Bioinformatics detection device
Patent Information
- Application Number
- CN202522134965.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-09
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-10-09
AI Technical Summary
[0004]本实用新型的目的是为了克服现有血氧指夹存在的透气性差的问题
[0015]通过上述技术方案,夹持部设置在壳体的内侧并与壳体保持一定的间隙,从而该生物信息检测装置至少形成为双层结构。外层的壳体对内层的夹持部进行支撑和固定,内层的夹持部用于包裹待检测部位,夹持部和壳体之间的间隙能够将夹持部和壳体分隔开,夹持结构夹持待检测部位时,在夹持部与壳体间保留一定间隙,透气结构能够连通间隙和容纳空间,防止壳体封堵透气结构,使得空气能够从透气结构进入到容纳空间,增加容纳空间的透气性,因而可以增大待检测部位与空气的接触面积,从而减少待检测部位由于佩戴生物信息检测装置出现闷热、潮湿及瘙痒等不适感。
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Figure CN224699200U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of bioinformatics detection technology, and specifically to a bioinformatics detection device. Background Technology
[0002] Blood oxygen saturation is the percentage of oxygenated hemoglobin in the blood that is bound to oxygen, relative to the total amount of hemoglobin available for binding. As a type of human bioinformation, it is an important physiological parameter of the respiratory and circulatory systems, reflecting the health of the respiratory and cardiovascular systems and playing a crucial role in the prevention and diagnosis of many diseases. Blood oxygenation devices are used to measure blood oxygen saturation, and blood oxygen finger clips are among the most commonly used devices in medical settings and by individuals. They emit light of a set wavelength that passes through human tissues such as the fingers and is absorbed by a sensor. Because oxygenated hemoglobin and regular hemoglobin have different light absorption rates, blood oxygen saturation can be calculated by determining the absorption ratio of light entering and leaving the fingers.
[0003] Common pulse oximeter clips are fixed to the patient's finger using mechanisms such as clamping or binding. Due to the needs of certain diseases or health monitoring, users may wear pulse oximeter clips continuously for a period of time to achieve continuous, real-time blood oxygen monitoring. Wearing pulse oximeter clips for extended periods may cause discomfort such as stuffiness, dampness, and itching in the user's fingers. The pressure from the pulse oximeter clips may also cause numbness in the user's fingers or even affect blood circulation. Utility Model Content
[0004] The purpose of this invention is to overcome the problem of poor air permeability in existing blood oxygen finger clips.
[0005] To achieve the above objectives, this utility model provides a bio-information detection device, comprising: a clamping structure, the clamping structure including a housing and at least one clamping part disposed inside the housing, forming a receiving space for accommodating a part to be detected, wherein a gap exists between the clamping part and the housing to form at least a double-layer structure, and the clamping part is provided with a breathable structure communicating the gap and the receiving space; and a detection element disposed on the side of the clamping structure facing the receiving space for detecting bio-information of the part to be detected.
[0006] In some embodiments, the detection element is disposed on the clamping portion; and / or the clamping portion is formed with an arcuate contact surface for contacting the part to be detected, and the central portion of the arcuate contact surface is provided with a groove for placing the detection element.
[0007] In some embodiments, the housing has two clamping portions facing each other, each clamping portion being connected to the inner wall of the housing via a support portion; and / or the clamping portions are at least partially made of a flexible material, and the housing is at least partially made of a flexible or rigid material.
[0008] In some embodiments, the support has a deformable structure to allow adjustment of the distance between the clamping part and the housing.
[0009] In some embodiments, the support includes at least two support arms that are obliquely or bent between the housing and the clamping portion, and the extending directions of the at least two support arms intersect.
[0010] In some embodiments, the at least two support arms are arranged in pairs, with the pair of support arms symmetrically arranged in the direction in which the clamping portion surrounds the part to be detected.
[0011] In some embodiments, the at least two support arms are formed in at least one of the following structures: the ends of two adjacent support arms near the housing or near the clamping portion are connected to each other; the support arms extend obliquely in a straight line between the clamping portion and the housing, and adjacent support arms are cross-connected; the support arms extend in an arc or bend between the clamping portion and the housing, and the bending directions of adjacent support arms are opposite; a plurality of support arms are connected to each other such that the plurality of support arms extend continuously in the direction in which the clamping portion surrounds the part to be detected.
[0012] In some embodiments, the bioinformatics detection device has a split structure, and the housing includes a first part and a second part that are arranged opposite to each other and connected to each other on one side by a connector, and two clamping parts are arranged correspondingly on the inner sides of the first part and the second part.
[0013] In some embodiments, the bioinformatics detection device has a ring structure, the housing includes a first part and a second part disposed opposite to each other, and a retractable structure connecting the first part and the second part to allow the spacing between the first part and the second part to be adjusted by means of different extension lengths of the retractable structure, and when the part to be detected is clamped in the receiving space, the first part, the second part and the retractable structure surround the part to be detected.
[0014] In some embodiments, the retractable structure is provided in two parts, which are symmetrically arranged on opposite sides of the first part and the second part, respectively.
[0015] Through the above technical solution, the clamping part is located on the inner side of the shell and maintains a certain gap with the shell, so that the bio-information detection device is formed into at least a double-layer structure. The outer shell supports and fixes the inner clamping part, and the inner clamping part is used to wrap the part to be detected. The gap between the clamping part and the shell can separate the clamping part and the shell. When the clamping structure clamps the part to be detected, a certain gap is maintained between the clamping part and the shell. The ventilated structure can connect the gap and the accommodating space, preventing the shell from blocking the ventilated structure, so that air can enter the accommodating space from the ventilated structure, increasing the ventilability of the accommodating space. Therefore, it can increase the contact area between the part to be detected and the air, thereby reducing the discomfort such as stuffiness, dampness and itching caused by wearing the bio-information detection device. Attached Figure Description
[0016] Figure 1A This is a schematic diagram of the first structure of the bioinformatics detection device disclosed in this utility model; Figure 1B yes Figure 1A A front view of the bioinformatics detection device in the image; Figure 1C yes Figure 1B Front cross-sectional view; Figure 1D yes Figure 1B Top view of the cross section; Figure 2A This is a first frontal projection schematic diagram of the shell in the bioinformatics detection device disclosed in this utility model; Figure 2B This is a second frontal projection schematic diagram of the shell in the bioinformatics detection device disclosed in this utility model; Figure 2C This is a third frontal projection schematic diagram of the shell in the bioinformatics detection device disclosed in this utility model; Figure 2D This is a fourth frontal projection schematic diagram of the shell in the bioinformatics detection device disclosed in this utility model; Figure 2E This is the fifth frontal projection schematic diagram of the shell in the bioinformatics detection device disclosed in this utility model; Figure 2F This is a sixth frontal projection schematic diagram of the shell in the bioinformatics detection device disclosed in this utility model; Figure 2G This is a seventh frontal projection schematic diagram of the shell in the bioinformatics detection device disclosed in this utility model; Figure 2H This is the eighth frontal projection schematic diagram of the shell in the bioinformatics detection device disclosed in this utility model; Figure 2IThis is the ninth frontal projection schematic diagram of the shell in the bioinformatics detection device disclosed in this utility model; Figure 3A This is a first side-view projection schematic diagram of the bioinformatics detection device disclosed in this utility model; Figure 3B This is a second side-view projection schematic diagram of the bioinformatics detection device disclosed in this utility model; Figure 4 This is a schematic diagram of the second structure of the bioinformatics detection device disclosed in this utility model; Figure 5 This is a schematic diagram of the structure of the bio-information detection device disclosed in this utility model when the user wears it. Figure 6 This is a front view of a user wearing the bio-information detection device disclosed in this utility model; Figure 7 This is a schematic diagram of the clamping part and the shell of the bioinformatics detection device disclosed in this utility model; Figure 8A This is a first top-view projection schematic diagram of the clamping part of the bioinformatics detection device disclosed in this utility model; Figure 8B This is a second top-view projection schematic diagram of the clamping part of the bioinformatics detection device disclosed in this utility model; Figure 8C This is a third top-view projection schematic diagram of the clamping part of the bioinformatics detection device disclosed in this utility model; Figure 8D This is a fourth top-view projection schematic diagram of the clamping part of the bioinformatics detection device disclosed in this utility model; Figure 8E This is a fifth top-view projection schematic diagram of the clamping part of the bioinformatics detection device disclosed in this utility model; Figure 9A This is a first frontal projection schematic diagram of the clamping part of the bioinformatics detection device disclosed in this utility model; Figure 9B This is a second frontal projection schematic diagram of the clamping part of the bioinformatics detection device disclosed in this utility model; Figure 10A This is a first frontal projection schematic diagram of the support part of the bioinformatics detection device disclosed in this utility model; Figure 10B This is a second frontal projection schematic diagram of the support part of the bioinformatics detection device disclosed in this utility model; Figure 10C This is a third frontal projection schematic diagram of the support part of the bioinformatics detection device disclosed in this utility model; Figure 10DThis is a fourth frontal projection schematic diagram of the support part of the bioinformatics detection device disclosed in this utility model; Figure 10E This is a fifth frontal projection schematic diagram of the support part of the bioinformatics detection device disclosed in this utility model; Figure 10F This is a sixth frontal projection schematic diagram of the support part of the bioinformatics detection device disclosed in this utility model; Figure 11A This is a schematic diagram of the structure of multiple support parts of the bioinformatics detection device disclosed in this utility model; Figure 11B This is a schematic diagram of the support parts with multiple different structures of the bioinformatics detection device disclosed in this utility model; Figure 11C This is a schematic diagram of the structure of multiple support parts of different sizes of the bioinformatics detection device disclosed in this utility model; Figure 12A This is a schematic diagram of the support portion of the bioinformatics detection device disclosed in this utility model in its initial state; and Figure 12B This is a schematic diagram of the structure of the support part of the bioinformatics detection device disclosed in this utility model in a compressed state.
[0017] Explanation of reference numerals in the attached figures 1. Housing; 11. First part; 12. Second part; 2. Clamping part; 21. Accommodation space; 22. Gap; 23. Ventilation structure; 24. Groove; 25. Sensing wire groove; 3. Detection element; 4. Support part; 41. Support arm; 42. Intermediate connecting arm; 43. Arc-shaped connecting arm; 5. Connector; 51. Telescopic structure; 6. Clamping assembly; 61. Clamping band; 62. Clamping part; 7. Part to be detected. Detailed Implementation
[0018] The specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are for illustration and explanation only and are not intended to limit the scope of this utility model.
[0019] See Figures 1A to 12B This invention provides a bio-information detection device. The bio-information detection device includes a clamping structure and a detection element 3. The clamping structure includes a housing 1 and at least one clamping part 2 disposed inside the housing 1, forming a receiving space 21 for accommodating a part 7 to be detected. A gap 22 exists between the clamping part 2 and the housing 1 to form at least a double-layer structure. The clamping part 2 is provided with a breathable structure 23 connecting the gap 22 and the receiving space 21. The detection element 3 is disposed on the side of the clamping structure facing the receiving space 21 for detecting the bio-information of the part 7 to be detected.
[0020] In this embodiment of the invention, the clamping part 2 is disposed on the inner side of the housing 1 and maintains a certain gap with the housing 1, so that the bio-information detection device is formed as at least a double-layer structure. The outer housing 1 supports and fixes the inner clamping part 2, and the inner clamping part 2 is used to wrap the part to be detected 7. The gap 22 between the clamping part 2 and the housing 1 can separate the clamping part 2 and the housing 1. When the clamping structure clamps the part to be detected 7, a certain gap is maintained between the clamping part 2 and the housing 1. The ventilated structure 23 can connect the gap 22 and the accommodating space 21, preventing the housing 1 from blocking the ventilated structure 23, so that air can enter the accommodating space 21 from the ventilated structure 23, increasing the ventilability of the accommodating space 21. Therefore, the contact area between the part to be detected 7 and the air can be increased, thereby reducing the discomfort such as stuffiness, dampness and itching caused by wearing the bio-information detection device.
[0021] The housing 1 secures the clamping part 2, ensuring that the dimensions of the ventilation structure 23 of the clamping part 2 are not affected by the wearing and securing requirements of the bio-information detection device. Furthermore, by covering the clamping part 2 with the housing 1 to form a double-layer structure, the outer housing 1 reduces the amount of external light directly entering the receiving space 21 through the ventilation structure 23, thus reducing the influence of ambient light on the detection element 3 and increasing the detection accuracy of the bio-information detection device. In some embodiments, the outer housing 1 is an opaque layer or a light-shielding layer.
[0022] In some embodiments, a functional layer may be provided on the side of the clamping part 2 away from the housing 1, thereby allowing the bio-information detection device to be formed with three or more layers. The functional layer may be made of a different material than the clamping part 2. For example, the functional layer may have greater air permeability than the clamping part 2; the functional layer may be a non-woven fabric layer, while the clamping part 2 may be a silicone layer. Alternatively, the functional layer may be an antibacterial layer, such as a silver-coated layer.
[0023] In some embodiments, the clamping part 2 and the housing 1 form a receiving space 21 for accommodating the part to be detected 7. Exemplarily, there is one clamping part 2 with an arc-shaped cross-section. The arc-shaped clamping part 2 has an opening, and the portion of the housing 1 opposite to this opening can cooperate with the clamping part 2 to form the receiving space 21 for accommodating the part to be detected. The detection element 3 can be disposed on the clamping part 2 and / or on the portion of the housing 1 opposite to the opening of the arc-shaped clamping part 2. In some embodiments, the clamping structure includes at least two clamping parts 2, and the receiving space 21 for accommodating the part to be detected 7 is formed between the at least two clamping parts 2.
[0024] In some embodiments, the plurality of breathable structures 23 are as follows: Figures 1A to 1D , Figure 4 and Figure 7The ventilation holes are shown. Alternatively, the ventilation structure 23 can also be a ventilation groove.
[0025] In some embodiments, the clamping part 2 is made of a breathable material. The breathable material improves the breathability of the clamping part 2, reducing discomfort such as stuffiness, dampness, and itching experienced by the area to be tested 7 due to contact with the clamping part 2. Alternatively, the clamping part 2 and the housing 1 can be an integral structure. Both the clamping part 2 and the housing 1 are at least partially made of a flexible material, such as silicone.
[0026] Alternatively, the clamping part 2 may be made at least partially of a flexible material, and the housing 1 may be made at least partially of a rigid material.
[0027] In some embodiments, the frictional force at the contact point between the clamping part 2 made of breathable material and the part to be detected 7 can improve the wearing stability of the bio-information detection device and prevent the bio-information detection device from falling off the part to be detected 7 during wearing.
[0028] When the clamping part 2 is made of non-woven flexible materials such as silicone, it can be easily cleaned by wiping or other methods to improve the reusability of the bio-information detection device.
[0029] In the above description, the area to be detected, 7, is a finger. In some embodiments, the bio-information detection device is a flexible finger-cot structure, for example... Figures 1A to 1C As shown, the housing 1 is configured as an integrated finger sleeve. This finger sleeve shape restricts the relative positions of the detection elements 3 on the two clamping parts 2, improving the accuracy of biometric detection. It also makes wearing the device more convenient, reducing the risk of it falling off or loosening during wear. In some embodiments, the biometric detection device has a strap-type structure, for example... Figure 4 and Figure 5 As shown. In some embodiments, the bio-information detection device is a ring-shaped structure (e.g., a finger ring structure), for example... Figures 10D to 10F As shown. In some embodiments, the detection site 7 can be the wrist. Correspondingly, the biometric detection device can be a bracelet, watch, etc. It is understood that finger sleeve structure, ring structure, bracelet, watch, etc. can all be ring structures.
[0030] In some embodiments, the housing 1 may be a circumferentially continuous annular structure. For example... Figures 2A to 2E The diagram shows a frontal projection of the housing 1 used in the bioinformatics detection device according to different embodiments. The shape of the frontal projection of the housing 1 can be regular or irregular, and the thickness of the housing 1 can be 0.5mm-5mm. Figure 2A The elliptical or approximately elliptical shape shown can be... Figure 2BThe rectangular or near-rectangular shape shown can be Figure 2C The rhombus or near-rhombus shape shown can be... Figure 2D The circular or near-circular shape shown can also be... Figure 2E The irregular elliptical shape is shown; however, the shape of the frontal projection of the housing 1 is not specifically defined here. In some embodiments, the housing 1 is made of a rigid material to maintain the annular structure. The clamping portion 2 on the inner side of the housing 1 is made of a flexible material to better fit the area to be detected 7.
[0031] For example Figure 3A and Figure 3B The schematic diagrams shown below depict the side view projection of the housing 1 used in the bioinformatics detection devices of different embodiments. The shape of the side view projection of the housing 1 can be... Figure 3A The approximately equal-width annular band shown can also be Figure 3B The irregular, non-uniform width annular band is shown. In some embodiments, such as... Figure 3B As shown, the width of the middle portion of the housing 1 is reduced to decrease the coverage area of the part 7 to be tested. The clamping part 2 can be provided in the larger area portion.
[0032] In the above, the ventilated structure 23 can connect the external environment with the containment space 21. Air from the external environment can enter the containment space 21 through the gap 22 and the ventilated structure 23, and hot air in the containment space 21 can flow out to the external environment through the ventilated structure 23 and the gap 22. The containment space 21 achieves gas exchange with the external environment through the gap 22 and the ventilated structure 23.
[0033] In some embodiments, the detection element 3 is disposed on the clamping part 2. The clamping part 2 can contact the part to be detected 7, and the detection element 3 disposed on the clamping part 2 can effectively obtain the biological information of the part to be detected 7.
[0034] In the above, for example Figures 8A to 8E As shown in the top-view projection diagrams of the clamping part 2 used in the bioinformatics detection devices of different embodiments, the shape of the clamping part 2 can be a regular shape such as a rectangle, circle, or ellipse, or it can be an irregular shape composed of different shapes or fits into the part 7 to be detected. The shape of the ventilated structure 23 can be rectangular, circular, or elliptical, and the ventilated structure 23 is arranged around the detection element 3 on the clamping part 2. Specifically, the ventilated structure 23 can be symmetrically arranged around the detection element 3, and the interval between the ventilated structure 23 and the detection element 3 is 0.5mm-15mm.
[0035] In some embodiments, for example Figure 9A and Figure 9BThe diagram shows a frontal projection of the clamping part 2 used in the bioinformatics detection device according to different embodiments. The thickness of the clamping part 2 can be 0.5-5mm, and the thickness of the clamping part 2 can be different at different positions; the frontal projection of the clamping part 2 can be as follows. Figure 9A The planar shape shown can also be Figure 9B The curved surface shape shown conforms to the part 7 to be detected, so that the clamping part 2 forms an arc-shaped contact surface for sufficient contact with the part 7 to be detected, ensuring stable clamping of the part 7 to be detected by the clamping part 2, improving the wearing stability of the bio-information detection device, and reducing the deformation requirements of the clamping part. In some embodiments, the middle part of the clamping part 2 is connected to the housing 1, and the two sides are bent away from the housing 1, thereby increasing the gas flow space between the clamping part 2 and the housing 1. The detection element 3 is disposed in the middle part of the clamping part 2. The ventilated structure 23 is disposed on both sides of the clamping part 2 around the detection element 3.
[0036] In some embodiments, for example Figure 1C , Figure 1D , Figure 7 and Figure 9B As shown, the clamping part 2 has an arc-shaped contact surface for contacting the part to be tested 7, and a groove 24 for placing the detection element 3 is provided in the center of the arc-shaped contact surface. The arc-shaped contact surface of the clamping part 2 can fully contact the part to be tested 7, ensuring that the clamping part 2 stably clamps the part to be tested 7, improving the wearing stability of the bio-information detection device, and reducing the deformation requirements of the clamping part; the groove 24 of the clamping part 2 can effectively fix the detection element 3, and ensure that the detection element 3 does not affect the clamping of the clamping part 2 on the part to be tested 7.
[0037] In some embodiments, the size and shape of the plurality of breathable structures 23 on the clamping part 2 may be the same or different. For example, the breathable structure 23 near the detection element 3 is rectangular in shape to fit the shape of the detection element 3; the breathable structure 23 near the edge of the clamping part 2 is circular or elliptical or other arc-shaped to fit the shape of the clamping part 2, so that the breathable structure 23 can cover more area of the clamping part 2 and increase the breathability of the clamping part 2.
[0038] In the above, the gap 22 between the clamping part 2 and the housing 1 can be 0.5-20mm.
[0039] In some embodiments, the groove 24 is adapted to the shape of the detection element 3, and the detection element 3 is snapped into the groove 24 to ensure the stability of the detection element 3.
[0040] In the above description, the detection element 3 is disposed inside the clamping part 2 facing the receiving space 21. The detection element 3 includes a sensor transmitter and a sensor receiver, and the sensor receiver is capable of receiving the signal emitted by the sensor transmitter. The signal emitted by the sensor transmitter passes through the part to be detected 7 and is received by the sensor receiver, thereby calculating the biological information.
[0041] In some embodiments, when a single clamping part 2 is provided, the clamping part 2 can be an annular structure with its ends connected, or the clamping part 2 can cover at least half of the inner circumferential area of the housing 1. A sensor transmitter and a sensor receiver are disposed on opposite sides inside the clamping part 2. By distributing the sensor transmitter and sensor receiver on opposite sides inside a clamping part 2, the sensing signal emitted by the sensor transmitter can be received by the sensor receiver after passing through the detection area 7. The biological information of the detection area 7 can then be obtained by calculating the signal received by the sensor receiver and the signal emitted by the sensor transmitter.
[0042] In some embodiments, for example Figures 1A to 1C , Figures 4 to 6 As shown, two opposing clamping parts 2 are provided inside the housing 1, and each clamping part 2 is connected to the inner wall of the housing 1 through a support part 4. The two opposing clamping parts 2 can reduce the contact area between the part to be detected 7 and the clamping parts 2, improve the air permeability of the bio-information detection device, reduce the discomfort such as stuffiness, dampness and itching caused by the contact between the part to be detected 7 and the clamping parts 2, and reduce the pressure of the clamping parts 2 on the part to be detected 7, so as to reduce numbness of the fingers waiting for the part to be detected 7 and even affect blood circulation; the support part 4 helps to maintain the layered space between the housing 1 and the clamping parts 2, and ensure air circulation; the sensor transmitter and sensor receiver of the detection element 3 are respectively arranged inside the two clamping parts 2. The sensing signal emitted by the sensor transmitter in one clamping part 2 can be received by the sensor receiver in the other clamping part 2 after passing through the part to be detected 7, thereby obtaining the bio-information of the part to be detected 7.
[0043] In some embodiments, the two clamping portions 2 may be symmetrically arranged on the upper and lower sides or the left and right sides of the portion to be detected 7. In some embodiments, such as Figure 1C As shown, the groove 24 for setting the detection element 3 can extend outward into the support portion 4.
[0044] In some embodiments, multiple clamping parts 2 may be provided, and the multiple clamping parts 2 are arranged at intervals along the circumference of the housing 1. When the part to be detected 7 is clamped in the receiving space 21, the multiple clamping parts 2 surround the part to be detected 7. Two of the multiple clamping parts 2 are arranged opposite to each other and are provided with a sensor transmitter and a sensor receiver of the detection element 3.
[0045] For example Figures 10A to 12B The diagrams shown are frontal projections and structural schematics of the support portion used in the bioinformatics detection devices of different embodiments. The support portion 4 has a deformable structure to allow adjustment of the distance between the clamping portion 2 and the housing 1. When the bioinformatics detection device is not in use, the support portion 4 is in the position shown... Figure 12A The natural state shown; when the user wears the biometric detection device, the part to be detected 7 extends into the receiving space 21, and the part to be detected 7 applies pressure to the clamping part 2, thereby causing the supporting part 4 to... Figure 12B The sample is compressed. The deformability of the support part 4 allows for adjustment of the distance between the clamping part 2 and the housing 1, increasing the air permeability of the part to be tested 7, improving user comfort, and increasing the clamping force of the two clamping parts 2 on the part to be tested 7, thus adapting to the shape of the part to be tested 7 of different sizes.
[0046] In some embodiments, the support portion 4 connects one clamping portion 2 and the housing 1; or both clamping portions 2 and the housing 1 are connected by the support portion 4.
[0047] In some embodiments, the support portion 4 is supported by a flexible material that is both supportive and deformable. For example, the support portion 4 can be a sponge or rubber. In some embodiments, the support portion 4 is integrally formed with the integral clamping portion 2 and / or the housing 1.
[0048] In some embodiments, such as Figure 11A As shown, there are multiple support parts 4, and the multiple support parts 4 have the same structure.
[0049] In some embodiments, for example Figures 10A-10C As shown, the support part 4 includes two support arms 41, which are inclined or bent between the housing 1 and the clamping part 2, and the extending directions of at least two support arms 41 intersect, so that the support arms 41 can support the clamping part 2 from multiple directions and different positions.
[0050] In some implementations, such as Figures 10D to 10F As shown, at least two support arms 41 are arranged in pairs, and the pair of support arms 41 are symmetrically arranged in the direction in which the clamping part 2 surrounds the part to be tested 7. The paired and symmetrically arranged support arms 41 ensure that the part to be tested 7 is subjected to uniform and balanced force.
[0051] like Figures 10A-10C As shown, at least two support arms 41 can be formed as at least one of the following structures: in some embodiments, the ends of two adjacent support arms 41 near the housing 1 or near the clamping portion 2 are connected to each other. Exemplarily, the cross-section of the support portion 4 is... Figure 10A The extended V-shape shown.
[0052] In some embodiments, the support arm 41 extends obliquely along a straight line between the clamping part 2 and the housing 1, with adjacent support arms 41 intersecting each other. Exemplarily, the cross-section of the support part 4 is... Figure 10B The X-shape shown.
[0053] In some embodiments, the support arm 41 extends in an arc or bend between the clamping portion 2 and the housing 1, with adjacent support arms 41 bending in opposite directions. Exemplarily, the cross-section of the support portion 4 is... Figure 10C The rhombus or Figure 11B , Figure 12A The shape shown is elliptical.
[0054] In some embodiments, a plurality of support arms 41 are connected to each other such that the plurality of support arms 41 extend continuously in the direction in which the clamping portion 2 surrounds the portion 7 to be detected. For example Figure 10D and Figure 10E As shown, at least two support arms 41 are connected to each other such that the deformable structure formed by the support arms 41 extends continuously along the direction in which the clamping portion 2 surrounds the part to be detected 7 (e.g., the circumferential direction of the housing 1). In some embodiments, such as Figure 10D and Figure 10E As shown, the support arms 41 are arranged symmetrically in pairs, and the adjacent support arms 41 are connected to each other to form two continuous extension structures in the direction in which the clamping part 2 surrounds the part to be tested 7. The two continuous extension structures are symmetrically arranged in the direction in which the clamping part 2 surrounds the part to be tested 7.
[0055] like Figures 10D to 10F As shown, the support portion 4 also includes an intermediate connecting arm 42 located at the middle position outside the clamping portion 2, and an arc-shaped connecting arm 43 connecting the intermediate connecting arm 42 and one end of the clamping portion 2. Multiple support arms 41 may be provided, and are used to connect the intermediate connecting arm 42 and / or the arc-shaped connecting arm 43 to the inner wall of the housing 1 respectively. A hollow structure is formed between adjacent support arms 41, between support arms 41 and the intermediate connecting arm 42 / arc-shaped connecting arm 43, and / or between the arc-shaped connecting arm 43 and the clamping portion 2 and the intermediate connecting arm 42, to provide the support portion 4 with deformability.
[0056] In some embodiments, for example Figure 12A and 12B As shown, the support part 4 includes multiple support arms 41 with circular cross-sections, and the two ends of the support arms 41 are connected to the housing 1 and the clamping part 2, respectively.
[0057] In the above, for example Figure 11A As shown, multiple support portions 4 are provided, extending into the receiving space 21 along the direction of the part to be tested 7, and adjacent support portions 4 have the same shape. For example, in the above description... Figure 11BAs shown, multiple support parts 4 are provided, extending into the receiving space 21 along the direction of the part to be tested 7. The shapes of two adjacent support parts 4 are different. The spacing of multiple support parts 4 makes the movement of the clamping parts 2 more stable during the adjustment of the distance between the two clamping parts 2, and enables the clamping parts 2 to effectively clamp the part to be tested 7; moreover, the support parts 4 with different shapes can match the force on the part to be tested 7, ensuring that the part to be tested 7 is subjected to the same force at different positions.
[0058] In some implementations, such as Figure 11C As shown, multiple support portions 4 are provided, extending into the receiving space 21 along the direction of the part to be tested 7. The thickness of two adjacent support portions 4 is different. Multiple support portions 4 with different thicknesses can match the force on the part to be tested 7, thereby ensuring that the part to be tested 7 is subjected to the same force when clamped by the clamping portion 2 at different positions.
[0059] In some embodiments, the support arm 41 is an elastic support rib. The elastic support rib has elastic force and can drive the clamping part 2 to move under the action of force, so that the part to be detected 7 can be wrapped by the clamping part 2.
[0060] In some embodiments, the support 4 is a retractable structure.
[0061] In some implementations, for example Figures 4 to 6 As shown, the bioinformatics detection device has a split structure. The housing 1 includes a first part 11 and a second part 12, which are arranged opposite to each other and connected to each other on one side by a connector 5. Two clamping parts 2 are correspondingly arranged on the inner sides of the first part 11 and the second part 12. The arrangement of the first part 11 and the second part 12 of the housing 1 allows outside air to enter the clamping parts 2 and the receiving space 21 through the gap between the first part 11 and the second part 12, thereby enhancing the air permeability of the bioinformatics detection device. The first part 11 and the second part 12 are connected together by the connector 5 to ensure the integrity of the housing 1.
[0062] In some embodiments, connector 5 can be as follows: Figure 4 and Figure 5 The part shown is connected to the side of the part to be tested 7 in the direction of extending into the receiving space 21.
[0063] In the above description, the connector 5 is made of a deformable material. The length of the connector 5 is fixed, and the distance between the first part 11 and the second part 12 of the housing 1 can be adjusted by varying the degree of bending of the connector 5.
[0064] In some embodiments, the connector 5 and the housing 1 can be an integrally formed structure, or they can be separate structures connected by means of buckles, adhesives, straps, Velcro, etc.
[0065] In some embodiments, the bioinformatics detection device is a strap-on structure. Alternatively, for example... Figures 4 to 6 As shown, the bioinformatics detection device also includes a clamping assembly 6, which applies opposing forces to the first part 11 and the second part 12 to clamp the two clamping parts 2 onto the part to be detected 7. To ensure that the clamping parts 2, respectively provided on the first part 11 and the second part 12 of the housing 1, can effectively clamp the part to be detected 7, the clamping assembly 6 applies opposing forces to the first part 11 and the second part 12, causing the two clamping parts 2 to move closer together, thereby fixing and clamping the two clamping parts 2 onto the part to be detected 7, ensuring the bioinformatics detection device clamps the part to be detected 7, and improving the detection accuracy of the detection element 3.
[0066] In the above description, the clamping assembly 6 includes a clamping band 61 connected to one of the first part 11 and the second part 12, and a clamping part 62 disposed on the other of the first part 11 and the second part 12. The clamping band 61 can be selectively connected to the clamping part 62 to apply opposing forces to the first part 11 and the second part 12. By connecting to the clamping part 62, the clamping band 61 can apply opposing forces to the first part 11 and the second part 12, thereby clamping the two clamping parts 2 onto the part to be detected 7, ensuring effective clamping of the bio-information detection device. After detection is completed, the clamping band 61 is separated from the clamping part 62, thereby causing the first part 11 and the second part 12 to move in opposite directions to return to their original positions.
[0067] For example Figure 4 As shown, the clamping band 61 is disposed in the first part 11, and the clamping part 62 is disposed in a groove on the outside of the second part 12. The clamping band 61 can move within the groove of the clamping part 62, thereby adjusting the clamping force applied to the housing 1.
[0068] In the above, the clamping strap 61 can be fixed to the clamping part 62 by means of buckles or Velcro, which improves the stability of wearing the bio-information detection device.
[0069] In some implementations, for example Figures 2F to 2IAs shown, the bioinformatics detection device has a ring-shaped structure. The housing 1 includes a first part 11 and a second part 12 arranged opposite to each other, and a retractable structure 51 connecting the first part 11 and the second part 12, allowing the distance between the first part 11 and the second part 12 in the housing 1 to be adjusted by the different extension lengths of the retractable structure 51. When the part to be detected 7 is clamped in the receiving space 21, the first part 11, the second part 12, and the retractable structure 51 surround the part to be detected 7. When the bioinformatics detection device is not in use, the retractable structure 51 remains in a retracted state; when the bioinformatics detection device is in use, the retractable structure 51 can be stretched to a corresponding length according to the size of the part to be detected 7, thereby adjusting the distance between the two clamping parts 2 to ensure that the clamping parts 2 can clamp the part to be detected 7.
[0070] In some embodiments, the retractable structure 51 is connected to one side of the first part 11 and the second part 12, and the other side of the first part 11 and the second part 12 is connected by the non-retractable structure 51. When the part to be detected 7 is clamped in the receiving space 21, the first part 11, the second part 12 and the retractable structure 51 surround the part to be detected 7.
[0071] In some embodiments, the retractable structure 51 is connected to the opposite sides of the first part 11 and the second part 12, or the first part 11 and the second part 12 are connected in sequence, and the retractable structure 51 is connected to the two ends of the first part 11 and the second part 12 that are relatively separated, thereby forming a ring structure.
[0072] In some embodiments, two retractable structures 51 are provided and symmetrically arranged on opposite sides of the first portion 11 and the second portion 12. While ensuring that the distance between the first portion 11 and the second portion 12 is adjustable, the two retractable structures 51 can change the same telescopic length to ensure the symmetry of the forces on the first portion 11 and the second portion 12. In some embodiments, the retractable structure 51 has a deformable structure that is the same as or similar to the aforementioned support portion, and this deformable structure is connected between the first portion 11 and the second portion 12.
[0073] In some embodiments, for example Figure 2F or Figure 2G As shown, the retractable structure 51 extends continuously in an arc or bend between the first portion 11 and the second portion 12. Exemplarily, the cross-section of the retractable structure 51 is configured as a broken line extending from one end of the first portion 11 to one end of the second portion 12.
[0074] In some embodiments, the retractable structure 51 includes two connecting arms arranged in pairs.
[0075] For example Figure 2HAs shown, the connecting arm is configured as an arc-shaped arm extending from one end of the first part 11 to one end of the second part 12.
[0076] In some embodiments, the bending directions of the pair of connecting arms are opposite. Exemplarily, the retractable structure 51 is configured as an ellipse, with its radial ends connected to the first portion 11 and the second portion 12, respectively.
[0077] In some embodiments, for example Figure 2I As shown, the arc-shaped arm is a bent structure, and the bending directions of the pair of connecting arms are opposite. The telescopic structure 51 is set as a rhombus, and the two ends of the rhombus telescopic structure 51 along its diagonal are connected to the first part 11 and the second part 12 respectively.
[0078] In some embodiments, for example Figure 3B As shown, the width of the stretchable structure 51 gradually decreases near its central position, and the bending directions on both sides are close to each other.
[0079] Here, no specific limitations are made on the specific structure of the scalable structure.
[0080] In the above, for example Figure 7 As shown, the interiors of the two clamping parts 2 are respectively provided with grooves 24 for accommodating the sensor transmitter and the sensor receiver, and sensor wire grooves 25 for connecting the sensor wires of the sensor transmitter and the sensor receiver. The sensor wire grooves 25 are provided on the clamping parts 2, the housing 1, and the connector 5, thereby effectively connecting the sensor transmitter and the sensor receiver.
[0081] In some embodiments, the housing 1, the clamping part 2, the connector 5, and the clamping assembly 6 are all made of flexible material.
[0082] The preferred embodiments of the present invention have been described in detail above with reference to the accompanying drawings; however, the present invention is not limited thereto. Within the scope of the technical concept of the present invention, various simple modifications can be made to the technical solution of the present invention. This includes combining various specific technical features in any suitable manner. To avoid unnecessary repetition, the present invention will not describe the various possible combinations separately. However, these simple modifications and combinations should also be considered as the content disclosed in the present invention and are all within the protection scope of the present invention.
Claims
1. A bioinformatics detection device, characterized in that, include: The clamping structure includes a housing (1) and at least one clamping part (2) disposed inside the housing (1), and forms a receiving space (21) for accommodating the part to be tested (7). The clamping part (2) and the housing (1) have a gap (22) to form at least a double-layer structure, and the clamping part (2) is provided with a breathable structure (23) connecting the gap (22) and the receiving space (21). as well as A detection element (3) is disposed on the side of the clamping structure facing the receiving space (21) for detecting the biological information of the part to be detected (7).
2. The bioinformatics detection device according to claim 1, characterized in that, The detection element (3) is disposed on the clamping part (2); and / or The clamping part (2) is formed with an arc-shaped contact surface for contacting the part to be tested (7), and the center part of the arc-shaped contact surface is provided with a groove (24) for placing the detection element (3).
3. The bioinformatics detection device according to claim 1, characterized in that, The housing (1) is provided with two clamping parts (2) that are opposite to each other, and each clamping part (2) is connected to the inner wall of the housing (1) through a support part (4); and / or The clamping part (2) is at least partially made of a flexible material, and the housing (1) is at least partially made of a flexible or rigid material.
4. The bioinformatics detection device according to claim 3, characterized in that, The support (4) has a deformable structure to allow adjustment of the distance between the clamping part (2) and the housing (1).
5. The bioinformatics detection device according to claim 4, characterized in that, The support (4) includes at least two support arms (41) which are arranged obliquely or bent between the housing (1) and the clamping part (2), and the extension directions of the at least two support arms (41) intersect.
6. The bioinformatics detection device according to claim 5, characterized in that, The at least two support arms (41) are arranged in pairs, and the pair of support arms (41) are symmetrically arranged in the direction in which the clamping part (2) surrounds the part to be detected (7).
7. The bioinformatics detection device according to claim 5 or 6, characterized in that, The at least two support arms (41) are formed in at least one of the following structures: The ends of two adjacent support arms (41) near the housing (1) or near the clamping part (2) are connected to each other; The support arm (41) extends obliquely in a straight line between the clamping part (2) and the housing (1), and two adjacent support arms (41) are cross-connected; The support arm (41) extends in an arc or bend between the clamping part (2) and the housing (1), and the bending directions of two adjacent support arms (41) are opposite. The plurality of support arms (41) are connected to each other such that the plurality of support arms (41) extend continuously in the direction in which the clamping part (2) surrounds the part to be detected (7).
8. The bioinformatics detection device according to claim 1, characterized in that, The bioinformatics detection device is a split structure. The housing (1) includes a first part (11) and a second part (12) that are arranged opposite to each other and connected to each other on one side by a connector (5). The two clamping parts (2) are arranged one-to-one on the inner side of the first part (11) and the second part (12).
9. The bioinformatics detection device according to claim 1, characterized in that, The bioinformatics detection device has a ring structure. The housing (1) includes a first part (11) and a second part (12) arranged opposite to each other, and a retractable structure (51) connected between the first part (11) and the second part (12) to allow the spacing between the first part (11) and the second part (12) to be adjusted by the retractable structure (51) having different extension lengths. When the part to be detected (7) is clamped in the receiving space (21), the first part (11), the second part (12) and the retractable structure (51) surround the part to be detected (7).
10. The bioinformatics detection device according to claim 9, characterized in that, The retractable structure (51) has two parts, which are symmetrically arranged on opposite sides of the first part (11) and the second part (12).