This application claims priority of Taiwanese Patent Application No. 108115062, filed on Apr. 30, 2019.
The disclosure relates to a pneumatic tool, more particularly to a pneumatic nail gun.
Referring to
When the lifting wheel 13 is driven to rotate, the driver 16 is linearly moved in a direction towards a rear side (towards the top of
If some type of jam occurs and causes the driver 16 to be unable to complete its travel to the fullest extent during a driving stroke, the conventional pneumatic nail gun 1 should be powered off and disassembled to resolve the jam. However, even if the jam has been resolved, the driver 16 may still be at an abnormal position. The conventional pneumatic nail gun 1 may be damaged if the user tries to move the driver 16 to the ready-to-strike position in an inappropriate manner.
Therefore, the object of the disclosure is to provide an operation method for operating a pneumatic nail gun that can alleviate at least one of the drawbacks of the prior art.
According to the disclosure, a pneumatic nail gun includes a striking device, a lifting wheel, a motor that is configured to drive the lifting wheel to rotate to lift the striking device, and a control device that includes a microcontroller and a wheel sensor electrically connected to the microcontroller. The wheel sensor is configured to generate and output a sensing signal to the microcontroller when detecting that the lifting wheel is at a predetermined position where the lifting wheel has lifted the striking device to arrive at a ready-to-strike position.
The operation method is implemented by the microcontroller and includes steps of:
Another object of the disclosure is to provide a pneumatic nail gun that can alleviate at least one of the drawbacks of the prior art.
According to the disclosure, the pneumatic nail gun includes a main body, a cylinder device that is disposed in the main body, a striking device that is movably disposed in the cylinder device, a lifting wheel that is configured to move said striking device, a motor that is configured to drive the lifting wheel to rotate to lift the striking device, and a control device.
The control device includes a microcontroller and a wheel sensor electrically connected to the microcontroller. The wheel sensor is configured to generate and output a sensing signal to the microcontroller when detecting that the lifting wheel is at a predetermined angular position where the lifting wheel has lifted the striking device to arrive at a ready-to-strike position. The microcontroller is configured to determine whether the sensing signal is received from the wheel sensor when the pneumatic nail gun is powered on, to control the motor to drive the lifting wheel to rotate to lift the striking device when it is determined that the sensing signal is not received, and to control the motor to stop the lifting wheel from rotating upon receiving the sensing signal from the wheel sensor.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiments with reference to the accompanying drawings, of which:
Referring to
The main body 3 includes a muzzle 31 adapted to be loaded with a nail (not shown).
The safety device 4 includes a safety contact element 41 adapted to be pressed against a solid surface, and a safety contact sensor 42 configured to be actuated by the safety contact element 41 to generate a safety contact signal (S1) when the safety contact element 41 is pressed against the solid surface. For example, the safety contact sensor 42 is an infrared sensor, a photodetector, a touch switch, a touch button, or the like.
The trigger device 5 is mounted on the main body 3, and includes a trigger 51 adapted to be pulled by a person's finger, and a trigger actuator switch 52 configured to be triggered by the trigger 51 to generate a trigger signal (S2) when the trigger 51 is pulled. For example, the trigger actuator switch 52 is a touch switch.
The cylinder device 6 is disposed in the main body 3 and includes a cylinder 61 connected to the muzzle 31, and a tank 62 that defines a storage chamber in fluidic communication with an inner space of the cylinder 61.
The striking device 7 is movably disposed in the cylinder device 6 and includes a piston 71, a lifting rod 72 and a nail-striker 73. The piston 71 is linearly movable along an axis (X) between an upper position that is distal from the muzzle 31 (as shown in
The lifting device 8 includes a lifting wheel 81 that is disposed rotatably in the main body 3 and is adjacent to the muzzle 31, and a motor 82 that is configured to drive the lifting wheel 81 to rotate to lift the striking device 7. In this embodiment, the lifting wheel 81 is driven to only rotate unidirectionally, i.e., in a counterclockwise direction from the perspective of
The control device 9 is disposed in the main body 3, and includes a battery 92 for supplying power to the pneumatic nail gun, a wheel sensor 93 for sensing the reference component 813, a warning element 94, a reset button 95, and a microcontroller 96 that is electrically connected to the battery 92, the wheel sensor 93, the motor 82, the warning element 94, the reset button 95, the safety contact sensor 42 and the trigger actuator switch 52.
In this embodiment, the wheel sensor 93 is a magnetic inductor or a magnetic field sensor, and is disposed near the lifting wheel 81 to detect a magnetic field generated by the reference component 813.
When the lifting wheel 81 is rotated to arrive at a predetermined angular position, where the striking device 7 is lifted by the lifting wheel 81 to arrive at a ready-to-strike position, as shown in
The warning element 94 is controlled by the microcontroller 96 to generate and output a warning signal. In this embodiment, the warning element 94 is a lamp, and the warning signal is in a form of light.
In another embodiment, the warning element 94 is a buzzer, and the warning signal is in a form of sound.
The reset button 95 is mounted on the main body 3, and is configured to be operated by a user to generate and output a reset signal (S4) to the microcontroller 96.
It will be understood that the various directional nomenclature used below is with respect to an orientation of the pneumatic nail gun illustrated in
As shown in
When the safety contact element 41 is pressed against a solid surface and the trigger 51 is pulled, the safety contact sensor 42 outputs the safety contact signal (S1) to the microcontroller 96 and the trigger actuator switch 52 outputs the trigger signal (S2) to the microcontroller 96. Upon receiving the safety contact signal (S1) and the trigger signal (S2), the microcontroller 96 controls the motor 82 to drive the lifting wheel 81 to start to rotate again in the counterclockwise direction. Then, the smooth circumferential portion 812 of the lifting wheel 81 is turned to face the engaging teeth 721 such that the engaging teeth 721 disengage from the lifting wheel 81. At this time, the gas pressure inside the cylinder device 6 drives the piston 71 together with the nail-striker 73 to quickly move downward. During this movement, the nail-striker 73 moves along the axis (X) towards the muzzle 31 to strike the nail.
After striking the nail, the striking device 7 is moved to the struck position, and the toothed circumferential portion 811 then engages one of the engaging teeth 721 that is nearest to the piston 71 again, as shown in
In an instance that some type of jam occurs so the striking device 7 cannot complete its travel to the fullest extent during a driving stroke, the pneumatic nail gun needs to be powered off, e.g., dismounting the battery 92, for resolving the jam. However, even if the jam has been resolved, the striking device 7 may still be at an abnormal position as shown in
Referring to
In step 101, the pneumatic nail gun is powered on. Specifically, when a jam occurs, the battery 92 may be dismounted so that the pneumatic nail gun is powered off, and after resolving the jam, the battery 92 may be installed again so that the pneumatic nail gun is powered on.
In step 102, the microcontroller 96 determines whether the sensing signal (S3) is received from the wheel sensor 93. When the determination made in this step is affirmative, it means that the striking device 7 is at the ready-to-strike position (normal), and the process goes to step 109. When it is determined that the sensing signal (S3) is not received, it means that the striking device 7 is at an abnormal position (e.g., a position shown in
In step 103, the microcontroller 96 controls the warning element 94 to output the warning signal.
A user would be aware that the striking device 7 is now at an abnormal position when he/she notices the warning signal. In this embodiment, if the user wants the striking device 7 to be moved back to the ready-to-strike position from the abnormal position, he/she should press the reset button 95 for repeatedly implementing the following steps of the operation method.
In step 104, the microcontroller 96 controls the warning element 94 to stop outputting the warning signal upon receiving the reset signal (S4) from the reset button 95. At this moment, the user should implement strike actions, i.e., operating the safety contact element 41 pressed against the solid surface and then pulling the trigger 51.
In step 105, the microcontroller 96 determines whether the safety contact signal (S1) is received from the safety contact sensor 42 in a first predetermined period of time, e.g., 5 seconds. The process goes to step 106 when the determination made in this step is affirmative, and the process goes back to step 102 when otherwise.
In step 106, the microcontroller 96 determines whether the trigger signal (S2) is received from the trigger actuator switch 52 in a second predetermined period of time, e.g., 5 seconds. The process goes to step 107 when the determination made in this step is affirmative, and the process goes back to step 102 when otherwise.
In step 107, when both the safety contact signal (S) and the trigger signal (S2) are received, the microcontroller 96 controls the motor 82 to drive the lifting wheel 81 to rotate to lift the striking device 7.
In step 108, the microcontroller 96 keeps determining whether the sensing signal (S3) is received from the wheel sensor 93 (i.e., the microcontroller 96 repeats the determination of whether the sensing signal (S3) is received until the sensing signal (S3) is received). Only when the determination made in this step is affirmative, the process goes to step 109. At this instant, the lifting wheel 81 arrives at the predetermined angular position, and the striking device 7 is at the ready-to-strike position as shown in
In step 109, the microcontroller 96 controls the motor 82 to stop the lifting wheel 81 from rotating.
In this way, the striking device 7 is moved back to the ready-to-strike position under proper operations of the user, and is ready to strike a nail.
In another embodiment, step 104 may be omitted. That is to say, if the user wants the striking device 7 to be moved back to the ready-to-strike position, he/she only has to implement the strike actions, without pressing the reset button 95. In such embodiment, in step 109, the microcontroller 96 further controls the warning element 94 to stop outputting the warning signal.
Referring to
In step 111, the pneumatic nail gun is powered on.
In step 112, the microcontroller 96 determines whether the sensing signal (S3) is received from the wheel sensor 93. When the determination made in this step is affirmative, the process goes to step 117. When it is determined that the sensing signal (S3) is not received, the process goes to step 113.
In step 113, the microcontroller 96 controls the warning element 94 to output the warning signal.
In this embodiment, if the user wants the striking device 7 to be moved back to the ready-to-strike position from the abnormal position, he/she should press the reset button 95.
In step 114, the microcontroller 96 controls the motor 82 to drive the lifting wheel 81 to rotate to lift the striking device 7 upon receiving the reset signal (S4) from the reset button 95.
In step 115, the microcontroller 96 keeps determining whether the sensing signal (S3) is received from the wheel sensor 93. Only when the determination made in this step is affirmative does the process go to step 116. At that instant, the lifting wheel 81 arrives at the predetermined angular position, and the striking device 7 is at the ready-to-strike position as shown in
In step 116, the microcontroller 96 controls the warning element 94 to stop outputting the warning signal.
In step 117, the microcontroller 96 controls the motor 82 to stop the lifting wheel 81 from rotating.
In view of the above, the pneumatic nail gun can check the position of the striking device 7 automatically and output a warning signal to notify the user when the striking device 7 is at an abnormal position. Consequently, the user can immediately perform proper operations to resolve the problem in an appropriate manner. Further, the lifting wheel 81 can be driven to rotate to lift the striking device 7 under the control of the microcontroller 96 via correct operations of the user, so damage to the pneumatic nail gun due to improper operation can be avoid.
In the description above, for the purposes of explanation, numerous specific details have been set forth in order to provide a thorough understanding of the embodiment. It will be apparent, however, to one skilled in the art, that one or more other embodiments may be practiced without some of these specific details. It should also be appreciated that reference throughout this specification to “one embodiment,” “an embodiment,” an embodiment with an indication of an ordinal number and so forth means that a particular feature, structure, or characteristic may be included in the practice of the disclosure. It should be further appreciated that in the description, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects, and that one or more features or specific details from one embodiment may be practiced together with one or more features or specific details from another embodiment, where appropriate, in the practice of the disclosure.
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.
Number | Date | Country | Kind |
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108115062 | Apr 2019 | TW | national |