The present disclosure relates to an electronic torque wrench, more particularly to an electronic torque wrench that is able to fix in position a rotatable wrench head.
Referring to
Although the wrench head 121 is capable of omniangle rotation to facilitate viewing of the display member 141, the unsteady wrench head 121 may cause forces applied to the wrench unit 12 to be consumed thereby. Therefore, when using the conventional torque wrench, a user need exert extra force to counteract the wobbling movement of the wrench head 121. Moreover, since the strain-measurement unit 13 is distal from the torque-outputting wrench head 121, measurement accuracy for torque may be low. On the other hand, force-bearing parts for transmission of forces in the conventional torque wrench are the positioning member 112 and the neck member 123. A relatively small contact surface between the positioning member 112 and the neck member 123 may cause stress concentration, which is not beneficial for transmission of forces. In addition, the positioning member 112 and the neck member 123 may easily be damaged due to stress concentration.
Therefore, an object of the disclosure is to provide an electronic torque wrench that is able to fix a wrench head at a predetermined angular position for efficient force delivery to produce accurate measurement of torque values, and that also alleviates the stress concentration problem present in the conventional torque wrench.
An electronic torque wrench according to the present disclosure includes a handle unit, a turning unit, a sensor unit, a processor unit and an operating unit.
The handle unit is formed with multiple pressing holes that are spaced apart annularly from one another around a longitudinal axis.
The turning unit includes a wrench head member, a first positioner, a second positioner and a sleeve. The wrench head member has a head portion, a strain-measurement portion that is connected to the head portion, and a shaft portion that extends from the strain-measurement portion along the longitudinal axis (L) oppositely of the head portion, and that is rotatably received in the sleeve to be in sliding contact therewith. The first and second positioners are connected to opposite ends of the shaft portion of the wrench head member and are exposed from the sleeve. The sleeve is fixed to the handle unit and is disposed between the shaft portion and the handle unit, and between the first and second positioners such that the shaft portion is prevented from moving longitudinally. The first positioner has an annular flange, a button hole, a press button and a resilient element. The annular flange projects radially from the shaft portion. The button hole is radially formed in the annular flange and is adjustable to register with a selected one of the pressing holes through a relative rotation of the shaft portion and the sleeve. The press button is slidably disposed in the button hole and is extendable into the selected one of the pressing holes. The resilient element is disposed in the button hole to bias the press button to move into the selected one of the pressing holes. The first positioner retains the wrench head at a predetermined angular position relative to the sleeve and the handle unit when the press button extends into the selected one of the pressing holes.
The sensor unit is disposed in the strain-measurement portion for measuring a deformation value of the wrench member.
The processor unit is electrically connected to the sensor unit for processing the deformation value into a torque value.
The operating unit includes a display element that is disposed on the handle unit and that is electrically connected to the processor unit for displaying the torque value.
Other features and advantages of the present disclosure will become apparent in the following detailed description of the embodiment with reference to the accompanying drawings, of which:
Referring to
The handle unit 2 has a handle tube 21, a tubular case 22 surrounding the handle tube 21 and formed with a window 221 and three pressing holes 23. The pressing holes 23 are spaced apart annularly from one another around a longitudinal axis (L) and are respectively defined as a clockwise rotation pressing hole 232, a counterclockwise rotation pressing hole 233 and an initial pressing hole 231 located between the clockwise and counterclockwise pressing holes 232, 233. The handle tube 21 is made of a metal, such as iron, with high strength and high bend resistance, and has an outside section that is exposed from the tubular case 22. The pressing holes 23 are formed in the outside section of the handle tube 21.
Referring to
The wrench head member 31 has a head portion 311 adapted for transferring a force exerted by a user to tighten or loosen a workpiece, a strain-measurement portion 312 connected to the head portion 311, and a shaft portion 313 extending from the stain-measurement portion 312 along the longitudinal axis (L) oppositely of the head portion 311. The shaft portion 313 is rotatably received in the sleeve 37 to be in sliding contact therewith, and is formed with a notch 314 along the longitudinal axis (L), and two insert slots 315 extending longitudinally from a free end of the shaft portion 313.
The first and second positioners 32, 33 are connected to opposite ends of the shaft portion 313 and are exposed from the sleeve 37. The handle tube 21 surrounds the sleeve 37, the strain-measurement portion 312 and the shaft portion 313.
The first positioner 32 has an annular flange 321, a button hole 322, a press button 323 and a resilient element 324. The annular flange 321 projects radially from the shaft portion 313 in proximity to the stain-measurement portion 312, and is formed with a recess 325 along the longitudinal axis (L). The button hole 322 is radially formed in the annular flange 321 and is adjustable to register with a selected one of the pressing holes 23 through a relative rotation of the shaft portion 313 and the sleeve 37. The press button 323 is slidably disposed in the button hole 322 and is extendable into the selected one of the pressing holes 23. The resilient element 324 is disposed in the button hole 322 to bias the press button 323 to move into the selected one of the pressing holes 23. In the exemplary embodiment, the resilient element 324 is a compression spring.
Referring to
The sleeve 37 is secured to the handle tube 21 of the handle unit 2 and disposed between the shaft portion 313 and the handle unit 3, and between the first and second positioners 32, 33 such that the shaft portion 313 is prevented from moving longitudinally. Therefore, the wrench head member 31 is prevented from being loosened from the sleeve 37 and the handle unit 2. The shaft portion 313 of the wrench head member 31 and the sleeve 37 has a sliding contact clearance therebetween. A clearance between the annular flange 321 of the first positioner 32 and the handle tube 21 and a clearance between the disc body 34 of the second positioner 33 and the handle tube 21 are respectively larger than the sliding contact clearance. The shaft portion 313 is limited to rotate within the sleeve 37 about the longitudinal axis (L).
The first positioner 32 is able to retain the wrench head member 31 at a predetermined angular position relative to the sleeve 37 and the handle unit 2 when the press button 323 extends into and engages a selected one of the pressing holes 23. By engaging the press button 323 in one of the pressing holes 23, the angular position of the head portion 311 may be changed among an initial position, a clockwise rotation position and a counterclockwise rotation position. Referring back to
Referring back to
Referring to
The operating unit 5 is disposed on the tubular case 22 and exposed from the window 221. The operating unit 5 includes a display element 51 that is electrically connected to the processor unit 6 for displaying the torque value, and an input operator 52 for the user to input a pre-set torque value thereinto.
The processor unit 6 includes a processor 61 that is electrically connected to the sensor unit 4 and the operating unit 5. The processor 61 processes the deformation value measured by the sensor unit 4 into the torque value and displays the torque value on the display element 51 of the operating unit 5. The pre-set torque value inputted through the input operator 52 of the operating unit 5 is monitored by the processor 61. When the torque value reaches the pre-set torque value, a warning signal is displayed on the display element 51. Measurement of the deformation value and calculation of the torque value are well-known in the art and therefore will not be further elaborated hereinafter for the sake of brevity.
Referring to
When in use, the user may first adjust the wrench head member 31 to a desired position, and engage the wrench head member 31 with the workpiece. When the user holds a lower portion of the handle unit 2 and exerts a force to rotate the workpiece, the torque value is displayed on the display element 51 to be viewed by the user. The user may input a pre-set torque value via the input element 52 as a caution from exerting a force that would result in a torque value exceeding the pre-set torque value.
To sum up, the electronic torque wrench according to the present disclosure permits the user to adjust an angular position of the wrench head member 31 according to the application conditions of the electronic torque wrench. In the pre sent disclosure, forces are transmitted through the shaft portion 313 of the wrench head member 31 and the sleeve 37, which have a large contact surface area to disperse stress. Therefore, forces may be applied evenly to the electronic torque wrench, reducing an incidence of damage thereto. The present disclosure utilizes the second positioner 33 to limit the rotation angle of the wrench head member 31 so that the wiring 42 of the sensor unit 4 will not knot or break when the wrench head member 31 rotates. Since the sensor element 41 is proximate to the head portion 311 of the wrench head member 31, the deformation value of the wrench head member 31 can be measured precisely, and accuracy of measurement for the torque value can be increased.
While the disclosure has been described in connection with what is considered the exemplary embodiment, it is understood that this disclosure is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.