The present invention relates to a medical needle device, and more particularly relates to a medical needle device with a winged shield for preventing needle-stick injuries, in which a needle can be stored safely after use.
Winged medical needle devices are used widely for procedures such as infusion, blood transfusion, extracorporeal blood circulation and the like. As an example thereof, a winged indwelling needle shown in
Meanwhile, contamination and infection due to needle-stick injuries from injection needles, insertion needles and the like have been a problem in medical centers. In particular, recently, since hepatitis B, hepatitis C, HIV (human immunodeficiency virus) and the like have become a widespread social issue, there is a demand for the means that actively prevent the occurrence of unexpected accidents such as needle-stick injuries and the like. For preventing needle-stick injuries, various kinds of injection needle devices are known to have a configuration where a cylindrical shield can slide with respect to an injection needle. That is, by sliding the cylindrical shield, the injection needle can either be exposed or stored in the shield, and when the injection needle and the insertion needle are disposed after use, each of them can be slid into the shield so as to be stored therein.
Configurations of a winged injection needle device to which the structure for preventing needle-stick injury is applied are described in, for example, JP H06(1994)-7861B, JP H05(1993)-300942A, U.S. Pat. No. 4,170,993 and the like. Such a winged injection needle device is provided with wings on an outer surface of the slidable cylindrical shield, and the wings can slide together with the shield outside the injection needle. After use of the injection needle, the shield can be slid so as to cover the tip of the injection needle for preventing needle-stick injuries.
While indwelling the winged indwelling needle, wings 32 are fastened as mentioned above, and at the same time, a tube 34 may be flexed and curved (bent). For example, in the case of a general winged indwelling needle, it is, in most cases, temporarily fastened onto the patient's skin by adhesive tapes, in the state that an excess part of the tube is wound at rearward of the wings.
On the other hand, in the case of the above-mentioned conventional medical needle device with the winged shield having a function of preventing the needle-stick injuries, the probability of the bend of the shield part is not taken into consideration. For the function of preventing the needle-stick injuries, it is suitable for the shield part to be rigid, and generally impossible to bend the shield part. Therefore, as mentioned above, a part that is bendable in an inserting state is only a tube part on a rear side of the winged shield, and inevitably is located at a rear end of the needle device. However, in the light of usability at the treatment, it is preferable that the winged shield is bendable in the vicinity of the wings.
It is an object of the present invention is to provide a medical needle device with a winged shield that is bendable in a position that is sufficiently close to a needle.
The medical needle device of the present invention comprises: a winged shield that has a substantially cylindrical shield tube and a pair of wings positioned at a front end side of the shield tube; a hub that is inserted into an inner bore of the shield tube so as to be movable in an axial direction; and a needle that is mounted to a front end of the hub, wherein an infusion tube can be attached to a rear end of the hub and a tip of the needle can be stored in the inner bore of the shield tube. The shield tube is bendable at least in a part in an axial direction when the needle protrudes from the front end of the shield tube and is latched to the shield tube.
The medical needle device of the present invention has a configuration where a hub holding a needle is mounted to an inner bore of a winged shield, and a part of a shield tube is bendable together with the hub when the needle protrudes from a front end of the shield tube. Thereby, in a inserting state, the winged shield is bendable in a position that is sufficiently close to the needle, and thus other needle devices easily can insert in proper positions.
In the medical needle device of the present invention, at least a part of the hub is made of a material having flexibility. Alternatively, the hub may have a configuration where a length of the hub is set so that, when the needle protrudes from the front end of the shield tube and is latched to the shield tube, the rear end of the hub may be positioned on a side closer to the front end of the shield tube than a rear end of the shield tube.
The shield tube may be made of a material having flexibility.
So as to allow the medical needle device to be bendable as mentioned above, it may have a configuration where the shield tube includes an extendable portion that is structured to be extendable and contractible, the needle can be moved in the axial direction of the shield tube by extending and contracting the extendable portion, and the shield tube and the hub are bendable at the extendable portion. The extendable portion preferably has a plasticity-processed accordion-like structure.
It is preferable that, when the shield tube and the hub in the inner bore of the shield tube are bent together, a minimum radius of curvature at a bent part can be 3 mm or smaller.
Embodiments of the present invention will be described below with reference to the drawings.
In the state shown by
The hub 2 includes a holding portion 2a formed at a front end portion thereof, and a stopper portion 2b formed at a rear end portion thereof. An outer diameter of the hub 2 is the same as, or slightly larger than inner diameters of the small diameter portion 11a and the inward annular protrusion 11b of the shield tube 4a. The outer diameter of the hub 2 may be slightly smaller than them according to an embodiment. An outer diameter of the stopper portion 2b of the hub 2 is larger than the inner diameter of the small diameter portion 11a of the shield tube 4a. Therefore, by contact of a step portion formed by the stopper portion 2b with the small diameter portion 11a of the shield tube 4a, movement of the hub 2 toward the front end of the shield tube 4a is limited. The diameter of the holding portion 2a of the hub 2 is larger than the inner diameter of the inward annular protrusion 11b of the shield tube 4a. The needle 1 can be covered by a needle cap 12 mounted to the front end of the hub 2.
When mounting a winged shield 4 to the hub 2, the hub 2 is inserted from the front end of the shield tube 4a and is moved toward a base end side. In this case, the stopper portion 2b first comes in contact with the rear end latch portion 11. Since a taper is provided to a rear end side of the stopper portion 2b as shown in the figure, the hub 2 easily can pass through the rear end latch portion 11 due to the flexibility of the resin. As a result, the medical needle device is in the state shown by
Usually, a medical needle device is used in the state shown by
When disposing of the medical needle device after use, in order to prevent needle-stick injuries, a tip of the needle 1 is stored in the shield tube 4a as shown in
The medical needle device with a winged shield according to Embodiment 2 is shown in
Reference numeral 26 denotes a cylindrical front-side shield tube, and the needle 21 can move in an inner bore of the front-side shield tube 26. Wings 27 are mounted to the front-side shield tube 26 at a cylindrical portion at the pivot of the wings 27, and are rotatable around the front-side shield tube 26. Movement of the wings 27 toward the front end of the needle 21 is inhibited by an outer-surface step portion 26a provided on an outer surface of the front-side shield tube 26. Moreover, movement of the wings 27 toward a base end is prevented by a wing stopper 28 fixed on a rear side of the front-side shield tube 26.
Reference numeral 29 denotes an extendable portion that is made of polyethylene and has an accordion-like structure, one end of the extendable portion 29 being fixed so as to fit on an outer surface of the wing stopper 28, and the other end of the extendable portion 29 being fixed so as to fit on an outer surface of a large diameter portion 24a of the splicer 24. A shield tube is composed of the extendable portion 29 and the front-side shield tube 26. Due to extension and contraction of the extendable portion 29, the front-side shield tube 26 can move outside the needle 21. Thereby, the needle 21 either can be covered by and stored in the front-side shield 26, or can be exposed. In addition, the accordion-like structure is plasticity-processed so that it can maintain its state without external force (in a free state) after being extended or contracted by the external force. Therefore, the extendable portion 29 can maintain its extended or contracted state with a required length within an extendable and contractible range. As a result, an exposure length of the needle 21 that is exposed from the front-side shield tube 26 can be adjusted freely within a certain range.
The front-side shield tube 26 has an inner diameter that is small at a front end thereof and is slightly larger on a side closer to a rear end thereof than the front end, and includes an inner-surface step portion 26b.
For the extendable portion 29, a material that can extend and contract plastically may be used, and examples thereof include materials that are used for straws or the like, which can maintain either an extended state or contracted state. Specifically, polyolefin such as polyethylene and polypropylene, polyvinyl chloride resin, styrenic thermoplastic elastomer and the like are preferable. The material of the protector is not particularly limited as long as it is used for needle bases or wings of conventional medical needle devices. In addition, the front-side shield tube 26 and the wings 27 may be made of different materials, which may be preferable in terms of usability or functionality. This is because, the wings 27 generally are required to be flexible so as to conform with the patient's skin, on the other hand, the front-side shield tube 26 is required to be rigid so as to hold and store the needle 21.
In the present embodiment, it is preferable that, when the extendable portion 29 and the hub 22 in the inner bore of the extendable portion 29 are bent together, a minimum radius of curvature at the bent part can be 3 mm or smaller.
The configuration of the present embodiment is also applicable in the case where the connecting tubule 23 shown in
The medical needle device of the present invention, which has a winged shield, is bendable in a curve in a position that is sufficiently close to a needle, thus easily can be in a state for adapting to an embodiment of use.
Number | Date | Country | Kind |
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2003-101153 | Apr 2003 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP04/03836 | 3/22/2004 | WO | 1/5/2006 |