Traditional Chinese medicine pediatric pulse feeling auxiliary device
By designing an arm width sensing pulse diagnosis assist device including arc-shaped support plate, flexible metal support auxiliary parts and clamping airbags, the problem of inability to adapt to arms of children of different sizes in the prior art is solved, and better fixation effect and pulse diagnosis accuracy are achieved.
Patent Information
- Application Number
- CN202510266789.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-07
- Publication Date
- 2025-05-09
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing pulse diagnosis device cannot effectively adapt to the arms of pediatric patients of different sizes, resulting in poor fixation effect and may cause errors or discomfort.
A traditional Chinese medicine pediatric pulse diagnosis auxiliary device is designed, using arc-shaped support plates, flexible metal support accessories and clamping airbags. Through the arm width sensing component and shaft system, adaptive fixation to children's arms of different sizes is achieved.
The device can automatically adjust the fixing effect according to the size and weight of the patient and child's arms, avoid discomfort and errors caused by too thin or too thick arms, and ensure the normal operation of the pulse diagnosis work.
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Figure CN119949770A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of pediatric pulse diagnosis, and specifically refers to a traditional Chinese medicine pediatric pulse diagnosis auxiliary device. Background Art
[0002] Traditional Chinese Medicine generally refers to the traditional medicine created by the working people of the Han nationality in China, so it is also called Han medicine. It is a discipline that studies human physiology, pathology, diagnosis and prevention of diseases. It carries the experience and theoretical knowledge of the ancient Chinese people in fighting diseases. It is a medical theory system that has gradually formed and developed through long-term medical practice under the guidance of ancient naive materialism and spontaneous dialectical thinking.
[0003] Traditional Chinese medicine diagnosis requires taking the patient's pulse. Some parents worry that Western medicine will affect their children's physical development, so they choose traditional Chinese medicine for treatment when their children are sick. However, because children are naturally active, medical staff or parents holding their children's hands will stimulate their resistance, resulting in poor pulse diagnosis results or even errors. In addition, due to the development, age, and even gender of the patients, the width and weight of their arms are different. Existing pulse diagnosis devices cannot achieve different fixing effects according to different situations. The fixing effect is poor because the patients' arms are too thin, and the clamping effect is too strong because the patients' arms are too thick, which makes the patients uncomfortable. Summary of the invention
[0004] In view of the above situation, in order to overcome the defects of the prior art, the present invention provides a traditional Chinese medicine pediatric pulse diagnosis auxiliary device, which uses an arc-shaped support plate made of rigid material and support auxiliary parts 1 and 2 made of flexible metal material, so that the torsion spring on the rotating shaft connected with flexible control plate 1 and flexible control plate 2 is in a compressed state in the initial state, so that the weight of the patient's arm can be used as a variable to adapt to children of different sizes. At the same time, the squeezed clamping airbag will wrap the forearm of the patient child, thereby playing an auxiliary fixation effect. The airbag made of flexible material will not cause the patient child to feel oppressed, thereby ensuring the normal operation of the pulse diagnosis work.
[0005] The technical solution adopted by the present invention is as follows: A traditional Chinese medicine pediatric pulse diagnosis auxiliary device provided by the present invention comprises an outer tube and an inner cavity, a sliding groove is provided on the inner wall of the outer tube, the sliding grooves are arranged in multiple groups, the multiple groups of sliding grooves are arranged in a ring array, each group of the sliding grooves is slidably connected with a sliding card, the inner cavity is slidably connected to the inner side wall of the outer tube, a sliding card groove is provided on the side wall of the inner cavity, the sliding card groove and the sliding card match, a supporting opening is provided on the side wall of the inner cavity, an inner sliding groove is provided on the outer tube, the inner sliding groove is connected to the sliding groove, an outer sliding groove is provided on the inner side wall of the outer tube, the outer sliding groove is connected to the inner sliding groove, the outer sliding groove matches the supporting opening, and the inner sliding groove The upper slide is connected with an arm width sensing component, and the arm width sensing component runs through the outer slide groove; the child being examined is in the TCM department, sitting in front of the TCM doctor's examination table, putting the arm to be examined into the inner cavity, and at the same time pressing down the arm width sensing component with the arm, and the weight of the patient's arm will act on the arm width sensing component. Due to the development, age, and even gender of the patient's child, the width and weight of his or her arm are different. The arm width sensing component gives different fixing effects to the different arm sizes of the patient's child, preventing the patient's child from having a poor fixing effect due to too thin an arm, and preventing the patient's child from having an excessive clamping effect due to too thick an arm, thereby causing discomfort to the patient's child.
[0006] Furthermore, the arm width sensing component includes a rotating shaft, a flexible control plate 1, a flexible control plate 2, a supporting auxiliary part 1, a supporting auxiliary part 2 and an arc-shaped supporting plate, the rotating shaft is rotatably connected to the inner slide groove, one end of the flexible control plate 1 is arranged on the rotating shaft, the other end of the flexible control plate 1 is arranged on the outer slide groove through the inner slide groove, one end of the flexible control plate 2 is arranged on the rotating shaft, the other end of the flexible control plate 2 is arranged on the outer slide groove through the inner slide groove, the supporting auxiliary part 1 is arranged on the outer slide groove, the supporting auxiliary part 2 is arranged on the outer slide groove, one end of the supporting auxiliary part 1 is connected to the flexible control plate 1, one end of the supporting auxiliary part 2 is connected to the flexible control plate 2, the two ends of the arc-shaped supporting plate are respectively connected to the other ends of the supporting auxiliary part 1 and the supporting auxiliary part 2, the side wall of the flexible control plate 1 is provided with an arc-shaped supporting plate, the arc-shaped supporting plate 1 is slidably connected to the slide groove, and the side wall of the flexible control plate 2 is provided with an arc-shaped supporting plate Control board 2, the arc-shaped control board 2 and the arc-shaped control board 1 are axially symmetrically arranged about the rotating shaft, and an invisible spring is arranged on the inner wall of the sliding groove, and the invisible spring is connected to the sliding card; the inner side of the patient's child's arm is placed into the inner cavity upward, that is, the palm of the patient's child is facing upward, and at this time, the outer side of the patient's child's arm presses down the arc-shaped support board, and the arc-shaped support board is downward under the action of gravity, which will simultaneously drive the supporting auxiliary parts 1 and 2 downward, and at this time, the rotating shaft will recycle the flexible control board 1 and the flexible control board 2. During the recycling process, the arc-shaped control board 1 and the arc-shaped control board 2 will simultaneously drive the sliding cards on both sides to slide from the inside to the outside, and the wider and heavier the patient's arm is, the greater the sliding distance of the sliding card is, and the larger the space given to the patient by multiple sliding cards is, and conversely, the thinner the patient's arm is, the smaller the sliding distance of the sliding card is, and the smaller the space given to the patient by multiple sliding cards is, which just matches the patient's thin arm.
[0007] Furthermore, a torsion spring is provided at the connection between the rotating shaft and the inner slide groove; under the control of the supporting auxiliary component 1 and the supporting auxiliary component 2, the rotating shaft will drive the torsion spring to be in a compressed state in the initial state. Only when the patient's child's arm is extended into the inner cavity and the arc-shaped support plate is pressed down, the supporting auxiliary component 1 and the supporting auxiliary component 2 that slide downward will give the torsion spring on the rotating shaft space to retract.
[0008] Furthermore, the arc-shaped support plate is made of a rigid material, and the supporting auxiliary component 1 and the supporting auxiliary component 2 are made of a flexible metal material.
[0009] Furthermore, an annular groove is provided on the inner wall of the outer cylinder, and an airbag fixing component is provided on the annular groove, and the airbag fixing component includes a clamping ring, and the clamping ring is provided on the annular groove, and an airbag groove is provided on the clamping ring, and the airbag grooves are arranged in multiple groups, and the multiple groups of airbag grooves are arranged in an annular array shape, and a clamping airbag is provided on the airbag groove, and the clamping airbag is made of a flexible material; when the patient child extends his arm into the inner cavity, the Chinese medicine doctor sitting opposite the patient can open the clamping airbag in time, and after the clamping airbag is inflated, when the patient child slides the inner cavity to the end point of the inner wall of the outer cylinder through his arm, the clamping airbag can be squeezed inward, and the squeezed clamping airbag will wrap the patient child's forearm, thereby playing an auxiliary fixation effect, and the airbag made of flexible material will not cause the patient child to feel oppressed.
[0010] Furthermore, a gripping pulse diagnosis component is provided on the inner wall of one end of the outer tube away from the inner cavity, and the gripping pulse diagnosis component includes a lower fixing part, an upper sliding part and a pulse diagnosis part. The lower fixing part is provided on the inner wall of the outer tube, and a pulse diagnosis groove is provided on the inner wall of the outer tube. One end of the pulse diagnosis part is slidably connected to the pulse diagnosis groove, one end of the upper sliding part is slidably connected to the inner wall of the outer tube, and the other end of the upper sliding part is connected to the pulse diagnosis part; the lower fixing part includes a lower support plate, The lower support plate 2 and the lower gripping rod, the lower support plate 1 is arranged on the inner side wall of the outer cylinder, the lower support plate 2 is arranged on the inner side wall of the outer cylinder, the lower support plate 1 and the lower support plate 2 are arranged axially symmetrically, one end of the lower gripping rod is arranged on the lower support plate 1, and the other end of the lower gripping rod is arranged on the lower support plate 2, the upper sliding member includes the upper support plate 1, the upper support plate 2 and the upper gripping rod, the upper support plate 1 is slidably connected to the inner side wall of the outer cylinder, and the upper support plate 2 is slidably connected The upper support plate 1 and the upper support plate 2 are connected to the inner side wall of the outer cylinder, the upper support plate 1 and the upper support plate 2 are arranged axially symmetrically, one end of the upper grasping rod is arranged on the upper support plate 1, and the other end of the upper grasping rod is arranged on the upper support plate 2. An arc-shaped elastic member 1 is arranged on the outer bottom wall of the upper support plate 1, and the arc-shaped elastic member 1 is connected to the outer upper wall of the lower support plate 1. An arc-shaped elastic member 2 is arranged on the outer bottom wall of the upper support plate 2, and the arc-shaped elastic member 2 is arranged axially symmetrically with the arc-shaped elastic member 1; when the patient is a child The child's arm is inserted into the inner cavity, and after the clamping airbag starts to operate, the patient's four fingers pass through the lower grasping rod and the inner wall of the outer tube, and then hook the upper grasping rod upwards. At this time, the patient's child's tiger's mouth is aligned with the lower grasping rod, and the thumb hooks the upper grasping rod. At this time, the patient's fingers exert force downward to overcome the elastic force of the arc-shaped elastic part 1 and the arc-shaped elastic part 2, which will cause the upper grasping rod to move downward, and the upper support plates 1 and 2 on both sides will slide along the inner wall of the outer tube, thereby controlling the operation of the pulse diagnosis component.
[0011] Wherein, the upper gripping rod is made of telescopic rod material.
[0012] Furthermore, the pulse diagnosis device includes an arc-shaped pulse diagnosis rod, a limit rod 1, a limit rod 2 and a pulse diagnosis device, the arc-shaped pulse diagnosis rod is arranged on the pulse diagnosis groove, the limit rod 1 is slidably connected to the arc-shaped pulse diagnosis rod, the limit rod 1 is connected to the upper support plate 1, the limit rod 2 is slidably connected to the arc-shaped pulse diagnosis rod, the limit rod 2 is connected to the upper support plate 2, the pulse diagnosis device is slidably connected to the arc-shaped pulse diagnosis rod, and a pulse diagnosis spring is arranged in the pulse diagnosis device, and the pulse diagnosis spring is connected to the arc-shaped pulse diagnosis rod; the pulse diagnosis spring in the initial state is in an expanded state, and the pulse diagnosis device is controlled by the limit rod 1 and the limit rod 2 and will not be exposed, and when the upper grasping rod moves downward and the upper support plate 1 and the upper support plate 2 on both sides slide along the inner wall of the outer tube, the pulse diagnosis spring returns to its original state through the reset force, driving the pulse diagnosis device to move downward, thereby making the pulse diagnosis device operate to perform pulse diagnosis.
[0013] Furthermore, the elastic coefficient of the arc-shaped elastic member 1 is the same as the elastic coefficient of the arc-shaped elastic member 2, and the elastic coefficient of the pulse diagnosis spring is smaller than the elastic coefficient of the arc-shaped elastic member 1.
[0014] Furthermore, a support member is provided on the outer wall of the outer cylinder.
[0015] The beneficial effects achieved by the present invention using the above structure are as follows: (1) The device uses an arc-shaped support plate made of rigid material and support auxiliary parts 1 and 2 made of flexible metal material, so that the torsion spring on the rotating shaft connected to the flexible control plate 1 and the flexible control plate 2 is in a compressed state in the initial state, so that the weight of the patient's arm can be used as a variable to prevent the patient's child from having a poor fixation effect due to his or her thin arms, and to prevent the patient's child from having an excessive clamping effect due to his or her thick arms, thereby causing the patient to feel uncomfortable; (2) When the rotating shaft retracts the flexible control plate 1 and the flexible control plate 2, during the retraction process, the arc control plate 1 and the arc control plate 2 will simultaneously drive the sliding cards on both sides to slide from the inside to the outside. The wider and heavier the patient's arms are, the greater the sliding distance of the sliding cards is, and the larger the space given to the patient by the multiple sliding cards is. Conversely, the thinner the patient's arms are, the smaller the sliding distance of the sliding cards is, and the smaller the space given to the patient by the multiple sliding cards is, which just matches the patient's thin arms, thereby adapting to children of different sizes; (3) At the same time, a torsion spring with a smaller elastic coefficient can be used for diagnosing the pulse of infants, and a torsion spring with a larger elastic coefficient can be used for diagnosing the pulse of adolescents, thereby providing different fixing effects according to the different arm sizes of the patients; (4) After the clamping airbag is inflated, when the patient slides the inner cavity to the end point of the inner wall of the outer tube through his arm, the clamping airbag can be squeezed inward, and the squeezed clamping airbag will wrap the patient's forearm, playing an auxiliary fixation effect. The flexible material of the airbag will not cause the patient to feel oppressive; (5) In the initial state, the pulse diagnosis spring is in an expanded state, and the pulse diagnosis device is controlled by limit rod 1 and limit rod 2 and will not be exposed. The upper gripping rod moves downward, and the pulse diagnosis spring returns to its original state through the reset force, driving the pulse diagnosis device to move downward, thereby enabling the pulse diagnosis device to operate and perform pulse diagnosis work, thereby ensuring the operation of the pulse diagnosis work. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 A schematic diagram of the three-dimensional structure of the TCM pediatric pulse diagnosis auxiliary device provided by the present invention Figure 1 ; Figure 2 A schematic diagram of the three-dimensional structure of the TCM pediatric pulse diagnosis auxiliary device provided by the present invention Figure 1 ; Figure 3 for Figure 1 The main view of Figure 4 for Figure 1 Rear view of Figure 5 A schematic diagram of the three-dimensional structure of the inner cavity provided by the present invention; Figure 6 A front cross-sectional view of the outer cylinder provided by the present invention; Figure 7 A schematic diagram of a supporting auxiliary member 1 and a supporting auxiliary member 2 provided by the present invention; Figure 8 A cross-sectional view of the grasping pulse diagnosis assembly provided by the present invention; Fig. 9 It is a schematic diagram of the three-dimensional structure of the airbag fixing assembly; Fig.10 A partial cross-sectional view of the sliding groove.
[0017] Among them, 1. outer cylinder, 2. inner cavity, 3. sliding groove, 4. sliding card, 5. sliding card slot, 6. support port, 7. inner slide groove, 8. outer slide groove, 9. arm width sensing component, 10. rotating shaft, 11. flexible control board 1, 12. flexible control board 2, 13. support auxiliary component 1, 14. support auxiliary component 2, 15. arc support plate, 16. arc control board 1, 17. arc control board 2, 18. invisible spring, 19. torsion spring, 20. annular groove, 21. airbag fixing component, 22. clamping ring , 23. Airbag groove, 24. Clamping airbag, 25. Gripping pulse diagnosis component, 26. Lower fixing part, 27. Upper sliding part, 28. Pulse diagnosis part, 29. Pulse diagnosis groove, 30. Lower support plate one, 31. Lower support plate two, 32. Lower gripping rod, 33. Upper support plate one, 34. Upper support plate two, 35. Upper gripping rod, 36. Arc-shaped elastic part one, 37. Arc-shaped elastic part two, 38. Arc-shaped pulse diagnosis rod, 39. Limit rod one, 40. Limit rod two, 41. Pulse diagnosis device, 42. Pulse diagnosis spring, 43. Support part.
[0018] The accompanying drawings are used to provide further understanding of the present invention and constitute a part of the specification. They are used to explain the present invention together with the embodiments of the present invention and do not constitute a limitation of the present invention. DETAILED DESCRIPTION
[0019] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments; based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0020] In the description of the present invention, it should be understood that terms such as “upper”, “lower”, “front”, “back”, “left”, “right”, “top”, “bottom”, “inside” and “outside” indicating directions or positional relationships are based on the directions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific direction, be constructed and operated in a specific direction, and therefore should not be understood as limiting the present invention.
[0021] like Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 and Figure 7As shown, a TCM pediatric pulse diagnosis auxiliary device provided by the present invention comprises an outer tube 1 and an inner cavity 2, a sliding groove 3 is provided on the inner wall of the outer tube 1, the sliding grooves 3 are arranged in multiple groups, and the multiple groups of sliding grooves 3 are arranged in a ring array, and each group of the sliding grooves 3 is slidably connected with a sliding card 4, the inner cavity 2 is slidably connected to the inner side wall of the outer tube 1, a sliding card groove 5 is provided on the side wall of the inner cavity 2, and the sliding card groove 5 matches the sliding card 4, a supporting opening 6 is provided on the side wall of the inner cavity 2, an inner sliding groove 7 is provided on the outer tube 1, and the inner sliding groove 7 is connected to the sliding groove 3, an outer sliding groove 8 is provided on the inner side wall of the outer tube 1, and the outer sliding groove 8 is connected to the inner sliding groove 7, and the outer sliding groove 8 matches the supporting opening 6, An arm width sensing component 9 is slidably connected to the inner slide groove 7, and the arm width sensing component 9 is arranged through the outer slide groove 8; the child being examined is in the TCM department, sitting in front of the TCM doctor's examination table, and the arm to be examined is placed in the inner cavity 2. At the same time, the arm width sensing component 9 is pressed down by the arm, and the weight of the patient's arm will act on the arm width sensing component 9. Due to the development, age, and even gender of the patient's child, the width and weight of his or her arm are different. The arm width sensing component 9 gives different fixing effects to the different arm sizes of the patient's child, preventing the patient's child from having a poor fixing effect due to too thin an arm, and preventing the patient's child from having an excessive clamping effect due to too thick an arm, thereby causing the patient to feel uncomfortable.
[0022] like Figure 3 , Figure 4 , Figure 5 , Figure 6 and Figure 7As shown, the arm width sensing component 9 includes a rotating shaft 10, a flexible control board 11, a flexible control board 2 12, a supporting auxiliary piece 13, a supporting auxiliary piece 2 14 and an arc-shaped supporting plate 15, wherein the rotating shaft 10 is rotatably connected to the inner slide groove 7, one end of the flexible control board 11 is arranged on the rotating shaft 10, and the other end of the flexible control board 11 is arranged on the outer slide groove 8 through the inner slide groove 7, one end of the flexible control board 2 12 is arranged on the rotating shaft 10, and the other end of the flexible control board 2 12 is arranged on the outer slide groove 8 through the inner slide groove 7, and the supporting auxiliary piece 13 is arranged on the inner slide groove 7. On the outer slide groove 8, the supporting auxiliary member 2 14 is arranged on the outer slide groove 8, one end of the supporting auxiliary member 13 is connected to the flexible control plate 11, one end of the supporting auxiliary member 2 14 is connected to the flexible control plate 2 12, and the two ends of the arc support plate 15 are respectively connected to the other ends of the supporting auxiliary member 13 and the supporting auxiliary member 2 14, and the side wall of the flexible control plate 11 is provided with an arc control plate 16, and the arc control plate 16 is slidably connected to the sliding groove 3, and the side wall of the flexible control plate 2 12 is provided with an arc control plate 2 17, and the arc control The plate 2 17 and the arc control plate 1 16 are axially symmetrically arranged about the rotating shaft 10, and an invisible spring 18 is arranged on the inner wall of the sliding groove 3, and the invisible spring 18 is connected to the sliding card 4, and the arc support plate 15 is made of a rigid material, and the supporting auxiliary piece 1 13 and the supporting auxiliary piece 2 14 are made of a flexible metal material; the inner side of the patient's child's arm is placed upward into the inner cavity 2, that is, the palm of the patient's child is facing upward, and at this time, the outer side of the patient's child's arm presses down the arc support plate 15, and the arc support plate 15 is downward under the action of gravity, which will simultaneously drive the supporting auxiliary piece 1 13 and The supporting auxiliary part 2 14 is downward, and the rotating shaft 10 will retract the flexible control board 1 11 and the flexible control board 2 12. During the retraction process, the arc control board 1 16 and the arc control board 2 17 will simultaneously drive the sliding cards 4 on both sides to slide from the inside to the outside. The wider and heavier the patient's arms are, the greater the sliding distance of the sliding card 4 is, and the larger the space given to the patient by multiple sliding cards 4 is. On the contrary, the thinner the patient's arms are, the smaller the sliding distance of the sliding card 4 is, and the smaller the space given to the patient by multiple sliding cards 4 is, which just matches the patient's thin arms.
[0023] like Figure 3 and Figure 4 As shown, a torsion spring 19 is provided at the connection between the rotating shaft 10 and the inner slide groove 7; controlled by the supporting auxiliary part 13 and the supporting auxiliary part 2 14, the rotating shaft 10 will drive the torsion spring 19 to be in a compressed state in the initial state. Only when the patient's child's arm is inserted into the inner cavity 2 and the arc-shaped support plate 15 is pressed down, the supporting auxiliary part 13 and the supporting auxiliary part 2 14 that slide downward will give the torsion spring 19 on the rotating shaft 10 space to retract.
[0024] like Figure 1, Figure 2 and Fig. 9 As shown, an annular groove 20 is provided on the inner wall of the outer tube 1, and an airbag fixing component 21 is provided on the annular groove 20. The airbag fixing component 21 includes a clamping ring 22, and the clamping ring 22 is provided on the annular groove 20. An airbag groove 23 is provided on the clamping ring 22, and the airbag grooves 23 are arranged in multiple groups, and the multiple groups of airbag grooves 23 are arranged in an annular array. A clamping airbag 24 is provided on the airbag groove 23, and the clamping airbag 24 is made of a flexible material; when the patient child extends his arm into the inner cavity 2, the traditional Chinese medicine doctor sitting opposite the patient can open the clamping airbag 24 in time. After the clamping airbag 24 is inflated, when the patient child slides the inner cavity 2 to the end point of the inner wall of the outer tube 1 through his arm, the clamping airbag 24 can be squeezed inward, and the squeezed clamping airbag 24 will wrap the forearm of the patient child, thereby playing an auxiliary fixation effect, and the airbag made of flexible material will not cause the patient child to feel oppressive.
[0025] like Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 7 and Figure 8As shown, a grasping pulse diagnosis component 25 is provided on the inner wall of the end of the outer tube 1 away from the inner cavity 2, and the grasping pulse diagnosis component 25 includes a lower fixing member 26, an upper sliding member 27 and a pulse diagnosis member 28. The lower fixing member 26 is provided on the inner wall of the outer tube 1, and a pulse diagnosis groove 29 is provided on the inner wall of the outer tube 1. One end of the pulse diagnosis member 28 is slidably connected to the pulse diagnosis groove 29, and one end of the upper sliding member 27 is slidably connected to the inner wall of the outer tube 1, and the other end of the upper sliding member 27 is connected to the pulse diagnosis member 28; the lower fixing member 26 includes a lower support plate 30, a lower support plate 31, and a lower support plate 32. The lower support plate 1 30 is arranged on the inner wall of the outer cylinder 1, the lower support plate 2 31 is arranged on the inner wall of the outer cylinder 1, the lower support plate 1 30 and the lower support plate 2 31 are arranged axially symmetrically, one end of the lower gripping rod 32 is arranged on the lower support plate 1 30, and the other end of the lower gripping rod 32 is arranged on the lower support plate 2 31, the upper sliding member 27 includes an upper support plate 1 33, an upper support plate 2 34 and an upper gripping rod 35, the upper support plate 1 33 is slidably connected to the inner wall of the outer cylinder 1, and the upper support plate 2 34 is slidably connected to On the inner side wall of the outer cylinder 1, the upper support plate 1 33 and the upper support plate 2 34 are arranged axially symmetrically, one end of the upper grasping rod 35 is arranged on the upper support plate 1 33, and the other end of the upper grasping rod 35 is arranged on the upper support plate 2 34. An arc-shaped elastic member 1 36 is arranged on the outer bottom wall of the upper support plate 1 33, and the arc-shaped elastic member 1 36 is connected to the outer upper wall of the lower support plate 1 30. An arc-shaped elastic member 2 37 is arranged on the outer bottom wall of the upper support plate 2 34, and the arc-shaped elastic member 2 37 is arranged axially symmetrically with the arc-shaped elastic member 1 36. The upper grasping rod 35 is a telescopic rod. Material setting; when the patient's child arm is inserted into the inner cavity 2 and the clamping airbag 24 starts to operate, the patient's four fingers pass through the lower grasping rod 32 and the inner wall of the outer tube 1, and then hook the upper grasping rod 35 upwards. At this time, the patient's child's tiger's mouth is aligned with the lower grasping rod 32, and the thumb hooks the upper grasping rod 35. At this time, the patient's fingers exert force downward to overcome the elastic force of the arc-shaped elastic member 1 36 and the arc-shaped elastic member 2 37, which will cause the upper grasping rod 35 to move downward, and the upper support plates 1 33 and 2 34 on both sides will slide along the inner wall of the outer tube 1, thereby controlling the operation of the pulse diagnosis component 28.
[0026] like Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 7 and Figure 8As shown, the pulse diagnosis component 28 includes an arc-shaped pulse diagnosis rod 38, a limit rod 1 39, a limit rod 2 40 and a pulse diagnosis device 41. The arc-shaped pulse diagnosis rod 38 is arranged on the pulse diagnosis groove 29. The limit rod 1 39 is slidably connected to the arc-shaped pulse diagnosis rod 38. The limit rod 1 39 is connected to the upper support plate 1 33. The limit rod 2 40 is slidably connected to the arc-shaped pulse diagnosis rod 38. The limit rod 2 40 is connected to the upper support plate 2 34. The pulse diagnosis device 41 is slidably connected to the arc-shaped pulse diagnosis rod 38. A pulse diagnosis spring 42 is arranged in the pulse diagnosis device 41. The pulse diagnosis spring 42 is connected to the arc-shaped pulse diagnosis rod 38. The arc-shaped elastic component 1 The elastic coefficient of 36 is the same as the elastic coefficient of the arc elastic member 37, the elastic coefficient of the pulse diagnosis spring 42 is smaller than the elastic coefficient of the arc elastic member 36, and a support member 43 is provided on the outer wall of the outer tube 1; the pulse diagnosis spring 42 is in an expanded state in the initial state, and the pulse diagnosis device 41 is controlled by the limit rod 39 and the limit rod 40 and will not be exposed. When the upper grasping rod 35 moves downward, the upper support plates 1 33 and the upper support plates 2 34 on both sides slide along the inner wall of the outer tube 1, and the pulse diagnosis spring 42 returns to its original state through the reset force, driving the pulse diagnosis device 41 to move downward, thereby making the pulse diagnosis device 41 operate to perform pulse diagnosis.
[0027] When in use, the child is sitting in front of the doctor's table in the TCM department. The patient's arm is placed in the inner cavity 2 with the inner side of the child's arm facing upward, that is, the palm of the child's hand is facing upward. At this time, the outer side of the patient's arm presses down the arc support plate 15, and the arc support plate 15 is downward under the action of gravity, which will simultaneously drive the supporting auxiliary member 13 and the supporting auxiliary member 2 14 downward. At this time, the rotating shaft 10 will recycle the flexible control plate 11 and the flexible control plate 2 12. During the recycling process, the arc control plate 1 16 and the arc control plate 2 17 will simultaneously drive the sliding cards 4 on both sides to slide from the inside to the outside. The wider and heavier the patient's arm, the greater the sliding distance of the sliding card 4, and the larger the space given to the patient by the multiple sliding cards 4. On the contrary, the thinner the patient's arm, the smaller the sliding distance of the sliding card 4, and the smaller the space given to the patient by the multiple sliding cards 4, which just matches the patient's thin arm. When the child patient's arm is inserted into the inner cavity 2, the clamping airbag 24 starts to operate, and the patient's four fingers pass through the lower gripping rod 32 and the inner wall of the outer tube 1, and then hook the upper gripping rod 35 upwards. At this time, the child patient's tiger's mouth is aligned with the lower gripping rod 32, and the thumb hooks the upper gripping rod 35. At this time, the patient's fingers exert force downwards to overcome the elastic force of the arc-shaped elastic member 1 36 and the arc-shaped elastic member 2 37, which will cause the upper gripping rod 35 to move downwards, and the upper support plates 1 33 and 2 34 on both sides will slide along the inner wall of the outer tube 1, thereby controlling the operation of the pulse diagnosis member 28; In the initial state, the pulse diagnosis spring 42 is in an expanded state, and the pulse diagnosis device 41 is controlled by the limit rod 1 39 and the limit rod 2 40 and will not be exposed. When the upper gripping rod 35 moves downward, the upper support plate 1 33 and the upper support plate 2 34 on both sides slide along the inner wall of the outer tube 1, and the pulse diagnosis spring 42 returns to its original state through the reset force, driving the pulse diagnosis device 41 to move downward, thereby making the pulse diagnosis device 41 operate to perform pulse diagnosis. When the patient's child's arm is inserted into the inner cavity 2, the clamping airbag 24 starts to operate, and the patient's Four fingers pass through the lower gripping rod 32 and the inner wall of the outer tube 1, and then hook the upper gripping rod 35 upwards. At this time, the child patient's tiger's mouth is aligned with the lower gripping rod 32, and the thumb hooks the upper gripping rod 35. At this time, the patient's fingers exert force downward to overcome the elastic force of the arc-shaped elastic member 1 36 and the arc-shaped elastic member 2 37, which will cause the upper gripping rod 35 to move downward, and the upper support plates 1 33 and 2 34 on both sides will slide along the inner wall of the outer tube 1, thereby controlling the operation of the pulse diagnosis component 28 to display the patient's pulse condition.
[0028] The above is the overall workflow of the present invention, and you can repeat this step next time you use it.
[0029] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.
[0030] The present invention and its embodiments are described above, and such description is not restrictive. The drawings show only one embodiment of the present invention, and the actual structure is not limited thereto. In short, if ordinary technicians in the field are inspired by it, without departing from the purpose of the invention, they can design a structure and embodiment similar to the technical solution without creativity, which should belong to the protection scope of the present invention.
Claims
1. A Chinese medicine pediatric pulse diagnosis auxiliary device, characterized in that: The invention comprises an outer cylinder (1) and an inner cavity (2), wherein a sliding groove (3) is provided on the inner wall of the outer cylinder (1), wherein the sliding grooves (3) are arranged in a plurality of groups, wherein the plurality of groups of the sliding grooves (3) are arranged in a ring array, wherein each group of the sliding grooves (3) is slidably connected to a sliding clamp (4), wherein the inner cavity (2) is slidably connected to the inner wall of the outer cylinder (1), wherein a sliding clamp (5) is provided on the side wall of the inner cavity (2), wherein the sliding clamp (5) matches the sliding clamp (4), and wherein the inner cavity (2) A support opening (6) is provided on the side wall, an inner slide groove (7) is provided on the outer tube (1), the inner slide groove (7) is connected to the slide groove (3), an outer slide groove (8) is provided on the inner side wall of the outer tube (1), the outer slide groove (8) is connected to the inner slide groove (7), the outer slide groove (8) matches the support opening (6), an arm width sensing component (9) is slidably connected to the inner slide groove (7), and the arm width sensing component (9) is arranged to pass through the outer slide groove (8).
2. A TCM pediatric pulse diagnosis auxiliary device according to claim 1, characterized in that: The arm width sensing component (9) comprises a rotating shaft (10), a flexible control plate 1 (11), a flexible control plate 2 (12), a supporting auxiliary component 1 (13), a supporting auxiliary component 2 (14) and an arc-shaped supporting plate (15), wherein the rotating shaft (10) is rotatably connected to the inner slide groove (7), one end of the flexible control plate 1 (11) is arranged on the rotating shaft (10), the other end of the flexible control plate 1 (11) is arranged on the outer slide groove (8) through the inner slide groove (7), one end of the flexible control plate 2 (12) is arranged on the rotating shaft (10), the other end of the flexible control plate 2 (12) is arranged on the outer slide groove (8) through the inner slide groove (7), the supporting auxiliary component 1 (13) is arranged on the outer slide groove (8), the supporting auxiliary component 2 (14) is arranged on the outer slide groove (8), and the supporting auxiliary component 1 (13) is arranged on the outer slide groove (8). One end of the auxiliary member 1 (13) is connected to the flexible control plate 1 (11), one end of the supporting auxiliary member 2 (14) is connected to the flexible control plate 2 (12), and two ends of the arc-shaped supporting plate (15) are respectively connected to the other ends of the supporting auxiliary member 1 (13) and the supporting auxiliary member 2 (14). An arc-shaped control plate 1 (16) is provided on the side wall of the flexible control plate 1 (11), and the arc-shaped control plate 1 (16) is slidably connected to the sliding groove (3). An arc-shaped control plate 2 (17) is provided on the side wall of the flexible control plate 2 (12), and the arc-shaped control plate 2 (17) and the arc-shaped control plate 1 (16) are axially symmetrically arranged about the rotating shaft (10). An invisible spring (18) is provided on the inner side wall of the sliding groove (3), and the invisible spring (18) is connected to the sliding clamp (4).
3. A TCM pediatric pulse diagnosis auxiliary device according to claim 2, characterized in that: A torsion spring (19) is provided at the connection between the rotating shaft (10) and the inner sliding groove (7).
4. A TCM pediatric pulse diagnosis auxiliary device according to claim 3, characterized in that: The arc-shaped support plate (15) is made of a rigid material, and the first support auxiliary component (13) and the second support auxiliary component (14) are made of a flexible metal material.
5. A TCM pediatric pulse diagnosis auxiliary device according to claim 4, characterized in that: An annular groove (20) is provided on the inner side wall of the outer tube (1), an airbag fixing assembly (21) is provided on the annular groove (20), the airbag fixing assembly (21) comprises a clamping ring (22), the clamping ring (22) is provided on the annular groove (20), an airbag groove (23) is provided on the clamping ring (22), the airbag grooves (23) are arranged in a plurality of groups, the plurality of groups of airbag grooves (23) are arranged in an annular array, a clamping airbag (24) is provided on the airbag groove (23), and the clamping airbag (24) is made of a flexible material.
6. A TCM pediatric pulse diagnosis auxiliary device according to claim 5, characterized in that: A grasping pulse diagnosis component (25) is provided on the inner wall of one end of the outer tube (1) away from the inner cavity (2), and the grasping pulse diagnosis component (25) comprises a lower fixing member (26), an upper sliding member (27) and a pulse diagnosis member (28), wherein the lower fixing member (26) is provided on the inner wall of the outer tube (1), and a pulse diagnosis groove (29) is provided on the inner wall of the outer tube (1), one end of the pulse diagnosis member (28) is slidably connected to the pulse diagnosis groove (29), and one end of the upper sliding member (27) is slidably connected to the outer tube (1). The inner wall of the outer tube (1), the other end of the upper sliding member (27) is connected to the pulse diagnosis member (28); the lower fixing member (26) comprises a lower support plate 1 (30), a lower support plate 2 (31) and a lower grasping rod (32), the lower support plate 1 (30) is arranged on the inner wall of the outer tube (1), the lower support plate 2 (31) is arranged on the inner wall of the outer tube (1), the lower support plate 1 (30) and the lower support plate 2 (31) are arranged in an axisymmetric manner, and one end of the lower grasping rod (32) is provided The lower support plate (30) is provided on the lower support plate (30), the other end of the lower gripping rod (32) is provided on the lower support plate (31), the upper sliding member (27) comprises an upper support plate (33), an upper support plate (34) and an upper gripping rod (35), the upper support plate (33) is slidably connected to the inner side wall of the outer cylinder (1), the upper support plate (34) is slidably connected to the inner side wall of the outer cylinder (1), the upper support plate (33) and the upper support plate (34) are axially symmetrically arranged, and the upper gripping rod (35 ... upper gripping rod (32) is provided on the lower support plate (31), and the upper gripping rod (35) is provided on the lower support plate (30), the upper gripping rod (35) is provided on the lower support plate (31), and the upper gripping rod (35) is provided on the lower support plate (30), the upper gripping rod (35) is provided on the lower support plate (31), and the upper gripping rod (35) is provided on the lower support plate (31), One end of the gripping rod (35) is arranged on the upper support plate 1 (33), and the other end of the upper gripping rod (35) is arranged on the upper support plate 2 (34). An arc-shaped elastic member 1 (36) is arranged on the outer bottom wall of the upper support plate 1 (33), and the arc-shaped elastic member 1 (36) is connected to the outer upper wall of the lower support plate 1 (30). An arc-shaped elastic member 2 (37) is arranged on the outer bottom wall of the upper support plate 2 (34), and the arc-shaped elastic member 2 (37) is axially symmetrical with the arc-shaped elastic member 1 (36).
7. A TCM pediatric pulse diagnosis auxiliary device according to claim 6, characterized in that: The upper gripping rod (35) is made of a telescopic rod material.
8. A TCM pediatric pulse diagnosis auxiliary device according to claim 7, characterized in that: The pulse diagnosis component (28) comprises an arc-shaped pulse diagnosis rod (38), a limiting rod 1 (39), a limiting rod 2 (40) and a pulse diagnosis device (41). The arc-shaped pulse diagnosis rod (38) is arranged on the pulse diagnosis groove (29). The limiting rod 1 (39) is slidably connected to the arc-shaped pulse diagnosis rod (38). The limiting rod 1 (39) is connected to the upper support plate 1 (33). The limiting rod 2 (40) is slidably connected to the arc-shaped pulse diagnosis rod (38). The limiting rod 2 (40) is connected to the upper support plate 2 (34). The pulse diagnosis device (41) is slidably connected to the arc-shaped pulse diagnosis rod (38). A pulse diagnosis spring (42) is arranged inside the pulse diagnosis device (41). The pulse diagnosis spring (42) is connected to the arc-shaped pulse diagnosis rod (38).
9. A TCM pediatric pulse diagnosis auxiliary device according to claim 8, characterized in that: The elastic coefficient of the arc-shaped elastic member 1 (36) is the same as the elastic coefficient of the arc-shaped elastic member 2 (37), and the elastic coefficient of the pulse diagnosis spring (42) is smaller than the elastic coefficient of the arc-shaped elastic member 1 (36).
10. A TCM pediatric pulse diagnosis auxiliary device according to claim 9, characterized in that: A support member (43) is provided on the outer wall of the outer cylinder (1).