The present invention relates to a structural improvement of a hand tool, especially to a torque control device of a screwdriver.
An electric screwdriver is a hand tool used for fastening and unfastening fasteners such as screws or bolts. Screws or bolts can be quickly fastened to or unfastened from a surface of a workpiece.
A conventional electric screwdriver has a torque adjusting mechanism because torque of the electric screwdriver needs to be adjusted properly according to conditions such as material and hardness of the workpiece surface and strength of the screw. Without properly adjusted torque, the surface of the workpiece or the structure of the screw may be damaged due to excessive torque, or the screw may not be fastened securely to the surface of the workpiece due to insufficient torque.
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When the torque of the electric screwdriver has reached the upper limit, the mechanical brake is triggered and a signal is sent back to the control board to stop the rotation of the motor, thereby stopping the whole operation process. However, the conventional electric screwdriver has the following shortcomings:
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However, to adjust the defined torque limit, the electric screwdriver 90 needs to be taken away from the assembly line to a specialized adjusting device for increasing or decreasing tension of the spring 94. The adjustment of the torque limit cannot be manually and timely adjusted, which is very inconvenient. Another reason that the torque limit cannot be adjusted manually is to prevent error caused by manual adjustment.
Second, in order to reduce frequency of adjusting the torque limit during working process, the user often has to prepare multiple electric screwdrivers 90 with different torque limit settings before working on the workpiece, which increases cost.
Third, the precision of torque limiting achieved by abutting forces between components such as the spring 94 and the steel balls deteriorates with time due to structural deformation or fatigue caused by continuous friction and abutting forces. As a result, the user cannot precisely adjust the electric screwdriver 90 to reach a desired torque limit.
Fourth, to conform to the concept of industry 4.0, tools for a next generation factory should be able to detect, record and adjust data of the tools anytime. In other words, sensors that are capable of detecting working conditions of the tools should be integrated into the tools. However, a conventional electric screwdriver 90 lacks the essential structure that is capable of converting the working conditions into data, and therefore is unable to record the data in each of the working processes.
As aforementioned, the conventional electric screwdriver needs to be improved.
To overcome the shortcomings, the present invention provides a torque control device for an electric screwdriver to mitigate or obviate the aforementioned problems.
The main objective of the present invention is to provide a torque control device for an electric screwdriver. A deformation sensing module capable of detecting an extent of torsional deformation is mounted inside the torque control device, through which electrical information corresponding to the torsional deformation is generated, and the torque of the electric screwdriver can be automatically adjusted by a computer.
The torque control device is adapted to connect a tool head, and has a driving case, a transmission module, a torsion sleeve, at least one strain gauge and a rotation bearing. Two opposite ends of the driving case are respectively a front end and a rear end. The front end of the driving case is adapted to connect the tool head. The transmission module is mounted in the driving case and is capable of driving the tool head to rotate relative to the driving case. The torsion sleeve is mounted in the driving case, and connects the driving case and the transmission module. The torsion sleeve is deformable by the driving of the transmission module. The at least one strain gauge is mounted on the torsion sleeve. Each one of the at least one strain gauge is capable of detecting and recording deformation of the torsion sleeve.
The advantage of the present invention is that, by mounting the strain gauge on the torsion sleeve and detecting the deformation of the torsion sleeve using the strain gauge, detecting and recording of the deformation are thereby carried out. Meanwhile, torque detected by the strain gauge is then sent to a centralized control computer. When the torque applied on the torsion sleeve reaches a previously defined upper limit, the motor generating the torque can be automatically stopped, which achieves the same efficacy as the conventional electric screwdriver with springs and steel balls does.
Meanwhile, the user is able to identify precise torque and other related working data each time the electric screwdriver operates, from which the user can perform customized adjustment for different working conditions and improve the fastening function. On the other hand, by transmitting the data, the torque of the electric screwdriver can be controlled by computer, which means the torque of the electric screwdriver can be adjusted by the computer before fastening each screw, thereby improving working efficiency and saving cost. Finally, because the deformation of the torsion sleeve is minute, the torsion sleeve does not have to sustain frequent and enormous abutting pressure like a conventional spring and steel balls do each time the electric screwdriver operates. As a result, durability of the present invention is excellent.
Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
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On the other hand, when the present invention is under an operating status, the strain gauge 40 is electrically connected to a signal sensing module 93, and the data recorded by the strain gauge 40 is transmitted through the signal sensing module 93 to an external computer. In a preferred embodiment, the signal sensing module 93 is located inside the torsion sleeve 30, but the location of the signal sensing module 93 is not limited thereto.
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Operating statuses and advantages of the present invention are as follows:
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To operate the electric screwdriver, the user activates the electric screwdriver, makes the motor rotate, and fastens a bolt or screw using the rotation of tool head 91. As the bolt is gradually fastened into the workpiece, torque gradually transfers from the tool head 91 to the torsion sleeve 30, thereby deforming the torsion sleeve. The deformation is then recorded by the strain gauge 40 and transmitted through the signal sensing module 93 to the external computer. When the value recorded by the strain gauge 40 reaches the value previously defined by the user, the computer stops the rotation of the motor 92, thus stopping the electric screwdriver and completing the whole operation.
The advantage of the present invention is as follows:
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Second, with feedback of the torque readings, torque of each electric screwdriver can be controlled by the user through the computer. In other words, the torque of each electric screwdriver can be adjusted each time the electric screwdriver operates according to properties of the workpiece, which improves quality. Meanwhile, the torque limit of each electric screwdriver can be adjusted quickly and directly by the computer, meaning the user operating the electric screwdriver no longer has to prepare multiple electric screwdrivers with different torque limits.
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To sum up, the present invention effectively improves accuracy, service life and working efficiency.
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and features of the invention, the disclosure is illustrative only. Changes may be made in the details, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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107142229 | Nov 2018 | TW | national |