This application is based upon and claims the benefit of priority of the prior Japanese Patent Application No. 2020-088607, filed on May 21, 2020, and the entire contents of which are incorporated herein by reference.
The present invention relates to a medical power tool used after sterilization treatment in medical practice such as surgical operations.
In skull reconstructive surgery, orthopedic surgery, and the like in brain surgery, techniques using medical power tools, such as drilling screw holes in a bone by an electric drill or fastening screws by an electric screwdriver are applied for fixing an implant or wire mesh to the bone for the purposes of reducing burdens on patients and doctors and shortening surgery time.
Surgical machinery and equipment used at medical institutions have to be used after sterilization treatment. Sterilization methods include high-pressure steam sterilization (autoclave), ethylene oxide gas sterilization, plasma sterilization, and so on. Characteristics of respective sterilization methods are shown in Table 1 below.
Most of motors and electronic components for driving the motors which are generally distributed do not withstand a high temperature of 135° C. In a case where an autoclave treatment is executed in medical equipment using components not withstanding high temperatures, it is necessary to temporarily remove the components not withstanding the high temperature before treatment. For example, in order to transmit torque of a motor of the electric screwdriver to a bit of the electric screwdriver, a rotating shaft of the motor has to be connected to the bit by using a coupling mechanism. When the coupling mechanism is a method of fixing the shaft by using screws or the like, removing the motor is not realistic, and the fact is that there exists a few electric screwdrivers which conform to the autoclave and can be used plural times.
In consideration of the current state, adoption of new sterilization equipment for gas sterilization or plasma sterilization as low-temperature treatment is selected or a disposable electric screwdriver is selected from the first under acceptance of waste disposal costs at medical institutes (refer to PTL 1: JP-A-2016-5559).
When using the method of the above high-pressure steam sterilization (autoclave), to dispose of the medical power tool after using once leads to inefficient use of the tool or a drive source, and also increases medical costs. When using various types of gas sterilization methods, medical institutes have to provide dedicated gas sterilization equipment by capital investment, which may hinder the medical power tool from being widely used.
In response to the above issue, one or more aspects of the present invention are directed to a medical power tool having excellent handleability and capable of reusing many components even after sterilization treatment is executed by using high-pressure steam sterilization (autoclave).
Disclosure relating to embodiments described below includes at least the following configuration. A medical power tool used after sterilization treatment in medical practice includes a motor, a first drive transmission part drive-transmitted from the motor, a second drive transmission part drive-transmitted from the first drive transmission part in a non-contact manner, a tool holding part holding a tool drive-transmitted from the second drive transmission part, a tool body having heat resistance, which is assembled so as to cover the first drive transmission part and the second drive transmission part, and the tool detachably mounted to the tool holding part and provided to protrude at a tip side in a longitudinal direction of the tool body.
According to the above, components not withstanding high temperatures such as the motor and the first drive transmission part can be easily detached before the autoclave treatment and can be reused without damaging components by thermal demagnetization and the like. Moreover, the tool, the tool holding part, the second drive transmission part, and the tool body which are used close to patients can be reused after the autoclave treatment; therefore, medical costs including component costs can be reduced. As the drive transmission is performed from the first drive transmission part to the second drive transmission part in the non-contact manner, the power tool can be easily disassembled before the autoclave treatment, and disposable components can be reduced as few as possible. As many medical institutions are provided with an autoclave sterilization device, the medical power tool according to the present invention can be widely used.
It is preferable that the first drive transmission part and the second drive transmission part are connected by magnet couplings in which annular magnets are concentrically arranged around a motor axis on inner and outer sides in a radial direction.
According to the above, the first drive transmission part and the second drive transmission part are drive-transmitted by using the magnet couplings; therefore, the first drive transmission part and the second drive transmission part can be separated and detached easily, and the power tool can be disassembled easily before the autoclave treatment.
It is preferable that the first drive transmission part includes a cylindrical first yoke member integrally assembled to a motor shaft and the drive-side magnets provided in an annular shape on an inner peripheral surface of the first yoke member, that the second drive transmission part includes a second yoke member integrally connected to the tool holding part and the driven-side magnets provided in an annular shape on an outer peripheral surface of the second yoke member, and that the drive-side magnets and the driven-side magnets are arranged to face each other in the radial direction and magnetically coupled.
When adopting the cylindrical magnet couplings, a transmission torque can be arbitrarily adjusted according to lengths of drive-side and driven side magnets to be coupled. Moreover, as benefits of magnet couplings in the concentric arrangement on inner and outer sides in the radial direction, the tool body can be formed like a slim pencil and the operability can be improved because the transmission torque is adjusted according to lengths of the magnets.
A drive unit including the motor, a power supply unit supplying the power to the motor, and a control substrate and a bearing holder supporting the tool holding part so as to rotate are assembled on both sides in a longitudinal direction of the tool body in a sealed state through sealing materials.
Accordingly, sealability of components housed inside the tool body can be improved.
According to the above, it is possible to provide a pencil-type medical power tool having excellent handleability and capable of reusing many components with a few disposable components even after sterilization treatment is executed by using high-pressure steam sterilization (autoclave).
Hereinafter, a medial power tool according to an embodiment of the present invention will be explained with reference to the attached drawings. First, a schematic configuration of an electric screwdriver as an example of a medical power tool used after sterilization treatment by autoclave in medical practice will be explained with reference to
In
On an outer peripheral surface of a body part of the tool body 2, operation parts 2a, 2b are provided. The operation part 2a is, for example, a switch for normal rotation and the operation part 2b is, for example, a switch for reverse rotation. These parts may be interchanged with each other. The operation parts 2a, 2b also serve as a substrate cover, and a later-described operation substrate and the like are provided inside the operation parts 2a, 2b.
As shown in
A fitting hole 5a to which the driver bit (tool) 6 is fitted is provided on a tip side of the bit holding part 5 as shown in
When the driver bit 6 is newly mounted, a rear end part of the driver bit 6 is inserted into the fitting hole 5a of the bit holding part 5 in a state of
As shown in
A first drive transmission part 12 is assembled to a motor shaft 11a of the motor 11. Specifically, a first yoke member 12a having a bottomed cylindrical shape is integrally assembled to the motor shaft 11a. First magnets 12b (drive-side magnets) provided in an annular shape are integrally assembled to an inner peripheral surface of the first yoke member 12a (magnetic material). A rear end side of the bit holding part 5 is extended from the bearing holder 3 to the tool body 2 side, which is assembled so as to be fitted to a second drive transmission part 13 by a screw. Specifically, a screw hole 13c is provided at a tip part of a second yoke member 13a, and a screw part 5b provided at a rear end part of the bit holding part 5 is screwed to the screw hole 13c to be assembled.
The second drive transmission part 13 is arranged to face the first drive transmission part 12, and drive transmission is performed in a non-contact manner. The second drive transmission part 13 includes the bar-shaped second yoke member 13a (magnetic material) which is screw-fitted with the screw part 5b of the bit holding part 5 and annular-shaped second magnets 13b (driven-side magnets) assembled to an outer periphery of the second yoke member 13a. The second magnets 13b and the first magnets 12b are concentrically arranged around a motor axis. In the first magnets 12b and the second magnets 13b, N-poles and S-poles are alternately magnetized in a circumferential direction. The second magnets 13b are arranged on an inner side in a radial direction and the first magnets 12b arranged on an outer side in the radial direction, and magnet couplings in which different magnetic poles are arranged to face each other and magnetically coupled are formed. Permanent magnets such as metal magnets (alnico magnet, rare earth magnets (neodymium magnet, samarium-cobalt magnet, and the like) and bonded magnets are used for the first magnets 12b and the second magnets 13b. The first magnets 12b and the second magnets 13b are arranged to face each other through a partition wall 2c provided inside the cylindrical hole of the tool body 2. Accordingly, the tool body 2 can be shaped like a pencil, which improves operability.
As shown in
According to the above, as shown in
Additionally, drive transmission is performed between the first drive transmission part 12 and the second drive transmission part 13 by using magnet couplings; therefore, the first drive transmission unit 12 can be separated from the second drive transmission unit 13 without contact and detached from the tool body 2 with the drive unit 10 only by removing the end cap 14 from the tool body 2, and the second drive transmission part 13 can be taken out with the tool holding part 5 only by removing the bearing holder 3 from the tool body 2. Accordingly, the electric screwdriver 1 can be easily disassembled before the autoclave treatment.
When cylindrical magnet couplings are adopted, a transmission torque can be arbitrarily adjusted according to lengths of couplings. As benefits of the couplings of the same shape, the tool body 2 can be formed like a slim pencil and the operability can be improved because the transmission torque is adjusted according to lengths.
The electric screwdriver 1 is cited above as an example of the power tool, and the tool to be mounted to the bit holding part 5 may be changed to be used from the driver bit 6 to other tools such as a drill bit.
Number | Date | Country | Kind |
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2020-088607 | May 2020 | JP | national |