This application claims the benefit of CN 201310230586.6, filed on Jun. 9, 2013, the disclosure of which is incorporated herein by reference in its entirety.
The subject disclosure generally relates to fastening tools and, more particularly, to an impact type fastening tool having a discontinuous impact function.
Currently, impact type fastening tools, such as impact screwdrivers, generally perform a striking operation through use of continuous impacting motions. However, in some operating conditions, when a strike needs to be applied one more time after a screw is positioned flush with a surface of a workpiece or when pretension needs to be increased after a bolt is tightened, upon using an ordinary impact type tool, a user needs to control output and cut-off of the impact by controlling a trigger by himself, whereupon manual control of impact time usually damages the surface of the workpiece or causes damage by applying excessive pretension to the bolt due to error of the control time, which imposes very high requirements for the user's operation and causes trouble during operation.
With respect to the above problem, some solutions are proposed, for example, a motor is automatically stopped upon detecting the times of impact reaching a preset value; or the motor is stopped by using a sensor to detect and judge whether impact occurs and depending on whether an ON state and operation duration of a main switch exceeds a predetermined duration after the impact of the first time. However, these methods require precise detection and judgment of impact times or the impact of the first time, so an additional sensor needs to be positioned nearby an impact swing block to detect the swing block, thereby making the structure more complicated and causing the cost of the impact type fastening tool to be too high.
In view of the above, the following describes an impact type fastening tool which exhibits a simple structure, is less costly to manufacture, and can effectively prevent damages to the surface of the workpiece or a fastener, and a control method thereof.
To this end, an impact type fastening tool is described which comprises a housing, a motor received in the housing, a main switch for controlling ON and OFF operations of the motor, an impact mechanism connected to the motor, and a control device. An operation procedure of the impact type fastening tool comprises a starting-up phase and a started or operational phase, wherein the started phase comprises a non-impact phase and an impact phase. The control device comprises a current detecting module and a main control module connected to the current detecting module, wherein the main control module is able to judge whether the impact mechanism performs an impact according to the signal detected by the current detecting module and control the motor to automatically stop in a preset time period after the impact mechanism performs the impact.
Furthermore, the impact type fastening tool may comprise a mode selection element, and the control device may further comprises a mode selection element state detecting module connected to a main control module, and the mode selection element has a first state and a second state. The mode selection element state detecting module is configured to detect a state of the mode selection element. When the mode selection element is in the first state, the impact type fastening tool is operated in a continuous impact mode in which the main control module is able to control the motor to stop when the main switch is released; and when the mode selection element is in the second state, the impact type fastening tool is operated in a discontinuous impact mode and the main control module is able to control the motor to automatically stop in the preset time period after the impact mechanism performs the impact.
Furthermore, the current detection module may comprise a starting-up detection module for detecting the starting-up state, and the main control module is able to judge whether the impact type fastening tool completes the starting-up operation according to the signal detected by the starting-up detection module.
Furthermore, the current detection module may further comprise an impact detection module for detecting an impact state after the impact type fastening tool completes the starting-up operation, and the main control module is able to judge whether the impact mechanism performs the impact according to the signal detected by the impact detection module.
Furthermore, the impact detection module is preferably able to detect the current signal of the motor, and the main control module is preferably able to judge whether the impact mechanism performs the impact according to the change of the current signal detected by the impact detection module.
Also described is a control method for an impact type fastening tool having a housing, a motor received in the housing, a main switch for controlling ON and OFF operations of the motor, an impact mechanism connected to the motor and a control device. The control device comprises a main control module, a starting-up detection module and an impact detection module respectively connected to the main control module. The impact detection module is able to detect the current signal of the motor. The control method comprises the following steps:
a starting-up detecting and judging step for judging whether the impact type fastening tool completes a starting-up operation according to the signal detected by the starting-up detection module;
an impact detecting and judging step for judging whether the impact mechanism performs an impact according to the current signal detected by the impact detection module after the starting-up operation is completed; and
a step for controlling the motor to stop the operation, in which the main control module controls the motor to automatically stop the operation in a preset time period after the impact occurs.
Furthermore, the starting-up detecting and judging step may be implemented in the following manner: a step for detecting a variation value of a travel of the main switch per unit time is executed; if the variation value is greater than a preset value L0, it is judged that the tool is in the starting-up phase and the step for detect the variation value of the travel of the main switch per unit time is executed again; and if the variation value is smaller than the preset value L0, a step for detecting a current flowing through the motor is executed: if the detected current is smaller than a preset value I0, it is judged that the starting-up phase is completed; and if the detected current is greater than the preset value I0, it is believed that the starting-up phase will be completed after a delay of the preset time period.
Furthermore, the preset value L0 is preferably a preset value of the travel variation of the main switch per unit time; after the amount of the travel of the main switch is sampled through AD conversion, the number of digits in a corresponding program is set, and the preset value of the travel variation of the main switch per unit time is a preset value of the number variation of the digits in the program per unit time. The preset value I0 is preferably a current preset value, and the preset value I0 is arranged between a maximum current value after the impact occurs and a current peak in the starting-up phase.
Furthermore, the impact detecting and judging step may comprise: a current detecting step for detecting a current variation value of the motor per unit time; an impact judging step for judging that the tool is in an impact phase when the current is greater than a preset value K0, and judging that the tool is in a non-impact phase when the current is smaller than the preset value K0, and continuing to detect the current variation value per unit time.
Furthermore, the preset value K0 is preferably a preset value of the current variation per unit time, and the preset value K0 is arranged between the current variation value per unit time in the non-impact phase and the current variation value per unit time in the impact phase.
Furthermore, the impact type fastening tool may further comprise a stage setting element for selecting the output stage of the tool; and before executing the current detecting step, a step for judging the preset value K0 may be executed to detect the stage set by the stage setting element and select a corresponding preset valve K0 according to the stage.
Furthermore, the impact type fastening tool may further comprise a mode selection element, and the control device may further comprise a mode selection element state detecting module; and before the starting-up detecting and judging step, a step for detecting the state of the mode selection element via the mode selection element state detecting module may be executed. When the mode selection element is in a first state, the impact type fastening tool may be controlled to operate in a continuous impact mode in which the motor is controlled to stop only when the main switch is released; and when the mode selection element is in a second state, the impact type fastening tool may be controlled to operate in a discontinuous impact mode and to begin executing the starting-up detecting and judging step.
The impact type fastening tool and control method according to the descriptions which follow perform fuzzy judgment for impacts by detecting the current to control automatic stop of the motor in the discontinuous impact mode, do not require precise detection of impact times or the impact of the first time, and do not increase an additional direct impact detection mechanism, and presents a simple structure having a lower cost of manufacture. Furthermore, the motor, before automatic stop, can provide a constant pretension for the fastener, thereby effectively avoiding damages to the surface of the workpiece or the fastener.
Specific, exemplary embodiments of an impact type fastening tool will now be described in more detail with reference to the figures.
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An exemplary control method for the impact type fastening tool comprises the following steps:
a starting-up detecting and judging step for judging whether the impact type fastening tool completes the starting-up operation according to the signal detected by the starting-up detection module;
an impact detecting and judging step for judging whether the impact mechanism performs an impact according to the current signal detected by the impact detection module after the starting-up operation is completed; and
a step for controlling the motor to stop, wherein the main control module controls the motor to automatically stop in a preset time period after the impact occurs.
It may be appreciated that before the starting-up detecting and judging step, there may be a step for detecting the state of the mode selection element through the mode selection element state detecting module. When the mode selection element is in the first state, the impact type fastening tool is controlled to operate in the continuous impact mode, and the motor is controlled to stop only when the main switch is released; and when the mode selection element is in the second state, the impact type fastening tool is controlled to operate in the discontinuous impact mode and begins to execute the starting-up detection and judging step.
By way of further example, the operation procedure in the discontinuous impact mode is preferably as follows: first, the procedure starts with a starting-up detection module 621 which judges whether the tool is in the starting-up phase or started phase according to the detected signal: if the tool is in the started phase (not in the starting-up phase), the procedure enters an impact detection module 622; if in the starting-up phase, the procedure will return to continue to perform starting-up detection; after the procedure enters the impact detection module 622, it is judged whether the tool is in the non-impact phase or the impact phase according to the detected signal: if in the impact phase, the main control module 63 controls the motor 20 to automatically stop after a preset time period; and if in the non-impact phase (not in the impact phase), the procedure returns to continue to perform impact detection.
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The described methodologies perform fuzzy judgment for impacts by detecting the current to control automatic stop of the motor in the discontinuous impact mode, which does not require precise detection of impact times or the impact of the first time, does not increase an additional direct impact detection mechanism, and presents a simple structure having a lower cost of manufacture. Furthermore, the motor, before automatic stop, can provide constant pretension for the fastener, thereby effectively avoiding damages to the surface of the workpiece or the fastener.
The specific embodiments described above are only intended to illustrate the ideas and principles of the present invention, not to restrict the content of the present invention. Those having ordinary skill in the art can appreciate that besides the above preferred embodiments, the present invention also includes many other alternative or modified embodiments, which still fall within the scope of the present invention as set forth in the claims presented below.
Number | Date | Country | Kind |
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2013 1 0230586 | Jun 2013 | CN | national |
Number | Name | Date | Kind |
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6262560 | Lionberg | Jul 2001 | B1 |
7521892 | Funabashi | Apr 2009 | B2 |
7825615 | Chen | Nov 2010 | B2 |
8292002 | Baumann | Oct 2012 | B2 |
Number | Date | Country | |
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20140365012 A1 | Dec 2014 | US |