Miniaturized mounting unit of analyte detection device
By controlling the sliding of the auxiliary pin through an elastic module and designing a protective structure, the problem of the height limitation of the installation unit housing is solved, achieving a miniaturized and safe and reliable user experience while reducing production costs.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-09-27
- Publication Date
- 2026-04-02
AI Technical Summary
The housing height of existing analyte detection device mounting units limits their miniaturization design, and the excessively long retraction stroke of the auxiliary needle affects user experience and production costs.
The second elastic element of the elastic module pushes the auxiliary needle module to slide to the far end of the housing, and the third elastic element blocks the auxiliary needle module from sliding further, so that the auxiliary needle part is exposed outside the housing, reducing the retraction stroke. A protective cover and elastic protective sleeve are designed to protect the auxiliary needle and reduce the height of the housing.
The installation unit has been miniaturized, making it easier for users to use, reducing production costs, and improving security and user experience through protective structure.
Smart Images

Figure CN2024121756_02042026_PF_FP_ABST
Abstract
Description
Miniaturized mounting unit for analyte detection device TECHNICAL FIELD
[0001] The present invention relates to the field of medical devices, in particular to a miniaturized mounting unit for analyte detection device. BACKGROUND
[0002] The pancreas in a normal human body can automatically detect the glucose content in the human blood and automatically secrete the required insulin / glucagon. The pancreas of a diabetic patient is abnormal and cannot normally secrete the required insulin for the human body. Therefore, diabetes is a metabolic disease caused by abnormal function of the human pancreas, and diabetes is a lifelong disease. At present, medical technology cannot cure diabetes, and can only control the occurrence and development of diabetes and its complications by stabilizing blood sugar.
[0003] A diabetic patient needs to detect blood sugar before injecting insulin into the body. At present, most detection methods can continuously detect blood sugar and send blood sugar data to external devices in real time for users to view. This detection method is called continuous glucose monitoring (CGM). In order to realize continuous glucose monitoring, the user needs to use an auxiliary mounting unit to install the blood sugar analyte detection device on the skin surface. The smaller the size of the mounting unit, the more convenient it is for the user to use, and the lower the manufacturing cost. Therefore, under the premise of realizing the function of the mounting unit, the miniaturized design of the mounting unit is beneficial. In the prior art, in order to prevent the auxiliary needle from causing unnecessary harm to the user, the auxiliary needle is completely retracted into the housing when retracted, and the retraction stroke of the auxiliary needle is too long, which limits the overall height of the housing and is not conducive to the miniaturization design of the mounting unit.
[0004] Therefore, the prior art needs a more miniaturized analyte detection device mounting unit.
[0005] SUMMARY
[0006] The present invention discloses an analyte detection device mounting unit. When using the mounting unit, the second elastic member of the elastic module pushes the auxiliary needle module to slide to the distal end of the housing to retract the auxiliary needle, and the third elastic member blocks the auxiliary needle module from continuing to slide to the distal end of the housing. When the second elastic member and the third elastic member reach equilibrium, the auxiliary needle module is retracted to the end position, and at least a part of the auxiliary needle is exposed outside the housing. The auxiliary needle is not completely retracted into the mounting unit housing, which can reduce the retraction stroke of the auxiliary needle, thereby reducing the overall height of the mounting unit housing, which is conducive to the miniaturization of the mounting unit, facilitates user use, and saves production costs.
[0007] The application provides an analyte detection device mounting unit, comprising a housing, an elastic module, a trigger module, a parallel slider module, an auxiliary needle module and an analyte detection device pre-installed in the housing, the parallel slider module carrying the auxiliary needle module and the analyte detection device, the auxiliary needle module comprising an auxiliary needle, and a protective cover releasably connected with the housing, comprising an inner cover body and an outer cover body; the elastic module comprises a first elastic member, a second elastic member and a third elastic member located between the housing and the auxiliary needle module, the first elastic member being used to push the parallel slider module to slide towards the proximal end after the trigger module is started, the second elastic member being used to push the auxiliary needle module to slide towards the distal end to retract the auxiliary needle, and the third elastic member being used to block the auxiliary needle module from continuously sliding towards the distal end when the auxiliary needle module is retracted; wherein when the auxiliary needle module slides towards the distal end to the terminal point, the second elastic member and the third elastic member reach equilibrium, and at least a part of the auxiliary needle is exposed outside the housing.
[0008] According to an aspect of the application, before the mounting unit is used, the first elastic member and the second elastic member are in a compressed state, and the third elastic member is in a normal state.
[0009] According to an aspect of the application, the retraction position of the auxiliary needle module is determined according to the initial length and the elastic modulus of the second elastic member and the third elastic member.
[0010] According to an aspect of the application, the third elastic member is a spring.
[0011] According to an aspect of the application, the needle body protection structure is further included, and the needle body protection structure is used to protect the auxiliary needle after the mounting unit is used.
[0012] According to an aspect of the application, the needle body protection structure is the inner cover body, and the inner cover body comprises a needle body protection cavity, which accommodates the auxiliary needle after the mounting unit is used.
[0013] According to an aspect of the application, before the mounting unit is used, the inner cover body is located in the outer cover body.
[0014] According to an aspect of the application, the label paper is further included, and the label paper is attached to the proximal end surface of the outer cover body.
[0015] According to an aspect of the application, the proximal end surface of the inner cover body further comprises at least two convex semicircular balls.
[0016] According to an aspect of the application, the convex semicircular balls are uniformly distributed on the proximal end surface of the inner cover body.
[0017] According to an aspect of the present application, the inner cover further comprises an assembling structure for establishing an assembling connection with the parallel slider module, the trigger module or the shell, and the assembling structure is correspondingly distributed on the parallel slider module, the trigger module or the shell.
[0018] According to an aspect of the present application, the inner cover further comprises a positioning structure, and the positioning structure is correspondingly distributed on the parallel slider module, the trigger module or the shell.
[0019] According to an aspect of the present application, the needle protection structure is an elastic protective sleeve, and a distal end of the elastic protective sleeve comprises a hollow structure for sleeving outside the auxiliary needle after the installation unit is used.
[0020] According to an aspect of the present application, an inner diameter of the hollow structure of the elastic protective sleeve decreases from the distal end to the proximal end.
[0021] According to an aspect of the present application, the inner diameter of the hollow structure of the elastic protective sleeve at the distal end is greater than the outer diameter of the auxiliary needle, and the inner diameter of the hollow structure of the elastic protective sleeve at the proximal end is less than the outer diameter of the auxiliary needle.
[0022] According to an aspect of the present application, the proximal end of the elastic protective sleeve is open or closed.
[0023] According to an aspect of the present application, the length of the elastic protective sleeve is not less than the length of the auxiliary needle exposed outside the shell.
[0024] According to an aspect of the present application, the length of the auxiliary needle exposed outside the shell is 0-5mm.
[0025] Compared with the prior art, the technical scheme of the present application has the following advantages:
[0026] In the installation unit of the analyte detection device disclosed in the present application, when the installation unit is used, the second elastic member of the elastic module pushes the auxiliary needle module to slide to the distal end of the shell to retract the auxiliary needle, the third elastic member blocks the auxiliary needle module from continuing to slide to the distal end of the shell, when the second elastic member and the third elastic member reach a balance, the auxiliary needle module is retracted to an end position, at this time, at least a part of the auxiliary needle is exposed outside the shell. The auxiliary needle is not completely retracted into the installation unit shell, which can reduce the retraction stroke of the auxiliary needle, thereby reducing the overall height of the installation unit shell, which is beneficial to the miniaturization of the installation unit, facilitates the use of users, and saves the production cost.
[0027] Further, the installation unit further comprises a protective cover composed of an outer cover and an inner cover, the outer cover is used to assemble at the proximal end of the installation unit before the installation unit is used to protect the components in the shell, and the inner cover is used to assemble at the proximal end of the installation unit after the installation unit is used as a needle protection structure to protect the exposed auxiliary needle, avoid unnecessary harm to the user, and improve the safety and reliability of the installation unit.
[0028] Further, the label paper is attached to the proximal end of the protective cover, and the proximal end of the protective cover is sealed by the label paper, so that the inner cover body can be stored in the outer cover body, facilitating the transportation of the installation unit, and the label paper can be torn off by the user to take out the inner cover body.
[0029] Further, a convex semicircular ball structure is arranged on the proximal end surface of the inner cover body, so as to avoid the inner cover body from being attached to the label paper in a large area and affecting the tearing of the label paper from the outer cover body, and to improve the user experience.
[0030] Further, after using the installation unit, the inner cover body can be assembled and connected with the shell, the parallel sliding block module or the trigger module, which is selected according to the design requirement, and the structure is flexible and changeable, preferably, the inner cover body is assembled and connected with the parallel sliding block module, and the proximal end surface area of the parallel sliding block module is large, so that the processing and assembly structure is easy.
[0031] Further, a positioning structure is further designed on the inner cover body, so as to facilitate the user to quickly find the relative position of the needle body protection cavity and the auxiliary needle when assembling the inner cover body, so that the auxiliary needle is on the same axis as the needle body protection cavity, the auxiliary needle can smoothly enter the needle body protection cavity, and the positioning of the assembly structure is also facilitated.
[0032] Further, the needle body protection structure can also be an elastic protective sleeve, after using the installation unit, the user can set the elastic protective sleeve outside the auxiliary needle to protect the auxiliary needle exposed outside the shell, avoid unnecessary harm to the user, and improve the user experience.
[0033] Further, the elastic protective sleeve is in interference fit with the auxiliary needle, and has elasticity, so that the elastic protective sleeve can be reliably set on the auxiliary needle, and the elastic protective sleeve is prevented from being separated from the auxiliary needle. BRIEF DESCRIPTION OF DRAWINGS
[0034] Fig. 1 is a schematic diagram of the external structure of the analyte detection device installation unit according to an embodiment of the present application;
[0035] Fig. 2a is a schematic diagram of the external structure of the shell according to an embodiment of the present application;
[0036] Fig. 2b is a schematic diagram of the structure of the protective cover according to an embodiment of the present application;
[0037] Fig. 3 is a schematic diagram of the exploded structure of the analyte detection device installation unit according to an embodiment of the present application;
[0038] Fig. 4 is a schematic diagram of the internal structure of the shell according to an embodiment of the present application;
[0039] Fig. 5a is a schematic diagram of the structure of the distal end surface of the parallel sliding block module according to an embodiment of the present application;
[0040] Figure 5b is a schematic diagram of the structure of the proximal end face of the parallel slider module according to an embodiment of the present application;
[0041] Figure 6 is a schematic diagram of the structure of an analyte detection device according to an embodiment of the present application;
[0042] Figure 7 is a schematic diagram of the structure of an auxiliary needle module according to an embodiment of the present application;
[0043] Figure 8 is a schematic diagram of the structure of a trigger module according to an embodiment of the present application;
[0044] Figure 9 is a top view of a mounting unit according to an embodiment of the present application;
[0045] Figure 10a is a schematic diagram of the structure of section A of Figure 9;
[0046] Figure 10b is a schematic diagram of the structure of section B of Figure 9;
[0047] Figure 10c is a schematic diagram of the structure of section C of Figure 9;
[0048] Figure 11 is a schematic diagram of the bending of a first clasp under stress according to an embodiment of the present application;
[0049] Figure 12 is an exploded schematic diagram of the structure of an analyte detection device mounting unit according to an embodiment of the present application;
[0050] Figure 13a is a schematic diagram of the structure of the separation of an outer cover and an inner cover according to an embodiment of the present application;
[0051] Figure 13b is a schematic diagram of the structure of the integration of an outer cover and an inner cover according to an embodiment of the present application;
[0052] Figure 13c is a schematic diagram of the structure of an outer cover according to an embodiment of the present application;
[0053] Figure 14 is a schematic diagram of the state of a mounting unit after use according to an embodiment of the present application;
[0054] Figure 15 is a schematic diagram of the state of a mounting unit after the retraction of an auxiliary needle according to an embodiment of the present application;
[0055] Figures 16a-16c are schematic diagrams of the structure of an inner cover as a needle protection structure according to an embodiment of the present application;
[0056] Figure 17 is a schematic diagram of the structure of a section of a mounting unit according to an embodiment of the present application;
[0057] Figures 18a-18c are schematic diagrams of the structure of a protective sleeve as a needle protection structure according to an embodiment of the present application. DETAILED DESCRIPTION
[0058] As described above, the structure of the mounting unit of the analyte detection device of the prior art limits the overall height of the housing, which is not conducive to the miniaturization design of the mounting unit.
[0059] To solve the problem, the application provides an analyte detection device mounting unit. When the mounting unit is used, the second elastic member of the elastic module pushes the auxiliary needle module to slide to the distal end of the shell to retract the auxiliary needle, the third elastic member blocks the auxiliary needle module from continuing to slide to the distal end of the shell, and when the second elastic member and the third elastic member reach a balance, the auxiliary needle module is retracted to an end position, at which time at least a part of the auxiliary needle is exposed outside the shell. The auxiliary needle is not completely retracted into the mounting unit shell, which can reduce the retraction stroke of the auxiliary needle, thereby reducing the overall height of the mounting unit shell, facilitating the miniaturization of the mounting unit, facilitating user use, and saving production costs.
[0060] Various exemplary embodiments of the present application will now be described in detail with reference to the accompanying drawings. It should be understood that the relative arrangement, numerical expressions, and numerical values of the components and steps set forth in these embodiments should not be construed as limiting the scope of the present application unless otherwise specifically stated.
[0061] In addition, it should be understood that the sizes of the various components shown in the drawings are not necessarily drawn in actual proportion, for example, the thickness, width, length, or distance of certain units can be exaggerated relative to other structures for ease of description.
[0062] The following description of the exemplary embodiments is merely illustrative in nature and is in no way intended to limit the application or its application or use. Techniques, methods, and apparatuses known to those of ordinary skill in the relevant art can not be discussed in detail here, but in the case of applicable techniques, methods, and apparatuses, these techniques, methods, and apparatuses should be considered as part of this specification.
[0063] It should be noted that similar reference numbers and letters represent similar items in the following drawings, so once an item is defined or described in one drawing, it will not need to be further discussed in subsequent drawings.
[0064] First embodiment
[0065] Figure 1 is a schematic diagram of the external structure of the analyte detection device mounting unit of the present application. The external structure of the mounting unit 100 includes a shell 101 and a protective cover 102, and the shell 101 is used to carry internal structural members. The mounting unit 100, when in use, has a proximal end close to the user's skin and a distal end away from the skin. A first opening is provided at the proximal end of the shell 101. The protective cover 102 is used to protect, seal, and prevent triggering of the internal structure and internal structural members of the shell 101.
[0066] Shell exterior
[0067] Figure 2a is a schematic diagram of the external structure of the shell of the embodiment of the present application, and Figure 2b is a schematic diagram of the structure of the protective cover. The protective cover 102 comprises an outer cover 1021, a clamp 1022 and an inner cover 1023. The outer cover 1021 is provided with a second opening at the distal end, which faces the first opening. At the second opening, the outer cover 1021 is connected with the clamp 1022 by breakable columns 10211, which are distributed at intervals between the outer cover 1021 and the clamp 1022. When the outer cover 1021 is rotated relative to the clamp 1022, the columns 10211 can be broken, and the outer cover 1021 and the clamp 1022 are separated.
[0068] The inner side of the outer cover 1021 is provided with an internal thread 10212, and the outer side of the inner cover 1023 is provided with an external thread 10231. The internal thread 10212 and the external thread 10231 can be connected to connect and fix the outer cover 1021 and the inner cover 1023 together.
[0069] The inner side of the clamp 1022 is provided with a protrusion 10221, and the outer side of the shell 101 is provided with a groove 1011, which surrounds the outer side of the shell to form a circumference, and the protrusion 10221 can be embedded in the groove 1011. The outer cover 1021 is first fixed with the inner cover 1023 by thread cooperation, and then connected with the shell 101 by the clamp 1022. The outer cover 1021 and the inner cover 1023 can protect, seal and prevent triggering of the internal structure of the shell 101. The function of preventing triggering will be further described below.
[0070] In other embodiments of the present application, the outer cover 1021 and the inner cover 1023 can also be fixedly connected by friction fit or snap fit.
[0071] In other embodiments of the present application, the clamp 1022 and the shell 101 can also be connected by friction fit, snap fit or thread fit.
[0072] Internal structure of the shell
[0073] Figure 3 is an exploded structural schematic diagram of the analyte detection device mounting unit of the embodiment of the present application, and the dashed line in the figure represents the mounting fit relationship of each structural part. The internal structural parts of the analyte detection device mounting unit 100 include a parallel slider module 103, an analyte detection device 104, an auxiliary needle module 105, a trigger module 106 and an elastic module 107, which includes a first elastic member 1071 and a second elastic member 1072.
[0074] Figure 4 is a schematic diagram of the internal structure of the shell 101 of the embodiment of the present application.
[0075] In the embodiment of the present application, at least two first buckles 1012 are arranged in the shell 101, the first buckles 1012 are integrally formed with the shell 101 and protrude towards the proximal end of the shell 101. The first buckles 1012 are made of flexible material and the ends thereof can be bent or curved outwards of the shell 101.
[0076] In the preferred embodiment of the present application, the number of the first buckles 1012 is two, which are symmetrically arranged inside the shell 101 and the angle interval between the two first buckles 1012 is 180°.
[0077] In other preferred embodiments of the present application, the number of the first buckles 1012 is three or four, which are symmetrically arranged inside the shell 101 and the angle interval between the first buckles 1012 is 120° or 90°. The number of the first buckles 1012 can also be five or more, which is not limited herein.
[0078] In the embodiment of the present application, at least two limiting grooves 1013, at least two clamping grooves 1014 and an auxiliary needle limiting groove 1015 are arranged in the shell 101.
[0079] In the embodiment of the present application, the limiting groove 1013 comprises at least two rib plates protruding from the inner wall of the shell 101. In the preferred embodiment of the present application, the rib plates are parallel to each other and the recess is formed between the adjacent rib plates.
[0080] In other embodiments of the present application, the limiting groove 1013 is a groove recessed in the inner wall of the shell 101.
[0081] In the embodiment of the present application, the clamping groove 1014 comprises two clamping groove positions, i.e. the first clamping groove position 10141 and the second clamping groove position 10142. As shown in FIG. 10a, the first clamping groove position 10141 is closer to the proximal end than the second clamping groove position 10142.
[0082] In the preferred embodiment of the present application, the number of the limiting groove 1013 and the clamping groove 1014 is two, which are symmetrically arranged inside the shell 101 and the angle interval between the limiting groove 1013 and the clamping groove 1014 is 180°.
[0083] In other preferred embodiments of the present application, the number of the limiting groove 1013 and the clamping groove 1014 is three or four, which are symmetrically arranged inside the shell 101 and the angle interval between the limiting groove 1013 and the clamping groove 1014 is 120° or 90°. The number of the limiting groove 1013 and the clamping groove 1014 can also be five or more, which is not limited herein.
[0084] Parallel sliding block module
[0085] FIG. 5a is a structural schematic view of the distal end face of the parallel sliding block module 103 and FIG. 5b is a structural schematic view of the proximal end face of the parallel sliding block module 103.
[0086] In the embodiment of the present application, the distal end face 1031 of the parallel slider module 103 is provided with a distally protruding circular groove 1032, which is a hollow cylindrical structure with an inner diameter of d1. At least two slider buckles 10321 protrude distally from the sidewall of the circular groove 1032, the buckle part of the slider buckle 10321 is a flat surface or an approximately flat surface, and the extended end m0 converges at the distal end.
[0087] In the embodiment of the present application, the slider buckle 10321 is made of flexible material, so it can be bent or folded outward of the circular groove 1032.
[0088] In other embodiments of the present application, the slider buckle 10321 can be directly provided on the distal end face of the parallel slider module 103 without the need for a circular groove structure.
[0089] In the embodiment of the present application, the distal end face 1031 of the parallel slider module 103 is provided with a distally protruding circular groove 1032, which is a hollow cylindrical structure with an inner diameter of d1. At least two slider buckles 10321 protrude distally from the sidewall of the circular groove 1032, the buckle part of the slider buckle 10321 is a flat surface or an approximately flat surface, and the extended end m0 converges at the distal end.
[0090] In the preferred embodiment of the present application, the number of slider buckles 10321 is two, symmetrically distributed on the sidewall of the circular groove 1032, and the angular interval between the two slider buckles 10321 is 180°.
[0091] In other preferred embodiments of the present application, the number of slider buckles 10321 can be three or four, symmetrically distributed on the sidewall of the circular groove 1032, and the angular interval between the slider buckles 10321 is 120° or 90°. The number of slider buckles 10321 can also be five or more, which is not limited here.
[0092] Continuing to refer to FIG. 5a, in the embodiment of the present application, at least two second buckles 1033 are provided on the side edge of the distal end face 1031 of the parallel slider module 103, and the second buckles 1033 are symmetrically distributed on the side edge of the distal end face 1031 with an angular interval of 180° between each other.
[0093] In other embodiments of the present application, the number of second buckles 1033 is three or four, symmetrically distributed on the side edge of the distal end face 1031 with an angular interval of 120° or 90° between each other. The number of second buckles 1033 can also be five or more, which is not limited here. In the installation unit 100, the second buckles 1033 are coupled with the first buckles 1012. The position and number of the second buckles 1033 are consistent with the first buckles 1012.
[0094] Referring to Fig. 5b, in the embodiment of the present application, at least two T-shaped structures 1035 are arranged on the side of the proximal end surface 1034 of the parallel sliding block module 103, the vertical part of the T-shaped structure 1035 is connected to the proximal end surface 1034, the horizontal part includes a T-shaped structure sliding block 10351 and a T-shaped structure buckle 10352, the T-shaped structure sliding block 10351 is directed to the outside of the parallel sliding block module 103 and protrudes from the outer ring of the parallel sliding block module 103; the T-shaped structure buckle 10352 is directed to the inside of the parallel sliding block module 103 and protrudes from the inner ring of the parallel sliding block module 103.
[0095] In the installation unit 100, the T-shaped structure sliding block 10351 is located in the limiting groove 1013 to limit the position of the parallel sliding block module 103 and prevent the parallel sliding block module 103 from rotating in the installation unit 100. The number and position of the T-shaped structure sliding block 10351 are consistent with the limiting groove 1013. During the sliding process of the parallel sliding block module 103 to the proximal end, the T-shaped structure sliding block 10351 slides in the limiting groove 1013.
[0096] In the preferred embodiment of the present application, the vertical part of the T-shaped structure 1035 is made of flexible material, the vertical part is integrally formed with the horizontal part, and the horizontal part can be bent or curved around the vertical part.
[0097] In other preferred embodiments of the present application, the vertical part of the T-shaped structure 1035 is made of elastic material, such as spring, elastic sheet, etc., and the horizontal part is fixedly connected with the vertical part by welding or hot melting process, and the horizontal part can also be bent or curved around the vertical part.
[0098] Analyte detection device
[0099] Fig. 6 is a structural schematic diagram of the analyte detection device according to the embodiment of the present application.
[0100] Referring to Fig. 3, in the embodiment of the present application, the analyte detection device 104 includes a housing 1041, a transmitter (not shown in the figure), a sensor 1042, and an internal circuit (not shown in the figure) arranged in the housing 1041 and electrically coupled with the sensor. The sensor 1042 is used to detect the analyte parameter information of the user's body fluid, and the analyte parameter information is transmitted to the transmitter by the internal circuit, and then transmitted to the external device 200 by the transmitter.
[0101] In the preferred embodiment of the present application, before the analyte detection device 104 is installed on the surface of the user's skin, the signal is transmitted to the external device 200 at a first frequency f1, and after the analyte detection device 104 is installed on the surface of the user's skin, the signal is transmitted to the external device 200 at a second frequency f2, and the second frequency f2 is greater than the first frequency f1. In the further preferred embodiment of the present application, the first frequency f1 is 0-12 times / hour, and the second frequency f2 is 12-3600 times / hour.
[0102] In a more preferred embodiment of the present application, the first frequency f1 is 0 times per hour, i.e. no signal is transmitted to the external device 200 before the analyte detection device 104 is mounted on the skin surface of the user, so that the power consumption of the analyte detection device 104 before mounting can be saved.
[0103] In an embodiment of the present application, the housing 1041 comprises an upper housing body 10411 and a lower housing body 10413, which are spliced to form an internal space. The sensor 1042 comprises an in-vivo part (not shown in the figure) and an in-vivo part (not shown in the figure), the in-vivo part, the transmitter and the internal circuit are arranged in the internal space, and the in-vivo part is electrically coupled to the internal circuit. The in-vivo part is provided with structures such as electrodes and film layers, and can detect analyte parameter information after being pierced into the subcutaneous tissue of the user. When the in-vivo part is pierced into the subcutaneous tissue, it needs to have a correct angle, for example, perpendicular to the skin surface. After the service life of the analyte detection device 104 ends, it is taken off from the skin surface of the user and discarded as a whole.
[0104] In an embodiment of the present application, the lower housing body 10413 comprises a first through hole 10414, and correspondingly, the upper housing body 10411 comprises a second through hole (not shown in the figure) on the axis of the first through hole 10414, and the in-vivo part passes through the first through hole 10414 to the outside of the housing, so as to facilitate the piercing into the subcutaneous tissue of the user.
[0105] In an embodiment of the present application, the side edge of the upper housing body 10411 comprises a clamping hole 10412 corresponding to the T-shaped structure clamping buckle 10352, where "corresponding" means that the position and number of the clamping hole 10412 are consistent with the T-shaped structure clamping buckle 10352. In the mounting unit 100, the upper housing body 10411 is attached to the proximal end surface 1034, the T-shaped structure clamping buckle 10352 is clamped and connected with the clamping hole 10412, and the analyte detection device 104 is fixed on the parallel slide block module 103. When the horizontal part of the T-shaped structure is bent or curved around the vertical part, the clamping connection between the T-shaped structure clamping buckle 10352 and the clamping hole 10412 is released, and the analyte detection device 104 is separated from the parallel slide block module 103. Therefore, in the mounting unit 100, the analyte detection device 104 and the parallel slide block module 103 are releasably connected.
[0106] Auxiliary needle module
[0107] FIG. 7 is a structural schematic diagram of the auxiliary needle module according to an embodiment of the present application.
[0108] In an embodiment of the present application, the auxiliary needle module 105 comprises an auxiliary needle fixing structure 1051 and an auxiliary needle 1052. In the mounting unit 100, the auxiliary needle fixing structure 1051 is located at the distal end, and the auxiliary needle 1052 is located at the proximal end.
[0109] In the embodiment of the present application, the auxiliary needle fixing structure 1051 comprises an auxiliary needle sliding block 10511 and an auxiliary needle fixing block 10512, the diameter or width of the auxiliary needle sliding block 10511 is larger than that of the auxiliary needle fixing block 10512, forming a convex surface 10513 towards the proximal end.
[0110] In the embodiment of the present application, the auxiliary needle 1052 comprises a full-enclosing needle body 10521 and a half-enclosing needle body 10522, the full-enclosing needle body 10521 is located between the auxiliary needle fixing block 10512 and the half-enclosing needle body 10522, and is fixedly connected with the auxiliary needle fixing block 10512. The hollow structure of the half-enclosing needle body 10522 can be used to accommodate the in-vivo part of the sensor 1042, when the half-enclosing needle body 10522 is pierced into the subcutaneous tissue of the user, the in-vivo part can also be pierced into the subcutaneous tissue, and when the needle body is retracted, the in-vivo part in the subcutaneous tissue is not affected.
[0111] In other embodiments of the present application, the auxiliary needle 1052 only comprises the half-enclosing needle body 10522, that is, the half-enclosing needle body 10522 is fixedly connected with the auxiliary needle fixing block 10512, which can reduce the material of the auxiliary needle 1052 and save costs, but at the same time, the rigidity of the auxiliary needle 1052 is also reduced.
[0112] In the installation unit 100, the auxiliary needle 1052 passes through the second through hole and the first through hole 10414 in sequence, so as to penetrate the analyte detection device 104, and the in-vivo part of the sensor 1042 is located in the half-enclosing needle body 10522.
[0113] Trigger module
[0114] FIG. 8 is a structural schematic diagram of the trigger module in the embodiment of the present application.
[0115] In the embodiment of the present application, the trigger module 106 is provided with at least two fixed buckles 1061 corresponding to the first buckle 1012. In the installation unit 100, the fixed buckle 1061 is in contact with the first buckle 1012 to prevent the first buckle 1012 from being bent or folded outward of the shell. The contact between the fixed buckle 1061 and the first buckle 1012 can be point contact, line contact or surface contact, when the contact is surface contact, the contact surface between the fixed buckle 1061 and the first buckle 1012 forms a fixed angle with the horizontal plane, and converges at the proximal end of the installation unit 100. The number and position of the fixed buckle 1061 are consistent with those of the first buckle 1012.
[0116] In the embodiment of the present application, the trigger module 106 is further provided with at least two clamping ears 1062, which are clamped with the clamping grooves 1014 in the installation unit 100 to fix the trigger module 106. The number and position of the clamping ears 1062 are consistent with the clamping grooves 1014. In combination with Fig. 10a, before the installation unit 100 is used, the clamping ears 1062 are located in the first clamping groove 10141, at this time, the fixing clamps 1061 are in contact with the first clamps 1012.
[0117] In the embodiment of the present application, the trigger module 106 further comprises an outer ring 1063, which connects the fixing clamps 1061 and the clamping ears 1062 into a whole. In the installation unit 100, the outer ring 1063 is close to the proximal end relative to the clamping ears 1062, located in and protruding from the first opening, and in use of the installation unit 100, the outer ring 1063 is in contact with the surface of the skin of the user.
[0118] Elastic module
[0119] Referring to Fig. 3, the elastic module 107 comprises a first elastic member 1071 and a second elastic member 1072.
[0120] In the embodiment of the present application, the first elastic member 1071 is located between the parallel slider module 103 and the shell 101, that is, one end of the first elastic member 1071 is located on the distal end surface of the parallel slider module 103, and the other end is located in the shell 101, and in the installation unit 100, the first elastic member 1071 is in a compressed state and can provide elastic force.
[0121] In the embodiment of the present application, the second elastic member 1072 is located between the parallel slider module 103 and the auxiliary needle module 105, that is, one end of the second elastic member 1072 is located on the boss 10322 of the parallel slider module 103, and the other end is located on the convex surface 10513 of the auxiliary needle module 105, and in the installation unit 100, the second elastic member 1072 is in a compressed state and can provide elastic force.
[0122] In the preferred embodiment of the present application, the first elastic member 1071 or the second elastic member 1072 is a metal spring.
[0123] In the embodiment of the present application, the inner diameter of the first elastic member 1071 is greater than the outer diameter of the circular groove 1032 and the auxiliary needle slider 10511, and in the installation unit 100, the first elastic member 1071 surrounds the outside of the auxiliary needle slider 10511 and the circular groove 1032, so that the internal space of the installation unit 100 can be fully utilized.
[0124] In the embodiment of the present application, the outer diameter of the second elastic member 1072 is greater than the outer diameter of the auxiliary needle fixing block 10512 and the inner diameter of the boss 10322, and is less than the outer diameter of the auxiliary needle sliding block 10511 and the inner diameter of the circular groove 1032, so that one end of the second elastic member 1072 is placed in the circular groove 1032 and the other end is surrounded outside the auxiliary needle fixing block 10512, and the internal space of the installation unit 100 can be fully utilized.
[0125] Method for using the installation unit
[0126] FIG. 9 is a top view of the installation unit according to the embodiment of the present application.
[0127] FIG. 10a is a schematic view of the A cross-sectional structure of FIG. 9; FIG. 10b is a schematic view of the B cross-sectional structure of FIG. 9; FIG. 10c is a schematic view of the C cross-sectional structure of FIG. 9; and FIG. 11 is a schematic view of the bending of the first clasp under stress.
[0128] With reference to FIGS. 10a and 10b, in the embodiment of the present application, the clamping groove 1014 is provided with two clamping groove positions, a first clamping groove position 10141 and a second clamping groove position 10142. Before the installation unit 100 is used, the trigger module 106 is fixed on the shell 101 by the clamping of the clamping ear 1062 and the first clamping groove position 10141, at this time, the fixed clasp 1061 is in contact with the first clasp 1012, preventing the first clasp 1012 from bending or folding outward of the shell 101, and the fixed clasp 1061, the first clasp 1012 and the second clasp 1033 are located on the same horizontal line. In the preferred embodiment of the present application, from inside to outside of the shell 101, they are the second clasp 1033, the first clasp 1012 and the fixed clasp 1061 in sequence.
[0129] In the embodiment of the present application, the contact between the fixed clasp 1061 and the first clasp 1012 is one of point contact, line contact or surface contact, and when the contact is surface contact, the extension line m1 of the contact surface converges at the proximal end. This structure design can make the fixed clasp 1061 slide to the distal end relative to the first clasp 1012.
[0130] In the preferred embodiment of the present application, the coupling surface between the second clasp 1033 and the first clasp 1012 is a plane, which forms a fixed angle with the horizontal plane, and the extension end m2 converges at the proximal end.
[0131] With reference to FIG. 11, this structure design can make the second clasp 1033 slide to the proximal end relative to the first clasp 1012, pushing the first clasp 1012 away from the shell 101, so as to release the coupling state between the first clasp 1012 and the second clasp 1033.
[0132] In the embodiment of the present application, the first elastic member 1071 is in a compressed state and has elastic potential energy. The elastic force of the first elastic member 1071 gives the parallel module slider 103 a proximal pushing force Fr. The pushing force Fr acts on the first buckle 1012 through the coupling surface of the second buckle 1033 and the first buckle 1012, and generates a component force Fsin perpendicular to the plane of the first buckle 1012. The component force Fsin can push the first buckle 1012 outward of the shell 101 to bend or fold the first buckle 1012, thereby releasing the coupling state of the first buckle 1012 and the second buckle 1033.
[0133] In the embodiment of the present application, when the mounting unit 100 is used, the rotating outer cover 1021 is broken by the stand 10211, and the protective cover 102 is separated from the shell 101. The proximal end of the mounting unit 100 is close to the skin of the user, and the outer ring 1063 of the trigger module 106 is attached to the surface of the skin. The user presses the shell 101 at the distal end, and the shell 101 slides towards the skin. The trigger module 106 remains stationary, so the trigger module 106 slides distally relative to the shell 101. The clamping ear 1062 is separated from the first clamping groove 10141 and enters the second clamping groove 10142. At the same time, the fixed buckle 1061 is no longer in contact with the first buckle 1012. The first buckle 1012 is bent or folded outward of the shell 101 due to the component force Fsin, and the coupling state of the first buckle 1012 and the second buckle 1033 is released.
[0134] In the embodiment of the present application, after the coupling state is released, the parallel slider module 103 continues to slide proximally under the elastic force of the first elastic member 1071, and drives the analyte detection device 104 to slide proximally until the lower outer shell 10413 of the analyte detection device 104 is in contact with the surface of the skin of the user.
[0135] Referring to FIG. 10c, in the embodiment of the present application, the slider buckle 10321 is buckled with the auxiliary needle slider 10511. When the first elastic member 1071 pushes the parallel slider module 103 to slide proximally, the auxiliary needle module 105 is driven to slide proximally together.
[0136] In the embodiment of the present application, the connection between the slider buckle 10321 and the auxiliary needle slider 10511 is a plane or an approximately planar surface. The plane forms a fixed angle with the horizontal plane, and the extension line m3 converges at the distal end. The pushing force of the second elastic member 1072 on the auxiliary needle slider 10511 is directed towards the distal end. Therefore, the auxiliary needle slider 10511 can push the slider buckle 10321 outward of the shell 101 to bend or fold the slider buckle 10321. The principle is equivalent to that of FIG. 11.
[0137] In the embodiment of the present application, in the installation unit 100, the side wall of the auxiliary needle limiting groove 1015 prevents the bending or buckling of the slider buckle 10321, and the buckle connection state of the slider buckle 10321 and the auxiliary needle slider 10511 does not change. With the sliding of the parallel slider module 103 and the auxiliary needle module 105 to the proximal end, until the slider buckle 10321 is separated from the auxiliary needle limiting groove 1015, the inner wall of the auxiliary needle limiting groove 1015 no longer prevents the bending or buckling of the slider buckle 10321, the second elastic member 1072 pushes the auxiliary needle slider 10511 to the distal end, and at the same time the auxiliary needle slider 10511 pushes the slider buckle 10321 to bend or buckle outward, the buckle connection of the slider buckle 10321 and the auxiliary needle slider 10511 is released, the second elastic member 1072 continues to push the auxiliary needle slider 10511 to slide to the distal end, and finally the auxiliary needle module 105 returns to the initial position, the auxiliary needle 1052 is retracted into the shell 101, preventing the auxiliary needle 1052 from being exposed outside the shell 101, and avoiding unnecessary harm.
[0138] In the embodiment of the present application, when the slider buckle 10321 is separated from the auxiliary needle limiting groove 1015, the semi-enclosed needle body 10522 of the auxiliary needle pierces the user's subcutaneous tissue.
[0139] In the embodiment of the present application, in the installation unit 100, the T-shaped structure slider 10351 is located in the limiting groove 1013, and the limiting groove 1013 limits the position and direction of the parallel slider module 103 through the T-shaped structure slider 10351, to ensure that the parallel slider module 103 and its sliding direction are perpendicular, so that the analyte detection device 104 arranged at the front end of the parallel slider module 103 and its sliding direction are perpendicular, and at the same time the auxiliary needle 1052 and its sliding direction are parallel, so that the auxiliary needle 1052 and the envelope sensor body inside it can pierce the user's subcutaneous tissue at a perpendicular angle, reducing the user's pain.
[0140] In the embodiment of the present application, during the sliding of the parallel slider module 103 to the proximal end, the T-shaped structure slider 10351 slides in the limiting groove 1013 until it contacts the outer ring 1063 of the trigger module 106, and under the pushing of the first elastic member 1071, the parallel slider module 103 continues to slide to the proximal end, while the outer ring 1063 blocks the T-shaped structure slider 10351 from continuing to slide to the proximal end, so the T-shaped structure slider 10351 bends or buckles around the vertical part, the buckle connection of the T-shaped structure buckle 10352 and the clamping hole 10412 is released, and the analyte detection device 104 is separated from the parallel slider module 103, so that it can be installed on the surface of the user's skin.
[0141] In the embodiment of the present application, when the T-shaped structure slider 10351 contacts the outer ring 1063, the parallel slider module 103 is at a predetermined position, at which time the lower outer shell 10413 of the analyte detection device contacts the skin surface of the user.
[0142] In the embodiment of the present application, the auxiliary needle 1052 sequentially passes through the second through hole and the first through hole 10414, and penetrates the analyte detection device 104, while the semi-enclosed needle body 10522 of the auxiliary needle encloses the sensor 1042. During the sliding of the parallel slider module 103 and the auxiliary needle module 105 towards the proximal end, the semi-enclosed needle body 10522 carries the sensor 1042 to penetrate into the subcutaneous tissue, and after the auxiliary needle 1052 is retracted, the in-vivo part of the sensor 1042 remains in the subcutaneous tissue, and the retraction of the needle body does not affect the state of the in-vivo part of the sensor 1042.
[0143] In the embodiment of the present application, when the installation action is performed, the user needs to press the shell 101 at the distal end, apply a proximal force F to the shell 101, trigger the outer ring 1063 of the trigger module 106 to contact the skin surface of the user, and the skin of the user gives the outer ring 1063 a force F' opposite to the force F, so as to realize the relative sliding of the trigger module 106 and the shell 101. In the actual installation process, the absolute position of the trigger module 106 remains unchanged, and the shell 101 slides towards the proximal end.
[0144] Before the installation action is performed, in order to prevent the trigger module 106 from sliding relative to the shell 101, a protective cover 102 is installed at the proximal end of the shell 101, which surrounds the outer ring 1063 of the trigger module, can prevent the installation action from being performed at an incorrect position due to accidental contact with the outer ring 1063, and plays a role of preventing triggering.
[0145] The distal end surface 10232 of the inner cover body 1023 contacts the analyte detection device 104, and the auxiliary needle 1052 and the sensor 1042 extend into the inner cover body groove 10233, which can play a sealing role to prevent external dust, particles and other contaminants from contacting the needle body and the sensor, causing pollution.
[0146] In the embodiment of the present application, the lower outer shell 10413 of the analyte detection device is also provided with adhesive tape (not shown in the figure) for fixing the analyte detection device 104 to the skin surface of the user.
[0147] Second Embodiment
[0148] In the foregoing embodiment, after the user uses the installation unit, the auxiliary needle is automatically retracted into the shell under the action of the second elastic member to avoid unnecessary harm to the user. The auxiliary needle is completely retracted into the shell, and a sufficient height needs to be reserved in the shell to accommodate the auxiliary needle module, which limits the miniaturization design of the installation unit. In order to further reduce the overall height of the shell of the installation unit and reduce the volume of the installation unit, the embodiments of the present application consider reducing the retraction stroke of the auxiliary needle. After the retraction stroke of the auxiliary needle is reduced, the needle tip of the auxiliary needle may be exposed outside the shell of the installation unit, which is unsafe for the user. Therefore, protective measures for the auxiliary needle need to be considered, and a needle body protection structure is designed for the auxiliary needle.
[0149] In the above technical background, in some embodiments of the present application, after the user uses the installation unit to install the analyte monitoring device, the auxiliary needle is not completely retracted into the shell, and at least a part of the auxiliary needle, such as the needle tip, is exposed outside the shell. The user assembles the needle body protection structure to the installation unit to protect the exposed needle tip. The specific embodiments of the needle body protection structure will be described in detail below.
[0150] In the embodiments of the present application, the technical solutions not described are considered the same as the foregoing embodiments, which will not be described here again.
[0151] FIG. 12 is an exploded structural schematic diagram of the analyte monitoring device installation unit according to an embodiment of the present application. FIG. 13a is a separated structural schematic diagram of the outer cover body and the inner cover body according to an embodiment of the present application. FIG. 13b is an integrated structural schematic diagram of the outer cover body and the inner cover body according to an embodiment of the present application. FIG. 13c is a structural schematic diagram of the outer cover body according to an embodiment of the present application.
[0152] Referring to FIG. 12, in some embodiments of the present application, the installation unit 200 includes a shell 201 and a protective cover 202. As described above, before installation, the analyte monitoring device 204 is pre-installed inside the shell 201, and during installation, the elastic module (not shown in the figure, refer to FIG. 17) pushes it to the proximal end to be installed on the surface of the user's skin. The protective cover 202 is arranged at the proximal end of the shell 201 and is releasably connected with the shell 201, which is used to protect the structural members inside the shell 201 before installation.
[0153] Referring to FIGS. 13a-13c, in some embodiments of the present application, the protective cover 202 includes an outer cover body 2021, an inner cover body 2023, and a label paper 2024. According to the relative position relationship shown in FIG. 13, before installation, the inner cover body 2023 is contained in the outer cover body cavity 20214, and the outer cover body cavity 20214 is sealed with the label paper 2024 to seal the inner cover body 2023 in the outer cover body cavity 20214.
[0154] In some embodiments of the present application, the inner cover 2023 is in a movable state or releasable connection state relative to the outer cover 2021. When the inner cover 2023 is in a movable state relative to the outer cover 2021, the outer cover 2021 has no restraining structure to limit the state of the inner cover 2023 in the outer cover 2021, and the user can directly take out the inner cover 2023 from the outer cover 2021 when needed. When the inner cover 2023 is in a releasable connection state relative to the outer cover 2021, the inner cover 2023 and the outer cover 2021 are fixed together by means of buckling, clamping, threading, magic tape, etc. When needed, the user needs to first release the fixed connection between the inner cover 2023 and the outer cover 2021, and then take out the inner cover 2023 from the outer cover 2021 after the inner cover 2023 and the outer cover 2021 are separated. In the preferred embodiment of the present application, in order to facilitate the user to use, before using the installation unit 200, the inner cover 2023 is in a movable state relative to the outer cover 2021, which is convenient for the user to take out the inner cover 2023 from the outer cover 2021 when using the installation unit 200.
[0155] In some embodiments of the present application, in order to accommodate the inner cover 2023 in the outer cover 2021, the middle part of the outer cover 2021 protrudes towards the distal end and forms a proximal opening outer cover recess 20214. The inner diameter of the outer cover recess 20214 is slightly larger than the outer diameter of the inner cover 2023, for example, there is a gap of 0.5-5mm between the inner wall of the outer cover recess 20214 and the outer wall of the inner cover 2023. At the same time, the depth of the outer cover recess 20214 is not less than the height of the inner cover 2023, so as to avoid the inner cover 2023 protruding from the outer cover recess 20214, so as to facilitate the label paper 2024 to be pasted on the proximal end face 20215 of the outer cover 2021, and to seal the outer cover recess 20214.
[0156] In some embodiments of the present application, a plurality of convex semicircular balls 20234 are arranged on the proximal end surface 20232 of the inner cover 2023. Before the installation unit 200 is used, the inner cover 2023 is accommodated in the recessed cavity 20214 of the outer cover 2021, and the label paper 2024 is attached to the proximal end surface 20215 of the outer cover 2021. The adhesive coating area of the label paper 2024 may exceed the contact area of the label paper 2024 and the outer cover 2021, causing the adhesive coating of the label paper 2024 to come into contact with the proximal end surface 20232 of the inner cover 2023, and the inner cover 2023 to be attached to the label paper 2024. When the inner cover 2023 is removed, the user has difficulty tearing off the label paper 2024, and even when the label paper 2024 is torn off, it may be broken and adhere to the inner cover 2023, affecting the user's experience. Based on this, a plurality of convex semicircular balls 20234 are arranged on the proximal end surface 20232 of the inner cover 2023 to come into contact with the label paper 2024, which can reduce the contact area of the proximal end surface 20232 of the inner cover 2023 and the label paper 2024, and avoid the label paper 2024 from being adhered to the proximal end surface 20232 of the inner cover 2023 in a large area, thereby facilitating the user to tear off the label paper 2024.
[0157] In some embodiments of the present application, the number of convex semicircular balls 20234 is at least two, which are symmetrically or asymmetrically distributed on the proximal end surface of the inner cover 2023. Preferably, the convex semicircular balls 20234 are symmetrically and uniformly distributed on the proximal end surface of the inner cover 2023.
[0158] In some embodiments of the present application, information related to the analyte detection device 204, the installation unit 200, and the like, such as production batch number, production date, usage instructions, communication connection SN code, trademark, two-dimensional code, and the like, can be printed on the label paper 2024.
[0159] In some embodiments of the present application, before the installation unit 200 is used, the protective cover 202 is releasably connected to the shell 201, and the specific use mode has been described in the first embodiment, which will not be repeated here. When the protective cover 202 is installed on the shell 201, the needle accommodating cavity 20213 on the outer cover 2021 can accommodate the auxiliary needle 2052. The needle accommodating cavity 20213 is a hollow circular cone or circular truncated cone opening toward the distal end (the distal end opening can be seen in FIG. 13a). When the needle accommodating cavity 20213 is in the form of a circular cone, its diameter gradually decreases from the distal end to the proximal end. The inside of the needle accommodating cavity 20213 can be a hollow structure parallel to the external structure, or a hollow structure with a decreasing inner diameter from the distal end to the proximal end. The auxiliary needle 2052 shares the central axis with the needle accommodating cavity 20213, so that the auxiliary needle 2052 can enter the hollow cavity from the distal end opening of the needle accommodating cavity 20213. The needle accommodating cavity 20213 protects the auxiliary needle 2052 while effectively utilizing the internal space of the shell 201, making the structure more compact.
[0160] Figure 14 is a schematic diagram of the state of the installation unit after use in some embodiments of the application.
[0161] Referring to Figure 14, in some embodiments of the application, the user places the installation unit 200 on the skin surface, the trigger module 206 is in contact with the skin, the user applies pressure to the installation unit 200 from the distal end to the proximal end, the housing 201 slides proximally relative to the trigger module 206, and in the process of the housing 201 sliding proximally relative to the trigger module 206, the trigger module 206 releases the elastic module (not shown in the figure) from the restriction, under the elastic force of the elastic module, the parallel slider module 203, the analyte detection device 204 and the auxiliary needle 2052 are pushed to slide proximally together until the analyte detection device 204 is in contact with the skin surface and the auxiliary needle 2052 penetrates the subcutaneous tissue.
[0162] Referring to the direction shown in Figure 14, in some embodiments of the application, in the process of the parallel slider module 203, the analyte detection device 204 and the auxiliary needle 2052 sliding proximally together, when the proximal end surface of the analyte detection device 204 is flush with the proximal end surface of the trigger module 206, the analyte detection device 204 is in contact with the skin surface of the user, the elastic module still has a proximal pushing force on the parallel slider module 203, the parallel slider module 203 continues to slide proximally relative to the housing 201 with the analyte detection device 204 and the auxiliary needle 2052, and the analyte detection device 204 at the proximal end of the parallel slider module 203 presses the skin surface. The proximal end of the analyte detection device 204 is provided with an adhesive tape (not shown in the figure), the analyte detection device 204 presses the adhesive tape on the skin surface, which can increase the adhesive effect of the adhesive tape on the skin surface, so that the analyte detection device 204 can be more firmly attached to the skin surface.
[0163] In some embodiments of the application, in the process of the parallel slider module 203 continuing to slide proximally relative to the housing 201, due to the obstruction of the skin surface, the position of the parallel slider module 203 no longer changes, and if the elastic member in the elastic module still has elastic force that is not completely released, at this time the elastic module pushes the housing 201 to slide distally relative to the parallel slider module 203, and carries the trigger module 206 away from the skin surface, until the proximal end surface of the trigger module 206 forms a height difference h1 with the proximal end surface of the parallel slider module 203, and the skin surface forms a pit under the pressing action of the analyte detection device 204 and the parallel slider module 203.
[0164] In some embodiments of the present application, during the process of the parallel slider module 203 continuously sliding proximally relative to the housing 201, the snap connection between the parallel slider module 203 and the analyte detection device 204 is decoupled, and when the relative sliding between the parallel slider module 203 and the housing 201 is terminated, the parallel slider module 203 has been completely separated from the analyte detection device 204, while the parallel slider module 203 is still confined in the housing 201, at this time, the analyte detection device 204 is in a separated state relative to the housing 201, and the user can lift the housing 201 distally by hand, and the analyte detection device 204 is adhered to the skin surface by the adhesive tape.
[0165] In some embodiments of the present application, when the parallel slider module 203 slides proximally relative to the housing 201 to the first predetermined position, the auxiliary needle module 205 slides proximally relative to the housing to the terminal position, at this time, the auxiliary needle 2052 penetrates into the subcutaneous tissue, and the in-vivo part of the sensor 2042 is sent to the predetermined depth of the subcutaneous tissue. Subsequently, the auxiliary needle module 205 is retracted and slides distally relative to the housing 201 to the second predetermined position.
[0166] FIG. 15 is a schematic view of the state of the auxiliary needle after retraction of the installation unit according to an embodiment of the present application.
[0167] Referring to FIG. 15, in some embodiments of the present application, after the auxiliary needle module 205 slides distally to the second predetermined position, i.e., the retraction terminal position, the auxiliary needle 2052 exits the subcutaneous tissue, facilitating the user to remove the housing 201. After the auxiliary needle 2052 is retracted, the in-vivo part of the sensor 2042 remains in the subcutaneous tissue.
[0168] In some embodiments of the present application, after the auxiliary needle 2052 is retracted, a part of the needle tip is exposed outside the housing 201, as shown in FIG. 15, the height difference h2 is formed between the needle tip of the auxiliary needle 2052 and the proximal end surface of the parallel slider module 203, i.e., the length of the auxiliary needle 2052 exposed outside the housing 201 is h2, and h2 can be in the range of 0.1-5 mm. If the exposed length of the auxiliary needle 2052 is too long, the needle tip will remain in the subcutaneous tissue during retraction, and the user may be injured when removing the housing 201.
[0169] In some embodiments of the present application, the auxiliary needle 2052 is exposed outside the housing 201 after retraction, instead of being completely retracted into the housing 201, which can reduce the retraction stroke of the auxiliary needle 2052, thus reducing the overall height of the housing 201, making the installation unit 200 more compact and smaller in mass, while also reducing the material usage of the housing 201 and the production cost of the installation unit 200. In FIG. 15, the auxiliary needle module 205 represented by the dashed line represents the final position of the auxiliary needle module 205 after the reduction of the retraction stroke, and the final position of the auxiliary needle module 205 before the reduction of the retraction stroke is closer to the distal end, and the final position of the auxiliary needle module 205 after the reduction of the retraction stroke is closer to the proximal end.
[0170] In some embodiments of the present application, the reduction of the retraction stroke of the auxiliary needle 2052 means that the auxiliary needle module 205 also reduces the same retraction stroke. Referring to FIG. 15, the auxiliary needle module 205 reduces the retraction stroke by h3, and after the reduction of the retraction stroke of the auxiliary needle module 205, the overall height of the housing 201 can be reduced, and the overall height of the housing 201 that is reduced can be consistent with the reduction of the retraction stroke of the auxiliary needle module 205, both being h3.
[0171] In some embodiments of the present application, the auxiliary needle 2052 is exposed outside the housing 201, and the needle tip can cause unnecessary harm to the human body, so after using the installation unit 200, a needle body protection structure is needed to protect the exposed needle tip.
[0172] FIGS. 16a-16c are schematic diagrams of the inner cover as a needle body protection structure in embodiments of the present application.
[0173] Referring to FIGS. 16a-16c and FIG. 13c, in some embodiments of the present application, after using the installation unit 200, the user can remove the inner cover 2023 from the outer cover 2021, and assemble the inner cover 2023 to the parallel slider module 203, the trigger module 206, or the housing 201. The inner cover 2023 is provided with a needle body protection cavity 20233, which can be used to protect the exposed needle tip of the auxiliary needle 2052.
[0174] In some embodiments of the present application, the inner cover 2023 is assembled with the parallel slider module 203 as an embodiment, and the inner cover 2023 is a needle body protection structure in embodiments of the present application. The proximal surface of the parallel slider module 203 has a larger area relative to the proximal surface of the trigger module 206 or the housing 201, and is easier to process and assemble.
[0175] In some embodiments of the present application, referring to the direction shown in FIG. 16b, the needle body protection cavity 20233 is a hollow cavity with a distal opening, and the inner hollow cavity can be used to accommodate the exposed needle tip of the auxiliary needle 2052. The outer side of the needle body protection cavity 20233 can be a cylinder, a cone, a cuboid, or other irregular solid structures, which are not limited herein, and the inner side cavity can be the same or different shape structure as the outer side, preferably, the inner side cavity is a cylinder or a cone, more preferably, the inner side cavity is a cone with a gradually decreasing inner diameter from the distal end to the proximal end.
[0176] In some embodiments of the present application, if the auxiliary needle 20522 is in an eccentric position relative to the parallel slider module 203, the needle body protection cavity 20233 is also in an eccentric position on the inner cover 2023, that is, the auxiliary needle 20522 and the needle body protection cavity 20233 share the same central axis. Before the user assembles the outer cover 2021 to the parallel slider module 203, the user needs to ensure that the distal opening of the needle body protection cavity 20233 is aligned with the auxiliary needle 20522, to avoid misalignment between the needle body protection cavity 20233 and the auxiliary needle 20522.
[0177] In some embodiments of the present application, the inner cover 2023 and the parallel slider module 203 are assembled and connected by one or more of buckles, hooks, blocks, threads, bolts, magic tapes, and glue, and any assembly method that can assemble the inner cover 2023 to the parallel slider module 203 should be included in the protection scope of the present application. At least two assembly structures are provided on the corresponding positions of the inner cover 2023 and the parallel slider module 203, and preferably, the assembly structures are symmetrically distributed on the inner cover 2023 and the parallel slider module 203.
[0178] In some embodiments of the present application, the assembly structures can be interchanged on the inner cover 2023 and the parallel slider module 203, for example, the hooks 20231 are provided on the distal end face of the inner cover 2023, and the corresponding card holes 2037 are provided on the proximal end face of the parallel slider module 203, for establishing assembly connection with the hooks 20231. In other embodiments of the present application, the hooks 20231 can be provided on the parallel slider module 203, and the corresponding card holes 2037 are provided on the inner cover 2023.
[0179] In some embodiments of the present application, in order to facilitate the user to assemble the inner cover 2023 and increase the assembly firmness of the inner cover 2023, positioning structures are further provided on the inner cover 2023 and the parallel slider module 203. The positioning structures are composed of positioning columns 20232 and positioning holes 2036, and the positions and quantities of the positioning structures on the inner cover 2023 and the parallel slider module 203 are corresponding.
[0180] In some embodiments of the present application, the positioning column 20232 is located at the distal end surface of the inner cover 2023, and the positioning hole 2036 is located at the proximal end surface of the parallel slider module 203. In other embodiments of the present application, the positioning hole 2036 is located at the distal end surface of the inner cover 2023, and the positioning column 20232 is located at the proximal end surface of the parallel slider module 203.
[0181] In some embodiments of the present application, the positioning structure is not limited to the combination of the positioning column 20232 and the positioning hole 2036 shown in Figures 16a-16c, but can also be other types of positioning structures, such as the combination of a slider and a sliding groove, and any structure related to the positioning function should be included in the protection scope of the present application.
[0182] In some embodiments of the present application, the user holds the inner cover 2023 and the shell 201 with hands respectively and moves them close to each other, aligns the assembly structure and the positioning structure, and then places the auxiliary needle 20522 on the central axis of the needle body protection cavity 20233, and then presses the inner cover 2023 and the shell 201 with force, so as to assemble the inner cover 2023 to the parallel slider module 203, and the needle body protection cavity 20233 wraps the auxiliary needle 20522 to seal and protect the exposed needle tip. The state diagram of the inner cover 2023 assembled to the parallel slider module 203 is shown in Figure 16c.
[0183] Figure 17 is a cross-sectional structure diagram of the installation unit of an embodiment of the present application.
[0184] Referring to Figure 17, in some embodiments of the present application, the elastic module includes a first elastic member 2071, a second elastic member 2072, and a third elastic member 2073. Before using the installation unit 200, the first elastic member 2071 and the second elastic member 2072 are in a compressed state, and the third elastic member 2073 is in a normal state. The first elastic member 2071 is used to push the parallel slider module 203 to slide towards the proximal end after releasing the elastic force, the second elastic member 2072 is used to push the auxiliary needle module 205 towards the distal end to retract the auxiliary needle 2052 after releasing the elastic force, and the third elastic member 2073 is used to adjust the retraction stroke of the auxiliary needle module 205.
[0185] In some embodiments of the present application, the third elastic member 2072 is arranged in the housing 201, one end of which is in contact with the inner side of the housing 201, and the other end of which is directed towards the auxiliary needle module 205. After the first elastic member 2071 pushes the parallel slider module 203 towards the proximal end, and the second elastic member 2072 pushes the auxiliary needle module 205 towards the distal end, the third elastic member 2073 blocks the auxiliary needle module 205 from continuing to slide towards the distal end, limiting the retraction of the auxiliary needle module 205 to reduce the retraction stroke. Without the third elastic member 2073, the auxiliary needle module 205 will slide to the farthest end inside the housing 201 until it contacts the housing 201. With the third elastic member 2073, the retraction stroke of the auxiliary needle module 205 can be adjusted according to the relative elastic force and length of the second elastic member 2072 and the third elastic member 2073, and then the length of the needle tip of the auxiliary needle 2052 exposed outside the housing 201 can be adjusted.
[0186] In some embodiments of the present application, the reduction amount h3 of the retraction stroke of the auxiliary needle module 205 is equivalent to the length L of the third elastic member 2073 when the elastic force of the second elastic member 2072 and the third elastic member 2073 is balanced.
[0187] In some embodiments of the present application, the initial state of the third elastic member 2073 is the normal state, which is not compressed or stretched, and the initial state of the second elastic member 2072 is the compressed state. After the second elastic member 2072 releases the elastic force, the auxiliary needle module 205 is pushed towards the distal end by the second elastic member 2072 until the auxiliary needle module 205 contacts the proximal end of the third elastic member 2073 and continues to slide towards the distal end under the elastic force of the second elastic member 2072. The third elastic member 2073 is compressed and generates elastic force under the elastic force of the second elastic member 2072 until the elastic force of the third elastic member 2073 is the same as that of the second elastic member 2072, and the auxiliary needle module 205 stops sliding towards the distal end.
[0188] In some embodiments of the present application, the second elastic member 2072 and the third elastic member 2073 are springs, the elastic modulus and initial length of which are preset before leaving the factory. When the third elastic member 2073 is in the balanced state with the same elastic force as the second elastic member 2072 after the auxiliary needle module 205 is retracted, the second elastic member 2072 is still in the compressed state. By adjusting the elastic modulus and initial length of the second elastic member 2072 and the third elastic member 2073, the length L of the third elastic member 2073 when the elastic force of the second elastic member 2072 and the third elastic member 2073 is balanced can be controlled, and then the retraction stroke of the auxiliary needle module 205 and the reduction amount h3 of the retraction stroke can be controlled, and finally the length h2 of the needle tip of the auxiliary needle 2052 exposed outside the housing 201 can be determined.
[0189] In some embodiments of the present application, after the auxiliary needle module 205 stops sliding, the user takes the shell 201 off the skin surface, the needle tip of the auxiliary needle 2052 is exposed outside the shell 201, and then the inner cover 2023 is assembled to the parallel slider module 203, the needle body protection cavity 20233 surrounds and seals the auxiliary needle 2052, and the inner cover 2023 completes its protection function for the auxiliary needle 2052.
[0190] FIGS. 18a-18c are schematic diagrams of the protective sleeve as a needle body protection structure in embodiments of the present application.
[0191] With reference to FIGS. 18a-18c, in some embodiments of the present application, the needle body protection structure can also be an elastic protective sleeve 20523. After the user uses the installation unit 200, the elastic protective sleeve 20523 can be assembled to the auxiliary needle 2052 to protect the needle tip exposed outside the shell 201, which will be described below in the detailed description.
[0192] With reference to the direction shown in FIG. 18b, in some embodiments of the present application, the elastic protective sleeve 20523 is a hollow three-dimensional structure with a distal opening, and the hollow structure is used to accommodate the auxiliary needle 2052. The outer diameter of the auxiliary needle 2052 is d3, and the inner diameter of the distal opening of the elastic protective sleeve 20523 is d4, which is slightly larger than the outer diameter d3 of the auxiliary needle 2052, for example, 0.1-2 mm larger, to facilitate the user to align the distal opening of the elastic protective sleeve 20523 and the auxiliary needle 2052. From the distal opening of the elastic protective sleeve 20523 to the proximal end, the inner diameter gradually decreases until it decreases to d5, which is slightly smaller than the outer diameter d3 of the auxiliary needle 2052, for example, 0.1-2 mm smaller. Because the material of the elastic protective sleeve 20523 is elastic, the inner diameter d5 is slightly smaller than the outer diameter d3 of the auxiliary needle 2052, so that the elastic protective sleeve 20523 and the auxiliary needle 2052 achieve interference fit, increasing the friction between the auxiliary needle 2052 and the elastic protective sleeve 20523, so that the elastic protective sleeve 20523 can be fixed relative to the auxiliary needle 2052 after being sleeved outside the auxiliary needle 2052 and will not fall off. That is, the elastic protective sleeve 20523 and the auxiliary needle 2052 are in size values, d4>d3>d5. The proximal end of the elastic protective sleeve 20523 can be open or closed, and the overall length thereof should be not less than the length h2 of the auxiliary needle 2052 exposed outside the shell 201, for example, 0.1-20 mm longer, so that the elastic protective sleeve 20523 can completely wrap the exposed needle tip and achieve protection for the auxiliary needle 2052. Preferably, the proximal end of the elastic protective sleeve 20523 is closed, which can prevent the needle tip of the auxiliary needle 2052 from being exposed from the proximal end of the elastic protective sleeve 20523.
[0193] In some embodiments of the present application, the elastic protective sleeve 20523 can be a separate structure from the installation unit 200 before the user uses the installation unit 200, and the user can set the elastic protective sleeve 20523 on the auxiliary needle 2052 after using the installation unit 200 to form an integral whole with the installation unit 200.
[0194] In some embodiments of the present application, the elastic protective sleeve 20523 needs to have a certain elasticity to achieve interference fit with the auxiliary needle 2052, and the elastic protective sleeve 20523 can be made of elastic materials such as silica gel and rubber. Any change in the material of the elastic protective sleeve 20523 should be included in the protection scope of the present application.
[0195] In some embodiments of the present application, the elastic protective sleeve 20523 can not be limited to the straight strip structure shown in the above and in FIGS. 18a-18c, but can also be other three-dimensional structures such as spheres, cones or other irregular three-dimensional structures. Any change in the shape of the elastic protective sleeve 20523 should be included in the protection scope of the present application.
[0196] In summary, the embodiments of the present application disclose an installation unit of an analyte detection device. When the installation unit is used, the second elastic member of the elastic module pushes the auxiliary needle module to slide to the distal end of the shell to retract the auxiliary needle, the third elastic member blocks the auxiliary needle module from continuing to slide to the distal end of the shell, and when the second elastic member and the third elastic member reach equilibrium, the auxiliary needle module is retracted to the end position, and at least a part of the auxiliary needle is exposed outside the shell. The auxiliary needle is not completely retracted into the installation unit shell, which can reduce the retraction stroke of the auxiliary needle, thereby reducing the overall height of the installation unit shell, facilitating the miniaturization of the installation unit, facilitating the use of the user, and saving the production cost.
[0197] Although some specific embodiments of the present application have been described in detail through examples, those skilled in the art should understand that the above examples are only for illustration, but not for limiting the scope of the present application. Those skilled in the art should understand that the above embodiments can be modified without departing from the scope and spirit of the present application. The scope of the present application is defined by the appended claims.
Claims
1. An analyte detection device mounting unit, characterized by, The installation unit comprises: a housing and a spring module, a trigger module, a parallel slider module, an auxiliary needle module and an analyte detection device pre-installed in the housing, the parallel slider module carrying the auxiliary needle module and the analyte detection device, the auxiliary needle module comprising an auxiliary needle; and a protective cover releasably connected with the housing, comprising an inner cover body and an outer cover body; the spring module comprising a first spring, a second spring and a third spring located between the housing and the auxiliary needle module, the first spring being used to push the parallel slider module to slide towards the proximal end after the trigger module is activated, the second spring being used to push the auxiliary needle module to slide towards the distal end to retract the auxiliary needle, and the third spring being used to block the auxiliary needle module from continuing to slide towards the distal end when the auxiliary needle module is retracted; wherein, when the auxiliary needle module slides towards the distal end to the end point, the second spring and the third spring reach equilibrium, and at least a part of the auxiliary needle is exposed outside the housing.
2. The analyte sensor mounting unit of claim 1, wherein, Before the installation unit is used, the first spring and the second spring are in a compressed state, and the third spring is in a normal state.
3. The analyte detection device mounting unit of claim 2, wherein The retraction position of the auxiliary needle module is determined according to the initial length and the elastic modulus of the second spring and the third spring.
4. The analyte detection device mounting unit of claim 3, wherein The third spring is a spring.
5. The analyte sensor mounting unit of claim 1, wherein, The installation unit further comprises a needle body protection structure for protecting the auxiliary needle after the installation unit is used.
6. The analyte detection device mounting unit of claim 5, wherein The needle body protection structure is the inner cover body, which comprises a needle body protection cavity for accommodating the auxiliary needle after the installation unit is used.
7. The analyte detection device mounting unit of claim 6, wherein Before the installation unit is used, the inner cover body is located in the outer cover body.
8. The analyte detection device mounting unit of claim 7, wherein, The installation unit further comprises a label paper attached to the proximal end surface of the outer cover body.
9. The analyte detection device mounting unit of claim 8, wherein, The proximal end surface of the inner cover body further comprises at least two convex semicircular balls.
10. The analyte detection device mounting unit of claim 9, wherein, The convex semicircular balls are uniformly distributed on the proximal end surface of the inner cover body.
11. The analyte detection device mounting unit of claim 6, wherein, The inner cover body further comprises an assembly structure for establishing an assembly connection with the parallel slider module, the trigger module or the housing.
12. The analyte detection device mounting unit of claim 11, wherein, The inner cover body further comprises a positioning structure.
13. The analyte detection device mounting unit of claim 5, wherein, The needle body protection structure is an elastic protective sleeve, the distal end of the elastic protective sleeve comprising a hollow structure for being sleeved outside the auxiliary needle after the installation unit is used.
14. The analyte detection device mounting unit of claim 13, wherein, The inner diameter of the hollow structure of the elastic protective sleeve decreases from the distal end to the proximal end.
15. The analyte detection device mounting unit of claim 14, wherein, The inner diameter of the hollow structure of the elastic protective sleeve at the distal end is greater than the outer diameter of the auxiliary needle, and the inner diameter of the hollow structure of the elastic protective sleeve at the proximal end is smaller than the outer diameter of the auxiliary needle.
16. The analyte detection device mounting unit of claim 15, wherein, The proximal end of the elastic protective sleeve is open or closed.
17. The analyte detection device mounting unit of claim 15, wherein, The length of the elastic protective sleeve is not less than the length of the auxiliary needle exposed outside the housing.
18. The analyte sensor mounting unit of claim 1, wherein, The length of the auxiliary needle exposed outside the housing is 0.1-5 mm.
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