The present invention relates generally to portable screw driving equipment and is particularly directed to a motorized tool of the type which receives a flexible strip of collated screws, and automatically drives individual screws from the collated strip into an object. The invention is specifically disclosed as a portable screw driving tool that receives a flexible collated strip of screws from a “bottom” area of the tool, and keeps a sufficient amount of tension on the flexible collated strip so as to prevent the strip from becoming substantially misaligned, such as by sagging, or otherwise bunching up or becoming tangled, before the strip reaches the screw-driving front position of the tool. The collated strip is kept sufficiently taut, regardless of the orientation of the screw driving tool with respect to the ground, as a source of gravity.
The screw driving tool has a fixed guide along a front area of its handle, through which the collated strip of screws passes; the tool also has a slide body in its front or “nose” area, and a rotatable sprocket receives the collated strip for positioning the screws in a proper location and orientation for being driven into a solid object. Between the slide body and the fixed guide is a flexible strap with a bracket that places tension on the collated screw strip, and prevents the strip from becoming substantially misaligned, such as by bunching or sagging in the area between the fixed guide and the slide body.
Portable hand-held screw driving tools have been available from Senco Products, Inc. for several years. Some of the previous tools sold by Senco were used with screw lengths in the range of one inch to two inches. Many of these tools have been “bottom feed” tools, in which a flexible collated strip of screws was fed from the bottom portion of the tool toward the front or nose of the tool, where the individual screws are taken from the collated plastic strip and driven into a solid object.
The flexible screw strips can be difficult to manage, and at times it is difficult to prevent the screws from bunching or tangling during a driving sequence. This tangling/bunching phenomena can occur when the collated screws have been fed into a slide body mechanism, and once the driving mechanism has been actuated, the screws will have a tendency to cross over one another, perhaps creating a jam or a misfeed. This may occur whether the tool is being driven in a horizontal or a vertical plane (or at other angles).
In the earlier tools sold by Senco, the collated strip of screws did not tend to readily become bunched or tangled during drive sequences of the tool, for two main reasons: (1) the screws were shorter and were not very heavy, and (2) the distance between the guide portion of the handle and the nose piece of the tool was fairly short, thereby providing a lesser distance within which the collated strip could possibly become bunched or tangled, or otherwise sag. Examples of such screw driving tools that have been available in the past are Senco Tool Model No. DS 162-14V and Senco Tool Model No. DS200-14V.
It would be an improvement to provide a portable hand-held screw driving tool that could be used with longer screws that were provided on a collated strip, but at the same time provide a means for preventing the collated strip from sagging or otherwise bunching or tangling.
Accordingly, it is an advantage of the present invention to provide a portable hand-held screw driving tool that can feed a collated strip of screws from the bottom portion to the nose of the tool in a manner that prevents the flexible collated strip from becoming substantially misaligned, e.g., from substantially bunching, tangling, or sagging.
It is another advantage of the present invention to provide a portable hand-held screw driving tool that has a guide member as part of a handle portion of the tool that initially feeds a flexible collated strip of screws therethrough, and then passes the collated strip of screws toward a front or nose portion of the tool, while also providing a tensioning device to prevent the collated strip of screws from becoming substantially misaligned, e.g., from substantially sagging, bunching, or becoming tangled.
It is yet another advantage of the present invention to provide a portable hand-held screw driving tool that accepts a flexible collated strip of rather lengthy screws through a guide member of a bottom handle region of the tool, feeds that flexible collated strip of screws toward a front driving portion of the tool, and provides a flexible strap with a bracket to provide tension on the flexible collated strip of screws to prevent the strip of screws from becoming substantially misaligned, e.g., from substantially sagging, bunching, or becoming tangled.
It is still another advantage of the present invention to provide a portable hand-held screw driving tool that accepts a flexible collated strip of screws of a longer length, such as in the range of 2–3 inches and which are heavier than shorter 1–2 inch screws, and which guides the collated strip through a fixed guide member on the handle portion of the tool toward a front or nose portion of the tool, and which provides a flexible strap that runs between the fixed guide and the nose portion of the tool, and which prevents the flexible collated strip of screws from becoming substantially misaligned, e.g., from substantially bunching, tangling, or sagging.
Additional advantages and other novel features of the invention will be set forth in part in the description that follows and in part will become apparent to those skilled in the art upon examination of the following or may be learned with the practice of the invention.
To achieve the foregoing and other advantages, and in accordance with one aspect of the present invention, a tensioning device for a portable fastener-driving tool is provided, in which the fastener-driving tool exhibits: (i) a housing; (ii) a handle attached to the housing; (iii) a first guide member proximal to the handle, for receiving and guiding a collated strip of fasteners; (iv) a fastener driving area at one end of the housing; and (v) a fastener indexing portion proximal to the fastener driving area, for receiving the collated strip of fasteners and moving a fastener of the collated strip of fasteners to a driving position; and wherein the first guide member and the fastener indexing portion are spaced-apart from one another; and in which the tensioning device comprises: (a) a longitudinal strap having a first end and a second end, wherein the first end is in communication with the fastener indexing portion, and the second end is in communication with the first guide member; and (b) a second guide member that is attached to the strap and is capable of receiving the collated strip of fasteners, the second guide member being positioned between the first and second ends of the strap.
In accordance with another aspect of the present invention, a portable fastener-driving tool is provided, which comprises: (a) a housing containing a driving mechanism; (b) a handle attached to the housing; (c) a first guide member proximal to the handle, the first guide member having a first opening and a second opening, the first guide member being capable of directing a collated strip of fasteners between the first and second openings; (d) a fastener driving area at one end of the housing; (e) a fastener indexing portion proximal to the fastener driving area that is capable of receiving the collated strip of fasteners and moving a fastener of the collated strip of fasteners to a driving position; (f) wherein, when actuated, the driving mechanism operates to drive a fastener at the driving position from the collated strip of fasteners; (g) wherein the first guide member and the fastener indexing portion are spaced-apart from one another, and (h) wherein the collated strip of fasteners traverses a distance between the first guide member and the fastener indexing portion; and (j) a tensioning device, comprising: (i) a longitudinal strap having a first end and a second end, wherein the first end is in communication with the fastener indexing portion, and the second end is in communication with the first guide member; and (ii) a second guide member that is attached to the strap and is capable of receiving the collated strip of fasteners, the second guide member being positioned between the first and second ends of the strap; wherein: when the collated strip of fasteners is positioned within both the first guide member and the second guide member, and is in communication with the fastener indexing portion, a combination of the strap and the second guide member prevents the collated strip of fasteners from becoming substantially misaligned in a region between the first guide member and the fastener indexing portion.
Still other advantages of the present invention will become apparent to those skilled in this art from the following description and drawings wherein there is described and shown a preferred embodiment of this invention in one of the best modes contemplated for carrying out the invention. As will be realized, the invention is capable of other different embodiments, and its several details are capable of modification in various, obvious aspects all without departing from the invention. Accordingly, the drawings and descriptions will be regarded as illustrative in nature and not as restrictive.
The accompanying drawings incorporated in and forming a part of the specification illustrate several aspects of the present invention, and together with the description and claims serve to explain the principles of the invention. In the drawings:
Reference will now be made in detail to the present preferred embodiment of the invention, an example of which is illustrated in the accompanying drawings, wherein like numerals indicate the same elements throughout the views.
Referring now to the drawings,
The housing portion 20 of the tool includes a front housing outer shell structure 22, and a rear housing portion that has a top gripping surface 24 as well as a bottom gripping surface (or set of surfaces) 42, that are also part of the handle portion 40. Toward the front of housing portion 20 is a feed tube 26, that houses some moveable portions of the tool 10, as discussed below. In the illustrated embodiment, the feed tube 26 is fixedly attached to the internal mechanical mechanisms contained within housing portion 20.
The front end portion 30 includes a moveable nose piece 32, which is attached to a slide body sub-assembly 34. Both the nose piece 32 and slide body sub-assembly 34 are moveable in a longitudinal direction of the tool 10, and when the nose piece 32 is pressed against a solid object, the screw driving tool 10 will be actuated to physically drive one of the screws into the solid object, also referred to herein as the “workpiece.” Nose piece 32 has a front surface 36, which preferably has a rough texture such as sandpaper, so that it will not easily slide while pressed against the surface of the workpiece when the tool is to be utilized. In the illustrated embodiment of
Handle portion 40 includes a set of bottom gripping surfaces 42 that can be used by a person's hand to readily grip the handle and not easily slide along the bottom surface of the housing portion 20. Handle portion 40 also includes a trigger 44, which is used to actuate an electrical switch to operate the internal drive mechanisms of the hand-held portable tool 10. In the illustrated embodiment, a battery sub-assembly 46 is attached at the bottom area of handle portion 40, which provides electrical power to the internal drive mechanism of the tool 10.
Handle portion 40 also includes a curved guide member 48 that can receive a flexible collated strip of screws, in this case the collated screw sub-assembly 60. The collated screw sub-assembly 60 mainly consists of a plastic strip 62 that has several openings to receive individual screws 64. The overall collated screw sub-assembly is flexible to a certain degree, as can be seen in
Much of the mechanical mechanisms described above for the portable screw driving tool 10 has been available in the past from Senco Products, Inc., including such tools as the Senco Model Nos. DS162-14V and DS200-14V. These earlier tools may not have had the precise same construction as described above in reference to
With regard to the present invention, a flexible strap 54 is provided which runs between an attachment point in the slide body sub-assembly 34 and into an opening of the guide 48. Strap 54 provides both mechanical strength and a sliding surface for the plastic strip 62 of the collated screw sub-assembly 60. Attached to the more forward position of the strap 54 is a bracket 52. This bracket is shaped to receive the plastic strip 62 and to allow the screws 64 to have their shanks pass through an opening in the bracket 52 as the collated screw sub-assembly 60 passes toward the slide body sub-assembly 34. Further details of this construction are provided below.
Referring now to
Also more easily seen in
Additional details of the strap 54 can also be seen in
Referring now to
When viewing the tool at its front-most portion (i.e., the left-hand portion as viewed in
When the nose piece 32 (not seen in
The tool 10 can also be configured in an alternative screw-feed actuation mode, in which the lead screw is moved into the firing position at 66 as the nose piece 32 is pressed against the surface of a workpiece; this type of screw-feed actuation can be referred to as “indexed on advance.” If tool 10 is configured for indexed on advance, then the lead screw would not yet be in the position at 66 (as seen on
It will be understood that both the indexed on advance and indexed on return screw-feed actuation modes of operation can work equally well with the flexible strap 54 and bracket 52 of the present invention. Other possible modes of screw-feed actuation might be developed in the future that would also work well with the flexible strap 54 and bracket 52 of the present invention.
Referring now to
The slide body sub-assembly 34 is also comprised of two separate halves at its front-most areas. The two halves are designated by the reference numerals 96 and 98, and they provide a guide surface for the shanks of the screws as they are being moved forward to the final drive position (at 66, illustrated in
Referring now to
There are several openings in the slide body sub-assembly 34 in the side facing the viewer of
Since the arcuate surface of the pivot link at 106 fits around the rod 102 of the retaining pin, the pivot link 94 can rotate or pivot about the centerline axis of the rod 102. The hinge pin 56 also allows the pivot link to rotate or pivot about the end portion of the strap 54. The different orientations thereby enabled with this construction will allow the strap 54 and slide body 34 to move along a linear pathway inside the feed tube 26 as the nose piece 32 is depressed when it is placed against a solid object that is going to have a screw driven thereinto. The different possible angular orientations of the pivot link 94 with respect to other portions of the tool 10 are better illustrated in
Referring now to
Some of the details of bracket 52 are now illustrated, and will now be discussed in detail. Bracket 52 includes a rear opening 110 and a front opening 112. The plastic strip 62 of the collated screw sub-assembly 60 passes through these openings, when the plastic strip 62 is being indexed toward the front of the tool 10. These openings 110 and 112 are formed by two guide members formed in the bracket 52. Each guide member forms one-half of two guiding surfaces, which are designated by the reference numerals 114 and 116. The outer edges of the plastic strip 62 will run through these guide surfaces 114 and 116.
As can been seen in
The strap 54 illustrated in
The curved member 122 of the strap 54 is designed to more readily fit through the curved portion of the guide 48 that is part of the handle portion 40 of the tool 10. Depending upon how flexible or inflexible the strap 54 is to be made, this curved member 122 could be relatively stiff or relatively limber, depending on the designer's choice. It will be understood that the strap 54 should exhibit enough stiffness to support the weight of the collated screw sub-assembly 60 in the area between the front portion 70 of the guide 48 and the rear opening 110 of the bracket 52. This will achieve one of the advantages of the present invention, which is to prevent the collated strip sub-assembly 60 from substantially sagging or bunching, or otherwise allowing the screws 64 to become tangled because of some type of misalignment in the collated screw sub-assembly 60 that might otherwise occur.
Referring now to
While
In this position, the entire slide body sub-assembly 34 will also have moved linearly upward (in this vertical orientation), and the strap 54 and guide 52 will also have been moved toward the top of this
Some of the components used in the present invention have been disclosed in a commonly-assigned patent, titled “Screw Feed and Driver for a Screw Driving Tool, U.S. Pat. No. 5,988,026, which is assigned to Senco Products, Inc., and which is incorporated herein by reference in its entirety. Some portions of the present invention have also been disclosed in another commonly-assigned patent, titled “Screw Driving Tool,” U.S. Pat. No. Des. 462,001, which is assigned to Senco Products, Inc., and which is incorporated herein by reference in its entirety.
It will be understood that the term “collated screw sub-assembly” as used herein refers to a strip of screws that are temporarily mounted in a flexible strip of material that exhibits openings and other structures to hold the screws in place until they are needed. In many products, the flexible strip of material comprises plastic, but other materials could be used, if desired. The individual screws are advanced to a driving position in a screw driving tool (such as portable tool 10), and each screw is individually driven from the flexible strip by the tool when the tool is actuated.
It will also be understood that the term “flexible strap” as used herein refers to a piece of material that is much longer in its longitudinal direction than its width in a transverse direction that is perpendicular to the longitudinal axis. In one embodiment of the present invention, the strap comprises metal, but other materials could be used, if desired. The strap should be flexible enough to allow itself to be somewhat bent or straightened as the screw driving tool is actuated to drive a screw into a solid material; however, the strap should also be strong enough to support the weight of the collated screw sub-assembly in various orientations, so that the collated screws do not cause the strap to unduly deform.
It will be further understood that the principles of the present invention are applicable to many different types of fastener driving tools, including tools powered by AC electrical power (e.g., 120 VAC line power from an outlet), DC electrical power (e.g., from a battery or a solar panel), a pneumatic power source, or a hydraulic power source, for example. In addition, the types of fasteners that can be driven in the manner of the present invention are not limited to screws, but could instead be nails or rivets, for example.
All documents cited in the Detailed Description of the Invention are, in relevant part, incorporated herein by reference; the citation of any document is not to be construed as an admission that it is prior art with respect to the present invention.
The foregoing description of a preferred embodiment of the invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Any examples described or illustrated herein are intended as non-limiting examples, and many modifications or variations of the examples, or of the preferred embodiment(s), are possible in light of the above teachings, without departing from the spirit and scope of the present invention. The embodiment(s) was chosen and described in order to illustrate the principles of the invention and its practical application to thereby enable one of ordinary skill in the art to utilize the invention in various embodiments and with various modifications as are suited to particular uses contemplated. It is intended to cover in the appended claims all such changes and modifications that are within the scope of this invention.
The present application claims priority to provisional patent application Ser. No. 60/516,947, titled “Tensioning Device for Collated Screw Driving,” filed on Oct. 31, 2003.
Number | Name | Date | Kind |
---|---|---|---|
4014488 | Potucek et al. | Mar 1977 | A |
4404877 | Mizuno et al. | Sep 1983 | A |
4774863 | Geist | Oct 1988 | A |
4784026 | Kobayashi et al. | Nov 1988 | A |
5083483 | Takagi | Jan 1992 | A |
5109738 | Farian et al. | May 1992 | A |
5167174 | Fujiyama et al. | Dec 1992 | A |
5337636 | Shea | Aug 1994 | A |
D358749 | Matsunaga et al. | May 1995 | S |
5473965 | Chen | Dec 1995 | A |
D368216 | Hattori | Mar 1996 | S |
5687624 | Tsuge et al. | Nov 1997 | A |
5715982 | Adachi | Feb 1998 | A |
5772096 | Osuka et al. | Jun 1998 | A |
5810239 | Stich | Sep 1998 | A |
5974918 | Nakagawa et al. | Nov 1999 | A |
5988026 | Reckelhoff et al. | Nov 1999 | A |
6016946 | Phillips et al. | Jan 2000 | A |
D420877 | Schultz | Feb 2000 | S |
D420879 | Watson et al. | Feb 2000 | S |
6045024 | Phillips | Apr 2000 | A |
6062113 | Nakano et al. | May 2000 | A |
6089132 | Habermehl | Jul 2000 | A |
6155139 | Tanji | Dec 2000 | A |
6158643 | Phillips | Dec 2000 | A |
D436511 | Hayakawa | Jan 2001 | S |
6179192 | Weinger et al. | Jan 2001 | B1 |
D438079 | Hattori | Feb 2001 | S |
6244140 | Habermehl | Jun 2001 | B1 |
D461694 | Buck | Aug 2002 | S |
D462001 | Bohart et al. | Aug 2002 | S |
6892921 | Beville | May 2005 | B1 |
Number | Date | Country |
---|---|---|
2725477 | Jan 1979 | AU |
41 19 925 | Jan 1992 | DE |
42 08 715 | Sep 1992 | DE |
195 26 543 | Jan 1996 | DE |
0 058 986 | Sep 1982 | EP |
0 623 426 | Nov 1994 | EP |
Number | Date | Country | |
---|---|---|---|
60516947 | Oct 2003 | US |