Conversion connector
The conversion connector facilitates the connection of male connectors with claw and screw locking mechanisms, ensuring reliable liquid flow and preventing leakage by using a dual female connector system with compatible locking mechanisms.
Patent Information
- Application Number
- JP2022558860
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-29
- Filing Date
- 2021-07-21
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2041-07-21
AI Technical Summary
Existing connectors with different locking mechanisms, such as claw and screw locking mechanisms, cannot be connected to each other, posing a challenge in medical settings where compatibility is required.
A conversion connector with a first female connector compatible with a claw locking mechanism and a second female connector with a screw locking mechanism, allowing for connection via a flow path that maintains a liquid-tight seal and facilitates easy attachment and detachment.
Enables the connection of male connectors with different locking mechanisms, ensuring reliable liquid flow and preventing leakage, while maintaining the functionality of each locking mechanism.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a conversion connector that enables two male connectors with different locking mechanisms to be connected. [Background technology]
[0002] Enteral nutrition is known as a method of administering liquids, such as nutrients, liquid foods (commonly referred to as "enteral nutrition"), or medications, to patients who are no longer able to take food orally. Enteral nutrition involves inserting a flexible tube (catheter) into the patient's digestive tract (e.g., stomach) from outside the body and leaving it in place. Known tubes include nasogastric tubes inserted through the patient's nose and fistula tubes inserted into the stomach through a hole (fistula) formed in the patient's abdomen. The liquid is stored in a container. A connector consisting of a male and female connector is used to form a continuous flow path for the liquid to flow from the container to the tube placed in the patient.
[0003] Connectors are often equipped with a locking mechanism to maintain the connection between the male and female connectors and prevent them from unintentionally separating. For example, when a highly viscous enteral nutritional supplement is pumped, the locking mechanism resists the pressure applied to the enteral nutritional supplement. Known locking mechanisms include a claw locking mechanism and a screw locking mechanism.
[0004] Patent Document 1 describes a connector equipped with a claw locking mechanism. The connector consists of a male connector (referred to as a "first connector" in Patent Document 1) that is attached to a port of a container that stores a liquid, and a female connector (referred to as a "second connector" in Patent Document 1) that is attached to the upstream end of a tube (for example, an extension tube connected to a fistula tube). The male connector has a cylindrical base, and an engaging claw protrudes radially outward from the outer peripheral surface of the base. The female connector has an engaging protrusion (referred to as an "inward convex portion" in Patent Document 1) that can engage with the engaging claw. The engaging claw of the male connector and the engaging protrusion of the female connector constitute a claw locking mechanism.
[0005] Patent Document 2 (see particularly Figures 5A, 5B, and 6 of Patent Document 2) describes a connector equipped with a screw lock mechanism. The connector comprises a male connector provided at the upstream end of a nasal tube (referred to as a "nasal catheter" in Patent Document 1) and a female connector provided at the barrel tip of a syringe (injector). The male connector comprises a male member (referred to as a "male luer" in Patent Document 2) and an outer tube surrounding the male member. A female thread is provided on the inner peripheral surface of the outer tube. The female connector comprises a cylindrical female member (referred to as an "insertion section" in Patent Document 2). A male thread is provided on the outer peripheral surface of the female member that can be threaded with the female thread of the male connector. The female thread and the male thread constitute a screw lock mechanism. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-180048 [Patent Document 2] Japanese Patent Application Laid-Open No. 2016-158656 Summary of the Invention [Problem to be solved by the invention]
[0007] The connectors of Patent Document 1 and Patent Document 2 have different locking mechanisms. Therefore, a male connector equipped with the claw locking mechanism of Patent Document 1, which is attached to a port of a container, cannot be connected to a male connector equipped with the screw locking mechanism of Patent Document 2, which is provided at the upstream end of a nasal tube. However, in medical settings, there may be cases where it is desired to connect two male connectors equipped with such different locking mechanisms to each other.
[0008] The object of the present invention is to make it possible to connect two male connectors with different locking mechanisms. [Means for solving the problem]
[0009] The conversion connector of the present invention has a first female connector at one end connectable to a first male connector and a second female connector at the other end connectable to a second male connector. The first female connector has a first female member into which a first male member of the first male connector is inserted and an engaging protrusion that engages with an engaging claw of the first male connector. The second female connector has a second female member into which a second male member of the second male connector is inserted and a male thread provided on the outer surface of the second female member so as to screw into the female thread of the second male connector. The first female member and the second female member are in communication via a flow path. [Effects of the Invention]
[0010] According to the present invention, a first male connector having a claw locking mechanism and a second male connector having a screw locking mechanism can be connected via the conversion connector of the present invention. [Brief explanation of the drawings]
[0011] [Figure 1A] FIG. 1A is a perspective view of a conversion connector according to a first embodiment of the present invention, as viewed from the first female connector side. FIG. [Figure 1B] FIG. 1B is a plan view of the conversion connector according to the first embodiment of the present invention. [Figure 1C] FIG. 1C is a cross-sectional perspective view of the conversion connector according to the first embodiment of the present invention. [Figure 1D] FIG. 1D is a cross-sectional view of the conversion connector according to the first embodiment of the present invention. [Figure 2] FIG. 2 is an exploded perspective view illustrating a method of using the conversion connector according to the first embodiment of the present invention. [Figure 3] 3A and 3B are perspective and cross-sectional views of the first male connector. [Figure 4] 4A and 4B are perspective and cross-sectional views of the second male connector. [Figure 5]FIG. 5 is a perspective view showing a state in which the first male connector and the second male connector are connected via the conversion connector according to the first embodiment of the present invention. [Figure 6] FIG. 6 is a cross-sectional view showing a state in which the first male connector and the second male connector are connected via the conversion connector according to the first embodiment of the present invention. [Figure 7A] FIG. 7A is a perspective view of the conversion connector according to the second embodiment of the present invention, as viewed from the first female connector side. [Figure 7B] FIG. 7B is a plan view of the conversion connector according to the second embodiment of the present invention. [Figure 7C] FIG. 7C is a cross-sectional perspective view of the conversion connector according to the second embodiment of the present invention. [Figure 7D] FIG. 7D is a bottom view of the conversion connector according to the second embodiment of the present invention. [Figure 8] FIG. 8 is a cross-sectional perspective view showing a state in which a first male connector and a second male connector are connected via a conversion connector according to the second embodiment of the present invention. [Figure 9] FIG. 9 is a cross-sectional perspective view of a conversion connector according to a third embodiment of the present invention. [Figure 10A] FIG. 10A is a cross-sectional perspective view of a conversion connector according to a fourth embodiment of the present invention. [Figure 10B] FIG. 10B is a cross-sectional perspective view taken along another plane of the conversion connector according to the fourth embodiment of the present invention. [Figure 10C] FIG. 10C is a bottom view of the conversion connector according to the fourth embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0012] In one aspect of the conversion connector of the present invention, the inner circumferential surface of the first female member may be configured so that a liquid-tight seal is formed between the first female member and the first male member when the first male connector is connected to the first female connector. This aspect is advantageous in preventing liquid from leaking out to the outside from between the first female member and the first male member.
[0013] In one aspect of the conversion connector of the present invention, the inner peripheral surface of the second female member may be provided with a tapered surface whose inner diameter increases toward the tip of the second female member. This aspect allows the second male member to be tapered into the second female member. This is advantageous for forming a liquid-tight seal between the second female member and the second male member with a simple configuration.
[0014] The conversion connector may be integrally formed as a single component. According to this aspect, a small, strong, and structurally simple conversion connector can be easily and inexpensively provided.
[0015] The opening of the flow path on the first female member side may have a shape corresponding to the opening shape at the tip of the first male member. This reduces abrupt changes in flow resistance of the liquid between the opening of the first male member and the flow path of the conversion connector. This reduces stagnation that occurs during the flow of the liquid and improves liquid permeability.
[0016] When viewed from the second female member side along the axis of the conversion connector, the opening of the flow path on the second female member side may be provided with a protrusion that protrudes radially inward beyond the inner circumferential surface of the second female member. This aspect is advantageous in preventing accidental punctures, where a puncture needle that should not be inserted is accidentally inserted too deeply into the flow path from the second female member.
[0017] The present invention will be described in detail below with reference to preferred embodiments. However, it goes without saying that the present invention is not limited to the following embodiments. For the sake of convenience, the drawings referred to in the following description show simplified views of the main components constituting the embodiments of the present invention. Therefore, the present invention may include any components not shown in the following drawings. Furthermore, within the scope of the present invention, the components shown in the following drawings may be modified or omitted. The same reference numerals are used in different drawings to denote identical or corresponding components. The description of such components will be omitted in subsequent embodiments, and the description of the preceding embodiments should be taken into consideration as appropriate.
[0018] In the present invention, the "axis" of a member (e.g., a conversion connector, a female connector, a male connector, a female member, a male member) refers to the central axis of the member. The "axis" passes through the center of a circle included in the member and / or coincides with the central axis of a cylinder or a cone (taper) included in the member. In some of the drawings cited in the following description, the axis is omitted from illustration to simplify the drawing.
[0019] (Embodiment 1) FIG. 1A is a perspective view of a conversion connector 1 according to a first embodiment of the present invention. FIG. 1B is a plan view of the conversion connector 1. FIG. 1C is a cross-sectional perspective view of the conversion connector 1. FIG. 1D is a cross-sectional view of the conversion connector 1. The cross section of FIG. 1C is taken along a plane including line 1C-1C in FIG. 1B, and the cross section of FIG. 1D is taken along a plane including line 1D-1D in FIG. 1B. The cross sections of FIG. 1C and FIG. 1D are orthogonal to each other at the axis 1a of the conversion connector 1 (see FIG. 1D). For convenience in the following description, the direction orthogonal to the axis 1a is referred to as the "radial direction." In the radial direction, the side approaching the axis 1a is referred to as the "inner side," and the side away from the axis 1a is referred to as the "outer side." The direction of rotation around the axis 1a is referred to as the "circumferential direction."
[0020] The conversion connector 1 includes a first female connector 10 and a second female connector 20 that are arranged coaxially, and a base 30 between the first female connector 10 and the second female connector.
[0021] The first female connector 10 includes a first female member 11. The first female member 11 is a recess having a circular shape in a planar view that is concentric with the axis 1a. The inner peripheral surface 12 of the first female member 11 includes a tapered surface (female tapered surface) whose inner diameter increases slightly toward the tip 11a of the first female member 11. A flat surface 13 surrounds the first female member 11. The flat surface 13 extends along a plane perpendicular to the axis 1a. A circumferentially continuous annular groove 14 is provided in the flat surface 13. The planar view shape of the annular groove 14 (the shape viewed along the axis 1a) is a circle concentric with the axis 1a. The annular groove 14 surrounds the first female member 11. The tip 11a of the first female member 11 is aligned along the same plane as the flat surface 13. Note that the annular groove 14 may be omitted in the present invention. In this case, the flat surface 13 extends radially outward from the open end (tip 11a) of the first female member 11.
[0022] The first female connector 10 further includes a pair of engagement walls 15. The engagement walls 15 are disposed radially outward of the flat surface 13 and extend further toward the tip of the first female connector 10 (the opposite side to the second female connector 20) than the flat surface 13. The engagement walls 15 are along a cylindrical surface coaxial with the axis 1a. An engagement protrusion 16 protrudes radially inward from the tip of the engagement wall 15. The engagement protrusion 16 extends substantially circumferentially. As shown in FIG. 1D , when viewed from the axis 1a, the left end of the engagement protrusion 16 is open. The right end of the engagement protrusion 16 descends toward the flat surface 13 to form a stop end 18. The surface (lower surface) 16a of the engagement protrusion 16 facing the flat surface 13 includes three inclined surfaces with different inclinations. The pair of engagement walls 15 including the engagement protrusion 16 are symmetrical with respect to the axis 1a. The pair of engagement protrusions 16 constitute a pawl locking mechanism (see Patent Document 1).
[0023] The second female connector 20 includes a second female member 21. The second female member 21 has a hollow cylindrical shape coaxial with the shaft 1a. The inner peripheral surface 22 of the second female member 21 includes a tapered surface (female tapered surface) whose inner diameter increases toward the tip of the second female member 21. The outer peripheral surface of the second female member 21 is provided with a male screw 24. The male screw 24 constitutes a screw lock mechanism (see Patent Document 2).
[0024] A flow path 31 penetrates the base 30 along the axis 1a. The cross-sectional shape of the flow path 31 along a plane perpendicular to the axis 1a is circular. The flow path 31 connects the first female member 11 and the second female member 21. The inner diameter of the flow path 31 is smaller than both the inner diameter of the first female member 11 and the inner diameter of the second female member 21.
[0025] The outer surface of the base 30 includes a pair of gripping surfaces 33. Each gripping surface 33 is a substantially flat surface parallel to the axis 1a. The pair of gripping surfaces 33 are arranged parallel to each other with the axis 1a in between. The pair of gripping surfaces 33 make it easy for an operator to apply a rotational force around the axis 1a to the conversion connector 1.
[0026] The material of the conversion connector 1 is not limited, but is preferably a hard material, such as a resin material such as polycarbonate, polypropylene, polyacetal, polyamide, rigid polyvinyl chloride, polyethylene, styrene-ethylene, polyethylene terephthalate, polybutylene terephthalate, or butylene-styrene block copolymer. Considering its use in medical applications and durability, polyolefin resins such as polyethylene and polypropylene are preferred. The conversion connector 1 is preferably manufactured as a single unit by injection molding the resin material.
[0027] The method of using the conversion connector 1 will be explained.
[0028] 2 is an exploded perspective view illustrating how to use the conversion connector 1. The conversion connector 1 can be used to connect a first male connector 800 and a second male connector 900.
[0029] The first male connector 800 is attached to a port (not shown) of a container 890 that stores a liquid. The container 890 is a laminate pack (also called a pouch) made by pasting together a plurality of flexible sheets into a bag shape. The container 890 stores a liquid (e.g., an enteral nutritional supplement) to be administered to a patient for enteral nutrition.
[0030] Figure 3A is a perspective view of first male connector 800, and Figure 3B is a cross-sectional view of first male connector 800. First male connector 800 comprises a base 810 provided on cap portion 830, and a first male member 801 provided on base 810. Cap portion 830, base 810, and first male member 801 are arranged coaxially.
[0031] The cap portion 830 includes a hollow cylindrical portion 831. An internal thread 832 is provided on the inner peripheral surface of the cylindrical portion 831. A bottom plate 833 closes the opening on the tip side of the cylindrical portion 831. The bottom plate 833 is a flat plate that is perpendicular to the axis of the cap portion 830.
[0032] The base 810 protrudes from the bottom plate 833. The base 810 has a hollow cylindrical shape with a diameter smaller than that of the cylindrical portion 831. A top plate 813 closes an opening at the tip end of the base 810. The top plate 813 is a flat plate perpendicular to the axis of the base 810. A pair of engagement claws 816 protrude radially outward from the outer periphery of the tip end of the base 810. The engagement claws 816 extend in the circumferential direction (the direction of rotation around the axis of the base 810). The engagement claws 816 are spaced apart in the axial direction from the bottom plate 833. A surface 816a of the engagement claws 816 facing the bottom plate 833 is composed of a combination of three inclined surfaces with different inclinations. The surface of the engagement claws 816 opposite the bottom plate 833 forms a plane common to the top plate 813. The pair of engagement claws 816 are symmetrical with respect to the axis of the base 810. The pair of engaging claws 816 constitute a claw locking mechanism (see Patent Document 1).
[0033] A first male member 801 protrudes from a top plate 813 of a base 810. The first male member 801 has a hollow cylindrical shape with a smaller diameter than the base 810. A shielding plate 804 with an opening 805 formed therein is provided at the tip of the first male member 801. The opening 805 has a generally cross shape consisting of a circle 805a concentric with the first male member 801 and four notches (slits) 805b extending radially outward from the circle 805a. The shielding plate 804 partially covers the opening at the tip of the first male member 801. The shielding plate 804 with the opening 805 formed therein is provided to prevent a puncture needle with a sharp tip from being accidentally inserted into the first male member 801. The first male member 801 has an outer circumferential surface 802 that is generally cylindrical overall. More specifically, the outer peripheral surface 802 has a large diameter portion 803 with a maximum outer diameter located approximately in the middle in the axial direction of the first male member 801. The outer peripheral surface 802 has tapered surfaces on both the tip end side and base end side (base 810 side) of the first male member 801 relative to the large diameter portion 803, the outer diameter of which decreases with increasing distance from the large diameter portion 803.
[0034] The cap portion 830, the base 810, and the first male member 801 are in communication with each other. The female thread 832 of the cap portion 830 is screwed into a male thread (not shown) provided on the outer circumferential surface of the cylindrical port of the container 890. The liquid in the container 890 flows out through the opening 805 of the first male member 801.
[0035] There are no restrictions on the material of first male connector 800, and it can be selected from the resin materials of the above-mentioned conversion connector 1. First male connector 800 is preferably manufactured as a single unit by injection molding a resin material.
[0036] FIG. 4A is a perspective view of the second male connector 900, and FIG. 4B is a cross-sectional view of the second male connector 900. The second male connector 900 has a second male member 901 having a hollow cylindrical shape and an outer tube 903 surrounding the second male member 901. The outer peripheral surface 902 of the second male member 901 includes a tapered surface (a so-called male tapered surface) in which the outer diameter decreases toward the tip of the second male member 901. The second male member 901 is provided with a flow path 907 that penetrates the second male member 901 along its longitudinal direction. The outer tube 903 has a substantially cylindrical shape and is arranged coaxially with the second male member 901 and spaced apart from the second male member 901 in the radial direction. A female thread 904 is provided on the inner peripheral surface of the outer tube 903 facing the second male member 901. The female thread 904 constitutes a screw lock mechanism (see Patent Document 2).
[0037] The second male connector 900 further includes a connecting tube 921 that is coaxial with the second male member 901. The connecting tube 921 has a hollow cylindrical shape and is in communication with the male member 911. A pair of grip portions 923 is provided on the outer circumferential surface of the connecting tube 921. The pair of grip portions 923 protrude in opposite directions from each other along the radial direction from the connecting tube 921. The grip portions 923 make it easy for the operator to apply a rotational force to the second male connector 900 around its axis.
[0038] A flexible hollow tube 909 is inserted into the connecting tube 921 and fixed to the connecting tube 921 with an adhesive or the like. The flow path 907 of the second male member 901 is in communication with the tube 909. The tube 909 may be a nasogastric tube inserted through the patient's nasal cavity into the stomach or esophagus. Alternatively, the tube 909 may be a tube (extension tube) connected to a nasogastric tube or a fistula tube.
[0039] The second male connector 900 further includes a detachable cap 930 attached to the tip of the second male connector 900. The cap 930 has a generally circular disk shape with a diameter substantially the same as the outer diameter of the outer tube 903. The cap 930 can close the flow path 907 of the second male member 901 and the gap between the second male member 901 and the outer tube 903. A flexible band 935 extends from the outer peripheral edge of the cap 930. The band 935 connects the cap 930 to a ring 937 fixed to the second male connector 900.
[0040] The cap 930, the band 935, and the ring 937 can be integrally molded as one component. The material of this integrated component including the cap 930 can be a relatively hard resin material such as polypropylene or polyethylene, or a soft material having rubber elasticity (so-called elastomer) such as rubber (e.g., isoprene rubber, silicone rubber, butyl rubber) or a thermoplastic elastomer (e.g., styrene-based elastomer, olefin-based elastomer, polyurethane-based elastomer).
[0041] Except for the above-described integrated product including cap 930, second male connector 900 can be integrally molded as a single component using a hard material. The hard material preferably has a degree of mechanical strength (rigidity) that prevents it from being substantially deformed by an external force. Examples of hard materials that can be used include resin materials such as polypropylene, acrylonitrile-butadiene-styrene copolymer, polycarbonate, polyacetal, polystyrene, polyamide, polyethylene, and hard polyvinyl chloride.
[0042] As shown in Fig. 2, conversion connector 1 can be disposed between first male connector 800 and second male connector 900 and used to connect them. Fig. 5 is a perspective view showing the state in which first male connector 800 and second male connector 900 are connected via conversion connector 1. Fig. 6 is a cross-sectional view of the main parts of Fig. 5. In Fig. 6, container 890 is not shown to simplify the drawing. First female connector 10 of conversion connector 1 is connected to first male connector 800, and second female connector 20 of conversion connector 1 is connected to second male connector 900.
[0043] The connection between the conversion connector 1 and the first male connector 800 will be described. As shown in FIG. 2, the first female connector 10 and the first male connector 800 of the conversion connector 1 are coaxially opposed to each other. The direction connecting the pair of engagement protrusions 16 (see FIG. 1A) of the first female connector 10 is approximately perpendicular to the direction connecting the pair of engagement claws 816 (see FIG. 3A) of the first male connector 800. In this state, the conversion connector 1 is brought close to the first male connector 800. The base 810 of the first male connector 800 is inserted between the pair of engagement walls 15 of the first female connector 10. The conversion connector 1 and the first male connector 800 are rotated in opposite directions. The conversion connector 1 is rotated relative to the first male connector 800 until one end of the engagement claws 816 (see FIG. 3A) of the first male connector 800 abuts against the stop end 18 of the first female connector 10 (see FIGS. 1A, 1C, and 1D). In this way, the conversion connector 1 and the first male connector 800 are connected (see FIG. 5).
[0044] As shown in FIG. 6, the first male member 801 of the first male connector 800 is inserted into the first female member 11 of the first female connector 10. The large diameter portion 803 (see FIG. 3A) of the first male member 801 fits into the inner peripheral surface (female tapered surface) 12 (see FIG. 1A) of the first female member 11, forming a liquid-tight seal between them. The flat surface 13 of the first female connector 10 and the tip 11a (see FIG. 1A) of the first female member 11 abut against the top plate 813 (see FIG. 3A) of the seat 810 of the first male connector 800. The engagement protrusion 16 of the first female connector 10 axially engages with the engagement claw 816 of the first male connector 800. Three inclined surfaces (see FIG. 1D) on the surface 16a of the engagement protrusion 16 fit into three inclined surfaces (see FIG. 3A) on the surface 816a of the engagement claw 816. This is advantageous in maintaining the engagement state (locked state) between the engagement claw 816 and the engagement projection 16.
[0045] The connection between the conversion connector 1 and the second male connector 900 will be described. As shown in FIG. 2, the second female connector 20 of the conversion connector 1 and the second male connector 900 are coaxially opposed to each other. In this state, the conversion connector 1 is brought close to the second male connector 900. The second male member 901 (see FIG. 4A) of the second male connector 900 is inserted into the second female member 21 (see FIG. 1C) of the second female connector 20. The second female member 21 is inserted into the gap (see FIG. 4A) between the second male member 901 of the second male connector 900 and the outer tube 903. The conversion connector 1 and the second male connector 900 are rotated in opposite directions. The male thread 24 (see FIG. 1A) of the second female connector 20 is screwed into the female thread 904 (see FIG. 4A) of the second male connector 900. In this way, the conversion connector 1 and the second male connector 900 are connected (see FIG. 5).
[0046] As shown in Figure 6, the outer peripheral surface (male tapered surface) 902 (see Figure 4A) of the second male member 901 is fitted into the inner peripheral surface (female tapered surface) 22 (see Figure 1C) of the second female member 21. The male tapered surface 902 and the female tapered surface 22 have the same diameter and taper angle. Therefore, the male tapered surface 902 is fitted into the female tapered surface 22 at a taper, forming a liquid-tight seal between them.
[0047] Thus, the first male connector 800, the conversion connector 1, and the second male connector 900 are coaxially connected in this order (see FIGS. 5 and 6). The first male connector 800 (first male member 801) and the second male connector 900 (second male member 901) are communicated with each other via the flow path 31 of the conversion connector 1.
[0048] The conversion connector 1 can be separated from the first male connector 800 by performing the reverse operation of the above connection operation. That is, the conversion connector 1 is rotated in the opposite direction relative to the first male connector 800 to release the engagement of the engagement protrusion 16 with the engagement claw 816. Then, the conversion connector 1 and the first male connector 800 are pulled in opposite directions.
[0049] The conversion connector 1 can also be separated from the second male connector 900 by performing the reverse operation of the above connection operation. That is, the conversion connector 1 is rotated in the opposite direction relative to the second male connector 900 to release the male thread 24 from the female thread 904. Then, the conversion connector 1 and the second male connector 900 are pulled in opposite directions.
[0050] The first female connector 10 of the conversion connector 1 can be repeatedly connected to and disconnected from the first male connector 800. Furthermore, the second female connector 20 of the conversion connector 1 can be repeatedly connected to and disconnected from the second male connector 900.
[0051] As described above, the conversion connector 1 has a first female connector 10 at one end that can be repeatedly connected to and disconnected from the first male connector 800, and a second female connector 20 at the other end that can be repeatedly connected to and disconnected from the second male connector 900.
[0052] The first female connector 10 includes a first female member 11 into which a first male member 801 of the first male connector 800 is inserted. The first female connector 10 further includes an engaging protrusion 16 that can engage with an engaging claw 816 of the first male connector 800. The first female connector 10, which includes the first female member 11 and the engaging protrusion 16, is compatible with a female connector (not shown) equipped with a claw lock mechanism that can be connected to and disconnected from the first male connector 800. This allows the first female connector 10 and the first male connector 800 to be connected with the same connection strength as a connector equipped with a claw lock mechanism (Patent Document 1). This is advantageous in preventing the conversion connector 1 from being unintentionally disconnected from the first male connector 800.
[0053] The second female connector 20 includes a second female member 21 into which the second male member 901 of the second male connector 900 is inserted. The second female connector 20 further includes a male screw 24 that can be threaded into the female screw 904 of the second male connector 900. The second female connector 20, which includes the second female member 21 and the male screw 24, is compatible with a female connector (not shown) with a screw lock mechanism that can be connected to the second male connector 900. Therefore, the second female connector 20 and the second male connector 900 can be connected with the same connection strength as a connector with a screw lock mechanism (Patent Document 2). This is advantageous in preventing the conversion connector 1 from being unintentionally separated from the second male connector 900.
[0054] The first female member 11 and the second female member 21 are in communication with each other via a flow path 31. Therefore, the first male connector 800 and the second male connector 900 can be connected and in communication with each other via the conversion connector 1.
[0055] A liquid substance (e.g., an enteral nutritional supplement) to be administered to a patient in enteral nutrition may be provided in a state stored in, for example, a container 890 (FIG. 2). However, a first male connector 800 provided in the container 890 cannot be connected to a second male connector 900 provided at the upstream end of a tube 909. The first male connector 800 can be connected to the second male connector 900 via a conversion connector 1. The liquid substance in the container 890 can flow sequentially through the first male connector 800, conversion connector 1, second male connector 900, and tube 909.
[0056] Many liquids administered to patients in enteral nutrition have high viscosity. When administering these liquids to a patient, they must be pumped. For example, container 890 (see FIG. 5) is compressed to push the liquid out of container 890. Even in such a case, the connection between first male connector 800 and conversion connector 1 and the connection between conversion connector 1 and second male connector 900 are both reliably maintained. The liquid will not leak out into the outside world.
[0057] In this way, the conversion connector 1 of this embodiment 1 makes it possible to connect a first male connector 800 equipped with a claw locking mechanism and a second male connector 900 equipped with a screw locking mechanism while allowing each locking mechanism to function effectively.
[0058] There is no restriction as to whether the conversion connector 1 is connected to the first male connector 800 or the conversion connector 1 is connected to the second male connector 900 first. When the conversion connector 1 is connected to the first male connector 800 first, the conversion connector 1 functions as an adapter that converts the male connector 800 with a claw locking mechanism into the female connector 20 with a screw locking mechanism. When the conversion connector 1 is connected to the second male connector 900 first, the conversion connector 1 functions as an adapter that converts the male connector 900 with a screw locking mechanism into the female connector 10 with a claw locking mechanism. In this way, the conversion connector 1 makes it possible to connect two male connectors 800, 900 with different locking mechanisms that would otherwise be unable to be connected.
[0059] When the conversion connector 1 is connected to the first male connector 800, a liquid-tight seal is formed between the inner circumferential surface 12 of the first female member 11 (see FIG. 1A) and the outer circumferential surface 802 of the first male member 801 (particularly the large diameter portion 803, see FIG. 3A). The liquid-tight seal prevents liquid from leaking between the first female member 11 and the first male member 801. Because the inner circumferential surface 12 of the first female member 11 has a female tapered surface, a liquid-tight seal can be formed with a simple configuration. However, in the present invention, the inner circumferential surface 12 of the first female member 11 does not need to have a female tapered surface. For example, the inner circumferential surface 12 may be a cylindrical surface whose inner diameter is constant in the direction of the axis 1a. Even in this case, a liquid-tight seal can be formed between the inner circumferential surface 12 and the large diameter portion 803 of the outer circumferential surface 802. Alternatively, the outer peripheral surface 802 of the first male member 801 may have a male tapered surface that is tapered to fit with the female tapered surface 12 of the first female member 11 to form a liquid-tight seal.
[0060] A female tapered surface is provided on the inner peripheral surface 22 (see FIG. 1C) of the second female member 21 of the second female connector 20 of the conversion connector 1. Therefore, with a simple configuration, a liquid-tight seal can be formed between the inner peripheral surface 22 of the second female member 21 and the outer peripheral surface 902 of the second male member 901. The liquid-tight seal prevents liquid from leaking out to the outside world through the gap between the second female member 21 and the second male member 901.
[0061] In the first embodiment, the claw lock mechanism is configured such that when the first male connector 800 is rotated clockwise relative to the conversion connector 1 as viewed from the first male connector 800 side, the engaging claw 816 engages with the engaging protrusion 16. The screw lock mechanism is configured such that when the conversion connector 1 is rotated clockwise relative to the second male connector 900 as viewed from the conversion connector 1 side, the male thread 24 threadably engages with the female thread 904. That is, the rotation directions for locking and unlocking are the same for the claw lock mechanism and the screw lock mechanism. Therefore, for example, by holding the first male connector 800 and the second male connector 900 with different hands and rotating the first male connector 800 clockwise relative to the second male connector 900 as viewed from the first male connector 800 side, both the claw lock mechanism and the screw lock mechanism can be simultaneously switched to the locked state.
[0062] (Embodiment 2) FIG. 7A is a perspective view of a conversion connector 2 according to a second embodiment of the present invention. FIG. 7B is a plan view of the conversion connector 2. FIG. 7C is a cross-sectional perspective view of the conversion connector 2 taken along a plane including line 7C-7C in FIG. 7B. The conversion connector 2 of the second embodiment differs from the conversion connector 1 of the first embodiment in the cross-sectional shape of the flow path 231. That is, as shown in FIG. 7B, the cross-sectional shape of the flow path 231 has a substantially cross shape composed of a circle 232a concentric with the axis of the conversion connector 2 and four notches 232b extending radially outward from the circle 232a. The flow path 231 corresponds to the flow path 31 of the first embodiment provided with four notches 232b (four grooves 232b extending along the axis 1a).
[0063] The opening of the flow path 231 on the first female member 11 side has a shape (approximately cross-shaped) corresponding to the shape of the opening 805 of the first male member 801 of the first male connector 800 (approximately cross-shaped, see FIG. 3A). As shown in FIG. 8, when the conversion connector 2 is connected to the first male connector 800 (i.e., when the engagement claws 816 are engaged with the engagement protrusions 16), the four notches 232b of the flow path 231 are circumferentially aligned with the four notches 805b of the opening 805 (see FIG. 3A). Furthermore, compared to the first embodiment, the difference between the area of the opening 805 and the opening area of the flow path 231 on the first female member 11 side is smaller. This reduces abrupt changes in the flow resistance of the liquid between the opening 805 of the first male member 801 and the flow path 231. This reduces stagnation that occurs during the flow of the liquid and improves liquid permeability.
[0064] FIG. 7D shows a bottom view of the conversion connector 2 as viewed from the second female connector 20 side. The opening 236 of the flow path 231 on the second female member 21 side has a generally cross shape similar to the opening on the first female member 11 side (see FIG. 7B). More specifically, the opening 236 of the flow path 231 has a generally cross shape formed by four protrusions 237 protruding radially inward from an imaginary circle circumscribing the opening 236 (this circle is concentric with the axis of the conversion connector 2). When viewed from the second female member 21 side, the four protrusions 237 protrude radially inward beyond the inner circumferential surface 22 of the second female member 21. The generally cross-shaped opening 236 is advantageous in preventing a puncture needle that should not be inserted from being inserted too deeply into the flow path 231 from the second female member 21 (hereinafter referred to as "mispuncture"). For example, after connecting the conversion connector 2 to the first male connector 800 (see FIG. 2 ) and before connecting the second male connector 900 (see FIG. 2 ) to the second female connector 20 of the conversion connector 2, an operator may mistakenly attempt to connect a puncture needle to the second female member 21 of the second female connector 20. The puncture needle has a sharp tip whose outer diameter tapers toward the tip so that it can puncture rubber stoppers such as vials. When the puncture needle is inserted into the second female member 21, the tip of the puncture needle often hits the protrusions 237, preventing the puncture needle from being inserted into the flow path 231. Even if the tip of the puncture needle is inserted into a gap between the protrusions 237, the puncture needle is pinched between the protrusions 237, preventing the puncture needle from being inserted deeply into the flow path 231. The operator easily realizes that the puncture needle has been mistakenly inserted because it cannot be connected deeply and stably to the second female member 21. Therefore, it is possible to prevent the occurrence of a situation in which a puncture needle is connected to the second female member 21 and an incorrect flow path is formed for the liquid material flowing from the container 890.
[0065] Although the flow path 231 in the second embodiment has a substantially cross-shaped cross section throughout its entire length, the present invention is not limited to this. For example, the opening of the flow path 231 on the first female member 11 side may have a shape (substantially cross-shaped) corresponding to the shape of the opening 805 of the first male member 801, and the opening of the flow path 231 on the second female member 21 side may have a shape (circular) corresponding to the shape of the opening at the tip of the flow path 907 of the second male member 901, and the cross-sectional shape of the flow path 231 may smoothly change between these end openings. This is advantageous for improving the liquid permeability between the opening 805 of the first male member 801 and the flow path 907 of the second male member 901.
[0066] Except for the above, the second embodiment is the same as the first embodiment. The description of the first embodiment also applies to the second embodiment as appropriate.
[0067] (Embodiment 3) FIG. 9 is a cross-sectional perspective view of a conversion connector 3 according to a third embodiment of the present invention. The conversion connector 3 of this third embodiment differs from the conversion connectors 1 and 2 of the first and second embodiments in the shape of the inner circumferential surface that defines the flow path 331. That is, as shown in FIG. 9, the cross-sectional area of the flow path 331 smoothly changes between the first female member 11 and the second female member 21. More specifically, the inner circumferential surface of the flow path 331 is a conical surface (or a tapered surface) coaxial with the axis of the conversion connector 3, and its inner diameter decreases from the first female member 11 to the second female member 21. The inner circumferential surface 12 of the first female member 11 is connected to the inner circumferential surface of the flow path 331 without any steps in the radial direction. Similarly, the inner circumferential surface 22 of the second female member 21 is connected to the inner circumferential surface of the flow path 331 without any steps in the radial direction.
[0068] According to the third embodiment, the cross-sectional area of the flow path 331 changes smoothly between the first female member 11 and the second female member 21, reducing the accumulation of liquid between the first female member 11 and the second female member 21 and improving liquid permeability.
[0069] In the present invention, the expression "the cross-sectional area of the flow path 331 changes smoothly" between the first female member 11 and the second female member 21 means that there is no portion along a plane perpendicular to the axis of the conversion connector 3 between the inner circumferential surface 11 of the first female member 11 and the inner circumferential surface 21 of the second female member 21. In FIG. 9, the inner circumferential surface of the flow path 331 is a conical surface, but the shape of the inner circumferential surface of the flow path 331 whose cross-sectional area changes smoothly is not limited to this. For example, in a cross section along a plane including the axis of the conversion connector, the inner circumferential surface of the flow path 331 may be represented by a continuous curve that changes smoothly between the inner circumferential surface 11 and the inner circumferential surface 21.
[0070] Except for the above, the present embodiment 3 is the same as the embodiment 1. The description of the embodiment 1 also applies to the present embodiment 3 as appropriate.
[0071] (Embodiment 4) 10A and 10B are cross-sectional perspective views of a conversion connector 4 according to a fourth embodiment of the present invention. The cross sections of FIG. 10A and FIG. 10B both include an axis (not shown) of the conversion connector 4 and are perpendicular to each other at the axis. FIG. 10C is a bottom view of the conversion connector 4 as seen from the second female connector 20 side. The conversion connector 4 of the fourth embodiment differs from the conversion connector 1 of the first embodiment in the cross-sectional shape of the flow path 431. The opening 435 of the flow path 431 on the first female member 11 side is circular, as in the first embodiment. On the other hand, the opening 436 of the flow path 431 on the second female member 21 side has a slot shape (or an elongated hole shape) extending along the direction in which the pair of engagement walls 15 face each other, as shown in FIG. 10C. The opening diameter of the opening 436 in the major axis direction is larger than the opening diameter of the opening 435, and the opening diameter of the opening 436 in the minor axis direction is smaller than the opening diameter of the opening 435. As shown in FIGS. 10A and 10B, the cross-sectional shape of flow channel 431 changes smoothly between opening 435 and opening 436.
[0072] The opening 436 of the flow path 431 has a slot shape formed by two protrusions 437 protruding radially inward from an imaginary circle circumscribing the opening 436 (this circle is concentric with the axis of the conversion connector 4). When viewed from the second female member 21 side, the two protrusions 437 protrude radially inward beyond the inner circumferential surface 22 of the second female member 21. The slot-shaped opening 436, like the substantially cross-shaped opening 236 of the second embodiment, is advantageous in preventing a puncture needle that should not be inserted from being mistakenly inserted too deeply into the flow path 431 from the second female member 21 (mis-puncture).
[0073] Except for the above, the fourth embodiment is the same as the first and second embodiments. The explanations of the first and second embodiments also apply to the fourth embodiment as appropriate.
[0074] The above-described first to fourth embodiments are merely examples, and the present invention is not limited to the above-described first to fourth embodiments, and can be modified as appropriate.
[0075] Although the conversion connectors 1 to 4 of the above-described first to fourth embodiments are integrally formed as a single component, the conversion connector of the present invention may be constructed by combining multiple components manufactured separately. For example, the first female connector 10 and the second female connector 20 may be manufactured separately as separate components and connected by a flexible hollow tube. In this case, the tube forms a flow path that connects the first female member 11 and the second female member 21.
[0076] The shape of the opening of the flow channel on the second female member 21 side to prevent accidental puncture of the second female member 21 with a puncture needle is not limited to the generally cross shape of embodiment 2 (see FIG. 7D) or the slot shape of embodiment 4 (see FIG. 10C), and may be any shape, such as a generally polygonal shape (such as a generally square, generally rectangular, or generally triangular shape), a star shape, an ellipse, or a circle. Generally, when viewed from the second female member 21 side along the axis of the conversion connector, if the opening of the flow channel on the second female member 21 side has a protrusion that protrudes radially inward beyond the inner circumferential surface 22 of the second female member 21, accidental puncture with a puncture needle can be prevented. The shape, number, and arrangement of the protrusions are arbitrary. For example, in embodiment 2, the number of protrusions 237 may be three or five or more. It is preferable that the multiple protrusions are arranged rotationally symmetrically with respect to the axis of the conversion connector. Some or all of the multiple protrusions may be connected through the axis of the conversion connector. For example, in the second embodiment, the four protrusions 236 may extend to the axis of the conversion connector 2 and be connected to one another to form a generally cross-shaped protrusion as a whole.
[0077] The protrusion may be a circumferentially continuous annular protrusion. In this case, the opening of the flow path on the second female member 21 side may be circular or elliptical with a diameter smaller than the inner circumferential surface 22 of the second female member 21. Even in this case, the annular protrusion protruding radially inward from the inner circumferential surface 22 of the second female member 21 can prevent accidental puncture by the puncture needle. However, if a circumferentially continuous annular protrusion is provided in the flow path so that the opening of the flow path on the second female member 21 side is a single circle, the flow path area will be reduced and the flow resistance of the liquid flowing through the flow path will increase. Therefore, it is preferable that the protrusion be provided so that the opening of the flow path on the second female member 21 side is non-circular.
[0078] The protrusion for preventing accidental puncture by the puncture needle may be provided at the opening of the flow channel on the side of the second female member 21. The protrusion may extend over the entire length of the flow channel like the protrusion 237 in the second embodiment, or may be provided only at the opening of the flow channel on the side of the second female member 21.
[0079] The container to which first male connector 800 is attached is not limited to laminate pack 890, and may be, for example, a container made of a hard material that does not substantially deform. First male connector 800 may also be attached to a member other than a container, such as a syringe, a liquid delivery pump that delivers liquid, or a flexible tube. The configuration of cap portion 830 may be changed as appropriate depending on the member to which first male connector 800 is attached.
[0080] Tube 909 to which second male connector 900 is attached may be a nasogastric tube or a fistula tube, or an extension tube connected to these, or any other tube. Second male connector 900 may be attached to a member other than tube 909. In this case, the configurations of connecting tube 921 and grip portion 923 may be changed as appropriate.
[0081] The conversion connector of the present invention is not limited to a flow path in which a liquid is pumped, but can also be applied to a flow path in which a liquid flows by utilizing gravity, for example.
[0082] The conversion connector of the present invention can be used to form a flow path for a liquid to be administered to a patient in enteral nutrition, such as the nasal method using a nasal tube or the transfistula method using a fistula tube. Furthermore, the conversion connector of the present invention can be used to form a flow path in any field other than enteral nutrition. [Industrial Applicability]
[0083] The present invention can be used in a wide range of applications, including connecting a first male connector with a claw locking mechanism and a second male connector with a screw locking mechanism, which are normally incompatible. The present invention can be particularly used in the medical field, especially in enteral nutrition. [Explanation of symbols]
[0084] 1,2,3,4 conversion connector 10 First female connector 11 First female member 12 inner peripheral surface of first female member 16 Engagement protrusion 20 Second female connector 21 Second female member 22 inner peripheral surface of second female member 24 male thread 31,231,331,431 flow paths 236,436 Opening of the second female connector side of the flow path 237,437 protrusions 800 1st male connector 801 First male member 816 Engagement claw 900 2nd male connector 901 Second male member 904 female thread
Claims
1. A conversion connector having a first female connector connectable to a first male connector at one end and a second female connector connectable to a second male connector at the other end, the first female connector includes a first female member into which a first male member of the first male connector is inserted, and an engaging protrusion that engages with an engaging claw of the first male connector; the second female connector includes a second female member into which a second male member of the second male connector is inserted, and a male thread provided on an outer peripheral surface of the second female member so as to be threadedly engaged with the female thread of the second male connector; The first female member and the second female member are in communication with each other via a flow path, a shielding plate is provided at a tip of the first male member to partially cover the opening of the first male member so that a substantially cross-shaped opening is formed; A conversion connector characterized in that the opening of the flow path on the first female member side has an approximately cross shape consisting of a circle concentric with the axis of the conversion connector and four notches extending radially outward from the circle, so as to correspond to the approximately cross-shaped opening shape at the tip of the first male member formed by the shielding plate.
2. 2. The conversion connector according to claim 1, wherein the inner surface of the first female member is configured so that a liquid-tight seal is formed between the first female member and the first male member when the first male connector is connected to the first female connector.
3. 3. The conversion connector according to claim 1, wherein the second female member has an inner peripheral surface that is tapered so that the inner diameter increases toward the tip of the second female member.
4. 4. The conversion connector according to claim 1, wherein the entire conversion connector is integrally formed as a single component.
5. A conversion connector as described in any one of claims 1 to 4, wherein when viewed from the second female member side along the axis of the conversion connector, a protrusion is provided at the opening of the second female member side of the flow path that protrudes radially inward beyond the inner surface of the second female member.
Citation Information
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