Storage device for defibrillator
By designing a storage device for the defibrillator, the conductive paste bottle is fixed to the defibrillator body, and the conductive paste is automatically applied using an electric push rod and a moving mechanism. This solves the problem of forgetting to carry the conductive paste during transportation and improves the efficiency of defibrillation and the success rate of rescue.
Patent Information
- Application Number
- CN202422309817.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-09-23
AI Technical Summary
When transporting critically ill patients, people often forget to bring conductive paste, which results in the inability to perform defibrillation in a timely manner, affecting the success rate of rescue.
A storage device for a defibrillator was designed. The conductive paste bottle was fixed to the defibrillator body through a fixing mechanism. The electric push rod and moving mechanism were used to realize the automatic extrusion and application of the conductive paste, ensuring that the conductive paste could be quickly applied to the electrode plates.
The conductive paste can be conveniently carried and quickly applied, thereby improving the efficiency of electric defibrillation and the success rate of rescue.
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Figure CN223350818U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of medical auxiliary equipment, in particular to a storage device for a defibrillator. Background Art
[0002] A defibrillator is an emergency medical device used to treat sudden cardiac arrest or severe arrhythmias. It delivers an electric shock to restore the heart's normal electrical activity, allowing it to restart effectively. Defibrillators include automated external defibrillators (AEDs), which are used by lay first responders, and manual defibrillators, which are typically operated by medical professionals. Defibrillators play a critical role in saving lives, both in emergency settings and in hospitals.
[0003] Critically ill patients are always transported with a defibrillator, but the defibrillator and conductive paste are placed separately. Conductive paste is often forgotten during transport, which makes it very passive when the patient's condition changes during transport and electric defibrillation is needed. Utility Model Content
[0004] The purpose of the present invention is to provide a storage device for a defibrillator to solve the problems raised in the above background technology.
[0005] To achieve the above objectives, the technical solution of the present utility model is as follows.
[0006] A storage device for a defibrillator includes a defibrillator body, two electrode pads disposed on the body, a handle mounted on the upper surface of the body, a fixing plate mounted on the outer side of the handle via a fixing mechanism, an L-shaped plate mounted on the end of the fixing plate via a moving mechanism, a positioning tube and a tapered tube mounted on the outer surface of the L-shaped plate from top to bottom, respectively, each containing a bottle of conductive paste. An electric push rod is mounted on the outer surface of the L-shaped plate, a pressure plate mounted on the end of the telescopic end of the electric push rod, and a connecting plate connects the positioning tube and the tapered tube.
[0007] It can be seen that through the setting of the fixing mechanism, the conductive paste bottle can be carried together with the defibrillator body, thereby avoiding forgetting to carry the conductive paste bottle during transportation, resulting in a passive situation when the patient's condition changes during transportation and electric defibrillation is required. The electric push rod drives the pressure plate to squeeze the conductive paste bottle, which can automatically squeeze out the conductive paste. Combined with the moving mechanism to drive it to move back and forth, the conductive paste can be quickly applied to the electrode plate, and the patient can be quickly defibrillated, thereby improving the success rate of rescue.
[0008] Furthermore, the fixing mechanism includes a first clamping block, a second clamping block and a bolt. The first clamping block is installed at the end of the fixing plate, and the second clamping block is connected to the first clamping block through the bolt.
[0009] During installation, the first clamp is clamped on one side of the handle, and the second clamp is clamped on the other side of the handle, and then the two are fixed together with bolts, thereby achieving the purpose of installing the fixing plate and allowing the conductive paste bottle to be carried together with the defibrillator body.
[0010] Furthermore, the moving mechanism includes a mounting plate installed on the end of the fixed plate away from the first clamping block, the internal rotation of the mounting plate is connected to a threaded rod, the outer surface of the threaded rod is installed with a driving block, and the driving block is connected to the L-shaped plate, the outer surface of the mounting plate is installed with a motor, and the output shaft of the motor is connected to the threaded rod.
[0011] When the motor is started, its output shaft drives the threaded rod to rotate, causing the drive block to move along the surface of the threaded rod and drive the conductive paste bottle to move. When the medical staff holds the electrode plate under the conductive paste bottle, they only need to slowly move the electrode plate horizontally to evenly and quickly apply the conductive paste to the electrode plate during the reciprocating movement of the conductive paste bottle.
[0012] Furthermore, a sealing cap is provided at the end of the conductive paste bottle.
[0013] By setting the sealing cap, the end of the conductive paste bottle can be blocked to prevent the conductive paste from flowing out due to gravity. When in use, you only need to pull out the sealing cap.
[0014] Furthermore, a switch is provided at the bottom of the L-shaped plate, and the switch is electrically connected to the electric push rod and the motor.
[0015] Since the switch is electrically connected to the electric push rod and the motor, when the medical staff holds the electrode plate under the conductive paste bottle, they only need to press the switch to start the electric push rod and the motor at the same time. The electric push rod starts to squeeze the conductive paste bottle, thereby squeezing the conductive paste out. The motor starts to drive the conductive paste bottle back and forth. The medical staff only needs to slowly move the electrode plate in the horizontal direction to evenly and quickly apply the conductive paste on the electrode plate during the reciprocating movement of the conductive paste bottle.
[0016] Furthermore, the inner walls of the first clamping block and the second clamping block are both provided with rubber pads, and the outer surfaces of the rubber pads are provided with anti-slip grooves.
[0017] The provision of the rubber pad and the anti-slip grooves can increase the friction between the handle and the handle, thereby improving the fixing effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;
[0019] Figure 2 This is a schematic diagram of the regional structure of the fixed plate and the L-shaped plate in the present utility model;
[0020] Figure 3It is a structural diagram of the moving mechanism in the utility model;
[0021] Figure 4 for Figure 2 A is an enlarged schematic diagram.
[0022] In the figure: 100, defibrillator body; 101, electrode pads; 102, handle; 103, fixing plate; 104, L-shaped plate; 105, tapered tube; 106, positioning tube; 107, conductive paste bottle; 108, electric push rod; 109, pressure plate; 110, connecting plate; 200, fixing mechanism; 201, first clamping block; 202, second clamping block; 203, bolt; 300, moving mechanism; 301, mounting plate; 302, threaded rod; 303, driving block; 304, motor; 400, sealing cap; 500, switch; 600, rubber pad. DETAILED DESCRIPTION
[0023] The present invention is described in detail below with reference to the accompanying drawings.
[0024] like Figure 1-4 As shown, a defibrillator storage device includes a defibrillator body 100, which is provided with two electrode pads 101. A handle 102 is mounted on the upper surface of the defibrillator body 100. A fixing plate 103 is mounted on the outer side of the handle 102 via a fixing mechanism 200. An L-shaped plate 104 is mounted on the end of the fixing plate 103 via a moving mechanism 300. A positioning tube 106 and a tapered tube 105 are mounted on the outer surface of the L-shaped plate 104 from top to bottom, respectively. A conductive paste bottle 107 is disposed inside the positioning tube 106 and the tapered tube 105. An electric push rod 108 is mounted on the outer surface of the L-shaped plate 104. A pressure plate 109 is mounted on the end of the telescopic end of the electric push rod 108. A connecting plate 110 is connected between the positioning tube 106 and the tapered tube 105.
[0025] When in use, the medical staff installs the fixing plate 103 on the outside of the handle 102 through the fixing mechanism 200, and then inserts the conductive paste bottle 107 upside down into the conical tube 105 and the positioning tube 106. The conductive paste bottle 107 can be carried together with the defibrillator body 107, thereby avoiding forgetting to carry the conductive paste bottle 107 during transportation, which leads to a passive situation when the patient's condition changes during transportation and needs to be defibrillated. When it is necessary to defibrillate the patient, the medical staff holds the two electrode plates 101 in their hands respectively, and holds the electrode plates 101 in a position where the patient is in a safe place. The conductive paste bottle 107 is placed under the conductive paste bottle 107, and then the electric push rod 108 is started. The electric push rod 108 drives the pressure plate 109 to squeeze the conductive paste bottle 107, so that the conductive paste can be squeezed out and applied to the electrode plate 101, and through the setting of the moving mechanism 300, the conductive paste bottle 107 can be driven to reciprocate. At this time, the electrode plate 101 is slowly moved in the horizontal direction. During the reciprocating movement of the conductive paste bottle 107, the conductive paste can be evenly and quickly applied to the electrode plate 101, so that the patient can be defibrillated quickly, thereby improving the success rate of rescue.
[0026] Specifically, the fixing mechanism 200 includes a first clamping block 201, a second clamping block 202, and a bolt 203. The first clamping block 201 is installed at the end of the fixing plate 103, and the second clamping block 202 is connected to the first clamping block 201 via the bolt 203. During installation, the first clamping block 201 is clamped on one side of the handle 102, and the second clamping block 202 is clamped on the other side of the handle 102. The two are then fixed together using the bolt 203, thereby achieving the purpose of installing the fixing plate 103 and allowing the conductive paste bottle 107 to be carried together with the defibrillator body 100.
[0027] Specifically, the moving mechanism 300 includes a mounting plate 301 installed on the end of the fixed plate 103 away from the first clamping block 201, the internal rotation of the mounting plate 301 is connected to the threaded rod 302, the outer surface of the threaded rod 302 is installed with a driving block 303, and the driving block 303 is connected to the L-shaped plate 104, the outer surface of the mounting plate 301 is installed with a motor 304, and the output shaft of the motor 304 is connected to the threaded rod 302. When the motor 304 is started, its output shaft drives the threaded rod 302 to rotate, so that the driving block 303 moves along the surface of the threaded rod 302 and drives the conductive paste bottle 107 to move. When the medical staff holds the electrode plate 101 and is under the conductive paste bottle 107, they only need to slowly move the electrode plate 101 in the horizontal direction to evenly and quickly apply the conductive paste on the electrode plate 101 during the reciprocating movement of the conductive paste bottle 107.
[0028] Specifically, a sealing cap 400 is provided at the end of the conductive paste bottle 107. By setting the sealing cap 400, the end of the conductive paste bottle 107 can be sealed to prevent the conductive paste from flowing out due to gravity. When in use, only the sealing cap 400 needs to be pulled off.
[0029] Specifically, a switch 500 is provided at the bottom of the L-shaped plate 104, and the switch 500 is electrically connected to the electric push rod 108 and the motor 304. Since the switch 500 is electrically connected to the electric push rod 108 and the motor 304, when the medical staff holds the electrode plate 101 under the conductive paste bottle 107, they only need to press the switch 500 to drive the electric push rod 108 and the motor 304 to start at the same time. The electric push rod 108 starts to squeeze the conductive paste bottle 107, thereby squeezing out the conductive paste, and the motor 304 starts to drive the conductive paste bottle 107 to move back and forth. The medical staff only needs to slowly move the electrode plate 101 in the horizontal direction to evenly and quickly apply the conductive paste on the electrode plate 101 during the reciprocating movement of the conductive paste bottle 107.
[0030] Specifically, the inner walls of the first clamping block 201 and the second clamping block 202 are both provided with rubber pads 600, and the outer surfaces of the rubber pads 600 are provided with anti-slip grooves. The provision of the rubber pads 600 and the anti-slip grooves can increase the friction between them and the handle 102, thereby improving the fixing effect.
[0031] The above is a detailed description of the present invention in conjunction with specific embodiments, and the specific implementation methods of the present invention are not limited to these descriptions. For those skilled in the art of the present invention, if a number of equivalent substitutions or obvious modifications are made without departing from the concept of the present invention and have the same performance or use, they should be considered to fall within the scope of patent protection of the present invention as determined by the submitted claims.
Claims
1. A storage device for a defibrillator, comprising a defibrillator body (100), characterized in that: Two electrode plates (101) are provided on the defibrillator body (100), a handle (102) is installed on the upper surface of the defibrillator body (100), a fixing plate (103) is installed on the outer side of the handle (102) via a fixing mechanism (200), an L-shaped plate (104) is installed on the end of the fixing plate (103) via a moving mechanism (300), a positioning tube (106) and a tapered tube (105) are installed on the outer surface of the L-shaped plate (104) from top to bottom, and a conductive paste bottle (107) is provided inside the positioning tube (106) and the tapered tube (105); An electric push rod (108) is installed on the outer surface of the L-shaped plate (104), a pressing plate (109) is installed at the end of the telescopic end of the electric push rod (108), and a connecting plate (110) is connected between the positioning tube (106) and the tapered tube (105).
2. A defibrillator storage device according to claim 1, characterized in that: The fixing mechanism (200) comprises a first clamping block (201), a second clamping block (202) and a bolt (203); the first clamping block (201) is mounted on the end of the fixing plate (103); and the second clamping block (202) is connected to the first clamping block (201) via the bolt (203).
3. A defibrillator storage device according to claim 2, characterized in that: The moving mechanism (300) comprises a mounting plate (301) mounted on an end of the fixing plate (103) away from the first clamping block (201); a threaded rod (302) is rotatably connected to the interior of the mounting plate (301); a driving block (303) is mounted on the outer surface of the threaded rod (302); and the driving block (303) is connected to the L-shaped plate (104); a motor (304) is mounted on the outer surface of the mounting plate (301); and an output shaft of the motor (304) is connected to the threaded rod (302).
4. A defibrillator storage device according to claim 3, characterized in that: The end of the conductive paste bottle (107) is provided with a sealing cap (400).
5. The storage device for a defibrillator according to claim 4, characterized in that: A switch (500) is provided at the bottom of the L-shaped plate (104), and the switch (500) is electrically connected to the electric push rod (108) and the motor (304).
6. The defibrillator storage device according to claim 5, characterized in that: The inner walls of the first clamping block (201) and the second clamping block (202) are both provided with rubber pads (600), and the outer surfaces of the rubber pads (600) are provided with anti-slip grooves.