The disclosure relates in general to a magnetic screwdriver device, and more particularly to a device which is suitable for miniaturization and arraying, and which can treat capping or de-capping without overlocking.
It is known that, while in working, various types of magnetic screwdriver devices, including electric magnetic screwdrivers, are able to attach components such as caps/lids or screws. Because of complex structuring and large sizes of these screwdriver devices, they are not suitable for processing a large number of tiny caps or lids simultaneously.
For example, for multiple micro sample tubes arranged into an array format with small intervals to be simultaneously capped or de-capped (or locked or unlocked), it is obvious that, due to substantial occupations, the conventional screwdriver devices cannot be applied to work synchronously. In addition, since most of the conventional screwdriver devices are not furnished with torque-limiting mechanisms, thus, as a cap for an airtight structure is over tightened, an excessive torque applied for uncapping would be highly possible to damage the airtight structure, and might not be able to achieve successfully the uncapping. On the other hand, if the conventional screwdriver device is furnished with a torque-limiting mechanism, then the price for such a complicate-structured screwdriver driver would be inevitably higher. Also, replacing a driver head is not an easy task for the conventional screwdriver device with the torque-limiting mechanism.
Therefore, there is a need for a magnetic screwdriver device, that can be safe from overlocking, miniaturized, suitable for an array arrangement, and integrated into a screwdriver assembly for handling capping and/or uncapping upon multiple tiny sample tubes synchronously.
The disclosure relates in general to a magnetic screwdriver device, and more particularly to a device which is suitable for miniaturization and arraying, and which can treat capping or de-capping without overlocking.
According to one embodiment of the disclosure, a magnetic screwdriver device includes a pad without magnetism, a driving shaft and a driven shaft. The driving shaft having magnetic attraction property is disposed on one side of the pad and in touch with the pad. The driven shaft having magnetic attraction property is disposed on the opposite side of the pad. Namely, the two shafts, magnetically attracted to each other, are disposed on two opposite sides of the pad. The driving shaft is used to transmit a torque to rotate the driven shaft. The driven shaft would be stopped when the torque exceeds a predetermined value.
The above and other aspects of the disclosure will become better understood with regard to the following detailed description of the preferred but non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
A number of embodiments are disclosed below with accompanying drawings for elaborating the disclosure. However, the embodiments are for exemplary and explanatory descriptions only, not for limiting the scope of protection of the disclosure.
Refer to
In an embodiment, the pad 10 without magnetism can be made of a metal, a plastic, a rubber, a ceramics or an organic compound such as Polydimethylsiloxane (PDMS).
The driving shaft 20 with a magnetic attraction property is disposed on one side (upper side in the figure) of the pad 10 and in touch with the pad 10. The driven shaft 30 is disposed on an opposite side (lower side in the figure) of the pad 10 away from the driving shaft 20 and also in touch with the pad 10.
As indicated in
At least one of the driving shaft 20 and the driven shaft 30 includes a magnet or a metal with a magnetic attraction property, such that the two shafts 20, 30 can be magnetically attracted to each other. In an embodiment, the driving shaft 20 includes a metal with magnetism, and the driven shaft 30 includes a magnet. In another embodiment, the driving shaft 20 includes a magnet, and the driven shaft 30 includes a metal with magnetism. In a further embodiment, both of the driving shaft 20 and the driven shaft 30 include magnets.
The two shafts 20 and 30, magnetically attracted to each other, are disposed on opposite sides of the pad 10. The driving shaft 20, actuated to rotate, is used to transmit a torque to rotate the driven shaft 30 synchronously. For both of the two shafts 20 and 30 are in touch with the pad 10, the torque would be generated, based on a friction force between the driving shaft 20 and the pad 10 and another friction force between the driven shaft 30 and the pad 10. When the torque exceeds a predetermined value to overcome the friction force between the driven shaft 30 and the pad 10, rotations of the driven shaft 30 would be stopped.
Different magnitudes of the torque can be generated by matching the pad 10, the driving shaft 20, and the driven shaft 30 with different combinations of materials and sizes. In one embodiment, the pad 10 is a circular plate made of Polydimethylsiloxane (PDMS) and having a 6 mm diameter and a 1 mm thickness, and materials to form the two shafts 20 and 30 include an alloy steel and a Neodymium iron boron magnet. Thus, the corresponding magnetic attraction force would be 7.63 Newton and the resulted torque would be within 0.2˜0.3 kgf-cm.
In addition, the embodiments of
In the embodiment of
In a further embodiment not shown here, the magnetic screwdriver device 1D shown in
Referring to
In the embodiment of
The magnetic screwdriver device 1 in accordance with the present disclosure is suitable for a mass capping or de-capping process, such as removing/closing closures or lids from multiple sample tubes or reagent containers by a rotational movement. The friction force resulted from the rotation between the driving shaft and the driven shaft can prevent from overlocking.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.
Number | Date | Country | Kind |
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108103318 | Jan 2019 | TW | national |
This application is a Continuation-In-Part application of co-pending U.S. application Ser. No. 16/118,607, filed on Aug. 31, 2018, and claims the priority to Taiwan Patent Application No. 108103318 filed in the Taiwan Patent Office on Jan. 29, 2019, which is herein incorporated by reference in its entirety.
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Number | Date | Country | |
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20200071148 A1 | Mar 2020 | US |
Number | Date | Country | |
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Parent | 16118607 | Aug 2018 | US |
Child | 16367913 | US |