Electrocardiograph lead wire arranging mechanism
By designing the lead wire sorting mechanism of the electrocardiogram machine, using technical means such as adjustment components and grating detection modules, the problems of confusion and entanglement of wire sorting are solved, and automated sorting and efficient use are achieved.
Patent Information
- Application Number
- CN202510114458.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-24
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing electrocardiogram lead wire sorting mechanism needs to be manually sorted after use, resulting in messy and easy wrapping of the wires, affecting subsequent use.
A lead wire sorting mechanism of the electrocardiogram machine is designed, including an upper substrate, a frame, an adjustment assembly and a lower substrate. By combining the tapered sleeve and a vertical rod of the adjustment assembly, the tapered sleeve moves to prevent wire entanglement, and a grating detection module and air cushion are installed in the lower substrate to detect and define the state of the wire to avoid entanglement.
Automatically sorting of wires is realized to avoid entanglement of wires, reduce the time and labor intensity of manual sorting, and improve the efficiency and convenience of equipment use.
Smart Images

Figure CN119924845A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of line arrangement equipment, in particular to an electrocardiograph lead line arrangement mechanism. Background Art
[0002] The electrocardiograph is a conventional electronic instrument that can automatically record the bioelectric signals generated by the myocardial excitation during cardiac activity.
[0003] The probes in the prior art (4 limb probes and 6 chest probes) are usually connected to an electrocardiograph through wires and transmit the monitored signals through the wires, thereby completing the recording of physiological electrical signals generated when the heart beats.
[0004] Since there are multiple probes and wires, the length of the wires needs to be longer than the distance between the electrocardiograph and the bed. In the prior art, a bracket for clamping the probes is usually provided on the table on which the electrocardiograph is placed. However, the user needs to spend time to sort out the wires after use. Otherwise, multiple wires will naturally fall back and cause clutter, increasing the possibility of entanglement between the wires, thereby affecting the next use. Summary of the invention
[0005] 1. Technical issues to be resolved
[0006] In view of the deficiencies in the prior art, the present invention provides an electrocardiograph lead wire arranging mechanism, which solves the problems raised in the above-mentioned background technology.
[0007] (II) Technical solution
[0008] To achieve the above objectives, the present invention is implemented through the following technical solutions: an electrocardiograph lead wire arranging mechanism, multiple arranging mechanisms are arranged from top to bottom, multiple wires pass through the multiple arranging mechanisms in sequence, including an upper substrate, a frame, an adjustment assembly and a lower substrate, the frame is arranged at the top of the upper substrate, the adjustment assembly is arranged at the bottom of the upper substrate, the lower substrate is arranged below the adjustment assembly, and the wires pass through the frame, the upper substrate, the adjustment assembly and the lower substrate in sequence from top to bottom.
[0009] The adjustment component includes a vertical rod, a driving part and a conical sleeve. The vertical rod is vertically arranged at the bottom of the upper base plate, the driving part is arranged outside the vertical rod, the conical sleeve is slidably matched with the vertical rod, and the conical sleeve can move up and down along the length direction of the vertical rod. During the movement of the conical sleeve, the wires are prevented from being entangled with each other.
[0010] A detection component is arranged in the lower substrate, and the detection component is used to identify whether there is entanglement between the wires.
[0011] The frame is connected to a limiting assembly, and the limiting assembly is used to prevent the wires from getting close to each other and getting entangled.
[0012] Preferably, the detection component includes a grating detection module, a positioning block, and an outer shell. A plurality of chambers are opened in the lower substrate, and the plurality of chambers correspond one-to-one to a plurality of wires. The wires pass through the chambers. The grating detection module is symmetrically arranged in the chamber up and down. The outer shell is connected to the positioning block at the center, and the outer shell is wrapped around the wires. The outer shell is located between the two grating detection modules.
[0013] Preferably, two air cushions are connected to the inner wall of the lower substrate chamber, the air cushions are arranged symmetrically, a positioning piece is connected to the side of the air cushion facing the positioning block, and a hose is connected to the end of the lower substrate, which is connected to the air cushion.
[0014] Preferably, the limit assembly includes a lower magnetic strip, an upper magnetic strip, a spring and a sphere, the frame legs are vertically downwardly connected to the top of the upper baseboard, the lower magnetic strip is symmetrically arranged front and back on the front and back sides of the frame, the upper magnetic strip is symmetrically arranged front and back on the front and back sides of the frame, the lower magnetic strip is located below the upper magnetic strip, the sphere is connected to the wire, the front and back of the sphere are connected to iron bars, the iron bars extend between the lower magnetic strip and the upper magnetic strip, the end of the magnetic strip is slidably matched with the frame legs, the lower end of the spring is connected to the end of the upper magnetic strip, and the upper end of the spring is connected to the frame.
[0015] Preferably, the front and rear side edges of the top of the upper substrate are connected to an electromagnet module, the N pole of the electromagnet module faces upward, the N pole of the lower magnetic strip faces downward, and the S pole of the upper magnetic strip faces downward.
[0016] Preferably, a slide groove is provided along the length direction of the vertical rod body, a motor is connected to the bottom of the vertical rod, a positioning wheel is connected to the outside of the vertical rod, the vertical rod is slidably matched with a base, a steel wire is connected to the motor drive shaft, the steel wire passes through the positioning wheel and extends into the slide groove and is finally connected to the base, and the end of the base is connected to a conical sleeve.
[0017] Preferably, two rollers are pivotally connected to the front end of the base, one of which is located in the slide groove and the other is located outside the vertical rod, and the vertical rod is clamped by the two rollers.
[0018] (III) Beneficial effects
[0019] The present invention provides an electrocardiograph lead wire arrangement mechanism, which has the following beneficial effects:
[0020] 1. The electrocardiograph lead wire arrangement mechanism is composed of an upper base plate, a frame, an adjustment component, and a lower base plate. The frame is slidably matched with two magnetic strips, which are used to restrict and fix the wire segments with spheres. The adjustment component is used to comb the wire sections to avoid getting entangled due to close proximity. A grating detection module, an air cushion, a positioning sheet, a positioning block, and an outer shell are set up in the lower base plate to detect whether the wires are entangled, and also to limit the wire sections. By limiting the wires in multiple sections, the wires can be prevented from getting entangled with each other, replacing manual combing. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a three-dimensional diagram of the structure of the present invention;
[0022] Figure 2 It is a front view of the structure of the present invention;
[0023] Figure 3 For the present invention Figure 1 A magnified view of the structure at center;
[0024] Figure 4 It is a schematic diagram of the local structure of the present invention;
[0025] Figure 5 For the present invention Figure 4 A magnified view of the structure at B in the middle;
[0026] Figure 6 It is a schematic diagram of the internal structure of the lower substrate of the present invention.
[0027] In the figure: 1 upper base plate, 11 electromagnet module, 2 frame, 21 lower magnetic strip, 22 upper magnetic strip, 23 spring, 3 adjustment component, 31 vertical rod, 311 slide, 32 motor, 33 steel wire, 34 positioning wheel, 4 lower base plate, 41 hose, 42 grating detection module, 43 air cushion, 44 positioning sheet, 5 sphere, 51 iron rod, 6 positioning block, 7 outer shell, 8 base, 81 roller, 9 conical sleeve. DETAILED DESCRIPTION
[0028] The embodiment of the present invention provides an electrocardiograph lead wire arrangement mechanism, such as Figure 1-6 As shown, multiple organizing mechanisms are arranged from top to bottom, and multiple wires pass through the multiple organizing mechanisms in sequence, including an upper substrate 1, a frame 2, an adjustment component 3 and a lower substrate 4. The frame 2 is fixedly installed on the top of the upper substrate 1, the adjustment component 3 is fixedly installed on the bottom of the upper substrate 1, and the lower substrate 4 is fixedly installed below the adjustment component 3. The wires pass through the frame 2, the upper substrate 1, the adjustment component 3 and the lower substrate 4 in sequence from top to bottom.
[0029] The adjustment assembly 3 includes a vertical rod 31, a driving part and a conical sleeve 9. The vertical rod 31 is vertically welded to the bottom of the upper base plate 1. The driving part is arranged outside the vertical rod 31. The conical sleeve 9 is slidably matched with the vertical rod 31. The conical sleeve 9 can move up and down along the length direction of the vertical rod 31. During the movement of the conical sleeve 9, the wires are prevented from being entangled with each other.
[0030] Before work, the probe is first placed on a fixed bracket of a fixed device to allow multiple wires to hang naturally, and then the driving unit is used to control the cone sleeve 9 to move up and down. Since the moving direction of the cone sleeve 9 is limited, the cone sleeve 9 will sort the wires during the movement and keep the wires away from each other.
[0031] A detection component is disposed in the lower substrate 4, and the detection component is used to identify whether there is entanglement between the wires.
[0032] The frame 2 is connected to a limiting assembly, and the limiting assembly is used to prevent the wires from getting entangled due to being close to each other.
[0033] The detection component includes a grating detection module 42, a positioning block 6, and an outer shell 7. A plurality of chambers are opened in the lower substrate 4, and the plurality of chambers correspond to a plurality of wires one by one. The wires pass through the chambers. The grating detection module 42 is fixedly installed in the chamber symmetrically up and down. The center of the outer shell 7 is fixedly connected to the positioning block 6. The outer shell 7 is wrapped around the wires, and the outer shell 7 is located between the two grating detection modules 42.
[0034] Two air cushions 43 are fixedly installed on the inner wall of the chamber of the lower substrate 4. The air cushions 43 are arranged symmetrically. A positioning piece 44 is fixedly installed on the side of the air cushion 43 facing the positioning block 6. A hose 41 is fixedly installed on the end of the lower substrate 4. The hose 41 is connected to the air cushion 43.
[0035] Working principle: After placing all the probes, start the grating detection module 42. If the wire hangs naturally and is not in a straight state, the edge of the outer shell 7 contacts the grating detection module 42, and the grating detection module 42 feeds back information to the computer terminal.
[0036] The computer terminal controls the movement of the conical sleeve 9 according to the feedback information, so that the wire falls straight, and then injects air into the air cushion 43 through a hose 41. The air cushion 43 expands to allow the two positioning pieces 44 to clamp the positioning block 6, thereby achieving the effect of fixing and restricting the wire.
[0037] The limiting assembly includes a lower magnetic strip 21, an upper magnetic strip 22, a spring 23 and a sphere 5. The legs of the frame 2 are vertically downwardly welded to the top of the upper base plate 1. The lower magnetic strip 21 is symmetrically arranged on the front and rear sides of the frame 2, and the upper magnetic strip 22 is symmetrically arranged on the front and rear sides of the frame 2. The lower magnetic strip 21 is located below the upper magnetic strip 22. The sphere 5 is fixedly installed together with the wire. Iron bars 51 are fixedly installed on the front and back of the sphere 5. The iron bar 51 extends between the lower magnetic strip 21 and the upper magnetic strip 22. The end of the magnetic strip slides with the legs of the frame 2. The lower end of the spring 23 is fixedly installed on the end of the upper magnetic strip 22, and the upper end of the spring 23 is fixedly installed on the frame 2.
[0038] The front and rear edges of the top of the upper substrate 1 are connected to the electromagnet module 11, the N pole of the electromagnet module 11 faces upward, the N pole of the lower magnetic strip 21 faces downward, and the S pole of the upper magnetic strip 22 faces downward.
[0039] The lower magnetic strip 21 and the upper magnetic strip 22 attract the iron bar 51, so that the iron bar 51 is always between the two magnetic strips, and the magnetic field of the electromagnet module 11 is greater than the magnetic field of the magnetic strip. When working, the electromagnet module 11 is energized to generate a magnetic field, and the magnetic strip 21 rises under the action of the magnetic force, while the upper magnetic strip 22 falls, and the two magnetic strips clamp the iron bar 51. This plays the role of fixing the wire.
[0040] The sphere 5 allows a certain distance between the wires to exist to a certain extent.
[0041] A slide groove 311 is opened along the length direction of the vertical rod 31, a motor 32 is fixedly installed at the bottom of the vertical rod 31, a positioning wheel 34 is fixedly installed outside the vertical rod 31, the vertical rod 31 is slidably matched with the base 8, and a steel wire 33 is welded to the transmission shaft of the motor 32. The steel wire 33 passes through the positioning wheel 34 and extends into the slide groove 311, and is finally welded to the base 8, and the end of the base 8 is welded to the conical sleeve 9.
[0042] The motor 32 cooperates with the steel wire 33 to lift the base 8 so that the base 8 moves up and down.
[0043] Two rollers 81 are pivotally connected to the front end of the base 8 , wherein one roller 81 is located in the slide slot 311 , and the other roller 81 is located outside the vertical rod 31 . The vertical rod 31 is clamped by the two rollers 81 .
[0044] In summary, the electrocardiograph lead wire arrangement mechanism is composed of an upper substrate 1, a frame 2, an adjustment component 3, and a lower substrate 4. The frame 2 is slidably matched with two magnetic strips, which are used to restrict and fix the wire segments with the sphere 5, and the adjustment component 3 is used to comb the partial area of the wire to avoid getting close to each other and getting entangled. A grating detection module 42, an air cushion 43, a positioning piece 44, a positioning block 6, and an outer shell 7 are set up in the lower substrate 4 to detect whether the wire is entangled, and also to limit the partial area of the wire. By limiting the wires in multiple sections, the effect of avoiding the entanglement of the wires is achieved, instead of manual combing.
[0045] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An electrocardiograph lead wire arranging mechanism, wherein a plurality of arranging mechanisms are arranged from top to bottom, and a plurality of wires pass through the plurality of arranging mechanisms in sequence, characterized in that: The invention comprises an upper substrate (1), a frame (2), an adjustment component (3) and a lower substrate (4), wherein the frame (2) is arranged on the top of the upper substrate (1), the adjustment component (3) is arranged on the bottom of the upper substrate (1), and the lower substrate (4) is arranged below the adjustment component (3); and the wire passes through the frame (2), the upper substrate (1), the adjustment component (3) and the lower substrate (4) in sequence from top to bottom; The adjustment assembly (3) comprises a vertical rod (31), a driving unit and a conical sleeve (9), wherein the vertical rod (31) is vertically arranged at the bottom of the upper base plate (1), the driving unit is arranged outside the vertical rod (31), the conical sleeve (9) and the vertical rod (31) are slidably matched, and the conical sleeve (9) can move up and down along the length direction of the vertical rod (31), and the conical sleeve (9) prevents the wires from being entangled with each other during the movement process; The lower substrate (4) is provided with a detection component, which is used to identify whether there is entanglement between the wires; The frame (2) is connected to a limiting component, and the limiting component is used to prevent the wires from getting close to each other and becoming entangled.
2. The electrocardiograph lead wire arrangement mechanism according to claim 1, characterized in that: The detection component comprises a grating detection module (42), a positioning block (6), and an outer shell (7); a plurality of chambers are provided in the lower substrate (4); the plurality of chambers correspond to a plurality of wires one by one; the wires pass through the chambers; the grating detection module (42) is symmetrically arranged in the chambers; the outer shell (7) is connected to the positioning block (6) at the center; the outer shell (7) is wrapped around the wires; and the outer shell (7) is located between two grating detection modules (42).
3. The electrocardiograph lead wire arrangement mechanism according to claim 2, characterized in that: The inner wall of the chamber of the lower base plate (4) is connected to two air cushions (43), which are arranged symmetrically on both sides. The air cushions (43) are connected to a positioning piece (44) on the side facing the positioning block (6), and the end of the lower base plate (4) is connected to a hose (41), which is connected to the air cushion (43) in a butt connection.
4. The electrocardiograph lead wire arrangement mechanism according to claim 3, characterized in that: The limit assembly comprises a lower magnetic strip (21), an upper magnetic strip (22), a spring (23) and a sphere (5); the support leg of the frame (2) is vertically downwardly connected to the top of the upper base plate (1); the lower magnetic strip (21) is symmetrically arranged on the front and rear sides of the frame (2); the upper magnetic strip (22) is symmetrically arranged on the front and rear sides of the frame (2); the lower magnetic strip (21) is located below the upper magnetic strip (22); the sphere (5) is connected to a wire; the front and rear of the sphere (5) are both connected to an iron rod (51); the iron rod (51) extends between the lower magnetic strip (21) and the upper magnetic strip (22); the end of the magnetic strip is slidably matched with the support leg of the frame (2); the lower end of the spring (23) is connected to the end of the upper magnetic strip (22); and the upper end of the spring (23) is connected to the frame (2).
5. The electrocardiograph lead wire arrangement mechanism according to claim 4, characterized in that: The front and rear edges of the top of the upper substrate (1) are both connected to an electromagnet module (11), the N magnetic pole of the electromagnet module (11) faces upward, the N magnetic pole of the lower magnetic strip (21) faces downward, and the S magnetic pole of the upper magnetic strip (22) faces downward.
6. The electrocardiograph lead wire arrangement mechanism according to claim 5, characterized in that: The vertical rod (31) is provided with a slide groove (311) along the length direction, the bottom of the vertical rod (31) is connected to a motor (32), the outside of the vertical rod (31) is connected to a positioning wheel (34), the vertical rod (31) is slidably matched with a base (8), the transmission shaft of the motor (32) is connected to a steel wire (33), the steel wire (33) passes through the positioning wheel (34) and extends into the slide groove (311), and is finally connected to the base (8), and the end of the base (8) is connected to the conical sleeve (9).
7. The electrocardiograph lead wire arrangement mechanism according to claim 6, characterized in that: The front end of the base (8) is pivotally connected to two rollers (81), one of which is located in the slide groove (311) and the other roller (81) is located outside the vertical rod (31), and the vertical rod (31) is clamped by the two rollers (81).