeve, a connecting sleeve and a connecting line. Two groups of connecting sleeves are provided opposite to each other in the upper and lower parts, and the two groups of connecting sleeves are elastically connected by the double helical sleeve.
[0011] Preferably, the double helix sleeve is connected by four sets of connecting wires arranged around and through the sleeve, and the double helix sleeve and the connecting wires are both made of silicone.
[0012] Preferably, the adapter assembly includes a first plug, an adapter and a second plug. The first plug is used for plugging and connecting to the electrocardiograph. An adapter for conversion is provided at one end of the first plug away from the connector.
[0013] Preferably, the adapter is connected to the first plug in a detachable plug-in manner, and an end of the adapter away from the first plug is fixedly connected to a second plug for plugging into the electrocardiogram monitor.
[0014] Beneficial effects of the utility model:
[0015] 1. By setting up a silicone patch instead of a suction ball and a disposable electrode sheet, it not only has good adhesion and strong air permeability, but can also be recycled after washing with water or disinfecting with alcohol, which is more economical and environmentally friendly, can better meet various usage needs, and has market economic benefits. By respectively setting an electrode female buckle and an electrode male buckle for fastening connection on the detection head and the silicone patch, the silicone patch body and the detection head can be quickly installed and removed, and by setting up a "double helix DNA" type lead wire fixing component, the lead wire will not be entangled or knotted no matter how it is rotated, and there is no need to organize the wires before and after each electrocardiogram, which can greatly improve work efficiency. By setting up a double helix sleeve to cover all the lead wires, it can limit the lead wires and make it difficult for the lead wires to get out of contact with each other. The double helix sleeve is made of silicone material to have a certain elasticity, so that it can be more compatible with the lead wire and is not easy to cause damage to the lead wire. Connecting sleeves are provided at both ends of the double helix sleeve to control the double helix sleeve, so that the double helix sleeve can be adjusted according to actual needs and slid to the corresponding position, thereby facilitating the use of the detection head. The adapter assembly can be used for connection so that the two sets of lead wires of the electrocardiograph and the electrocardiograph monitor can be shared. The first plug can be used to connect to the electrocardiograph, and the adapter with the second plug is plugged into the first plug, and then the second plug is connected to the electrocardiograph monitor to realize the conversion between the two, so that the electrocardiograph and the electrocardiograph monitor can be used interchangeably, which is more convenient and quick. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 Shown is a schematic diagram of the overall three-dimensional structure of the quick-release structure of the silicone patch for medical electrocardiograph equipment of the present invention;
[0017] Figure 2 Shown is a schematic diagram of the three-dimensional structure of the silicone patch quick-release structure lead wire for medical ECG equipment of the present invention;
[0018] Figure 3 Shown is a schematic diagram of the three-dimensional structure of the quick-release electrode female buckle of the silicone patch used in medical electrocardiograph equipment of the present invention;
[0019] Figure 4Shown is a schematic diagram of the three-dimensional structure of the quick-release structure of the silicone patch for medical electrocardiograph equipment of the present invention;
[0020] Figure 5 Shown is a schematic diagram of the three-dimensional structure of the quick-release structure fixing assembly of the silicone patch for medical electrocardiograph equipment of the present invention;
[0021] Figure 6 Shown is a schematic diagram of the three-dimensional structure of the quick-release structure adapter assembly of the silicone patch for medical electrocardiograph equipment of the present invention;
[0022] Figure 7 Shown is a schematic diagram of the three-dimensional structure of a silicone patch quick-release structure adapter for medical electrocardiograph equipment of the present invention.
[0023] Explanation of the accompanying symbols: 1. Detection head; 5. Lead wire; 6. Connector; 7. Electrode female buckle; 201. Silicone patch body; 202. Electrode base; 203. Electrode male buckle; 301. Double helix sleeve; 302. Connecting sleeve; 303. Connecting wire; 401. First plug; 402. Adapter; 403. Second plug. DETAILED DESCRIPTION
[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0025] See also Figure 1-Figure 3 The utility model provides an embodiment: a silicone patch quick-release structure for medical electrocardiograph equipment, comprising a detection head 1, a quick-release assembly, a fixing assembly, an adapter assembly, a lead wire 5, a connector 6 and an electrode female buckle 7. The detection head 1 is provided with three groups, and the three groups of detection heads 1 are fixedly connected to the connector 6 through the lead wires 5. The lower end of one group of detection heads 1 is detachably connected with a quick-release assembly for fitting with the patient's skin. The outer sides of the three groups of lead wires 5 are sheathed with a fixing assembly for preventing the wire harness from being entangled. The end of the connector 6 away from the lead wire 5 is fixedly connected with an adapter assembly for connecting to the electrocardiograph equipment. The detection head 1 and the quick-release assembly are detachably connected through the electrode female buckle 7, and the electrode female buckle 7 is fixedly mounted on the lower end of the detection head 1 and electrically connected thereto. By setting the detection head 1 and the quick-release assembly into a detachable connection structure, it is convenient to connect the quick-release assembly with different detection heads 1 for use.
[0026] See also Figure 4In this embodiment, the quick-release assembly includes a silicone patch body 201, an electrode base 202 and an electrode male buckle 203. The electrode base 202 is fixedly installed on one end of the silicone patch body 201 close to the detection head 1, and the electrode base 202 is fixedly connected to the end of the silicone patch body 201 away from the silicone patch body 201. The electrode male buckle 203 and the electrode female buckle 7 are buckled together and electrically connected. By setting the electrode male buckle 203 and the electrode female buckle 7 to be buckled together, the silicone patch body 201 can be quickly installed and removed.
[0027] See also Figure 5 In this embodiment, the fixing assembly includes a double helix sleeve 301, a connecting sleeve 302 and a connecting wire 303. Two groups of connecting sleeves 302 are provided in an upper and lower direction relative to each other. The two groups of connecting sleeves 302 are elastically connected by the double helix sleeve 301. The double helix sleeve 301 is connected by four groups of connecting wires 303 arranged around and through. The double helix sleeve 301 and the connecting wire 303 are both made of silicone. By setting the double helix sleeve 301 to be made of silicone, it has a certain elasticity, so that it can be more compatible with the lead wire 5 and is not easy to cause damage to the lead wire 5.
[0028] See also Figure 6-Figure 7 In this embodiment, the adapter assembly includes a first plug 401, an adapter 402 and a second plug 403. The first plug 401 is used to be plugged into the electrocardiograph. The end of the first plug 401 away from the connector 6 is provided with an adapter 402 for conversion. By providing the adapter 402, the first plug 401 and the second plug 403 can be converted into use. The adapter 402 and the first plug 401 are detachably plugged in. The end of the adapter 402 away from the first plug 401 is fixedly connected to the second plug 403 for plugging into the electrocardiograph. By detachably connecting the adapter 402 to the first plug 401, installation and conversion are facilitated.
[0029] When working, first connect the lead wire 5 to the corresponding ECG device;
[0030] When the electrocardiograph is needed, the first plug 401 is plugged into the electrocardiograph to establish an electrical connection therewith;
[0031] When the ECG monitor is needed, the converter is plugged into the first plug 401, and then the second plug 403 on the converter is plugged into the ECG monitor to electrically connect it.
[0032] Then select the corresponding detection head 1 and snap the electrode male buckle 203 on the silicone patch body 201 and the electrode female buckle 7 on the detection head 1 together;
[0033] Then, the silicone patch body 201 is attached to the patient's skin, closely fitting the patient's skin, and the electrocardiogram test is started;
[0034] After the final test is completed, the electrode male buckle 203 on the silicone patch body 201 and the electrode female buckle 7 on the test head 1 can be separated from each other, and the silicone patch body 201 can be disassembled and washed with water or sprayed with alcohol for disinfection for next use.
[0035] Through the above steps, by setting the silicone patch instead of the suction ball and the disposable electrode sheet, not only the adhesion is good and the air permeability is strong, but also the lead wires 5 can be recycled after being washed with water or disinfected with alcohol, which is more economical and environmentally friendly, can better meet various usage needs, and has market economic benefits. In addition, by setting the "double helix DNA" type lead wire 5 fixing component, the lead wire 5 will not be entangled or knotted no matter how it is rotated, and there is no need to organize the wires before and after each electrocardiogram, which can greatly improve work efficiency. By setting the adapter component, it can be used for adapter, so that the two sets of lead wires 5 of the electrocardiograph and the electrocardiogram monitor can be used. Sharing can solve the problem that existing medical ECG equipment usually uses the negative pressure principle of the suction ball to adsorb on the skin tissue on the surface of the human body, which causes certain pain to some people and is easy to form red marks. For thin people, obese women, dry skin, and hairy subjects, the suction ball is difficult to adsorb and is easy to fall off, which increases the operation time for ECG and wastes the time of patients and doctors. Or use disposable ECG electrodes, which not only increases the cost of consumables, but also creates garbage and is not friendly to green environmental protection. In addition, the lines need to be straightened before and after the ECG, the operation is cumbersome, and the working time is increased.
Claims
1. A quick-release silicone patch structure for medical electrocardiograph equipment, comprising a detection head (1); characterized in that: The apparatus further comprises a quick-release assembly, a fixing assembly, an adapter assembly, a lead wire (5), a connector (6) and an electrode female buckle (7). The detection head (1) is provided with three groups, and the three groups of detection heads (1) are all fixedly connected to the connector (6) via the lead wire (5). The lower end of one group of detection heads (1) is detachably connected to a quick-release assembly for fitting with the patient's skin. The outer sides of the three groups of lead wires (5) are provided with a fixing assembly for preventing the wire harness from being entangled. The end of the connector (6) away from the lead wire (5) is fixedly connected to an adapter assembly for connecting to an electrocardiogram device.
2. The quick-release silicone patch structure for medical electrocardiograph equipment according to claim 1, characterized in that: The detection head (1) and the quick-release assembly are detachably connected via an electrode female buckle (7), and the electrode female buckle (7) is fixedly mounted on the lower end of the detection head (1) and electrically connected thereto.
3. The quick-release silicone patch structure for medical electrocardiograph equipment according to claim 2, characterized in that: The quick-release assembly comprises a silicone patch body (201), an electrode base (202) and an electrode male buckle (203); the electrode base (202) is fixedly mounted on one end of the silicone patch body (201) close to the detection head (1); the electrode male buckle (203) is fixedly connected to one end of the electrode base (202) away from the silicone patch body (201); the electrode male buckle (203) and the electrode female buckle (7) are mutually buckled and electrically connected.
4. The quick-release silicone patch structure for medical electrocardiograph equipment according to claim 1, characterized in that: The fixing assembly comprises a double helical sleeve (301), a connecting sleeve (302) and a connecting line (303). Two groups of connecting sleeves (302) are provided in an upper and lower relative manner. The two groups of connecting sleeves (302) are elastically connected via the double helical sleeve (301).
5. The quick-release silicone patch structure for medical electrocardiograph equipment according to claim 4, characterized in that: The double helix sleeve (301) is connected by four groups of connecting wires (303) arranged around and through the double helix sleeve (301). Both the double helix sleeve (301) and the connecting wires (303) are made of silicone material.
6. The quick-release silicone patch structure for medical electrocardiograph equipment according to claim 1, characterized in that: The adapter assembly comprises a first plug (401), an adapter (402) and a second plug (403). The first plug (401) is used for plugging and connecting with an electrocardiograph. An end of the first plug (401) away from the connector (6) is provided with an adapter (402) for conversion.
7. The quick-release silicone patch structure for medical electrocardiograph equipment according to claim 6, characterized in that: The adapter (402) and the first plug (401) are connected in a detachable plug-in manner, and one end of the adapter (402) away from the first plug (401) is fixedly connected to a second plug (403) for plugging into an electrocardiogram monitor.