Applicator and sensor insertion device

The applicator addresses pain and complexity issues in conventional glucose monitoring by using a button-activated, spring-driven mechanism for safe and stable sensor insertion and withdrawal, preventing unintended firing and reuse.

JP7834896B2Active Publication Date: 2026-03-24SD BIOSENSOR INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-06-16
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Conventional blood glucose measuring devices cause pain and fear due to finger incision, are difficult to use, costly, and require complex assembly, with applicators prone to unintended firing and reuse.

Method used

An applicator with a hollow columnar housing, buttons for controlled needle insertion and withdrawal, and a drive unit with a wound spring mechanism to ensure safe and stable operation, preventing unintended firing and reuse.

Benefits of technology

The applicator provides a user-friendly, cost-effective, and hygienic solution for continuous glucose monitoring, ensuring safe and stable insertion and withdrawal of the sensor with minimal pain and preventing unintended firing.

✦ Generated by Eureka AI based on patent content.

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Abstract

According to an embodiment of the present disclosure, there is provided an applicator including a hollow columnar housing having an opening formed in one surface, a first button disposed on an upper surface of the housing, a second button disposed on an outer peripheral surface of the housing, a needle carrier configured to be coupled to the second button and linearly move between a distal end and a proximal end inside the housing, and a driving unit configured to be coupled to the first button and configured to supply power for the linear movement of the needle carrier.
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Description

Technical Field

[0006] ,

[0007] ,

[0001] The present disclosure relates to an insertion device for an analyte monitoring device, and specifically to the detailed structure of an insertion device for a device for monitoring analytes in a living body.

Background Art

[0002] The descriptions herein merely provide background information related to the present disclosure and do not constitute the prior art.

[0003] In recent years, the preference for processed foods has been increasing, and people are easily exposed to simple sugars. Due to such an environment, diabetes has also been rapidly increasing. When blood sugar drops or rises rapidly, shock occurs to diabetic patients and in rare cases, it may even lead to death. Therefore, diabetic patients need to continuously monitor their blood sugar.

[0004] In conventional blood glucose measuring devices, a lancet is used to incise the fingertip, and the blood of a diabetic patient flowing out from the incised gap is inserted into the blood glucose measuring device to measure the blood sugar.

[0005] Such blood glucose measuring devices cause pain and fear to users. Also, it is realistically difficult to wound and bleed one's own finger every hour.

[0006] To solve the above problems, a continuous glucose monitoring (CGM) system has been developed. When a very thin sensor and an electronic device (hereinafter, "transmitter") for analyzing an analyte (hereinafter, "blood sugar") measured by the sensor are attached to the skin of a diabetic patient, the blood sugar is continuously measured over a period of one week to ten days.

[0007] Since the sensor of the transmitter is very thin, it is difficult to directly penetrate the skin. Therefore, a configuration (hereinafter, "applicator") in which a needle is inserted into the skin, the sensor is inserted through the gap, and the needle is withdrawn is required.

[0008] When using an applicator, it is important to ensure a smooth user experience.

[0009] On the other hand, in Patent Document 1, the sensor introducer 106 must be inserted into the sensor inserter 500. During this process, the sensor introducer must be oriented correctly before being inserted into the sensor inserter, which may cause user fatigue. Therefore, it is preferable that the applicator be operated with simple operation.

[0010] Furthermore, since the applicator inserts the needle directly into the user's skin, it must be disposable for hygiene reasons. High manufacturing costs for disposable items would be a financial burden on users, so it is desirable to reduce manufacturing costs as much as possible.

[0011] Furthermore, since the needle is inserted directly into the user's skin, preventing reuse is extremely important. Therefore, it is preferable that the applicator has a structure that prevents reuse.

[0012] Furthermore, when using an applicator, it is preferable that the needle insertion and withdrawal processes be performed as quickly as possible to minimize pain.

[0013] Furthermore, since some users may not carefully read the instruction manual, it is desirable that the usage instructions be intuitively understandable.

[0014] Furthermore, if the assembled applicator is disassembled due to external impact, the user will be unable to use the transmitter until it is fully functional. Therefore, it is preferable that the applicator remains robust even in the event of external impact.

[0015] Furthermore, it is preferable to provide an applicator in which the transmitter is stably fixed and supported inside the applicator so that the transmitter does not come off even when subjected to external impact.

[0016] Furthermore, it is preferable that the system be configured to prevent the weapon from being fired unintentionally, regardless of the user's intent. [Prior art documents] [Patent Documents]

[0017] [Patent Document 1] U.S. Patent Application Publication No. 2021 / 0038131 [Overview of the project] [Problems that the invention aims to solve]

[0018] Therefore, this disclosure aims to provide an applicator equipped with a safety device to prevent the applicator from being struck by an external impact.

[0019] Furthermore, this disclosure aims to provide an applicator in which the transmitter remains stably fixed even when subjected to external shocks.

[0020] The various problems that this invention aims to solve are not limited to those mentioned above, and other problems not mentioned will be clearly understood by those skilled in the art from the following description. [Means for solving the problem]

[0021] According to one embodiment of the present disclosure, an applicator is provided that includes a hollow columnar housing with an opening formed on its bottom surface, a first button disposed on the upper surface of the housing, a second button disposed on the outer circumferential surface of the housing, a needle carrier configured to be coupled to the second button and to move linearly between distal and proximal parts inside the housing, and a drive unit configured to be coupled to the first button and to supply power for the linear motion of the needle carrier.

[0022] Furthermore, the drive unit according to one embodiment of the present disclosure preferably includes a wound spring coupled to the inner circumferential surface of the housing in a compressed state, a wheel with one surface facing the spring and constrained by the rotation of the spring, an arc-shaped anti-firing portion projecting from the other surface of the wheel and formed along the circumference of the wheel, and a guide projection projecting from the other surface of the wheel and positioned radially inward from the anti-firing portion, wherein the needle carrier preferably includes a lateral guide and a longitudinal guide formed on one surface of the lateral guide and extending along the longitudinal direction of the housing.

[0023] Furthermore, the first button according to one embodiment of the present disclosure includes an extension protruding from the lower surface of the first button and a locking projection protruding radially outward from one surface of the extension and configured to face the firing prevention portion, wherein the locking projection is formed at a distance from the lower surface of the first button, and when the first button is pressed, the firing prevention portion is positioned in the space between the locking projection and the lower surface of the first button.

[0024] Furthermore, the needle carrier according to an embodiment of the present disclosure includes a hook protrusion protruding from a side surface of the vertical guide, the second button protrudes from a lower surface of the second button, and includes an extension portion disposed toward the radially inner side of the housing, and a hook protruding from one surface of the extension portion toward the radially inner side of the second button and configured to face the hook protrusion. The hook is formed at a distance from the lower surface of the second button, and when the second button is pressed, it is preferable that the hook protrusion is disposed in a spaced space between the hook and the lower surface of the second button.

[0025] Furthermore, the first button according to an embodiment of the present disclosure is configured to limit the rotation of the driving portion, the second button is configured to limit the linear movement of the needle carrier, and when the first button and the second button are pressed simultaneously or sequentially, it is preferable that the driving portion rotates to move the needle carrier from the distal end to the proximal end.

[0026] Furthermore, the needle carrier according to an embodiment of the present disclosure further includes a transmitter holder configured to be pressurized by the needle carrier and move from the distal end to the proximal end to grip the transmitter. The transmitter holder preferably includes a transmitter support portion configured to cover at least a part of the transmitter, and a pusher rotatably mounted on the upper surface of the transmitter holder.

[0027] Furthermore, one end of the pusher according to an embodiment of the present disclosure is disposed outside the transmitter holder, the other end of the pusher is disposed inside the transmitter holder, and it is preferable that one end of the pusher is formed to protrude from the lower surface of the transmitter holder.

[0028] Furthermore, when the transmitter holder according to one embodiment of the present disclosure moves from distal to proximal by the needle carrier, it is preferable that one end of the pusher contacts the inner bottom surface of the housing and the other end of the pusher pressurizes the upper surface of the transmitter.

[0029] Furthermore, it is preferable that the transmitter support and the transmitter are frictionally joined according to one embodiment of the present disclosure.

[0030] Furthermore, according to other embodiments of the present disclosure, a sensor insertion device is provided, comprising: a sensor configured to be inserted at least in part into the body and to detect an in vivo analyte; a transmitter configured to process information about the in vivo analyte obtained from the sensor; and an applicator configured to move the sensor and the transmitter from proximal to distal, the applicator comprising: a hollow columnar housing having an opening formed on its bottom surface; a first button disposed on the upper surface of the housing; a second button disposed on the outer circumferential surface of the housing; a needle carrier configured to be coupled to the second button and to move linearly between distal and proximal within the housing; and a drive unit configured to be coupled to the first button and to supply power for the linear motion of the needle carrier. [Effects of the Invention]

[0031] As mentioned above, according to this embodiment, the applicator is fired only when both the first and second buttons are pressed, which has the effect of preventing unintended firing due to external impacts or the like.

[0032] Furthermore, the first and second buttons can be pressed in any order, making them user-friendly and easy to use. [Brief explanation of the drawing]

[0033] [Figure 1a] This is a perspective view of an applicator according to a first embodiment of this disclosure. [Figure 1b] This is a perspective view of an applicator according to a first embodiment of this disclosure. [Figure 2] This is an exploded perspective view of the applicator according to the first embodiment of this disclosure. [Figure 3a] This is a cross-sectional view taken along the line I-I' in Figure 1a. [Figure 3b] This is a cross-sectional view taken along line II-II' in Figure 1a. [Figure 4] This figure shows the operation of the applicator according to the first embodiment of this disclosure. [Figure 5a] This is a perspective view of an applicator according to a second embodiment of the present disclosure. [Figure 5b] This is a perspective view of an applicator according to a second embodiment of the present disclosure. [Figure 6] This is an exploded perspective view of the applicator according to a second embodiment of this disclosure. [Figure 7] This is a cross-sectional view taken along the line I-I' in Figure 5b. [Figure 8] This figure shows the operation of the applicator according to a second embodiment of the present disclosure. [Figure 9a] This is a cross-sectional view taken along line II-II' in Figure 5b. [Figure 9b] This is a cross-sectional view taken along line III-III' in Figure 5b. [Figure 10] This is an enlarged view of the bottom of the applicator according to the second embodiment of this disclosure. [Figure 11a] This is a perspective view of an applicator according to a third embodiment of this disclosure. [Figure 11b] This is a perspective view of an applicator according to a third embodiment of this disclosure. [Figure 11c] This is a perspective view of an applicator according to a third embodiment of this disclosure. [Figure 12] This is an exploded perspective view of the applicator according to a third embodiment of the present disclosure. [Figure 13a] This figure illustrates the coupling between internal components of an applicator according to a third embodiment of the present disclosure. [Figure 13b] This figure illustrates the coupling between internal components of an applicator according to a third embodiment of the present disclosure. [Figure 14] This figure shows a method for coupling springs according to a third embodiment of the present disclosure. [Figure 15] This figure shows the operation of the applicator according to the third embodiment of this disclosure. [Figure 16a] This is a perspective view of an applicator according to a fourth embodiment of this disclosure. [Figure 16b] This is a perspective view of an applicator according to a fourth embodiment of this disclosure. [Figure 17] This is an exploded perspective view of the applicator according to the fourth embodiment of this disclosure. [Figure 18] This is a cross-sectional view taken along the line I-I' in Figure 16a. [Figure 19] This figure shows the operation of the applicator according to the fourth embodiment of this disclosure. [Figure 20] Figure 16a shows a cross-sectional view along line II-II' and a partially enlarged view. [Figure 21] Figure 16a shows a cross-sectional view along line III-III' and a partially enlarged view. [Figure 22] This is a perspective view of an applicator according to Embodiment 5-1 of the present disclosure. [Figure 23] This is an exploded perspective view of the applicator according to Embodiment 5-1 of the present disclosure. [Figure 24] This diagram shows the internal workings of an applicator according to Embodiment 5-1 of this disclosure. [Figure 25] This figure shows the operating principle of the applicator according to Embodiment 5-1 of the present disclosure. [Figure 26] This figure shows the firing prevention configuration of the applicator according to Embodiment 5-1 of this disclosure. [Figure 27] This figure shows the firing prevention configuration of the applicator according to Embodiment 5-1 of this disclosure. [Figure 28] This is a bottom perspective view of an applicator according to a fifth-first embodiment of the present disclosure. [Figure 29] This figure shows the transmitter holder and transmitter of the applicator according to the 5-1 embodiment of this disclosure. [Figure 30]This figure shows the state of the applicator after firing according to Embodiment 5-1 of this disclosure. [Figure 31] This figure shows the operating principle of the applicator according to the 5-2 embodiment of this disclosure. [Figure 32] This is a perspective view of an applicator according to Embodiment 6-1 of the present disclosure. [Figure 33a] This diagram shows the internal workings of an applicator according to Embodiment 6-1 of this disclosure. [Figure 33b] This diagram shows the internal workings of an applicator according to Embodiment 6-1 of this disclosure. [Figure 34] Figure 32 shows a cross-sectional view along line I-I' and an enlarged view. [Figure 35] This is a perspective view of an applicator according to Embodiment 6-2 of this disclosure. [Figure 36] This is a cross-sectional perspective view of the applicator according to the 6-2 embodiment. [Figure 37] This is a perspective view of an applicator according to the seventh embodiment of this disclosure. [Figure 38] This figure shows the internal workings of an applicator according to the seventh embodiment of this disclosure. [Figure 39] This is a front view of a needle carrier according to a seventh embodiment of the present disclosure. [Figure 40] This figure shows the firing prevention configuration of the applicator according to the seventh embodiment of this disclosure. [Modes for carrying out the invention]

[0034] Embodiments of this disclosure will be described in detail below with reference to the drawings. When assigning reference numerals to components in each drawing, the same reference numerals will be used for the same component, even if they are in different drawings, whenever possible. Furthermore, when describing this disclosure, if it is determined that a specific description of a related known configuration or function would obscure the gist of this disclosure, such detailed description will be omitted.

[0035] In describing the components of the embodiments of this disclosure, we use symbols such as 1), 2), i), ii), a), b), etc. These symbols are used solely to distinguish a component from other components, and do not limit the nature, order, sequence, etc. of the component. In this specification, when a part "includes" or "companies" a component, unless otherwise specified, it does not mean that other components are excluded, but rather that it may further include other components.

[0036] In this disclosure, "distal position" refers to a position that is relatively further from the skin than "proximal position." It should be noted that distal and proximal are concepts relating to each other's relative positions, and should be understood as one element being located proximal to another, while another element being located distal to a given element.

[0037] In this disclosure, "initial state" refers to the state before the user uses the applicator.

[0038] Furthermore, in this disclosure, "fire" means the user's action of activating the applicator so that the needle is inserted into the user's skin.

[0039] Furthermore, in this disclosure, “retraction” means the process by which the needle returns to its original position after being inserted into the user’s skin.

[0040] Furthermore, in this disclosure, "upward" refers to the direction from the proximal to the distal.

[0041] Furthermore, in this disclosure, "downward" refers to the direction from distal to proximal.

[0042] Furthermore, in this disclosure, "horizontal" means the skin surface, which is the plane that the applicator contacts when the applicator is in use. In this disclosure, the curvature of the skin surface is not taken into consideration, and the user's skin surface is assumed to be flat.

[0043] 1. First Embodiment Figures 1a and 1b are perspective views of an applicator according to a first embodiment of this disclosure.

[0044] Specifically, Figure 1a shows the state with the cap 120 attached, and Figure 1b shows the state with the cap 120 removed.

[0045] The applicator 100 according to the first embodiment of the present disclosure includes a handle 110 and a cap 120 configured to be attached to the handle 110 (see Figure 1a).

[0046] When the cap 120 according to the first embodiment of this disclosure is removed from the handle 110, a portion of the support portion 130 is exposed (see Figure 1b). The support portion 130 is formed to come into direct contact with the user's skin and to be inserted into the handle 110 in at least a portion thereof.

[0047] Figure 2 is an exploded perspective view of an applicator according to a first embodiment of this disclosure. Figure 3a is a cross-sectional view taken along line I-I' of Figure 1a. Figure 3b is a cross-sectional view taken along line II-II' of Figure 1a.

[0048] The components of the applicator 100 according to the first embodiment of this disclosure and the relationships between those components will be described with reference to Figures 2 and 3b.

[0049] The applicator 100 according to the first embodiment includes all or part of a handle 110, a cap 120, a support 130, at least one gear 140, a needle carrier 150, a needle holder 160, a needle 170, and a transmitter holder 180.

[0050] The handle 110 is configured to be grasped by the user and is preferably substantially cylindrical in shape.

[0051] The handle 110 includes all or part of a hook hole 111, at least one pressure rod 112, a first rack 113, and a hook mounting groove 114.

[0052] The hook hole 111 is formed on the outer circumferential surface of the handle 110 and is configured to lock onto the hook 132. Preferably, the hook hole 111 is formed above half the height of the handle 110, i.e., at the top.

[0053] At least one pressurizing rod 112 is a rod projecting inward from the internal ceiling surface of the handle 110 (see Figure 3a). At least one pressurizing rod 112 is configured to pressurize the needle carrier 150.

[0054] Here, it is preferable that at least one pressure rod 112 includes a pair of pressure rods 112, 112' positioned symmetrically with respect to the center of the handle 110. This ensures that when the needle carrier 150 is pressurized by the handle 110, the needle carrier 150 is pressurized with the same force throughout, without bias to either side. As a result, the needle carrier 150 can move stably when moving from distal to proximal, or from proximal to distal again, providing the user with a smooth user experience.

[0055] The first rack 113 is formed on the inner circumferential surface of the handle 110 along the height direction of the handle 110. Preferably, the first rack 113 is formed in pairs so as to face at least one gear 140 (see Figure 3a).

[0056] The hook mounting groove 114 is formed on the inner circumferential surface of the handle 110 and is configured to lock the hook 132 into place. Preferably, the hook mounting groove 114 is formed below half the height of the handle 110, i.e., at the bottom. In this way, in the initial state, the hook 132 is fixed to the hook mounting groove 114 (see Figure 3b).

[0057] On the other hand, the hook 132 is formed to protrude further from the top to the bottom. It is also configured to have a lower surface parallel to the horizontal plane. The hook mounting groove 114 is formed to correspond to the shape of the hook 132. Therefore, by providing engagement between the hook 132 and the hook mounting groove 114 in its initial state, the needle carrier 150 is prevented from moving any further proximal to the handle 110.

[0058] The cap 120 is configured to cover at least a portion of the support portion 130, protecting the inside of the applicator 100 from external dirt and impacts. By removing the cap 120 from the handle 110, the user can prepare the applicator 100 for use.

[0059] The support portion 130 is configured such that at least a part of it is inserted into the handle 110, and when the handle 110 is pressurized, it is configured to move linearly inside the handle 110.

[0060] The support portion 130 includes a gear hole 131 and a hook 132.

[0061] The gear bore 131 is formed to accommodate at least one gear 140 and is preferably formed above half the height of the support portion 130, i.e., at the top. Within the gear bore 131, at least one gear 140 rotates around a single axis. The gear bore 131 is preferably formed in pairs and arranged opposite each other.

[0062] The hook 132 protrudes radially outward from the outer circumferential surface of the support portion 130. In its initial state, the hook 132 is locked into the hook mounting groove 114 (see Figure 3b), and when the handle 110 is fully pressurized, the hook 132 is locked into the hook hole 111.

[0063] At least one gear 140 is positioned on the support portion 130 and is formed to rotate around a single axis. Here, at least one gear is preferably a spur gear, and a pair of them are arranged in parallel.

[0064] At least one gear 140 rotates either along a portion of the handle 110 or along a portion of the needle carrier 150. Specifically, it is configured to rotate in mesh with a first rack 113 of the handle 110 or a second rack 152 of the needle carrier 150.

[0065] The needle carrier 150 is configured to move linearly inside the support portion 130. The needle carrier 150 meshes with at least one gear 140, and the rotation of at least one gear 140 causes the linear motion. The motion of the needle carrier 150 will be described in detail later with reference to Figure 4.

[0066] The needle carrier 150 includes all or part of the rod grip portion 151, the second rack 152, and the through hole 153.

[0067] The rod grip portion 151 is configured to temporarily contact the pressurizing rod 112 when the handle 110 is pressurized, thereby transmitting the pressurizing force of the handle 110 to the needle carrier 150 (see Figure 3a). Here, the rod grip portion 151 maintains a constant distance between the handle 110 and the needle carrier 150. Furthermore, when the handle 110 is pressurized above a predetermined level, the rod grip portion 151 is configured to cover at least a portion of the outer circumferential surface of the pressurizing rod 112 and move along the height direction of the pressurizing rod 112. In this way, the distance between the handle 110 and the needle carrier 150 gradually decreases. The relationship between the rod grip portion 151 and the pressurizing rod 112 will be described in detail later with reference to Figure 4.

[0068] Preferably, the rod grip portion 151 includes a pair of rod grip portions 151, 151' that are positioned symmetrically with respect to the center of the handle 110. Here, the pair of rod grip portions 151, 151' are positioned opposite a pair of pressure rods 112, 112', respectively.

[0069] The rod grip portion 151 has a clamp-like shape at its end so as to cover the pressure rod 112. However, since it is preferable that the grip portion is pressed down by the pressure rod 112 in the initial state, it is preferable that the shortest distance between the two ends of the clamp is smaller than the diameter of the pressure rod 112.

[0070] The second rack 152 is formed on the outer circumferential surface of the needle carrier 150 along the height direction of the needle carrier 150. Preferably, the second rack 152 is formed in pairs so as to face at least one gear 140 (see Figure 3a).

[0071] The through-hole 153 is formed in the center of the needle carrier 150 and is formed to penetrate the needle carrier 150. The needle holder 160 is press-fitted into the through-hole 153.

[0072] The needle holder 160 is constrained by the linear motion of the needle carrier 150 and configured to move linearly together with it. For this purpose, the needle carrier 150 is preferably friction-bonded to the through-hole 153. However, the disclosure is not limited thereto, and bonding by adhesive or structural bonding may also be used.

[0073] The needle 170 is coupled to the needle holder 160 and is constrained by the linear motion of the needle holder 160, and is configured to move linearly together with it. The needle 170 is configured to penetrate the user's skin.

[0074] The transmitter holder 180 is coupled to the transmitter 10 and is configured to cause the transmitter 10 to move linearly from distal to proximal. The transmitter holder 180 moves only in the direction from distal to proximal.

[0075] Figure 4 shows the operation of the applicator according to the first embodiment of this disclosure. Note that in Figure 4, the transmitter 10 is omitted in order to show the structure of the applicator 100 in more detail.

[0076] Figure 4(a) shows the state before the handle 110 is pressurized, i.e., the initial state. As shown in Figure 4(a), in the initial state, the handle 110, needle carrier 150, needle holder 160, needle 170, and transmitter holder 180 are positioned distally.

[0077] Furthermore, at least one gear 140 is facing the second rack 152 and not facing the first rack 113.

[0078] Furthermore, the rod grip portion 151 is only in contact with the pressurizing rod 112.

[0079] Figure 4(b) shows the state in which the handle 110 is pressed to about half its capacity and the needle 170 is inserted into the skin.

[0080] As shown in Figure 4(b), when the handle 110 is pressurized, the pressurizing rod 112 pressurizes the rod grip portion 151. Here, as mentioned above, the shortest distance between the ends of the rod grip portion 151 is smaller than the diameter of the pressurizing rod 112, so the pressure applied to the handle 110 is directly transmitted to the needle carrier 150, needle holder 160, and needle 170 via the rod grip portion 151. Here, although the rod grip portion 151 is pressurized by the pressurizing rod 112, the pressurizing rod 112 is not inserted between the ends of the clamp. Therefore, the distance between the handle 110 and the needle carrier 150 in the initial state is the same as the distance between the handle 110 and the needle carrier 150 when the handle 110 is pressurized to about half its capacity.

[0081] Meanwhile, as the needle carrier 150 moves to the proximal position, at least one gear 140 meshes with the second rack 152 and rotates. Here, at least one gear 140 rotates in opposite directions to the other, with the gear 140 shown on the left rotating clockwise and the gear 140 shown on the right rotating counterclockwise.

[0082] When the needle 170 is inserted into the user's skin to its maximum depth, it is preferable that at least one gear 140 is facing the distal end of the second rack 152.

[0083] The transmitter holder 180 moves from distal to proximal along with the movement of the needle carrier 150.

[0084] Figure 4(c) shows the handle 110 in a fully pressurized state.

[0085] As shown in Figure 4(c), when the handle is pressurized to a predetermined level or higher, the pressurizing rod 112 is inserted between the two ends of the rod grip portion 151. Here, the pressurizing rod 112 moves along the longitudinal direction of the rod grip portion 151, and as the handle 110 is pressurized, the distance between the handle 110 and the needle carrier 150 decreases.

[0086] At least one gear 140 faces the first rack 113 and rotates as the first rack 113 moves downward. Here, the direction of rotation of at least one gear 140 is opposite to the direction of rotation in Figure 4(b). That is, the gear 140 shown on the left rotates counterclockwise, and the gear 140 shown on the right rotates clockwise.

[0087] At least one gear 140 rotates and re-engages with the second rack 152. The rotation of at least one gear 140 in the opposite direction causes the needle carrier 150 to move from proximal to distal. This causes the needle holder 160 and the needle 170 to move from proximal to distal. This causes the needle 170 to be withdrawn from the user's skin.

[0088] On the other hand, the transmitter holder 180 is formed separately from the needle carrier 150 and is not coupled to it. In this way, even if the needle carrier 150 moves upward again from the proximal position, the transmitter holder 180 remains in the proximal position.

[0089] The applicator 100 according to the first embodiment of this disclosure has the advantages of being easy to operate, having a small number of parts, and being easy to manufacture, as the needle 170 can be inserted into and withdrawn from the skin by simply the user grasping the handle 110 and pressing it once from distal to proximal, due to the coupling relationship of the internal gears and racks.

[0090] 2. Second Embodiment Figures 5a and 5b are perspective views of an applicator according to a second embodiment of this disclosure.

[0091] Specifically, Figure 5a shows the state with the cap 220 attached, and Figure 5b shows the state with the cap 220 removed.

[0092] An applicator 200 according to a second embodiment of the present disclosure includes a handle 210 and a cap 220 configured to be attached to the handle 210 (see Figure 5a).

[0093] When the cap 220 is removed from the handle 210, all or part of the support portion 230 is exposed (see Figure 5b). The support portion 230 is formed to come into direct contact with the user's skin and to be inserted into the handle 210 in at least part.

[0094] Figure 6 is an exploded perspective view of an applicator according to a second embodiment of this disclosure. Figure 7 is a cross-sectional view taken along line I-I' in Figure 5b.

[0095] Referring to Figures 6 and 7, the components of the applicator 200 according to the second embodiment and the relationships between those components will be described.

[0096] The applicator 200 according to the second embodiment includes all or part of a handle 210, a support 230, at least one crank 240, at least one connecting rod 250, a needle carrier 260, a needle 270, a transmitter holder 280, and a cap 220.

[0097] The handle 210 is configured to be grasped by the user and is preferably substantially cylindrical in shape.

[0098] The support portion 230 is configured such that at least a part of it is inserted into the handle 210, and is configured to move linearly inside the handle 210 when the handle 210 is pressurized.

[0099] The support portion 230 is preferably manufactured by injection molding. Here, the first component 230a and the second component 230b are manufactured individually, and the first component 230a and the second component 230b are assembled to form the support portion 230.

[0100] The support portion 230 includes a crankshaft 231 that protrudes radially inward from one surface. At least one crank 240 is coupled to the crankshaft 231.

[0101] At least one crank 240 is configured to perform rotational and linear motion within the handle 210. While this disclosure assumes there are two cranks 240, there may be one, three or more cranks, and this can be modified as appropriate by the designer.

[0102] At least one crank 240 includes a first crank 241 and a second crank 242. The first crank 241 and the second crank 242 are preferably manufactured by injection molding. Here, each crank is formed by assembling first assemblies 241a, 242a and second assemblies 241b, 242b.

[0103] At least one crank 240 rotates along a rack 211 (see Figure 7) formed inside the handle 210. The rack 211 is formed on the inner bottom surface of the handle 210 so as to extend along the height direction. Preferably, the racks 211 are arranged in pairs facing each other, one in each direction in the radial direction. The first crank 241 and the second crank 242 are arranged to face each other on the respective racks 211.

[0104] When the support section 230 and the crank 240 are formed by assembling two parts, the difficulty of manufacturing the applicator 200 is reduced, resulting in lower manufacturing costs.

[0105] At least one connecting rod 250 is connected at one end to the crank 240 and at the other end to the needle carrier 260. Specifically, one connecting rod 250 includes a first insertion hole 253 formed at one end, into which a first rod projection 244 is inserted. Another connecting rod 250 includes a second insertion hole 254 formed at the other end, into which a rod fixing projection 261 is inserted.

[0106] At least one connecting rod 250 includes a first connecting rod 251 and a second connecting rod 252. The first connecting rod 251 is coupled to a first crank 241, and the second connecting rod 252 is coupled to a second crank 242.

[0107] The needle carrier 260 is dependent on the rotational and linear motion of at least one crank 240 and moves linearly between its distal and proximal ends. Here, the needle carrier 260 is connected to at least one crank 240 via a connecting rod 250.

[0108] The needle carrier 260 is connected to the needle 270 and is configured to cause the needle 270 to move linearly from distal to proximal. When the needle carrier 260 moves from proximal to distal, the needle 270 also moves from proximal to distal along with it.

[0109] The needle carrier 260 is formed by assembling two different parts 260a and 260b.

[0110] The transmitter holder 280 is coupled to the transmitter 20 and is configured to cause the transmitter 20 to move linearly from distal to proximal. The transmitter holder 280 moves back and forth between distal and proximal, but the transmitter 20 moves only in the direction from distal to proximal.

[0111] Figure 8 shows the operation of the applicator according to the second embodiment of this disclosure.

[0112] Figure 8(a) shows the state of the handle 210 before it is pressurized.

[0113] As shown in Figure 8(a), at least one crank 240 is positioned at the distal end of the rack 211. The support portion 230 is in contact with the skin, while the transmitter 20 and transmitter holder 280 are distal to the skin. In addition, one end of the connecting rod 250 is positioned as distal as possible with respect to at least one crank 240.

[0114] Figure 8(b) shows the state in which the handle 210 is pressurized to about half its capacity and the needle 270 is inserted into the skin.

[0115] As shown in Figure 8(b), when the handle 210 is pressurized, at least one crank 240 rotates. Specifically, the crank 240 located on the right rotates clockwise, and the crank 240 located on the left rotates counterclockwise, not in a full rotation, but in a state of about half a rotation, and is positioned in the middle of the rack 211. Therefore, the handle 210 moves along the support portion 230 by approximately the total travel distance.

[0116] In the state shown in Figure 8(b), the transmitter 20 and transmitter holder 280 are in a proximal state, in contact with the skin. Also, one end of the connecting rod 250 is positioned as close as possible to at least one crank 240.

[0117] Figure 8(c) shows the state where the handle 210 is fully pressurized and the needle 270 has retracted from the skin.

[0118] As shown in Figure 8(c), when the handle 210 is further pressed, at least one crank 240 rotates. Specifically, the crank 240 located on the right rotates clockwise, and the crank 240 located on the left rotates counterclockwise, completing the remaining half-turn and being positioned at the distal end of the rack 211. Thus, the handle 210 has moved its entire total distance along the support portion 230. Also, one end of the connecting rod 250 is again positioned distally with respect to at least one crank 240.

[0119] In Figure 8(c), the transmitter 20 is attached to the skin, and the needle carrier 260 moves distally along with the connecting rod 250, following its movement. Therefore, the needle 270, which was inserted into the skin, has been withdrawn from the skin.

[0120] In short, during the process shown in Figures 8(a) to 8(c), while the handle 210 moves in one direction from distal to proximal, the needle carrier 260 moves back and forth from distal to proximal, and then from proximal to distal. This allows the needle 270 to be inserted and withdrawn in a reciprocal motion with a single action of the user pressing the handle.

[0121] Figure 9a is a cross-sectional view taken along line II-II' in Figure 5b.

[0122] As shown in Figure 9a, the handle 210 includes a first locking portion 212 and a second locking portion 213.

[0123] The first locking portion 212 is provided to protrude radially inward from the inner circumferential surface of the handle 210.

[0124] The second locking portion 213 protrudes radially inward from the inner circumferential surface of the handle 210 and is formed distal to the first locking portion 212. An inclined surface is formed on the lower surface of the second locking portion 213, and the upper surface is formed parallel to the horizontal direction.

[0125] The support portion 230 further includes ribs 232. The ribs 232 protrude radially outward from the outer circumferential surface of the support portion 230.

[0126] Figure 9a(a) shows the state of the handle 210 before it is pressurized.

[0127] As shown in Figure 9a(a), the rib 232 of the support portion 230 is locked to the first locking portion 212 of the handle 210, preventing the rib 232 from moving proximal. In other words, since the rib 232 is locked to the first locking portion 212, in the state shown in Figure 9a(a), the handle is prevented from coming off distally, i.e., upward.

[0128] Figure 9a(b) shows the handle 210 in a fully pressurized state.

[0129] As shown in Figure 9a(b), the rib 232 of the support portion 230 is locked to the second locking portion 213 of the handle 210, preventing the rib 232 from moving proximal to the support portion. In other words, since the rib 232 is locked to the second locking portion 213, the handle is prevented from coming off upward in the state shown in Figure 9a(b). If the handle 210 is removed from the support portion 230 in the state shown in Figure 9a(b), there is a risk of reuse, but the second locking portion 213 prevents reuse.

[0130] Figure 9b is a cross-sectional view taken along line III-III' in Figure 5b.

[0131] Here, Figure 9b shows the applicator 200 with the handle 210 fully pressurized.

[0132] As shown in Figure 9b, the support portion 230 according to the second embodiment of the present disclosure further includes a fixing groove 233. Preferably, the fixing groove 233 is recessed radially outward from the inner circumferential surface of the support portion 230 and is formed at a position separated from the bottom surface of the support portion 230 by the height of the transmitter holder 280.

[0133] Furthermore, the transmitter holder 280 includes a detachment prevention projection 281. The detachment prevention projection 281 is formed on the upper surface of the transmitter holder 280 and protrudes radially outward. The transmitter holder 280 is mounted in the fixing groove 233.

[0134] Here, the upper surface of the fixing groove 233 is formed parallel to the horizontal plane. In this way, when the transmitter holder 280 moves proximal, it does not move distally again, but remains in place.

[0135] Figure 10 is an enlarged view of the bottom of the applicator according to the second embodiment of this disclosure.

[0136] Specifically, Figure 10(a) shows the state before the handle 210 is pressurized, and Figure 10(b) shows the state when the handle 210 is fully pressurized.

[0137] As shown in Figure 10, the support portion 230 according to the second embodiment of the present disclosure further includes a hook projection 234 that protrudes radially inward from the inner bottom surface of the support portion 230.

[0138] The transmitter holder 280 further includes a transmitter support portion 230 and a hook 283.

[0139] The transmitter support portion 230 is configured to support the transmitter 20 distally and to release the support force supplied to the transmitter 20 proximal to the transmitter 20. For this purpose, the transmitter support portion 230 is preferably configured in a cantilever shape, and a hook 283 is provided at the free end of the transmitter support portion 230.

[0140] The hook projection 234 is formed so as to engage with the hook 283, and when the hook 283 is engaged with the hook projection 234, the free end of the transmitter support portion 230 spreads outward in the radial direction (see Figure 10(b)).

[0141] 3. Third Embodiment Figures 11a to 11c are perspective views of an applicator according to a third embodiment of this disclosure.

[0142] Specifically, Figure 11a shows the state with both the upper cap 310 and the lower cap 312 attached, Figure 11b shows the state with the lower cap 312 removed, and Figure 11c shows the state with both the upper cap 310 and the lower cap 312 removed.

[0143] The applicator 300 according to the third embodiment of this disclosure includes an upper cap 310 and a lower cap 312 coupled to the upper cap 310 (see Figure 11a).

[0144] When the lower cap 312 is removed from the upper cap 310, a support portion 320 is revealed, whose lower end is covered by the upper cap 310 and the lower cap 312 (see Figure 11b).

[0145] When the upper cap 310 is removed from the support portion 320, the support portion 320, the push cap 330, and the rotating guide 340 are revealed (see Figure 11c). Here, the rotating guide 340 is positioned between the push cap 330 and the support portion 320, surrounding a portion of the outer circumferential surface of the push cap 330.

[0146] The push cap 330 is coupled to the rotating guide 340 and is configured to move linearly in conjunction with the rotating guide 340.

[0147] The rotating guide 340 is surrounded by the support portion 320.

[0148] The upper cap 310, lower cap 312, support portion 320, and push cap 330 in the third embodiment of this disclosure are preferably substantially cylindrical in shape, but are not necessarily limited thereto.

[0149] Figure 12 is an exploded perspective view of an applicator according to a third embodiment of this disclosure.

[0150] Referring to Figure 12, the components of the applicator 300 according to the third embodiment and the relationships between those components will be described.

[0151] The applicator 300 according to the third embodiment includes all or part of an upper cap 310, a lower cap 312, a support portion 320, a push cap 330, a rotating guide 340, a rotating block 350, a needle portion 360, a spring 370, and a transmitter holder 380.

[0152] The upper cap 310 and the lower cap 312 are configured to cover at least a portion of the support portion 320, protecting the inside of the applicator 300 from external dirt and impacts.

[0153] The support portion 320 is configured such that at least a part of it is inserted into the upper cap 310 and the lower cap 312, and surrounds a part of the outer surface of the push cap 330. The support portion 320 is the part that comes into direct contact with the skin when the applicator 300 is used.

[0154] The push cap 330 is configured to be pressed by the user and to move linearly along the height direction of the support portion 320.

[0155] The rotating guide 340 is formed to surround a portion of the outer circumferential surface of the push cap 330. Here, the push cap 330 is inserted into the upper hole 341 of the rotating guide 340. The push cap 330 also moves linearly in conjunction with the rotating guide 340. Here, the push cap guide projection 331 formed on the outer circumferential surface of the push cap 330 is inserted into the push cap guide 342 formed on the upper surface of the rotating guide 340, guiding the linear motion of the push cap 330.

[0156] On the other hand, while it is preferable that multiple push cap guide protrusions 331 be arranged at equal intervals along the outer circumferential surface of the push cap 330, the system is not necessarily limited to this arrangement, and it is sufficient to provide only one.

[0157] The push cap 330 further includes a push bar 334. The push bar 334 is in contact with the rotating block 350 in its initial state and transmits pressure supplied by the user to the rotating block 350.

[0158] The rotating block 350 is positioned at least partially inside the rotating guide 340 and moves linearly from distal to proximal by press-fitting of the push cap 330. The rotating block 350 rotates by a predetermined angle within the rotating guide 340. The rotated rotating block 350 then moves linearly from proximal to distal according to the rotating guide 340. This will be described in detail later with reference to Figure 15.

[0159] The rotating block 350 includes the main body 351 and the guide vane 352.

[0160] The main body 351 is preferably open at the top and has a roughly cylindrical shape. The main body 351 rotates and moves linearly inside the rotating guide 340.

[0161] The guide vane 352 protrudes radially outward from the outer circumferential surface of the main body 351. The guide vane 352 is interposed in the rotating guide 340 through the main hole 345 (see Figure 15) of the rotating guide 340. The upper surface of the guide vane 352 is composed of an inclined surface 353. The inclination direction of the inclined surface 353 corresponds to the shape of the first mounting hole 343 (see Figure 15) and the second mounting hole 344 (see Figure 15). The motion of the guide vane 352 will be described in detail later with reference to Figure 15.

[0162] On the other hand, it is preferable that the end of the push bar 334 is formed to have a shape corresponding to the inclined surface 353 of the guide vane 352. That is, the lower surface of the push bar 334 is composed of an inclined surface and is formed parallel to the inclined surface 353 of the rotating block 350.

[0163] The needle portion 360 is connected to the rotating block 350 and is configured to move the needle 362 in a linear motion from distal to proximal. Also, when the needle portion 360 moves from proximal to distal, the needle 362 moves along with it from proximal to distal. The needle portion 360 includes a connecting portion 361 that is connected to the rotating block 350 and a needle 362 that penetrates the skin.

[0164] The connecting portion 361 includes a circular plate-like member and a rod protruding laterally from the outer circumferential surface of the plate-like member. Multiple rods are formed. The connecting portion 361 is coupled to the rotating block 350 and guided by the rotating guide 340.

[0165] The spring 370 is connected at one end to the push cap 330 and at the other end to the rotating block 350. In the initial state, the spring 370 is positioned between the push cap 330 and the rotating block 350 in a stretched state.

[0166] The transmitter holder 380 is coupled to the transmitter 30 and is configured to cause the transmitter 30 to move linearly from distal to proximal. The transmitter holder 380 moves back and forth between distal and proximal, but the transmitter 30 moves only in the direction from distal to proximal.

[0167] Figures 13a and 13b illustrate the coupling between internal components of the applicator 300 according to a third embodiment of this disclosure.

[0168] Specifically, Figure 13a shows the initial state in which the push cap 330, rotation guide 340, rotation block 350, and transmitter holder 380 are coupled together, and Figure 13b shows the state in which the rotation block 350 and needle portion 360 are coupled together.

[0169] As shown in Figure 13a, the push cap 330 is inserted into the rotating guide 340 through the upper hole 341 formed on the upper surface of the rotating guide 340.

[0170] The guide vanes 352 of the rotating block 350 are interposed in holes formed in the rotating guide 340.

[0171] The needle portion 360 is coupled to the rotating guide 340 by interposing a connecting portion 361 in a needle guide 346 formed on the outer circumferential surface of the rotating guide 340. The needle guide 346 is formed between a plurality of main holes 345 (see Figure 15).

[0172] The transmitter holder 380 is coupled to the rotary guide 340 by being interposed in the main hole 345 of the rotary guide 340.

[0173] As shown in Figure 13b, the rotating block 350 further includes a needle mounting portion 355 that protrudes downward from its outer bottom surface. The needle mounting portion 355 is formed to which a needle coupling portion 361 is connected.

[0174] Figure 14 shows a method for coupling a spring according to a third embodiment of the present disclosure. Referring to Figure 14, a detailed configuration in which the spring 370 is coupled to the push cap 330 and the rotating block 350 will be described.

[0175] Figure 14(a) is a diagram illustrating the coupling relationship between the push cap 330 and the spring 370, and is a front perspective view of the inner surface of the push cap 330 and the spring 370.

[0176] As shown in Figure 14(a), the push cap 330 includes a first spring mounting portion 332 formed on its upper surface. One end of the spring 370 is locked to the first spring mounting portion 332.

[0177] Figure 14(b) illustrates the coupling relationship between the rotating block 350 and the spring 370, and is a front perspective view of the rotating block 350 and the spring 370.

[0178] As shown in Figure 14(b), the rotating block 350 includes a second spring mounting portion 354 that protrudes inward from the inner bottom. The other end of the spring 370 is secured to the second spring mounting portion 354. Here, the second spring mounting portion 354 protrudes from the inner bottom surface of the main body 351.

[0179] In other words, the push cap 330 and the rotating block 350 are connected with a spring 370 in between, where the spring 370 is initially stretched and preferably rotated in one direction. Therefore, the spring 370 has the potential to rotate in the opposite direction when compressed.

[0180] On the other hand, in the initial state, the distance between the push cap 330 and the rotating block 350 is maintained by the push bar 334 of the push cap 330 (see Figure 12).

[0181] Figure 15 shows the operation of the applicator according to the third embodiment of this disclosure.

[0182] The first row of Figure 15 shows the front view of the applicator 300, and the second row shows the cross-section of the applicator 300. Here, the cross-section is the I-I' section in the state where the push cap 330 and the rotary guide 340 are coupled together, as shown in Figure 11c.

[0183] As shown in Figure 15, the push cap 330 further includes a locking projection 333 projecting radially outward from its outer circumferential surface. The locking projection 333 engages with the outer upper surface of the rotating guide 340. This prevents the user from unintentionally pressurizing the push cap 330 and causing the applicator 300 to fire. When a pressure exceeding a predetermined level is applied to the locking projection 333, the engagement between the locking projection 333 and the push cap 330 is released. In other words, the applicator 300 according to the third embodiment of this disclosure naturally guides the user to press the push cap 330 with a force exceeding a predetermined level.

[0184] The rotating guide 340 further includes a first mounting hole 343, a second mounting hole 344, and a main hole 345.

[0185] The first mounting hole 343 is formed on the outer circumferential surface of the rotating guide 340 and is shaped to accommodate the guide vane 352. For this purpose, it is preferable that the first mounting hole 343 has the same shape as the inclined surface 353 of the guide vane 352.

[0186] The second mounting hole 344 is formed on the outer circumferential surface of the rotating guide 340 and is configured to accommodate the guide vane 352. Here, the second mounting hole 344 is formed adjacent to the first mounting hole 343. Preferably, the angle between the second mounting hole 344 and the first mounting hole 343 is formed to be smaller than the angle at which the spring 370 rotates in its initial state.

[0187] The main hole 345 is formed on the outer circumferential surface of the rotating guide 340 and is located below the first mounting hole 343 and the second mounting hole 344. The first mounting hole 343 and the second mounting hole 344 are shaped to connect to the main hole 345 at their lower ends. In other words, the first mounting hole 343 and the second mounting hole 344 branch off from the main hole 345.

[0188] The following provides a detailed explanation of how to operate the aforementioned Applicator 300.

[0189] Figure 15(a) shows the state before the push cap 330 is pressurized.

[0190] As shown in the front view of Figure 15(a), the push cap 330 and the rotating block 350 are positioned distal to each other. Here, the guide vane 352 of the rotating block 350 is mounted in the first mounting hole 343. As shown in the cross-sectional view of Figure 15(a), in the initial state, the push bar 334 is pressing against the inclined surface 353 of the guide vane 352, and the push cap 330 and the rotating block 350 are separated by a predetermined distance. Therefore, the spring 370 is pulled and rotated.

[0191] Figure 15(b) shows the state in which the push cap 330 is pressurized and the rotating block 350 has moved from distal to proximal. Here, the guide vane 352 of the rotating block 350 remains positioned parallel to the first mounting hole 343 and has moved proximal. As shown in the cross-sectional view of Figure 15(b), the push bar 334 is still pressing the inclined surface 353 of the guide vane 352, and the push cap 330 and the rotating block 350 are separated by a predetermined distance. Also, the spring 370 is still being pulled and rotating.

[0192] Figure 15(c) shows the state in which the rotating block 350 rotates in the opposite direction to the unidirectional direction when the push cap 330 is pressurized. Here, the guide vane 352 of the rotating block 350 rotates in the opposite direction to the unidirectional direction when it is in the proximal state. This is because the spring 370 rotates due to the potential it held up to the process in (b). As the spring 370 rotates, the rotating block 350, which is coupled to the spring 370, also rotates.

[0193] As shown in both the front view and the cross-sectional view of Figure 15(c), the rotation of the rotating block 350 causes the inclined surface 353 of the guide vane 352 to no longer face the push bar 334. This eliminates the structure that prevents the distal movement of the guide vane 352, and the spring 370 becomes compressible.

[0194] Figure 15(d) shows the state in which the rotating block 350 has moved from proximal to distal when the push cap 330 is pressurized. The spring 370 is compressed and the rotating block 350 is mounted in the second mounting hole 344. As mentioned above, the push bar 334 and the guide vane 352 are in offset positions from each other, so the rotating block 350 moves distally.

[0195] On the other hand, although this disclosure shows that steps (a) to (d) in Figure 15 are performed at predetermined time intervals, steps (b) to (d) are performed at the moment the user presses the push cap 330. Therefore, since they are performed faster than the average user's recognition speed, the user has the advantage of being able to use the applicator 300 easily and without much discomfort.

[0196] Furthermore, using the applicator 300 according to the third embodiment of this disclosure, the user can insert and withdraw the needle into the skin simply by pressing in the push cap 330, which has the advantage of being intuitive and easy and minimizing pain.

[0197] 4. Fourth Embodiment Figures 16a and 16b are perspective views of an applicator according to a fourth embodiment of this disclosure.

[0198] Specifically, Figure 16a shows the state with the cap 420 attached, and Figure 16b shows the state with the cap 420 removed.

[0199] The applicator 400 according to the fourth embodiment of this disclosure includes a handle 410 and a cap 420 that can be attached to or detached from the handle 410 (see Figure 16a).

[0200] When the cap 420 according to the fourth embodiment of this disclosure is removed from the handle 410, a portion of the cylinder 430 is exposed (see Figure 16b). At this point, at least a portion of the piston 440 is inserted into the handle 410.

[0201] Figure 17 is an exploded perspective view of an applicator according to a fourth embodiment of this disclosure. Figure 18 is a cross-sectional view taken along line I-I' in Figure 16a. The components of the applicator 400 according to the fourth embodiment and the relationships between these components will be described with reference to Figures 17 and 18. Figure 18 shows the applicator 400 in its state before manufacture and use, and the initial state for use is reached when the cap 420 is removed.

[0202] The applicator 400 according to the fourth embodiment includes all or part of a handle 410, a cap 420, a cylinder 430, a piston 440, and a transmitter holder 450.

[0203] The handle 410 is configured for user gripping and is preferably substantially cylindrical in shape. The handle cover 411 covers the top surface. When the handle cover 411 is attached to the handle 410, a storage space is formed inside, so after the internal assembly of the applicator 400, only the handle cover 411 needs to be assembled in the final step, which has the advantage of simplifying the assembly process. However, this disclosure is not limited thereto, and the handle 410 and the handle cover 411 may be formed integrally at the designer's discretion.

[0204] The cap 420 is configured to be attached to or removed from the handle 410 and protects the inside of the applicator 400 from external dirt and impacts. The cap 420 is preferably substantially cylindrical.

[0205] The cylinder 430 is configured such that at least a portion of it is inserted into the handle 410. The cylinder 430 includes a first body 431 and a second body 432 positioned below the first body 431. Preferably, the diameter of the first body 431 is smaller than the diameter of the second body 432.

[0206] The cylinder 430 is configured to come into direct contact with the user's skin when the applicator 400 is in use.

[0207] The piston 440 is configured such that at least a portion of it is inserted into the cylinder 430. The outer diameter of the piston 440 is configured to be the same as, or slightly smaller than, the inner diameter of the first body 431. In this way, the piston 440 is press-fitted into the first body 431, and the space formed between the first body 431 and the piston 440 is restricted from communicating with the outside air and fluids.

[0208] A rubber packing 441 is attached to the end of the piston 440. The inside of the first body 431 into which the piston 440 is inserted is sealed by the rubber packing 441 and packing 430a. The rubber packing 441 is formed by double injection molding onto the piston 440 in the manufacturing step, but is not necessarily limited to this.

[0209] The piston 440 has a flange 443 formed on one surface. The diameter of the flange 443 is larger than the inner diameter of the first body 431 and smaller than the inner diameter of the second body 432.

[0210] Additionally, a needle 442 is attached to one surface of the flange. The needle 442 is configured to penetrate the user's skin and passes through the transmitter holder 450 and the transmitter (not shown).

[0211] The transmitter holder 450 is coupled to the transmitter (not shown) and is configured to cause the transmitter to move linearly from distal to proximal. Preferably, the transmitter holder 450 and the transmitter move only in the direction from distal to proximal.

[0212] The transmitter holder 450 is configured to move due to pressure applied to the piston 440 from distal to proximal. This will be described in detail later with reference to Figure 19.

[0213] Figure 19 shows the operation of the applicator according to the fourth embodiment of this disclosure. Specifically, Figure 19 is a cross-sectional view taken along line I-I' in Figure 16a, and shows the process by which the applicator 400 operates.

[0214] As shown in Figure 19, the handle 410 includes a cantilever-shaped hook 413 with one end being a free end. The hook 413 is positioned on the inner circumferential surface of the handle 410 and is configured to engage with the flange 443 of the piston 440. Here, it is preferable that the fixed end of the hook 413 is positioned below the free end. Thus, the hook 413 presses the flange 443 in the direction of movement when the piston 440 moves from distal to proximal.

[0215] On the other hand, the cylinder 430 includes a hook resistance portion 433. The hook resistance portion 433 protrudes radially inward from the inner circumferential surface of the cylinder 430. The hook resistance portion 433 is configured to release the engagement of the hook 413. The operation methods of the hook 413 and the hook resistance portion 433 will be described below.

[0216] Figure 19(a) shows the state of the handle 410 before it is pressurized.

[0217] As shown in Figure 19(a), the handle 410 is separated from the user's skin. The piston 440 is press-fitted into the first body 431 of the cylinder 430. A very small amount of air is present between the piston 440 and the first body 431, and it is preferable that this is a near-vacuum state.

[0218] The hook 413 of the handle 410 is engaged with the flange 443.

[0219] The transmitter holder 450 is supported by the handle 410 and is positioned distally. The configuration in which the transmitter holder 450 is supported by the handle 410 will be described in detail later with reference to Figure 20.

[0220] Figure 19(b) shows the state in which the handle 410 is pressurized and the needle 442 is inserted into the skin.

[0221] As shown in Figure 19(b), when the user presses the handle 410, the piston 440 moves from distal to proximal. When the handle 410 moves proximal, the hook 413 comes into contact with the hook resistance portion 433, and as the handle 410 moves further proximal, the hook 413 moves outward. That is, when the hook 413 is bent by the hook resistance portion 433, the coupling between the hook 413 and the flange 443 is released. As a result, the transmitter holder 450 is no longer constrained by the movement of the piston 440.

[0222] Meanwhile, the movement of the piston 440 from distal to proximal causes the needle 442 to be inserted into the user's skin.

[0223] In state (b) of Figure 19, the volume between the piston 440 and the first body 431 increases, and the internal pressure decreases significantly. Therefore, the piston is again subjected to a force that retracts distally. At this point, the hook 413 of the handle 410 no longer restrains the flange 443 of the piston 440, so the piston 440 is in a state where it can return distally again.

[0224] On the other hand, since the flange 443 of the piston 440 is no longer connected to the hook 413, the piston 440 is not constrained by the pressurization of the handle 410. In this way, even if the handle 410 is pressurized again, the piston 440 will remain inserted into the distal end of the cylinder 430 and its state will not change. In other words, the applicator 400 becomes unusable.

[0225] Once the needle is inserted into the user's skin, it is exposed to various diseases and infections when reused. Therefore, this is used when the applicator does not need to be reused. The applicator 400 according to the fourth embodiment of this disclosure is structurally prevented from being reused.

[0226] Figure 19(c) shows the needle 442 after it has been withdrawn from the skin.

[0227] As shown in Figure 19(c), the handle 410 is in a proximal position, and the piston 440 moves from proximal to distal. The movement of the piston 440 withdraws the needle 442 that was inserted into the user's skin. The piston 440 is then reinserted into the first body 431.

[0228] The transmitter holder 450 maintains a proximal position, i.e., close to the skin.

[0229] Figure 20 is a cross-sectional view and a partially enlarged view of the line II-II' in Figure 16a.

[0230] Figure 20 shows the initial state, and with reference to Figure 20, the configuration for preventing firing in the initial state and the coupling relationship between the transmitter holder 450 and the handle 410 will be explained.

[0231] As shown in Figure 20, the handle 410 includes a first forward-preventing projection 414. The first forward-preventing projection 414 protrudes radially inward from the inner circumferential surface of the handle 410.

[0232] Furthermore, the cylinder 430 includes a second forward-preventing projection 434. The second forward-preventing projection 434 protrudes radially outward from the outer circumferential surface of the cylinder 430.

[0233] In the initial state, the first forward-preventing projection 414 and the second forward-preventing projection 434 are facing each other; specifically, the lower surface of the first forward-preventing projection 414 and the upper surface of the second forward-preventing projection 434 face each other.

[0234] On the other hand, it is preferable that the lower surface of the first forward-preventing projection 414 and the upper surface of the second forward-preventing projection 434 are configured to be inclined from distal to proximal. Therefore, the handle 410 is not pressurized with a force smaller than a predetermined magnitude, and when a force greater than or equal to the predetermined magnitude is applied, the handle 410 moves from distal to proximal. In other words, in the initial state, it is prevented that the applicator 400 will be fired due to the handle 410 being pressurized by an unintended impact, and when the user intends to use it, it is guided to a pressurizing force greater than the level at which it will be fully pressurized. In this way, the phenomenon in which the needle 442 is not inserted because it stops midway when the handle 410 is pressurized is prevented.

[0235] The handle 410 further includes a first fixing projection 412. The first fixing projection 412 protrudes radially inward from the inner circumferential surface of the handle 410.

[0236] Furthermore, the transmitter holder 450 includes a second fixing projection 451. The second fixing projection 451 protrudes radially outward from the outer circumferential surface of the transmitter holder 450.

[0237] In the initial state, the first fixing projection 412 and the second fixing projection 451 are engaged, specifically, the second fixing projection 451 is positioned on top of the first fixing projection 412. In this way, the transmitter holder 450 is supported by the handle 410.

[0238] On the other hand, it is preferable that the upper surface of the first fixing projection 412 and the lower surface of the second fixing projection 451 are formed parallel to the horizontal plane. In this way, in the initial state, the transmitter holder 450 does not detach from the distal end and is stably fixed.

[0239] Figure 21 is a cross-sectional view and a partially enlarged view of line III-III' in Figure 16a.

[0240] Figure 21 shows the state after the needle has returned to its original position following firing. Referring to Figure 21, the configuration for preventing the reuse of the applicator 400 will be explained.

[0241] As shown in Figure 21, the handle 410 further includes a first retraction prevention projection 415. The first retraction prevention projection 415 protrudes radially inward from the inner circumferential surface of the handle 410.

[0242] Furthermore, the cylinder 430 further includes a second retraction prevention projection 435. The second retraction prevention projection 435 protrudes radially outward from the outer circumferential surface of the cylinder 430.

[0243] When the use is finished, the first retraction prevention projection 415 and the second retraction prevention projection 435 are facing each other, specifically, the second retraction prevention projection 435 is positioned above the first retraction prevention projection 415. This prevents the handle 410 from retracting distally again once it has moved to a proximal position.

[0244] On the other hand, it is preferable that the upper surface of the first retraction prevention projection 415 and the lower surface of the second retraction prevention projection 435 are formed parallel to the horizontal plane. This ensures that when use is finished, the handle 410 and piston 440 do not detach from their proximal position. That is, the piston 440 will not move any further distally from the proximal position, thus preventing the needle 442 from protruding outside the applicator 400 again. This has the effect of preventing the contaminated needle 442 from piercing the user or causing injury to the user after use.

[0245] 5. Embodiment 5-1 Figure 22 is a perspective view of an applicator according to a fifth-first embodiment of this disclosure.

[0246] As shown in Figure 22, the applicator 500 according to the 5-1 embodiment of the present disclosure includes a housing 510.

[0247] The housing 510 is configured to be grasped by the user and is preferably hollow and columnar in shape. Furthermore, the middle of the housing 510 is concave in shape so that the user can easily grasp it as a whole. In addition, the applicator 500 according to the 5-1 embodiment of this disclosure differs from the first to fourth embodiments described above in that it operates in an automatic firing manner, where it fires automatically when a button is pressed, rather than being fired by the user directly applying pressure.

[0248] To that end, the applicator 500 further includes a first button 520 and a second button 530.

[0249] The first button 520 is located on the upper surface of the housing 510 and is configured to be pressed downwards.

[0250] The second button 530 is positioned on the outer circumferential surface of the housing 510 and is configured to apply pressure toward the inside of the housing 510.

[0251] Figure 23 is an exploded perspective view of the applicator according to the 5-1 embodiment of this disclosure. Figure 24 is a diagram showing the interior of the applicator according to the 5-1 embodiment of this disclosure.

[0252] Referring to Figures 23 and 24, the components of the applicator 500 according to the 5-1 embodiment of this disclosure and the relationships between those components will be described.

[0253] The applicator 500 according to the fifth embodiment includes all or part of a housing 510, a first button 520, a second button 530, a drive unit 540, a needle carrier 550, a needle 560, and a transmitter holder 570.

[0254] The bottom surface of the housing 510 is configured to contact the user's skin and insert the sensor mounted on the transmitter 50 into the user's skin.

[0255] The housing 510 is preferably manufactured by injection molding. Here, the first configuration 510a and the second configuration 510b are manufactured separately, and the first configuration 510a and the second configuration 510b are assembled to form the housing 510.

[0256] The housing 510 includes a housing fixing portion 511, a drum 512, and a wheel fixing portion 513.

[0257] The housing fixing portion 511 is configured to be coupled to the first configuration 510a and the second configuration 510b. Specifically, the housing fixing portion 511 is configured to be coupled to at least a part of the outer peripheral surface of the first configuration 510a and the second configuration 510b, preferably at the upper end portion. By doing so, when the first configuration 510a and the second configuration 510b are assembled, they are stably fixed. When an external impact is applied to the applicator 500, the assembled housing 510 may be disassembled. However, since the housing fixing portion 511 firmly maintains the connection between the first configuration 510a and the second configuration 510b, there is an effect of preventing the disassembly of the applicator 500.

[0258] The drum 512 is formed corresponding to the overall shape of the spring so that the spring 541 is disposed inside. As will be described later, since the spring 541 according to the fifth embodiment of the present disclosure is in the shape of a wound roll spring, the drum 512 is preferably formed in a substantially cylindrical shape.

[0259] On the outer peripheral surface of the drum 512, a spring fixing groove 512a is formed so that the outer end portion 541a of the spring is placed. The spring fixing groove 512a has a shape in which at least a part of the outer peripheral surface of the drum 512 is cut open.

[0260] The wheel fixing part 513 is disposed at the central part of the drum 512 and protrudes radially inward from the inner peripheral surface of the second configuration 510b. Since the wheel fixing part 513 penetrates the center of the wheel 542, the wheel 542 is stably placed. Also, it is preferable that the outer peripheral surface of the wheel fixing part 513 is a smooth columnar shape so that the wheel 542 rotates around the wheel fixing part 513.

[0261] The first button 520 is configured to be inserted into the housing 510 and to be pressed in a direction from the distal end to the proximal end.

[0262] The second button 530 is configured to be inserted into the housing 510 and to be pressed in a horizontal direction.

[0263] When both the first button 520 and the second button 530 are pressed, the applicator 500 is fired. Here, the order in which the first button 520 and the second button 530 are pressed may be any. That is, the first button 520 and the second button 530 fulfill all the roles as a safety lock release button or a pressure button.

[0264] The drive part 540 is configured to linearly move the needle carrier 550 and the needle 560 between the distal end and the proximal end in response to the pressing of the first button 520 and the second button 530. For that purpose, the drive part 540 includes a spring 541, a wheel 542, and a guide protrusion 543.

[0265] One end of the spring 541 is coupled to the wheel 542, and the other end is coupled to one surface of the drum 512. Here, one end is the end disposed inside the spring 541, and the other end is the end disposed outside the spring 541. One end is locked and fixed to a protrusion 544 (see FIG. 26) formed on the wheel 542, and the other end is locked and fixed to a fixing protrusion (not shown) provided separately on one surface of the drum.

[0266] Spring 541 is a power source that supplies power to enable the linear motion of the needle carrier 550. Preferably, spring 541 is a wound roll spring. Initially, spring 541 is assembled in a compressed state. When the first button 520 and the second button 530 are pressed, the coupling that held the compression of spring 541 is released, and spring 541 is stretched back to its original state. This causes the inner end of spring 541 to rotate in the opposite direction to the direction of compression. That is, the rotational motion of spring 541 is converted into the linear motion of the needle carrier 550 and the needle 560, applying the principle of a kind of Scotch yoke or double slider-crank mechanism. This will be described in detail later with reference to Figure 25.

[0267] The wheel 542 is coupled to the drum 512 and is configured to form a housing space inside it. A spring 541 is placed in the housing space formed between the wheel 542 and the drum 512. The wheel 542 is also coupled to the spring 541 and is configured to rotate together with the rotation of the spring 541.

[0268] The guide projection 543 is provided projecting from one surface of the wheel 542 toward the inside of the applicator 500.

[0269] The needle carrier 550 is configured to move linearly within the housing 510. Here, the linear motion of the needle carrier 550 is induced by the rotational motion of the drive unit 540. For this purpose, the needle carrier 550 includes a lateral guide 551 and a longitudinal guide 553, and the needle carrier 550 has an overall T-shape (see Figure 24).

[0270] The guide projection 543 of the drive unit 540 is inserted into the lateral guide 551. As the wheel 542 rotates, the guide projection 543 rotates, and accordingly, the guide projection 543 moves from side to side along the lateral guide 551. In this way, the needle carrier 550 moves in a linear motion between the distal and proximal ends.

[0271] The lateral guide 551 is configured to be coupled to the first button 520, and becomes movable when the coupling with the first button 520 is released. This will be described in detail later with reference to Figure 26.

[0272] The longitudinal guide 553 extends from one surface of the transverse guide 551 in a direction from distal to proximal. The longitudinal guide 553 is connected to the needle 560 and fixes the needle 560 in place.

[0273] The vertical guide 553 is configured to be coupled to the second button 530, and becomes movable when the coupling with the second button 530 is released. This will be explained in detail later with reference to Figure 27.

[0274] The needle 560 is coupled to the needle carrier 550 and is configured to move linearly together with the linear motion of the needle carrier 550, constrained by its linear motion. The needle 560 is configured to penetrate the user's skin.

[0275] The transmitter holder 570 is coupled to the transmitter 50 and is configured to cause the transmitter 50 to move linearly from distal to proximal. The transmitter holder 570 is pressurized from distal to proximal by the longitudinal guide 553. The transmitter holder 570 moves only in the distal to proximal direction.

[0276] On the other hand, since the housing 510 according to the present disclosure is manufactured by being separated into two parts, in the manufacturing process of the applicator 500, the spring 541, the wheel 542, the needle carrier 550, the first configuration 510a, and the second button 530 are sequentially stacked and assembled in this order on the second configuration 510b. By doing so, there is an advantage that the assembly process of the applicator 500 is simplified and the manufacturing cost is reduced.

[0277] FIG. 25 is a diagram showing the operating principle of the applicator according to the 5-1st embodiment of the present disclosure.

[0278] (a) of FIG. 25 shows a state where at least one of the first button 520 and the second button 530 is not pressed, that is, an initial state.

[0279] As shown in (a) of FIG. 25, the guide projection 543 is disposed at the most distal position, and thus the needle carrier 550 is also disposed at the distal position. At this time, the spring 541 is in a tensioned state.

[0280] On the other hand, as shown in (a) of FIG. 25, since at least one of the first button 520 and the second button 530 is not pressed, the movement of the needle carrier 550 toward the proximal side is restricted by the first button 520 or the second button 530. Therefore, the movement of the guide projection 543, the wheel 542, and the spring 541 that are directly / indirectly coupled to the needle carrier 550 is also restricted.

[0281] (b) of FIG. 25 shows a state where both the first button 520 and the second button 530 are pressed and the needle 560 is inserted into the skin.

[0282] As shown in Figure 25(b), when both the first button 520 and the second button 530 are pressed, the coupling between the first button 520 and the lateral guide 551, and the coupling between the second button 530 and the longitudinal guide 553 are released. This frees the distal-to-proximal movement of the needle carrier 550 from any further restriction. Thus, the movement of the guide projection 543, wheel 542, and spring 541, which are directly / indirectly coupled to the needle carrier 550, becomes possible.

[0283] The spring 541 rotates in one direction (shown as counterclockwise in Figure 25 of this disclosure, but may be in the opposite direction). However, if rotation is to be in the opposite direction, the direction of the hook formed at the other end of the spring 541 must be reversed.

[0284] The guide projection 543 is positioned closest to the front, and therefore the needle carrier 550 is also positioned close to the front. The spring 541 is in a state where its tension is partially released.

[0285] As the needle carrier 550 moves proximal, the needle 560 also moves proximal and is inserted into the user's skin.

[0286] Figure 25(c) shows the needle 560 after it has been withdrawn from the user's skin.

[0287] As shown in Figure 25(c), the spring 541 rotates further in one direction.

[0288] By doing so, the guide projection 543 is again positioned distally, and the needle carrier 550 is also positioned distally. Furthermore, the spring 541 is completely released from tension, and no driving force is generated by the spring 541.

[0289] As the needle carrier 550 moves distally again, the needle 560 moves distally and is withdrawn from the user's skin.

[0290] Figures 26 and 27 show the firing prevention configuration of the applicator according to the 5-1 embodiment of this disclosure. Specifically, Figure 26 shows the coupling between the first button 520 and the vertical guide 553.

[0291] As shown in Figure 26, the first button 520 of this disclosure further includes an extension 521 and a locking projection 522.

[0292] The extension portion 521 is provided projecting downward from the lower surface of the first button 520 and is configured to be inserted into one surface of the vertical guide 553. Preferably, the extension portions 521 are formed in pairs facing each other.

[0293] The locking projection 522 is provided protruding from one surface of the extension 521. Here, the direction of protrusion is preferably toward the radially outward direction of the applicator 500 when the applicator 500 is assembled. Furthermore, it is preferable that the locking projection 522 is formed at a distance from the lower surface of the first button 520. The firing prevention part 545, which will be described later, is arranged in the space between the lower surface of the first button 520 and the locking projection 522.

[0294] The locking projection 522 faces the drive unit 540, particularly a part of the wheel 542, and prevents the wheel 542 from rotating.

[0295] The drive unit 540 further includes a spring fixing projection 544 and a firing prevention unit 545.

[0296] The spring fixing projection 544 is formed on one surface of the wheel 542. Here, the surface of the wheel 542 is the surface on which the spring 541 is positioned. One end of the spring 541 is connected to the spring fixing projection 544, thereby fixing the relative position of the spring 541 and the wheel 542. Here, the end of the spring 541 is the end that is positioned on the inside of the spring 541. While the spring 541 is compressed to return from a stretched state to its original state, the inner end of the spring 541 rotates. Since the spring fixing projection 544 and the spring 541 are connected, the wheel 542 rotates in accordance with the compression process of the spring 541.

[0297] The firing prevention portion 545 is formed on the other side of the wheel 542. Here, the other side of the wheel 542 is the side formed opposite to the first side, and is the side facing the needle carrier 550. The firing prevention portion 545 is projected from the other side of the wheel 542 so as to form an overall arc shape along the perimeter of that side. Here, the direction of projection is preferably toward the radially inward direction of the applicator 500 when the applicator 500 is assembled. That is, the locking projection 522 and the firing prevention portion 545 are formed in a position to interlock by projecting in opposite directions from each other.

[0298] The needle carrier 550 further includes a first button coupling portion 554.

[0299] The first button coupling portion 554 is a groove or hole formed on the upper surface of the lateral guide 551, into which at least a portion of the extension portion 521 of the first button 520 is inserted. In the initial state, the extension portion 521 of the first button 520 is not inserted into the first button coupling portion 554. However, when the first button 520 is pressurized, it is preferable that the extension portion 521 is inserted into the first button coupling portion 554. This ensures that the first button moves downward.

[0300] In short, in the initial state, the locking projection 522 of the first button 520 is locked to the firing prevention part 545 of the wheel 542. When the first button 520 is pressed, the extension 521 is inserted into the first button coupling part 554, and the first button 520 moves to the proximal position. At this point, the locking projection 522 also moves to the proximal position, and the engagement between the firing prevention part 545 and the locking projection 522 is released. In this way, the wheel 542 becomes rotatable.

[0301] The needle carrier 550 also includes an insertion groove 552. The insertion groove 552 is a groove recessed from one surface of the longitudinal guide 553. Here, one surface of the longitudinal guide 553 is the surface facing the wheel 542. The guide projection 543 of the wheel 542 is inserted into the insertion groove 552, and the guide projection 543 moves from side to side within the insertion groove 552.

[0302] Figure 27 shows the connection between the second button 530 and the lateral guide 551.

[0303] As shown in Figure 27, the second button 530 further includes an extension 531 and a hook 532.

[0304] The extension portion 531 is provided protruding from the lower surface of the second button 530 and is configured to be inserted into one surface of the lateral guide 551. Here, the direction of protrusion is preferably toward the radially inward direction of the applicator 500 when the applicator 500 is assembled. It is preferable that a pair of extension portions 531 are formed facing each other.

[0305] The hook 532 is provided projecting radially inward from the inner surface of the extension 531 toward the second button 530. Preferably, the hook 532 is formed at a distance from the lower surface of the second button 530. A hook projection 555, described later, is positioned in the space between the lower surface of the second button 530 and the hook 532.

[0306] The hook 532, by facing the needle carrier 550, particularly the longitudinal guide 553, prevents the needle carrier 550 from moving in a straight line.

[0307] To this end, the needle carrier 550 further includes a hook projection 555. The hook projection 555 protrudes radially outward from one surface of the longitudinal guide 553 toward the second button 530. That is, the hook 532 and the hook projection 555 protrude toward each other in opposite directions, thereby forming a position where they interlock with each other.

[0308] In short, in the initial state, the hook 532 of the second button 530 is engaged with the hook projection 555 of the needle carrier 550. When the second button 530 is pressed, it moves radially inward from the applicator 500. As a result, the hook 532 also moves, and the engagement between the hook projection 555 and the hook 532 is released. This allows the needle carrier 550 to move in a linear motion.

[0309] As shown in Figures 26 and 27, in the applicator 500 according to the 5-1 embodiment, both the first button 520 and the second button 530 must be pressurized for firing.

[0310] In other words, the first button 520 and the second button 530, when pressed first, function as the safety lock release button, and the second button, when pressed second, function as the firing button.

[0311] On the other hand, since the press-fitting of the first button 520 and the press-fitting of the second button 530 are independent mechanisms, the order in which they are pressurized does not matter.

[0312] Figure 28 is a bottom perspective view of an applicator according to a fifth-first embodiment of this disclosure.

[0313] As shown in Figure 28, the applicator 500 has an opening 514 formed on its bottom surface. Here, it is preferable that the diameter of the opening 514 is the same as the maximum diameter of the transmitter 50, or slightly larger. This prevents dirt and other debris from entering the inside of the applicator 500.

[0314] Figure 29 shows the transmitter holder and transmitter of the applicator according to the 5-1 embodiment of this disclosure. Figure 30 shows the state of the applicator after firing according to the 5-1 embodiment of this disclosure.

[0315] As shown in Figure 29, the transmitter holder 570 includes a transmitter support portion 571.

[0316] Figure 29(a) is a perspective view of the transmitter holder 570, and Figure 29(b) is a cross-sectional view taken along line I-I' in Figure 29(a).

[0317] The transmitter support portion 571 is formed on one surface of the transmitter holder 570 and is configured to grip and support the transmitter 50. In this embodiment, the transmitter support portion 571 is an O-ring (see Figure 30). In this case, a frictional force is formed between the O-ring and the transmitter 50, and the transmitter 50 can be stably gripped without a separate coupling or uncoupling structure, which has the effect of reducing manufacturing costs.

[0318] On the other hand, a frictional coupling force is formed between the transmitter support portion 571 and the transmitter 50, so a structure is needed to push the transmitter 50 in the proximal direction. For this purpose, the transmitter holder 570 further includes a pusher 572.

[0319] The pusher 572 is positioned on the upper surface of the transmitter holder 570 and is configured to rotate about an axis parallel to the horizontal plane (see Figure 29(b)). It is preferable to provide multiple pushers 572 in order to supply sufficient pressure.

[0320] The first end 573 of the pusher 572 is located outside the transmitter housing 510, and the second end 574 is located inside the transmitter holder 570. When the transmitter holder 570 is pressurized (in the direction of the arrow in Figure 29(b)), the first end 573 comes into contact with the inner bottom surface of the housing 510. This causes the pusher 572 to rotate in one direction, which is the direction indicated by the curved arrow in Figure 29(b).

[0321] As the pusher 572 rotates, the second end 574 strongly presses the transmitter 50. This removes the transmitter 50, which was fixed by the transmitter support 571, from the transmitter holder 570.

[0322] 6. Embodiment 5-2 Figure 31 shows the operating principle of the applicator according to the 5-2 embodiment of this disclosure.

[0323] The applicator according to the 5-2 embodiment has all other components except the drive unit 540' as in the 5- 1 It is shared with the applicator 500 according to the embodiment. Therefore, in this disclosure, only the drive unit 540' will be described.

[0324] The drive unit 540' of the applicator according to the 5-2 embodiment of the present disclosure includes all or part of the elastic body 541', the wheel 542', the guide projection and the guide roller 544'.

[0325] The elastic body 541' is made of a material that is elastic and tensile. For example, the elastic body 541' is a rubber band, but the material may be changed as appropriate by the designer.

[0326] The elastic body 541' is coupled at one end to the wheel 542' and at the other end to one surface of the drum. Here, one end is the end that is positioned on the inside when the elastic body 541' is wound up, and the other end is the end that is positioned on the outside.

[0327] The elastic body 541' is assembled under tension in its initial state. When the first button 520 and the second button 530 are pressed, the joint that was fixing the tension of the elastic body 541' is released, and the elastic body 541' is compressed to return to its original state. In this way, one end of the elastic body 541' rotates.

[0328] Since the wheel 542' and guide projection (not shown) according to the 5-2 embodiment have the same configuration, shape, and function as the wheel 542 and guide projection 543 according to the 5-1 embodiment, the description of the 5-1 embodiment will be applied accordingly.

[0329] The guide roller 544' protrudes from one side of the inside of the housing and is positioned adjacent to the wheel 542' so that the elastic body 541' is placed on it. The guide roller 544' is preferably substantially cylindrical in shape. Therefore, the elastic body 541' slides along the outer circumferential surface of the guide roller 544'.

[0330] Figure 31(a) shows the initial state, where at least one of the first button 520 and the second button 530 is not pressurized.

[0331] As shown in Figure 31(a), the guide projection (not shown) is positioned at its distal end, and therefore the needle carrier 550' is also positioned distally. In this state, the elastic body 541' is under tension.

[0332] On the other hand, as shown in Figure 31(a), since at least one of the first button 520 and the second button 530 is not pressurized, the needle carrier 550's proximal movement is restricted by either the first button 520 or the second button 530. Thus, the movement of the guide projection, wheel 542', and elastic body 541', which are directly / indirectly connected to the needle carrier 550', is also restricted.

[0333] Figure 31(b) shows the state in which both the first button 520 and the second button 530 are pressed and the needle 560 is inserted into the skin.

[0334] As shown in Figure 31(b), when both the first button 520 and the second button 530 are pressed, the coupling between the first button 520 and the second button 530 and the needle carrier 550' is released. This frees the needle carrier 550' from distal to proximal movement from any further restriction. Thus, the movement of the guide projection, wheel 542', and elastic body 541', which are directly / indirectly coupled to the needle carrier 550', becomes possible.

[0335] The elastic body 541' rotates in one direction (shown as counterclockwise in Figure 31 of this disclosure, but it may also be in the opposite direction). However, if rotation is to be in the opposite direction, all other factors, such as the direction in which the elastic body 541' is positioned on the guide roller 544', must be changed.

[0336] The guide projection is positioned most proximal, and therefore the needle carrier 550' is also positioned proximal. The elastic body 541' is in a state where the tension is partially released.

[0337] As the needle carrier 550' moves proximal, the needle 560' also moves proximal and is inserted into the user's skin.

[0338] Figure 31(c) shows the needle 560' after it has been withdrawn from the user's skin.

[0339] figure 31 As shown in (c), the elastic body 541' rotates further in one direction.

[0340] By doing so, the guide projection is again positioned distally, and the needle carrier 550' is also positioned distally. Furthermore, the tension on the elastic body 541' is completely released, and no driving force is generated by the elastic body 541'.

[0341] As the needle carrier 550' moves distally again, the needle 560' moves distally and is withdrawn from the user's skin.

[0342] 7. Embodiment 6-1 Figure 32 is a perspective view of an applicator according to the 6-1 embodiment of this disclosure.

[0343] As shown in Figure 32, the applicator 600 according to the 6-1 embodiment of this disclosure includes a housing 610.

[0344] The housing 610 is configured to be grasped by the user and is preferably hollow and columnar in shape. Furthermore, the middle of the housing 610 is concave in shape so that the user can easily grasp it as a whole. In addition, the applicator 600 according to the 6-1 embodiment of this disclosure differs from the first to fourth embodiments described above in that it operates in an automatic firing manner, where it fires automatically when a button is pressed, rather than being fired by the user directly applying pressure.

[0345] To that end, the applicator 600 further includes a button 620.

[0346] The button 620 is located on the upper surface of the housing 610 and is configured to be pressed downwards.

[0347] On the other hand, to prevent the button 620 from being pressed and accidentally fired due to external impact or other reasons unrelated to the user's intention, the applicator 600 further includes a safety pin 630.

[0348] The safety pin 630 is configured to be inserted into or removed from the housing 610 and preferably includes a knob-shaped configuration to facilitate user gripping.

[0349] Figures 33a and 33b show the internal workings of an applicator according to the 6-1 embodiment of this disclosure.

[0350] Specifically, Figure 33a is a rear perspective view showing the internal components assembled, and Figure 33b is a front exploded perspective view showing the internal components disassembled.

[0351] Referring to Figures 33a and 33b, the components of the applicator 600 according to Embodiment 6.1 of this disclosure and the relationships between those components will be described.

[0352] The applicator 600 according to Embodiment 6-1 includes all or part of a drive unit 640, a needle carrier 650, and a transmitter holder 660, which are located inside the housing 610.

[0353] The drive unit 640 includes a spring 641 and a wheel 642.

[0354] Since the spring 641 and wheel 642 according to the 6-1 embodiment are identical in configuration, shape, and function to the spring 541 and wheel 542 of the applicator 500 according to the 5-1 embodiment, the description of the 5-1 embodiment will be applied accordingly.

[0355] The needle carrier 650 is configured to move linearly within the housing 610. Here, the linear motion of the needle carrier 650 is induced by the rotational motion of the drive unit 640. For this purpose, the needle carrier 650 includes a lateral guide 651 and a longitudinal guide 653, and the needle carrier 650 has an overall T-shape.

[0356] A guide projection (not shown) of the drive unit 640 is inserted into the lateral guide 651. As the wheel 642 rotates, the guide projection rotates, and accordingly, the guide projection moves from side to side along the lateral guide 651. In this way, the needle carrier 650 moves in a linear motion between the distal and proximal ends.

[0357] The lateral guide 651 is configured to be coupled to the button 620, and firing is possible when the coupling with the button 620 is released. The coupling between the button 620 and the lateral guide 651 in this embodiment is the same as the coupling relationship between the first button 520 and the lateral guide 551 in the 5-1 embodiment of this disclosure, so the description of the 5-1 embodiment will be used with reference.

[0358] The vertical guide 653 is configured to connect to the safety pin 630, and becomes movable when the connection with the safety pin 630 is released. This will be described in detail later with reference to Figure 34.

[0359] The transmitter holder 660 is coupled to a transmitter (not shown) and is configured to move the transmitter in a linear motion from distal to proximal. The transmitter holder 660 is pressurized from distal to proximal by the longitudinal guide 653. The transmitter holder 660 moves only in the distal to proximal direction.

[0360] Figure 34 is a cross-sectional view and enlarged view of the line I-I' in Figure 32.

[0361] As shown in Figure 34, the safety pin 630 includes a grip portion 631, a first pin 632, and a second pin 633.

[0362] The grip portion 631 is the part that the user holds.

[0363] The first pin 632 is preferably provided protruding from the grip portion 631 and has the shape of a thin pin.

[0364] The second pin 633 protrudes from the grip portion 631 and is positioned below the first pin 632. Here, the first pin 632 and the second pin 633 protrude in the same direction.

[0365] The first pin 632 and the second pin 633 are inserted into one side of the housing 610, and the first pin 632 and the second pin 633 prevent firing.

[0366] A hook 634 is formed at the end of the second pin 633. The hook 634 engages with the end of the second pin hole 612, preventing the safety pin 630 from coming out due to external impacts. The hook 634 has an inclined surface that is angled in the direction that removes the safety pin 630 from the applicator 600. In this way, if the safety pin 630 is pulled with a force greater than a predetermined amount, the safety pin 630 will be removed. In other words, the hook 634 is connected to the second pin hole 612 in a snap-fit ​​manner.

[0367] The housing 610 includes a first pin hole 611, a second pin hole 612, a spring mounting portion 613, and a first pin groove 614.

[0368] The first pin hole 611 is a hole formed on the outer circumferential surface of the housing 610 into which the first pin 632 is inserted.

[0369] The needle carrier 650 includes a first pin through hole 652.

[0370] The first pin through-hole 652 is formed in the center of the lateral guide 651 of the needle carrier 650, and the first pin 632 penetrates the needle carrier 650 through the first pin through-hole 652.

[0371] The spring mounting portion 613 is configured to hold the spring 641 and has an overall boss shape. A first pin groove 614 is formed in the flange portion of the spring mounting portion 613.

[0372] The first pin hole 611, the first pin through hole 652, and the first pin groove 614 are all circular in diameter and are arranged coaxially. This allows the first pin 632 to secure the housing 610, the needle carrier 650, and the drive unit 640 all at once.

[0373] On the other hand, when the first pin 632 is inserted, the end of the first button 620 is in contact with the first pin 632. Therefore, as long as the first pin 632 is inserted, the first button 620 is not pressurized.

[0374] The second pin hole 612 is a hole formed on the outer circumferential surface of the housing 610 into which the second pin 633 is inserted, and is formed below the first pin hole 611.

[0375] In the applicator 600 according to Embodiment 6-1, when the safety pin 630 is inserted, pressure is also prevented on the button 620, and rotation of the drive unit 640 and linear motion of the needle carrier 650 are also prevented.

[0376] Furthermore, the hook 634 on the safety pin 630 prevents the safety pin from coming loose due to external impact, thus providing an additional safety advantage.

[0377] 8. Embodiment 6-2 Figure 35 is a perspective view of an applicator according to the 6-2 embodiment of this disclosure.

[0378] Figure 35(a) shows the grip portion 631' in an expanded state, and Figure 35(b) shows the grip portion 631' in a gathered state.

[0379] As shown in Figure 35, the applicator 600' according to the 6-2 embodiment of the present disclosure includes all or part of the housing 610', the button 620', and the safety pin 630'.

[0380] Since the housing 610' and button 620' according to Embodiment 6-2 are identical in configuration, shape, and function to the housing 610 and button 620 according to Embodiment 6-1, the description of Embodiment 6-1 will be used with reference.

[0381] The safety pin 630' according to the 6-2 embodiment has a grip portion 631' formed with two components, and the grip portion 631' can be expanded or brought together. By expanding the grip portion 631', the overall volume of the applicator 600' can be reduced, which has the advantage of enabling a reduction in packaging material.

[0382] Figure 36 is a cross-sectional perspective view of the applicator according to the 6-2 embodiment.

[0383] As shown in Figure 36, the safety pin 630' according to the 6-2 embodiment of the present disclosure further includes a first pin 632', a second pin 633', a hook 634', and a support pin 635'.

[0384] The first pin 632', the second pin 633', and the support pin 635' are arranged in order in the height direction of the housing 610'.

[0385] The first pin 632' is inserted into the first pin hole 611', the second pin 633' is inserted into the second pin hole 612', and the support pin 635' is inserted into the support pin hole 613'.

[0386] Since the configuration, shape, and function of the first pin 632', the second pin 633', and the hook 634' are the same as those of the first pin 632, the second pin 633, and the hook 634 according to Embodiment 6-1, the description of Embodiment 6-1 will be used accordingly.

[0387] The support pin 635' prevents the transmitter and transmitter holder from moving proximal to each other by contacting the lower surface of the transmitter when the safety pin 630' is inserted into the housing 610'.

[0388] 9. Seventh Embodiment Figure 37 is a perspective view of an applicator according to the seventh embodiment of this disclosure.

[0389] As shown in Figure 37, the applicator 700 according to the seventh embodiment of this disclosure includes a housing 710. The housing 710 is configured to be grasped by the user and is preferably hollow and columnar in shape. Furthermore, the middle of the housing 710 is concave in shape so that the user can easily grasp it as a whole. Unlike the first to fourth embodiments described above, the applicator 700 according to the seventh embodiment of this disclosure operates in an automatic firing manner, where it fires automatically when a button is pressed, rather than being fired by the user directly applying pressure.

[0390] To that end, the applicator 700 further includes a button 720.

[0391] Button 720 is located on the top surface of the housing 710 and is configured to be pressed downwards.

[0392] Figure 38 shows the internal workings of an applicator according to the seventh embodiment of this disclosure.

[0393] As shown in Figure 38, the applicator 700 according to the seventh embodiment of the present disclosure includes all or part of a cap 730, a drive unit 740, a needle carrier 750, and a transmitter holder 760.

[0394] The cap 730 is formed so that at least a portion of it is inserted into an opening formed in the bottom surface of the housing 710. The cap 730 is configured to protect the inside of the applicator 700 from external contaminants before the user uses the applicator 700. For this purpose, it is preferable that the maximum diameter of the cap 730 is the same as, or slightly larger than, the diameter of the opening formed in the bottom surface of the housing 710.

[0395] The cap 730 is composed of at least one of the following materials: ABS (Acrylonitrile butadiene styrene copolymer) resin, PC (Polycarbonate) resin, and PE (Polyethylene) resin. However, any material commonly used in medical devices such as applicators may be used. For example, a combination of PC resin and ABS resin may be used, but this can be changed as appropriate at the designer's discretion.

[0396] The cap 730 includes a support rod 731 and a sealing portion 732. The support rod 731 is configured to contact the transmitter and directly support the transmitter and the transmitter holder 760.

[0397] The sealing portion 732 is configured to seal the opening formed in the bottom surface of the housing 710.

[0398] The drive unit 740 is configured to move the needle carrier 750 and the needle (not shown) in a linear motion between the distal and proximal ends in response to the pressure applied by the button 720. For this purpose, the drive unit 740 includes a wheel 741. Note that the wheel 741 according to the seventh embodiment has the same configuration, shape, and function as the wheel 542 of the applicator 500 according to the fifth-first embodiment, so the description of the fifth-first embodiment will be used accordingly.

[0399] The needle carrier 750 is configured to move linearly within the housing 710. Here, the linear motion of the needle carrier 750 is induced by the rotational motion of the drive unit 740.

[0400] The transmitter holder 760 is coupled to the transmitter (not shown) and is configured to cause the transmitter to move linearly from distal to proximal. The transmitter holder 760 is pressurized from distal to proximal by the needle carrier 750. The transmitter holder 760 moves only in the distal to proximal direction.

[0401] Figure 38(a) shows the state before the cap 730 is removed, and Figure 38(b) shows the state after the cap 730 has been removed.

[0402] As shown in Figure 38(a), the cap 730 supports the transmitter holder 760 in the distal direction. Therefore, a configuration that allows for linear motion is achieved, meaning the needle carrier 750 is also supported in the distal direction.

[0403] As shown in Figure 38(b), when the cap 730 is removed, the needle carrier 750 and transmitter holder 760 descend slightly to the proximal position. In this state, the user can press the button 720, and the applicator 700 is ready to fire.

[0404] Figure 39 is a front view of a needle carrier according to a seventh embodiment of the present disclosure.

[0405] As shown in Figure 39, the needle carrier 750 of this disclosure includes a lateral guide 751, an insertion groove 752, and a longitudinal guide 753.

[0406] The guide projection 742 (see Figure 40) of the drive unit 740 is inserted into the lateral guide 751. As the wheel 741 rotates, the guide projection 742 rotates, and accordingly, the guide projection 742 moves from side to side along the lateral guide 751. In this way, the needle carrier 750 moves in a linear motion between the distal and proximal ends.

[0407] The insertion groove 752 is preferably formed on the bottom surface of the lateral guide 751 and has a width sufficient for the guide projection 742 to pass through.

[0408] The longitudinal guide 753 extends from one surface of the transverse guide 751 in a direction from distal to proximal. The longitudinal guide 753 is connected to the needle and secures the needle.

[0409] Figure 40 shows the firing prevention configuration of the applicator according to the seventh embodiment of this disclosure.

[0410] Figure 40(a) shows the state before the cap 730 is removed, and Figure 40(b) shows the state after the cap 730 has been removed.

[0411] As shown in Figure 40(a), before the cap 730 is removed, the needle carrier 750 is supported distally, so the needle carrier 750 is slightly moved distally. This causes the guide projection 742 to engage with the insertion groove 752 of the needle carrier 750. Therefore, the lateral guide 751 cannot move laterally. Furthermore, due to the characteristics of circular motion, the lateral movement of the guide projection 742 is mutually constrained by its vertical movement, making lateral movement impossible, and thus the vertical movement of the guide projection 742 is also restricted. This prevents firing.

[0412] As shown in Figure 40(b), when the cap 730 is removed, the structure supporting the needle carrier 750 is removed, causing the needle carrier 750 to move slightly proximal. The guide projection 742 is then inserted into the lateral guide 751, thereby enabling lateral movement.

[0413] The above description is merely illustrative of the technical concept of this disclosure, and any person with ordinary skill in the art to which this disclosure pertains could make various modifications and alterations without departing from the essential characteristics of this disclosure. Therefore, this embodiment illustrates the technical concept of this disclosure and does not limit it. The scope of protection of this disclosure should be interpreted as per the claims, and all technical concepts within the equivalent scope should be interpreted as being included in this disclosure. [Explanation of Symbols]

[0414] 100, 200, 300, 400, 500, 600, 600', 700 Applicators 110,210,410 handle 120,220,420,730 caps 130,230 Support part 140 gear 150, 260, 550, 550', 650, 750 Needle Carrier 160 Needle Holder 170, 270, 362, 560, 560' Needle 180, 280, 380, 450, 570, 660, 760 Transmitter Holder 240 Crank 250 Connecting Rods 310 Top cap 312 Lower cap 330 Push Cap 340 Rotation Guide 350 Rotating Blocks 370 Spring 430 cylinders 440 Pistons 520 First button 530 Second button 540, 540', 640, 740 drive unit 620, 620', 720 buttons 630,630' Safety pin

Claims

1. A hollow columnar housing with an opening formed on the bottom surface, A first button is positioned on the upper surface of the housing, A second button is positioned on the outer surface of the housing, A needle carrier configured to be coupled to the second button, which moves linearly between distal and proximal parts within the housing and includes a hook projection formed on one side, The system includes a drive unit configured to be coupled to the first button and configured to supply power for the linear motion of the needle carrier, The aforementioned drive unit is A wound spring is coupled to the inner circumferential surface of the housing in a compressed state, A wheel having one surface facing the spring and being constrained by the rotation of the spring, It includes an arc-shaped anti-firing portion that protrudes from the other side of the wheel and is formed along the circumference of the wheel, The first button is, The first button includes a locking projection that protrudes outward in the radial direction and is configured to face the firing prevention portion, The second button mentioned above is, The second button includes a hook that protrudes radially inward and is configured to face the hook projection, When the first button is pressed, the engagement between the firing prevention part and the locking projection is released, and when the second button is pressed, the engagement between the hook projection and the hook is released, allowing the rotation of the drive unit and the linear motion of the needle carrier to occur. Applicator.

2. The aforementioned drive unit is The wheel further includes a guide projection that protrudes from the other side of the wheel and is positioned radially inward from the firing prevention portion, The aforementioned needle carrier is Side guides and Including a longitudinal guide formed on one surface of the lateral guide and extending along the longitudinal direction of the housing, The applicator according to claim 1.

3. The first button is, Including an extension protruding from the lower surface of the first button, The locking projection is provided protruding radially outward from one surface of the extension portion toward the first button, The locking projection is formed at a distance from the lower surface of the first button, When the first button is pressed, the firing prevention part is positioned in the space separated between the locking projection and the lower surface of the first button. The applicator according to claim 2.

4. The second button mentioned above is, Including an extension protruding from the lower surface of the second button, The hook is provided projecting radially inward from one surface of the extension portion toward the second button. The hook is formed at a distance from the lower surface of the second button, When the second button is pressed, the hook projection is positioned in the space separated between the hook and the lower surface of the second button. The applicator according to claim 2.

5. The first button is configured to limit the rotation of the drive unit, The second button is configured to restrict the linear motion of the needle carrier. When the first button and the second button are pressed simultaneously or sequentially, the drive unit rotates, causing the needle carrier to move from the distal to the proximal position. The applicator according to claim 2.

6. The present invention further includes a transmitter holder configured to be pressurized by the needle carrier and move from distal to proximal, thereby gripping the transmitter. The transmitter holder is, A transmitter support portion configured to cover at least a part of the transmitter, The transmitter holder includes a pusher that is rotatably mounted on the upper surface of the transmitter holder, The applicator according to claim 1.

7. One end of the pusher is located outside the transmitter holder. The other end of the pusher is located inside the transmitter holder. One end of the pusher is formed to protrude from the lower surface of the transmitter holder. The applicator according to claim 6.

8. As the transmitter holder moves from distal to proximal by the needle carrier, one end of the pusher comes into contact with the inner bottom surface of the housing. The other end of the pusher presses against the upper surface of the transmitter. The applicator according to claim 7.

9. The transmitter support and the transmitter are friction-jointed. The applicator according to claim 6.

10. A sensor configured to be inserted into the body, at least in part, to detect in vivo analytes, A transmitter configured to process information about in vivo analytes obtained from the sensor, An applicator configured to move the sensor and the transmitter from a proximal to a distal position, A hollow columnar housing with an opening formed on the bottom surface, A first button is positioned on the upper surface of the housing, A second button is positioned on the outer surface of the housing, A needle carrier configured to be coupled to the second button, which moves linearly between distal and proximal parts within the housing and includes a hook projection formed on one side, The applicator includes a drive unit configured to be coupled to the first button and configured to supply power for the linear motion of the needle carrier, The aforementioned drive unit is A wound spring is coupled to the inner circumferential surface of the housing in a compressed state, A wheel having one surface facing the spring and being constrained by the rotation of the spring, It includes an arc-shaped anti-firing portion that protrudes from the other side of the wheel and is formed along the circumference of the wheel, The first button is, An extension portion protruding from the lower surface of the first button, The extension includes a locking projection that protrudes outward in the radial direction from one surface of the extension and is configured to face the firing prevention portion, The second button mentioned above is, An extension portion is provided protruding from the lower surface of the second button and positioned radially inward of the housing, The extension includes a hook that protrudes radially inward from one surface of the extension and is configured to face the hook projection, When the first button is pressed, the engagement between the firing prevention part and the locking projection is released, and when the second button is pressed, the engagement between the hook projection and the hook is released, allowing the rotation of the drive unit and the linear motion of the needle carrier to occur. Sensor insertion device.

11. A hollow columnar housing with an opening formed on the bottom surface, A first button is positioned on the upper surface of the housing, A second button is positioned on the outer surface of the housing, A needle carrier configured to be coupled to the second button and to move linearly between distal and proximal parts within the housing, The system includes a drive unit configured to be coupled to the first button and configured to supply power for the linear motion of the needle carrier, The first button is configured to limit the rotation of the drive unit, The second button is configured to restrict the linear motion of the needle carrier. When the first button and the second button are pressed simultaneously or sequentially, the drive unit rotates, causing the needle carrier to move from distal to proximal. Applicator.

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