Driving tool for driving fastening means into a workpiece

Information

  • Patent Grant
  • 10688641
  • Patent Number
    10,688,641
  • Date Filed
    Wednesday, April 23, 2014
    10 years ago
  • Date Issued
    Tuesday, June 23, 2020
    4 years ago
Abstract
This relates to a driving tool for driving fastening means, nails/staples, into a workpiece, a trigger lever, which can be actuated manually, and a workpiece contact element, which can be actuated by placing the tool onto the workpiece, the tool operates in a single shot mode, in which each individual sequence of an actuation of the workpiece contact element with subsequent actuation of the trigger lever triggers a driving-in cycle, the tool operates in a bump firing mode, in which, with the trigger lever continuously actuated, each individual actuation of the workpiece contact element triggers a driving-in cycle, a resetting assembly providing, by means of which the tool is resettable from the bump firing mode into single shot mode in an automatic, time-controlled resetting operation. It is proposed that a signaling assembly, which emits a feedback signal to the user before, after or during each automatic resetting operation, is provided.
Description
RELATED APPLICATIONS

The present application is a National Phase of International Application Number PCT/US2014/035108 filed Apr. 23, 2014 and claims priority to German Application Number 10 2013 106 658.5 filed Jun. 25, 2013.


BACKGROUND

The present invention relates to a driving tool for driving fastening means into a workpiece and to a method for operating such a driving tool.


The driving tool in question is used primarily as a handheld tool, for example for fastening particle boards on supporting structures. The term “fastening means” should be understood here in a broad sense and comprises not only nails and staples but also screws, pins or the like. The main focus of attention here is on the driving in of nails, which should not be understood as being restrictive.


The fastening means usually take the form of a magazine belt. Depending on the design, the magazine belt may for example have a carrier belt of plastic or metal, which carries the individual fastening means. Another variant is that of providing a series of parallel running fastening wires, which are tacked on to the individual fastening means.


The driving tool in question may be designed as a compressed-air-operated driving tool, as a combustion-powered driving tool or as an electrically operated driving tool or the like.


The known driving tool (U.S. Pat. No. 6,604,664 B2), on which the invention is based, is designed as a compressed-air-operated driving tool. It is provided with a pneumatic actuator unit, which serves for driving in the fastening means in individual driving-in cycles.


For triggering the driving-in cycles of the pneumatic actuator unit, a triggering assembly is provided, having a trigger lever that can be actuated manually and a workpiece contact element that can be actuated by placing the driving tool onto the workpiece.


What is advantageous about the known driving tool is the fact that it can be operated in two different operating modes. In the single shot mode, each individual sequence of an actuation of the workpiece contact element (from the unactuated state of the workpiece contact element) with subsequent actuation of the trigger lever (from the unactuated state of the trigger lever) triggers a driving-in cycle. In the bump firing mode, with the trigger lever continuously actuated, each individual actuation of the workpiece contact element (in each case from the unactuated state) triggers a driving-in cycle.


In the case of the known driving tool, a resetting from the bump firing mode into the single shot mode is provided in an automatic, time-controlled resetting operation. For this, the driving tool has a resetting assembly with a control volume. The resetting assembly can be activated in the bump firing mode, by air at a working pressure being admitted into the control volume. The control volume is provided with an air-venting opening, which allows slow venting of the air. If the pressure goes below a limit value, this has the effect after a predetermined delay time of transferring the driving tool into the single shot mode. A separate valve, the valve piston of which is coupled to the workpiece contact element, is provided for the activation of the resetting assembly. An actuation of the workpiece contact element consequently leads to an activation of the resetting assembly. This is intended to achieve the effect that, when the driving tool is not used over a certain delay time, there is a correspondingly automatic, time-controlled resetting of the driving tool from the bump firing mode into the single shot mode in a resetting operation.


SUMMARY

The invention addresses the problem of designing and developing the known driving tool in such a way that user convenience, with regard to the automatic resetting operation, is further increased.


The above problem is solved in the case of a driving tool according to some embodiments.


Essential to this is the fundamental consideration that informing the user about a resetting operation that is pending, is in progress or has taken place, which of course takes place in a time-controlled manner and to that extent automatically, leads to an increase in user convenience. For example, this makes it possible to avoid the situation in which the user places the driving tool onto a tool, with the trigger lever actuated, after the automatic resetting operation has already taken place. To be precise, this would have the effect, surprisingly for the user, that the placing of the driving tool, and the associated actuation of the workpiece contact element, would not be accompanied by a fastening means being driven in, since the driving device is already in the single shot mode.


It is specifically proposed that a signaling assembly, which emits a feedback signal to the user before, after or during each automatic resetting operation, is provided. In the simplest case, the feedback signal makes the user aware that the resetting operation is taking place or has already taken place. On this basis, the user can decide whether to continue operating in single shot mode or to transfer the driving tool to bump firing mode.


In a preferred alternative, the signaling assembly emits a feedback signal at a predetermined time interval before the automatic resetting operation. In this way, the user can be warned that the resetting operation is pending. The user can then decide, for example, to start a further driving-in cycle, in order to remain in bump firing mode.


The feedback signal that can be emitted by the signaling assembly may preferably be an optical signal, an acoustic signal or a haptic signal. A combination of these various types of signal is also conceivable.


According to a further teaching, which is likewise of independent significance, a method for operating the driving tool is disclosed.


What is essential according to this further teaching is that a signaling assembly explained above, by means of which a feedback signal is emitted to the user before, after or during each resetting operation, is provided. Reference may be made to all of the statements made in relation to the operation of the driving tool as proposed.





BRIEF DESCRIPTION OF THE DRAWINGS

The invention is explained in more detail below on the basis of drawings that merely shows exemplary embodiments. In the drawings:



FIG. 1 shows a driving tool as proposed, in a side view,



FIG. 2 shows the driving tool according to FIG. 1, in the view of a detail II,



FIG. 3 shows the trigger lever of the driving tool according to FIG. 1 a) in the actuated state without the feedback signal from the signaling assembly, and b) in the actuated state with the feedback signal from the signaling assembly and



FIG. 4 shows a driving tool according to FIG. 1 in a further embodiment, in the view of a detail IV.





In the figures, the same reference signs/numerals are used for identical or similar components, even if a repeated description is omitted for reasons of simplicity.


DETAILED DESCRIPTION

The driving tool that is represented in the drawing serves for driving in fastening means 1 of a magazine belt 2 indicated in FIG. 1, in particular nails, staples or the like. With regard to further interpretation of the term “fastening means”, reference may be made to the introductory part of the description.


The driving in of nails is the main focus of attention in the description that follows, which should not be understood as being restrictive. All statements that are made with respect to nails apply correspondingly to all other types of fastening means that can be driven in.


The driving tool is a compressed-air driving tool with a pneumatic actuator unit 3 schematically represented in the drawing, by means of which the fastening means 1 can be driven into the workpiece W in driving-in cycles. In a driving-in cycle, the fastening means 1, driven by the pneumatic actuator unit 3, pass through a driving channel 4 into the workpiece W.


The driving tool as proposed also has a trigger lever 5, which can be actuated manually. The trigger lever 5 represented in the drawing can be pivoted about a trigger lever axis 5a for actuation.


In order to avoid unintentional triggering of driving-in cycles, also provided is a workpiece contact element 6, which can be actuated by the placing of the workpiece contact element 6 onto the workpiece W. The workpiece contact element 6 can be resiliently deflected upward in FIG. 1 for actuation.


The driving tool can be operated in different operating modes, depending on the application. Firstly, the driving tool can be operated in a single shot mode, in that each individual sequence of an actuation of the workpiece contact element 6, with subsequent actuation of the trigger lever 5, triggers a driving-in cycle. In the single shot mode, the user therefore first places the driving tool onto the workpiece W, thereby actuating the workpiece contact element 6, and subsequently actuates the trigger lever 5. This sequence leads to the triggering of the driving-in cycle. If the fastening means 1 are to be driven in at a multiplicity of driving-in locations lying next to one another, the driving tool can be advantageously operated in bump firing mode. In bump firing mode, with the trigger lever 5 continuously actuated, each individual actuation of the workpiece contact element 6 triggers a driving-in cycle. If the user keeps the trigger lever 5 actuated, the placing of the driving tool, and consequently the actuation of the workpiece contact element 6, is sufficient for the triggering of a driving-in cycle.


It is preferably the case that the completely unactuated driving tool is initially in the single shot mode. This means that, for triggering the first driving-in cycle, first the workpiece contact element 6 and then the trigger lever 5 must be actuated. After this first driving-in cycle, the driving tool is preferably in the bump firing mode. The user then has the possibility of keeping the trigger lever 5 actuated and triggering a further driving-in cycle with each actuation of the workpiece contact element 6.


The handling of the driving tool as proposed is made particularly convenient by providing a resetting assembly 7 that is schematically represented in the drawings, by means of which the driving tool can be reset from the bump firing mode into the single shot mode in an automatic, time-controlled resetting operation. This means that such a resetting operation is automatically initiated in accordance with a certain specification, on the basis of a time control, for example on the basis of a specific time sequence. Correspondingly, the resetting assembly 7 is provided with a time-control device of some kind or other.


It is therefore essential to provide a signaling assembly 8, which is likewise only schematically represented in the drawing and which emits a feedback signal to the user before, after or during each automatic resetting operation that is initiated by the resetting assembly 7. Consequently, depending on the design, it is possible for the user to be informed simply as to whether an automatic resetting operation is pending, has already taken place or is in the process of taking place.


Numerous advantageous variants are conceivable for the structural design of the resetting assembly 7. It is preferably the case that the resetting assembly 7 can be activated in the bump firing mode and, after a delay time starting from the activation, has the effect of automatically transferring the driving tool from the bump firing mode into the single shot mode.


The activation of the resetting assembly 7 is possible in various ways. Here and preferably, the resetting assembly 7 is coupled to a pneumatic actuator unit 3, by means of which the fastening means 1 can be driven into the workpiece W in driving-in cycles, a driving-in cycle activating the resetting assembly 7 in bump firing mode. It may alternatively be provided that the resetting assembly 7 can be activated by a predetermined actuation of the trigger lever 5 and/or of the workpiece contact element 6, for example by the workpiece contact element 6 coming away from a workpiece W.


To sum up, an automatic resetting operation preferably takes place after a delay time starting from the last driving-in cycle or after a delay time starting from the last user actuation and directed at triggering a driving-in cycle.


In principle, it may be provided that the signaling assembly 8 emits a feedback signal during every resetting operation that is initiated by the resetting assembly 7. This makes it clear to the user that the driving tool has been reset to the single shot mode. In the case of a particularly preferred design, it is however the case that the signaling assembly 8 emits a feedback signal at a predetermined time interval before the resetting operation.


This allows the user to respond, for example in that, with the trigger lever 5 actuated, the user actuates the workpiece contact element 6 and thereby triggers a further driving-in cycle. Consequently, the resetting assembly 7 described above involves renewed activation of the resetting assembly 7, and so the driving tool at first remains in the bump firing mode. Alternatively or in addition, it may be provided that the signaling assembly 8 emits a feedback signal at a predetermined time interval after the resetting operation. This would inform the user that the resetting operation has been safely completed.


Depending on the application, it may also be advantageous that the signaling assembly 8 emits a differing feedback signal, depending on the time interval from the resetting operation. For example, the signaling assembly 8 could emit a cyclical signal, the cycle time of which is continuously reduced as the resetting operation approaches.


A particularly low-cost structure can be achieved by the signaling assembly 8 being operated electrically. Numerous electrically operated variants for the emission of a feedback signal are known.


In a particularly preferred design, the driving tool is operated electrically, the signaling assembly 8 being operated by the voltage supply of the driving tool. Alternatively, the signaling assembly 8 may also be assigned a separate voltage supply, in particular a battery assembly or the like.


It is also advantageous that the signaling assembly 8 is operated pneumatically. This is advantageous in particular if the driving tool itself is operated pneumatically, the signaling assembly 8 preferably relying on the compressed air supply of the driving tool.


Depending on the application, completely different variants are conceivable for the feedback signal of the signaling assembly 8. For example, the feedback signal may be an optical signal (FIG. 4). It is then preferably the case that the signaling assembly 8 has a corresponding light source 8a. The light source 8a may be, for example, a light-emitting diode assembly or the like. Alternatively, the signaling assembly 8 may have a mechanical display. For example, the signaling assembly 8 may have a display element, in particular, a colored display element, which can be presented in a display window.


Alternatively or in addition, however, it may also be the case that the feedback signal that can be emitted by the signaling assembly 8 is an acoustic signal, the signaling assembly preferably having for this a sound generator 8b (FIG. 4). Such a sound generator may be an electrical buzzer, an electrical loudspeaker, a pneumatic whistling assembly or the like.


In a particularly preferred design, however, it is the case that the feedback signal that can be emitted by the signaling assembly 8 is a haptic signal (FIGS. 1-3). In this case, the signaling assembly 8 preferably has a signaling movement drive for generating a tangible signaling movement, a signaling pulse generator for generating a tangible signaling pulse or a signaling vibrator for generating a tangible signaling vibration.


The above, haptic signals of the signaling assembly 8 can be felt best by the user when the signaling assembly 8 is at least partly integrated in the trigger lever 5.


The signaling assembly 8 advantageously has a feeling element 9, which can be adjusted for the emission of a haptic feedback signal and can be seen in the representation according to FIG. 3. In this case, the feeling element 9 is preferably integrated in the trigger lever 5, as the representation according to FIG. 3 likewise shows. In the case of the exemplary embodiment represented in FIG. 3, the feeling element 9 is adjustable with respect to the trigger lever 5 for the emission of the haptic feedback signal.


Specifically, the trigger lever 5 forms a receptacle for the feeling element 9, the feeling element 9 protruding through an opening 10 in the trigger lever 5, at least for the emission of a feedback signal. This is evident from viewing FIGS. 3a) and 3b) together. In FIG. 3a), the signaling assembly 8 is not yet emitting a feedback signal. In FIG. 3b), the signaling assembly 8 is emitting a feedback signal, in that the feeling element 9 is made to project through the slit-like opening 10 in the trigger lever 5. For this, the feeling element 9 is preferably coupled to an aforementioned signaling movement drive.


A particularly simple structure is obtained, however, by the signaling assembly 8 being a component part of the resetting assembly 7, in particular if the signaling assembly 8 serves for generating haptic feedback signals. This is attributable to the consideration that the resetting assembly 7 must in any case implement an adjusting movement of some kind or other for the implementation of the resetting operation, and this can be used for generating the haptic feedback signals.


Specifically, the resetting assembly 7 is preferably provided with a resetting element, which is adjusted into a resetting position for the resetting of the driving device into the single shot mode, the adjustment of the resetting element into the resetting position being triggered by generation of the feedback signal. The adjustment of the resetting element into the resetting position preferably brings about a corresponding adjustment of the feeling element 9, here and preferably through the slit-like opening 10 in the trigger lever 5, as a feedback signal.


According to a further teaching, which is of independent significance, a method for operating a driving tool as proposed is disclosed.


The driving tool correspondingly has a trigger lever 5, which can be actuated manually, and a workpiece contact element 6, which can be actuated by placing the driving tool onto the workpiece W, and can be operated in a single shot mode and in a bump firing mode. Also provided is a resetting assembly 7, by means of which the driving tool is reset from the bump firing mode into the single shot mode in a time-controlled resetting operation.


What is essential according to the further teaching is that a signaling assembly 8 is provided, by means of which a feedback signal is emitted to the user before, after or during every resetting operation. Reference may be made to all of the statements made with respect to the operation of the driving tool as proposed.

Claims
  • 1. A driving tool for driving a fastener into a workpiece, the driving tool comprising: a trigger lever, which is configured to be actuated manually;a workpiece contact element, which is configured to be actuated by placing the driving tool onto the workpiece, wherein the driving tool is operable in a single shot mode, in which each individual sequence of an actuation of the workpiece contact element with subsequent actuation of the trigger lever triggers a driving-in cycle, andthe driving tool is further operable in a bump firing mode, in which, with the trigger lever continuously actuated, each individual actuation of the workpiece contact element triggers a driving-in cycle;a resetting assembly, by means of which the driving tool is configured to be reset from the bump firing mode into the single shot mode in an automatic, time-controlled resetting operation; and,a signaling assembly, which is configured to emit a feedback signal to the user before, after or during the automatic, time-controlled resetting operation;wherein, the resetting assembly is configured to be activated in the bump firing mode and, after a delay time starting from the activation, transfer the driving tool from the bump firing mode into the single shot mode;wherein the signaling assembly and the driving tool are operable pneumatically,wherein the feedback signal that is configured to be emitted by the signaling assembly is a haptic signal at the trigger lever,wherein the signaling assembly has a feeling element that is movable relative to the trigger lever in order to produce the haptic feedback signal,wherein the trigger lever includes a through opening through which the feeling element moves in order to project forwardly of a front surface of the trigger lever to produce the haptic feedback signal;wherein the resetting assembly further comprises a resetting element, which is adjustable into a resetting position for the resetting of the driving tool into the single shot mode, and the adjustment of the resetting element into the resetting position is triggered by generation of the feedback signal.
  • 2. The driving tool as claimed in claim 1, wherein the signaling assembly is configured to emit the feedback signal at a predetermined time interval before the automatic, time-controlled resetting operation.
  • 3. The driving tool as claimed in claim 1, wherein the adjustment of the resetting element into the resetting position brings about movement of the feeling element.
  • 4. A driving tool for driving a fastener into a workpiece, the driving tool comprising: a trigger lever, which is configured to be actuated manually;a workpiece contact element, which is configured to be actuated by placing the driving tool onto the workpiece, wherein the driving tool is operable in a single shot mode, in which each individual sequence of an actuation of the workpiece contact element with subsequent actuation of the trigger lever triggers a driving-in cycle, andthe driving tool is further operable in a bump firing mode, in which, with the trigger lever continuously actuated, each individual actuation of the workpiece contact element triggers a driving-in cycle;a resetting assembly for resetting the driving tool from the bump firing mode into the single shot mode in an automatic, time-controlled resetting operation; anda signaling assembly, which is configured to emit a feedback signal to the user before, after or during the automatic, time-controlled resetting operation, wherein the signaling assembly includes a feeling element and the feedback signal is a haptic signal that is generated by movement of the feeling element toward the trigger lever;wherein the trigger lever forms a receptacle for the feeling element;wherein a front surface of the trigger lever includes a through opening in communication with the receptacle, and the feeling element protrudes through the through opening and forwardly of the front surface in order to produce the haptic signal;wherein the resetting assembly further comprises a resetting element, which is adjustable into a resetting position for resetting the driving tool from the bump firing mode into the single shot mode, and the adjustment of the resetting element into the resetting position is triggered by generation of the feedback signal.
  • 5. The driving tool of claim 4, wherein the through opening is a slit opening.
Priority Claims (1)
Number Date Country Kind
10 2013 106 658 Jun 2013 DE national
PCT Information
Filing Document Filing Date Country Kind
PCT/US2014/035108 4/23/2014 WO 00
Publishing Document Publishing Date Country Kind
WO2014/209481 12/31/2014 WO A
US Referenced Citations (101)
Number Name Date Kind
3467294 Fisher Sep 1969 A
3479926 Hillier Nov 1969 A
3572572 Readyhough et al. Mar 1971 A
35725572 Readyhough Mar 1971
3580455 Cast May 1971 A
3583496 Fehrs Jun 1971 A
3786978 Manganaro Jan 1974 A
3964659 Eiben Jun 1976 A
4351464 Fehrs Sep 1982 A
4550643 Schwartzenberger Nov 1985 A
4679719 Kramer Jul 1987 A
5191861 Kellerman et al. Mar 1993 A
5197646 Nikolich Mar 1993 A
5551620 Vallee Sep 1996 A
5605268 Hayashi et al. Feb 1997 A
5687897 Fa Nov 1997 A
5732870 Moorman et al. Mar 1998 A
5772096 Osuka et al. Jun 1998 A
5862969 Lee Jan 1999 A
5918788 Moorman et al. Jul 1999 A
6095392 Batts, Jr. Aug 2000 A
6123241 Walter Sep 2000 A
6213372 Chen Apr 2001 B1
6357647 Ou Mar 2002 B1
6371348 Canlas et al. Apr 2002 B1
6382492 Moorman et al. May 2002 B1
6431425 Moorman et al. Aug 2002 B1
6450387 Chen Sep 2002 B1
6543664 Wolfberg Apr 2003 B2
6604664 Robinson Aug 2003 B2
6691907 Chang Feb 2004 B1
6695193 Chang Feb 2004 B1
6695194 Chang Feb 2004 B1
6857547 Lee Feb 2005 B1
7070080 Lin Jul 2006 B2
7143918 Aguirre et al. Dec 2006 B2
7163134 Moeller et al. Jan 2007 B2
7191927 Segura Mar 2007 B2
7196688 Schena Mar 2007 B2
7383974 Moeller Jun 2008 B2
7469811 Shima et al. Dec 2008 B2
7469818 Saltsor et al. Dec 2008 B2
7510105 Moeller et al. Mar 2009 B2
7513402 Miyashita Apr 2009 B2
7828072 Hashimoto et al. Nov 2010 B2
7938305 Simonelli et al. May 2011 B2
7971766 Tang Jul 2011 B2
7975890 Tang Jul 2011 B2
8011441 Leimbach et al. Sep 2011 B2
8011547 Leimbach et al. Sep 2011 B2
8215528 Matsunaga et al. Jul 2012 B2
8313012 Shima Nov 2012 B2
8336749 Largo Dec 2012 B2
8348118 Segura Jan 2013 B2
9061407 Chien et al. Jun 2015 B2
9242359 Staples Jan 2016 B2
9381663 Maurer Jul 2016 B2
9486907 Birk Nov 2016 B2
9550288 Moore et al. Jan 2017 B2
9782879 Baur Oct 2017 B2
9782880 Moore et al. Oct 2017 B2
10213911 Moore et al. Feb 2019 B2
20010006183 Mukoyama Jul 2001 A1
20020130154 Wolfberg Sep 2002 A1
20020185514 Adams et al. Dec 2002 A1
20030121947 Hsu Jul 2003 A1
20040045997 Birk Mar 2004 A1
20050023318 Aguirre et al. Feb 2005 A1
20050029323 Shima Feb 2005 A1
20050173484 Moeller Aug 2005 A1
20050173487 Moeller et al. Aug 2005 A1
20050217874 Forster Oct 2005 A1
20050217875 Forster et al. Oct 2005 A1
20050220445 Baskar Oct 2005 A1
20070004984 Crum Jan 2007 A1
20070131731 Moeller Jun 2007 A1
20070278275 Ho Dec 2007 A1
20080073405 Shima Mar 2008 A1
20080251558 Suda Oct 2008 A1
20090057365 Murayama Mar 2009 A1
20090159633 Wu Jun 2009 A1
20090236387 Simonelli Sep 2009 A1
20090242604 Mina Oct 2009 A1
20090250500 Brendel Oct 2009 A1
20090314818 Segura Dec 2009 A1
20100116863 Suda May 2010 A1
20100173686 Grant Jul 2010 A1
20100236911 Wild Sep 2010 A1
20100237124 Shima Sep 2010 A1
20100243699 Largo Sep 2010 A1
20120022525 Dietz Jan 2012 A1
20120041436 Ullrich Feb 2012 A1
20120097730 Liang et al. Apr 2012 A1
20120104070 Wu May 2012 A1
20120118932 Largo May 2012 A1
20120138658 Ullrich Jun 2012 A1
20120298390 Schieler Nov 2012 A1
20130041368 Cunningham Feb 2013 A1
20130062390 Yeh Mar 2013 A1
20170050305 Birk Feb 2017 A1
20190184536 Moore et al. Jun 2019 A1
Foreign Referenced Citations (14)
Number Date Country
1788940 Jun 2006 CN
101284374 Oct 2008 CN
101743099 Jun 2010 CN
202013001537 Mar 2013 DE
0736360 Oct 1996 EP
1223009 Jul 2002 EP
1240982 Sep 2002 EP
1980367 Oct 2008 EP
2450152 May 2012 EP
2450152 Sep 2012 EP
H08276375 Oct 1996 JP
2002346946 Dec 2002 JP
02051591 Jul 2002 WO
WO 02051591 Jul 2002 WO
Non-Patent Literature Citations (1)
Entry
ISR and WO for PCT/US2014/035108 dated Aug. 11, 2014, 11 pages.
Related Publications (1)
Number Date Country
20160136797 A1 May 2016 US