WO2017187388A1 - Power-driven direct drive ratchet/wrench tool - Google Patents

Power-driven direct drive ratchet/wrench tool Download PDF

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Publication number
WO2017187388A1
WO2017187388A1 PCT/IB2017/052453 IB2017052453W WO2017187388A1 WO 2017187388 A1 WO2017187388 A1 WO 2017187388A1 IB 2017052453 W IB2017052453 W IB 2017052453W WO 2017187388 A1 WO2017187388 A1 WO 2017187388A1
Authority
WO
WIPO (PCT)
Prior art keywords
shaft
drive
tubular handle
ratchet
spur gear
Prior art date
Application number
PCT/IB2017/052453
Other languages
French (fr)
Inventor
Robert S. Doroslovac
Paul Kukucka
Thomas Stefan Kukucka
Original Assignee
Grip Tooling Technologies Llc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority to CA3022514A priority Critical patent/CA3022514A1/en
Priority to JP2019508313A priority patent/JP2019515809A/en
Priority to AU2017257440A priority patent/AU2017257440A1/en
Priority to CN201780039652.8A priority patent/CN109414805A/en
Priority to EP17788925.0A priority patent/EP3436218A4/en
Application filed by Grip Tooling Technologies Llc filed Critical Grip Tooling Technologies Llc
Priority to US15/650,768 priority patent/US10081094B2/en
Publication of WO2017187388A1 publication Critical patent/WO2017187388A1/en
Priority to US15/882,787 priority patent/US10882162B2/en
Priority to US16/107,842 priority patent/US10780556B2/en
Priority to US16/107,899 priority patent/US10814461B2/en
Priority to US16/255,341 priority patent/US11154969B2/en
Priority to US29/698,391 priority patent/USD880968S1/en
Priority to US16/514,117 priority patent/US20190337131A1/en
Priority to US29/707,740 priority patent/USD885149S1/en
Priority to US17/509,633 priority patent/US20220040834A1/en
Priority to US17/672,538 priority patent/US11590637B2/en
Priority to US18/049,489 priority patent/US20230060398A1/en
Priority to US18/176,015 priority patent/US20230256576A1/en

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25BTOOLS OR BENCH DEVICES NOT OTHERWISE PROVIDED FOR, FOR FASTENING, CONNECTING, DISENGAGING OR HOLDING
    • B25B23/00Details of, or accessories for, spanners, wrenches, screwdrivers
    • B25B23/14Arrangement of torque limiters or torque indicators in wrenches or screwdrivers
    • B25B23/142Arrangement of torque limiters or torque indicators in wrenches or screwdrivers specially adapted for hand operated wrenches or screwdrivers
    • B25B23/1422Arrangement of torque limiters or torque indicators in wrenches or screwdrivers specially adapted for hand operated wrenches or screwdrivers torque indicators or adjustable torque limiters
    • B25B23/1427Arrangement of torque limiters or torque indicators in wrenches or screwdrivers specially adapted for hand operated wrenches or screwdrivers torque indicators or adjustable torque limiters by mechanical means
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25BTOOLS OR BENCH DEVICES NOT OTHERWISE PROVIDED FOR, FOR FASTENING, CONNECTING, DISENGAGING OR HOLDING
    • B25B13/00Spanners; Wrenches
    • B25B13/46Spanners; Wrenches of the ratchet type, for providing a free return stroke of the handle
    • B25B13/461Spanners; Wrenches of the ratchet type, for providing a free return stroke of the handle with concentric driving and driven member
    • B25B13/467Spanners; Wrenches of the ratchet type, for providing a free return stroke of the handle with concentric driving and driven member which are gear-operated
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25BTOOLS OR BENCH DEVICES NOT OTHERWISE PROVIDED FOR, FOR FASTENING, CONNECTING, DISENGAGING OR HOLDING
    • B25B13/00Spanners; Wrenches
    • B25B13/48Spanners; Wrenches for special purposes
    • B25B13/481Spanners; Wrenches for special purposes for operating in areas having limited access
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25BTOOLS OR BENCH DEVICES NOT OTHERWISE PROVIDED FOR, FOR FASTENING, CONNECTING, DISENGAGING OR HOLDING
    • B25B17/00Hand-driven gear-operated wrenches or screwdrivers
    • B25B17/02Hand-driven gear-operated wrenches or screwdrivers providing for torque amplification
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25BTOOLS OR BENCH DEVICES NOT OTHERWISE PROVIDED FOR, FOR FASTENING, CONNECTING, DISENGAGING OR HOLDING
    • B25B23/00Details of, or accessories for, spanners, wrenches, screwdrivers
    • B25B23/14Arrangement of torque limiters or torque indicators in wrenches or screwdrivers
    • B25B23/141Mechanical overload release couplings

Definitions

  • the present invention relates generally to power tools, ratchets and wrenches to be specific.
  • the present invention is a power-driven direct drive
  • ratchet/wrench tool which allows a user to speed up the process of tightening or loosening an external object such as a screw, bold, nut, and other similar fasteners, where space and access to the external object is limited.
  • the objective of the present invention is to create a power-driven tool to speed up the process of twisting, turning or loosening an object, i.e. bolt, screw, nut etc., where direct/frontal access is limited or restricted by other conventional tools.
  • the present invention utilizes a unique drive train which effectively transmits torque onto the fastener and allows for the reduction of the overall profile of the tool.
  • FIG. 1 is a perspective view of the present invention.
  • FIG. 2 is an exploded perspective view of the present invention.
  • FIG. 3 is a cross-section view of the present invention.
  • FIG. 4 is a detailed view about circle A from FIG. 3.
  • the present invention is an attachment for a power tool. More specifically, the present invention is a direct drive ratchet/wrench tool powered by an external power tool which allows a user to speed up the process of tightening and loosening a fastener, especially if the fastener is in a hard to reach area with little to no clearance.
  • the present invention may be utilized with and by a variety of external power tools including, but not limited to, electric drivers and pneumatic drivers.
  • the present invention comprises a tool housing 1, a drive shaft 12, a spur gear 9, a plurality of drive pins 17, and a fastener-engagement body 6.
  • the tool housing 1 acts as the structural element of the present invention and comprises a ratchet head 2, a tubular handle 3, and a gear-receiving cavity 5.
  • the ratchet head 2 is a cylindrical housing which encloses and supports the spur gear 9 and the fastener-engagement body 6. Similar to traditional wrench designs, the ratchet head 2 is a terminally connected to the tubular handle 3.
  • the gear-receiving cavity 5 laterally traverses into the ratchet head 2 to receive the spur gear 9 and the fastener-engagement body 6.
  • the gear-receiving cavity 5 intersects a lumen 4 of the tubular handle 3 and is orientated perpendicular to the tubular handle 3.
  • the spur gear 9 transmits torque from the drive shaft 12 to the fastener-engagement body 6, which in turn transmits said torque onto an external object such as a bolt, screw, nut, or other similar fastener.
  • the spur gear 9 is rotatably mounted within the gear-receiving cavity 5;
  • the spur gear 9 comprises a first face 10.
  • the fastener-engagement body 6 acts as the interface element of the present invention to physically engage and apply a torque force onto the external object.
  • the fastener-engagement body 6 is adjacently connected to the spur gear 9, opposite the ratchet head 2. More specifically, the fastener- engagement body 6 is connected onto the first face 10 of the spur gear 9.
  • the drive shaft 12 and the plurality of drive pins 17 transfer torque and rotation motion from the external power tool to the spur gear 9.
  • the drive shaft 12 is an elongated cylinder composed of a strong material such as steel. Referring to FIG. 2 and FIG. 3, the drive shaft 12 is concentrically and rotatably mounted within the tubular handle 3. It is preferred that the drive shaft 12 is rotatably mounted within the tubular handle 3 through the use of multiple bearings.
  • the plurality of drive pins 17 engages the spur gear 9 to transfer torque smoothly, contrary to traditional use of offset gears. Because the plurality of drive pins 17 is used, the tool housing 1 and the overall profile of the present invention can be reduced to a considerably slimmer design.
  • a rotation axis 11 of the spur gear 9 is oriented perpendicular to a rotation axis 15 of the drive shaft 12.
  • the rotation axis 11 of the spur gear 9 may be oriented at an obtuse or an acute angle relative to the rotation axis 15 of the drive shaft 12.
  • the plurality of drive pins 17 is radially distributed about the rotation axis 15 of the drive shaft 12 with each of the plurality of drive pins 17 being perpendicularly connected to a proximal base 16 of the drive shaft 12; wherein the proximal base 16 is positioned adjacent to the ratchet head 2.
  • an at least one arbitrary pin from the plurality of drive pins 17 is mechanically engaged to the spur gear 9, wherein the arbitrary pin represents any one from the plurality of drive pins 17.
  • the spur gear 9 in conjunction with the plurality of drive pins 17 produce more torque than traditional off-set gear driven tools.
  • the plurality of drive pins 17 is able to transfer torque to the spur gear 9 through a continuous partial engagement. In other words, only a certain number from the plurality of drive pins 17 is, at one point, engaged with the spur gear 9. To achieve this, the spur gear 9 must be specifically positioned relative to the plurality of drive pins 17. In particular, the first face 10 of the spur gear 9 is positioned coincident with the rotation axis 15 of the drive shaft 12. As a result, the arbitrary pin, the pin from the plurality of drive pins 17 that is engaged to the spur gear 9, is always traveling with a lateral velocity of the same direction. In other words, the arbitrary pin is located in the lower half of the drive shaft 12, below the rotation axis 15 of the drive shaft 12. This ensures that the lateral force translated from the arbitrary pin to the spur gear 9 is always in the same direction, regardless of the magnitude. This prevents the spur gear 9 from locking up and ensures maximum torque transfer from the drive shaft 12 to the spur gear 9.
  • each of the plurality of drive pins 17 comprises a fixed end 18, a tooth body 19, and a free end 20.
  • the fixed end 18 is connected onto the proximal base 16.
  • the tooth body 19 is tapered from the fixed end 18 to the free end 20.
  • the tapered feature takes into account the fact that the plurality of drive pins 17 is rotating about the rotation axis 15 of the drive shaft 12, which is oriented perpendicular to the rotation axis 11 of the spur gear 9. It is preferred that there are three pins within the plurality of drive pins 17 that are equally distributed about the rotation axis 15 of the drive shaft 12 as seen in FIG. 2.
  • each of the plurality of drive pins 17 is truncated conical shape. The truncated conical shape compliments the tooth design of the spur gear 9.
  • the fastener- engagement body 6 acts similar to a wrench socket and comprises a torque-transferring portion 7 and a fastener-receiving cavity 8.
  • This embodiment is designed for bolts, nuts, and other similar fasteners that require a socket to engage the fastener.
  • the torque- transferring portion 7 is a cylindrical extrusion which transfers torque from the spur gear 9 onto the external object.
  • the torque-transferring portion 7 is concentrically and adjacently connected to the spur gear 9, opposite the ratchet head 2. The torque is applied to the external object through the fastener-receiving cavity 8.
  • the fastener-receiving cavity 8 is complimentary shaped to interlock with the external object and laterally traverses through the torque-transferring portion 7 and the spur gear 9.
  • the fastener-receiving cavity 8 may be hexagonal shaped to engage with traditional hexagonal shaped bolts and nuts.
  • the size, shape, and depth of the fastener-receiving cavity 8 may vary to accommodate a variety of different fasteners.
  • the fastener-receiving cavity 8 is positioned collinear with the rotation axis 11 of the spur gear 9 in order to efficiently transfer torque from the spur gear 9 to the external object.
  • the torque-transferring portion 7 is also laterally offset from the proximal base 16 in order to provide clearance for the plurality of drive pins 17.
  • the fastener engagement body is similar to a drill bit, wherein the fastener-receiving cavity 8 is replaced with a drive bit.
  • the drive bit is adjacently connected to the torque-transferring portion 7 with a central axis of the drive bit being positioned collinear with the rotation axis 11 of the spur gear 9.
  • This embodiment is designed for fasteners such as screws and other fasteners with slotted engagement heads.
  • the cross section and shape of the drive bit may vary to
  • the present invention is attached to the external power tool through an attachment body 23 and an engagement bore 24, similar to traditional tools.
  • the attachment body 23 is a cylindrical extrusion that is positioned opposite to the plurality of drive pins 17, across the drive shaft 12. Additionally, the attachment body 23 is terminally connected to the drive shaft 12.
  • the engagement bore 24 receives the external power tool to allow the external power tool to rotate the drive shaft 12 and therefore rotate the fastener- engagement body 6. More specifically, the engagement bore 24 traverses into the attachment body 23, opposite the drive shaft 12. Additionally, in order to ensure that the drive train of the present invention is balanced, the engagement bore 24 is positioned collinear with the rotation axis 15 of the drive shaft 12.
  • the shape, width, height, and depth of the engagement bore 24 may vary in order to be compatible with a variety of external power tools.
  • the engagement bore 24 has a rectangular shape with either a quarter of an inch width or three eights of an inch width as these sizes are the most common coupling bits on today's market.
  • the external surface of the attachment body 23 may be used as the mating element for the external power tool.
  • the external surface may be hexagonal in shaped.
  • the present invention also utilizes a clutch-type mechanism in order to limit the amount of torque applied to the external object, thus preventing over tightening as well as prevent the fastener-engagement body 6 from stripping the head of the external object.
  • the clutch- type mechanism comprises a recoiling mechanism 25 and a toothed clutch coupling 27.
  • the drive shaft 12 comprises a front shaft 13 and a rear shaft 14.
  • the front shaft 13 is positioned adjacent to the ratchet head 2 and is rotatably attached within the tubular handle 3.
  • the rear shaft 14 received the torque from the external power source and passes said torque to the front shaft 13.
  • the rear shaft 14 is positioned adjacent to the front shaft 13, opposite to the ratchet head 2.
  • the rear shaft 14 is rotatably and slidably attached within the tubular handle 3.
  • the rear shaft 14 is slidably attached within the tubular handle 3 in order to allow the rear shaft 14 to engage and disengage the front shaft 13 under specific circumstances through the toothed clutch coupling 27, i.e. the magnitude of torque being passed through the drive shaft 12.
  • the toothed clutch coupling 27 is mechanically integrated in between the front shaft 13 and the rear shaft 14.
  • the toothed clutch coupling 27 may be positioned into two states, an engaged state and a disengaged state. In the engaged state, the rear shaft 14 is mechanically connected to the front shaft 13, thus allowing torque to be transferred between the rear shaft 14 and the front shaft 13. In the disengaged state, the rear shaft 14 is able spin relative to the front shaft 13, thus no torque is transferred from the rear shaft 14 to the front shaft 13.
  • the recoiling mechanism 25 continuously applies a force onto the rear shaft 14 which pushes the rear shaft 14 into the front shaft 13, forcing the toothed clutch coupling 27 into the engaged state.
  • the recoiling mechanism 25 is operatively coupled between the rear shaft 14 and the tubular handle 3, wherein the recoiling mechanism 25 is used to bias the rear shaft 14 towards the front shaft 13.
  • the toothed clutch coupling 27 is in the engaged state by default and becomes disengages only when the torque difference between the rear shaft 14 and the front shaft 13 reaches a specific limit.
  • the toothed clutch coupling 27 slips and allows the relative motion between the rear shaft 14 and the front shaft 13. This ensures that the external object does not experience a high magnitude of torque as this can lead damage the external object; i.e. stripping of the external object.
  • One type of recoiling mechanism 25 comprises a compression spring 26.
  • the compression spring 26 is concentrically positioned about the rear shaft 14, within the tubular handle 3.
  • a first end 28 of the compression spring 26 is connected to the rear shaft 14, adjacent to the front shaft 13.
  • the second end 29 of the compression spring 26 is terminally connected to the tubular handle 3, opposite the ratchet head 2.
  • the compression spring 26 applies an axial force onto the rear shaft 14 that pushes the rear shaft 14 into the front shaft 13, thus engaging the toothed clutch coupling 27.
  • first bearing 21 is concentrically mounted about the front shaft 13, within the tubular handle 3. Additionally, the first bearing 21 is positioned adjacent to the proximal base 16. Resultantly, the front shaft 13 is rotatably attached to the tubular handle 3 by the first bearing 21, thus allowing the front shaft 13 to rotate freely relative to the tubular handle 3.
  • second bearing 22 is concentrically mounted about the rear shaft 14 within the tubular handle 3. The second bearing 22 is positioned in between the front shaft 13 and the recoiling mechanism 25. Resultantly, the rear shaft 14 is rotatably mounted to the tubular handle 3 by the second bearing 22, thus allowing the rear shaft 14 to rotate freely relative to the tubular handle 3.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Details Of Spanners, Wrenches, And Screw Drivers And Accessories (AREA)

Abstract

A power driven direct drive ratchet/wrench tool allows a user to tighten and loosen fasteners in tight spaces efficiently and effectively. The tool includes a tool housing, a fastener-engagement body, a spur gear, a drive shaft, and a plurality of drive pins. The tool housing acts as the structural element and includes a ratchet head, a tubular handle, and a gear-receiving cavity. The ratchet head is terminally connected to the tubular handle. The gear-receiving cavity laterally traverses into the ratchet head and houses the spur gear and the fastener-engagement body. The drive shaft is rotatably mounted within the tubular handle. The plurality of drive pins is connected to a proximal base of the drive shaft, about a rotation axis of the drive shaft. In order to transmit torque, an at least one arbitrary pin from the plurality of drive pins is mechanically engaged to the spur gear.

Description

Power-Driven Direct Drive Ratchet/Wrench Tool
The current application claims a priority to the U.S. Provisional Patent application serial number 62/328,102 filed on April 27, 2016.
FIELD OF THE INVENTION The present invention relates generally to power tools, ratchets and wrenches to be specific. In particular, the present invention is a power-driven direct drive
ratchet/wrench tool which allows a user to speed up the process of tightening or loosening an external object such as a screw, bold, nut, and other similar fasteners, where space and access to the external object is limited.
BACKGROUND OF THE INVENTION
Traditional wrench-type tools used for tightening and loosening fasteners provide users with a mechanical advantage in order to allow the user to apply a significantly large amount of torque to the fastener. In certain cases, the amount of torque is still insufficient and the user must then turn to powered wrench-type tools. These types of tools are powered by an external source, such as a pneumatic driver, and apply said force onto the fastener. Power driven tools significantly increase the torque provided and the time required to tighten or loosen as fastener. One of the main downsides of power driven tools is their relative size. Because of the machinery and technology required for the operation of these types of tools, the resulting tool is bulky and hard to maneuver, especially in low clearance areas. Therefore, there is a need for a power-driven tool which provides the benefits of power driven tools without the associated large profile. The objective of the present invention is to create a power-driven tool to speed up the process of twisting, turning or loosening an object, i.e. bolt, screw, nut etc., where direct/frontal access is limited or restricted by other conventional tools. The present invention utilizes a unique drive train which effectively transmits torque onto the fastener and allows for the reduction of the overall profile of the tool.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a perspective view of the present invention.
FIG. 2 is an exploded perspective view of the present invention.
FIG. 3 is a cross-section view of the present invention.
FIG. 4 is a detailed view about circle A from FIG. 3.
DETAIL DESCRIPTIONS OF THE INVENTION
All illustrations of the drawings are for the purpose of describing selected versions of the present invention and are not intended to limit the scope of the present invention.
The present invention is an attachment for a power tool. More specifically, the present invention is a direct drive ratchet/wrench tool powered by an external power tool which allows a user to speed up the process of tightening and loosening a fastener, especially if the fastener is in a hard to reach area with little to no clearance. The present invention may be utilized with and by a variety of external power tools including, but not limited to, electric drivers and pneumatic drivers.
Referring to FIG. 1 and FIG. 2, the present invention comprises a tool housing 1, a drive shaft 12, a spur gear 9, a plurality of drive pins 17, and a fastener-engagement body 6. The tool housing 1 acts as the structural element of the present invention and comprises a ratchet head 2, a tubular handle 3, and a gear-receiving cavity 5. The ratchet head 2 is a cylindrical housing which encloses and supports the spur gear 9 and the fastener-engagement body 6. Similar to traditional wrench designs, the ratchet head 2 is a terminally connected to the tubular handle 3. The gear-receiving cavity 5 laterally traverses into the ratchet head 2 to receive the spur gear 9 and the fastener-engagement body 6. More specifically, the gear-receiving cavity 5 intersects a lumen 4 of the tubular handle 3 and is orientated perpendicular to the tubular handle 3. The spur gear 9 transmits torque from the drive shaft 12 to the fastener-engagement body 6, which in turn transmits said torque onto an external object such as a bolt, screw, nut, or other similar fastener. As a result, the spur gear 9 is rotatably mounted within the gear-receiving cavity 5;
additionally, the spur gear 9 comprises a first face 10. The fastener-engagement body 6 acts as the interface element of the present invention to physically engage and apply a torque force onto the external object. The fastener-engagement body 6 is adjacently connected to the spur gear 9, opposite the ratchet head 2. More specifically, the fastener- engagement body 6 is connected onto the first face 10 of the spur gear 9.
The drive shaft 12 and the plurality of drive pins 17 transfer torque and rotation motion from the external power tool to the spur gear 9. The drive shaft 12 is an elongated cylinder composed of a strong material such as steel. Referring to FIG. 2 and FIG. 3, the drive shaft 12 is concentrically and rotatably mounted within the tubular handle 3. It is preferred that the drive shaft 12 is rotatably mounted within the tubular handle 3 through the use of multiple bearings. The plurality of drive pins 17 engages the spur gear 9 to transfer torque smoothly, contrary to traditional use of offset gears. Because the plurality of drive pins 17 is used, the tool housing 1 and the overall profile of the present invention can be reduced to a considerably slimmer design. For efficient transfer of torque, a rotation axis 11 of the spur gear 9 is oriented perpendicular to a rotation axis 15 of the drive shaft 12. In alternative embodiments of the present invention, the rotation axis 11 of the spur gear 9 may be oriented at an obtuse or an acute angle relative to the rotation axis 15 of the drive shaft 12. To accommodate for this orientation different types of gear designs may be used for the spur gear 9. The plurality of drive pins 17 is radially distributed about the rotation axis 15 of the drive shaft 12 with each of the plurality of drive pins 17 being perpendicularly connected to a proximal base 16 of the drive shaft 12; wherein the proximal base 16 is positioned adjacent to the ratchet head 2. This positions the plurality of drive pins 17 directly next to the spur gear 9. In order to transfer torque, an at least one arbitrary pin from the plurality of drive pins 17 is mechanically engaged to the spur gear 9, wherein the arbitrary pin represents any one from the plurality of drive pins 17. The spur gear 9 in conjunction with the plurality of drive pins 17 produce more torque than traditional off-set gear driven tools.
The plurality of drive pins 17 is able to transfer torque to the spur gear 9 through a continuous partial engagement. In other words, only a certain number from the plurality of drive pins 17 is, at one point, engaged with the spur gear 9. To achieve this, the spur gear 9 must be specifically positioned relative to the plurality of drive pins 17. In particular, the first face 10 of the spur gear 9 is positioned coincident with the rotation axis 15 of the drive shaft 12. As a result, the arbitrary pin, the pin from the plurality of drive pins 17 that is engaged to the spur gear 9, is always traveling with a lateral velocity of the same direction. In other words, the arbitrary pin is located in the lower half of the drive shaft 12, below the rotation axis 15 of the drive shaft 12. This ensures that the lateral force translated from the arbitrary pin to the spur gear 9 is always in the same direction, regardless of the magnitude. This prevents the spur gear 9 from locking up and ensures maximum torque transfer from the drive shaft 12 to the spur gear 9.
Referring to FIG. 4, each of the plurality of drive pins 17 comprises a fixed end 18, a tooth body 19, and a free end 20. The fixed end 18 is connected onto the proximal base 16. To ensure a smooth engagement between each of the plurality of drive pins 17 and the teeth of the spur gear 9, the tooth body 19 is tapered from the fixed end 18 to the free end 20. The tapered feature takes into account the fact that the plurality of drive pins 17 is rotating about the rotation axis 15 of the drive shaft 12, which is oriented perpendicular to the rotation axis 11 of the spur gear 9. It is preferred that there are three pins within the plurality of drive pins 17 that are equally distributed about the rotation axis 15 of the drive shaft 12 as seen in FIG. 2. Furthermore, it is preferred that each of the plurality of drive pins 17 is truncated conical shape. The truncated conical shape compliments the tooth design of the spur gear 9.
In one embodiment of the present invention, referring to FIG. 2, the fastener- engagement body 6 acts similar to a wrench socket and comprises a torque-transferring portion 7 and a fastener-receiving cavity 8. This embodiment is designed for bolts, nuts, and other similar fasteners that require a socket to engage the fastener. The torque- transferring portion 7 is a cylindrical extrusion which transfers torque from the spur gear 9 onto the external object. The torque-transferring portion 7 is concentrically and adjacently connected to the spur gear 9, opposite the ratchet head 2. The torque is applied to the external object through the fastener-receiving cavity 8. The fastener-receiving cavity 8 is complimentary shaped to interlock with the external object and laterally traverses through the torque-transferring portion 7 and the spur gear 9. For example, referring to FIG. 2, the fastener-receiving cavity 8 may be hexagonal shaped to engage with traditional hexagonal shaped bolts and nuts. In general, the size, shape, and depth of the fastener-receiving cavity 8 may vary to accommodate a variety of different fasteners. The fastener-receiving cavity 8 is positioned collinear with the rotation axis 11 of the spur gear 9 in order to efficiently transfer torque from the spur gear 9 to the external object. Referring to FIG. 3, the torque-transferring portion 7 is also laterally offset from the proximal base 16 in order to provide clearance for the plurality of drive pins 17.
In another embodiment of the present invention, the fastener engagement body is similar to a drill bit, wherein the fastener-receiving cavity 8 is replaced with a drive bit. The drive bit is adjacently connected to the torque-transferring portion 7 with a central axis of the drive bit being positioned collinear with the rotation axis 11 of the spur gear 9. This embodiment is designed for fasteners such as screws and other fasteners with slotted engagement heads. The cross section and shape of the drive bit may vary to
accommodate a variety of fastener designs.
The present invention is attached to the external power tool through an attachment body 23 and an engagement bore 24, similar to traditional tools. The attachment body 23 is a cylindrical extrusion that is positioned opposite to the plurality of drive pins 17, across the drive shaft 12. Additionally, the attachment body 23 is terminally connected to the drive shaft 12. The engagement bore 24 receives the external power tool to allow the external power tool to rotate the drive shaft 12 and therefore rotate the fastener- engagement body 6. More specifically, the engagement bore 24 traverses into the attachment body 23, opposite the drive shaft 12. Additionally, in order to ensure that the drive train of the present invention is balanced, the engagement bore 24 is positioned collinear with the rotation axis 15 of the drive shaft 12. The shape, width, height, and depth of the engagement bore 24 may vary in order to be compatible with a variety of external power tools. In the preferred embodiment of the present invention, the engagement bore 24 has a rectangular shape with either a quarter of an inch width or three eights of an inch width as these sizes are the most common coupling bits on today's market. In an alternative embodiment of the present invention, the external surface of the attachment body 23 may be used as the mating element for the external power tool. For example, the external surface may be hexagonal in shaped.
In one embodiment, the present invention also utilizes a clutch-type mechanism in order to limit the amount of torque applied to the external object, thus preventing over tightening as well as prevent the fastener-engagement body 6 from stripping the head of the external object. The clutch- type mechanism comprises a recoiling mechanism 25 and a toothed clutch coupling 27. In this embodiment, the drive shaft 12 comprises a front shaft 13 and a rear shaft 14. The front shaft 13 is positioned adjacent to the ratchet head 2 and is rotatably attached within the tubular handle 3. The rear shaft 14 received the torque from the external power source and passes said torque to the front shaft 13. Thus, the rear shaft 14 is positioned adjacent to the front shaft 13, opposite to the ratchet head 2.
Additionally, the rear shaft 14 is rotatably and slidably attached within the tubular handle 3. The rear shaft 14 is slidably attached within the tubular handle 3 in order to allow the rear shaft 14 to engage and disengage the front shaft 13 under specific circumstances through the toothed clutch coupling 27, i.e. the magnitude of torque being passed through the drive shaft 12. Thus, the toothed clutch coupling 27 is mechanically integrated in between the front shaft 13 and the rear shaft 14. The toothed clutch coupling 27 may be positioned into two states, an engaged state and a disengaged state. In the engaged state, the rear shaft 14 is mechanically connected to the front shaft 13, thus allowing torque to be transferred between the rear shaft 14 and the front shaft 13. In the disengaged state, the rear shaft 14 is able spin relative to the front shaft 13, thus no torque is transferred from the rear shaft 14 to the front shaft 13.
The recoiling mechanism 25 continuously applies a force onto the rear shaft 14 which pushes the rear shaft 14 into the front shaft 13, forcing the toothed clutch coupling 27 into the engaged state. In particular, the recoiling mechanism 25 is operatively coupled between the rear shaft 14 and the tubular handle 3, wherein the recoiling mechanism 25 is used to bias the rear shaft 14 towards the front shaft 13. As a result, the toothed clutch coupling 27 is in the engaged state by default and becomes disengages only when the torque difference between the rear shaft 14 and the front shaft 13 reaches a specific limit. In particular, when the torque difference between the front shaft 13 and the rear shaft 14 reaches the specific limit, the toothed clutch coupling 27 slips and allows the relative motion between the rear shaft 14 and the front shaft 13. This ensures that the external object does not experience a high magnitude of torque as this can lead damage the external object; i.e. stripping of the external object.
One type of recoiling mechanism 25 comprises a compression spring 26. The compression spring 26 is concentrically positioned about the rear shaft 14, within the tubular handle 3. A first end 28 of the compression spring 26 is connected to the rear shaft 14, adjacent to the front shaft 13. The second end 29 of the compression spring 26 is terminally connected to the tubular handle 3, opposite the ratchet head 2. As a result, the compression spring 26 applies an axial force onto the rear shaft 14 that pushes the rear shaft 14 into the front shaft 13, thus engaging the toothed clutch coupling 27.
In this embodiment of the present invention, the front shaft 13 and the rear shaft
14 are rotatably mounted within the tubular handle 3 through a first bearing 21 and a second bearing 22. More specifically, the first bearing 21 is concentrically mounted about the front shaft 13, within the tubular handle 3. Additionally, the first bearing 21 is positioned adjacent to the proximal base 16. Resultantly, the front shaft 13 is rotatably attached to the tubular handle 3 by the first bearing 21, thus allowing the front shaft 13 to rotate freely relative to the tubular handle 3. In a similar fashion, the second bearing 22 is concentrically mounted about the rear shaft 14 within the tubular handle 3. The second bearing 22 is positioned in between the front shaft 13 and the recoiling mechanism 25. Resultantly, the rear shaft 14 is rotatably mounted to the tubular handle 3 by the second bearing 22, thus allowing the rear shaft 14 to rotate freely relative to the tubular handle 3.
Although the invention has been explained in relation to its preferred
embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.

Claims

What is claimed is:
1. A power driven direct drive ratchet/wrench tool comprises:
a tool housing;
a fastener-engagement body;
a spur gear;
a drive shaft;
a plurality of drive pins;
the tool housing comprises a ratchet head, a tubular handle, and a gear- receiving cavity;
the ratchet head being terminally connected to the tubular handle;
the gear-receiving cavity laterally traversing into the ratchet head, intersecting a lumen of the tubular handle;
the gear-receiving cavity being oriented perpendicular to the tubular handle;
the spur gear being rotatably mounted within the gear-receiving cavity; the fastener-engagement body being adjacently connected to the spur gear, opposite the ratchet head;
the drive shaft being concentrically and rotatably mounted within the tubular handle;
the plurality of drive pins being radially distributed about a rotation axis of the drive shaft;
each of the plurality of drive pins being perpendicularly connected to a proximal base of the drive shaft; and
at least one arbitrary pin from the plurality of drive pins being mechanically engaged to the spur gear.
The power driven direct drive ratchet/wrench tool as claimed in
comprises:
a recoiling mechanism;
a toothed clutch coupling;
the drive shaft comprises a front shaft and a rear shaft; the front shaft being positioned adjacent to the ratchet head;
the front shaft being rotatably attached within the tubular handle; the rear shaft being positioned adjacent to the front shaft, opposite the ratchet head;
the rear shaft being rotatably and slidably mounted within the tubular handle;
the toothed clutch coupling being mechanically integrated in between the front shaft and the rear shaft; and
the recoiling mechanism being operatively coupled between the rear shaft and the tubular handle, wherein the recoiling mechanism is used to bias the rear shaft towards the front shaft.
3. The power driven direct drive ratchet/wrench tool as claimed in claim 2
comprises:
the recoiling mechanism comprises a compression spring;
the compression spring being concentrically positioned about the rear shaft, within the tubular handle;
a first end of the compression spring being connected to the rear shaft, adjacent to the front shaft; and
a second end of the compression spring being terminally connected to the tubular handle, opposite the ratchet head.
4. The power driven direct drive ratchet/wrench tool as claimed in claim 2
comprises:
a first bearing;
a second bearing;
the first bearing being concentrically mounted about the front shaft within the tubular handle;
the first bearing being positioned adjacent to the proximal base; the front shaft being rotatably mounted to the tubular handle by the first bearing; the second bearing being concentrically mounted about the rear shaft within the tubular handle;
the second bearing being positioned in between the front shaft and a recoiling mechanism; and
the rear shaft being rotatably mounted to the tubular handle by the second bearing.
The power driven direct drive ratchet/wrench tool as claimed in claim 1 comprises:
an attachment body;
an engagement bore;
the attachment body being positioned opposite to the plurality of drive pins, across the drive shaft;
the attachment body being terminally connected to the drive shaft;
the engagement bore traversing into the attachment body, opposite the drive shaft; and
the engagement bore being collinear with the rotation axis of the drive shaft.
The power driven direct drive ratchet/wrench tool as claimed in claim 1 comprises:
the spur gear comprises a first face;
the fastener-engagement body being connected onto the first face; and the first face being positioned coincident with the rotation axis of the drive shaft.
The power driven direct drive ratchet/wrench tool as claimed in claim 1 , wherein a rotation axis of the spur gear is oriented perpendicular to the rotation axis of the drive shaft.
8. The power driven direct drive ratchet/wrench tool as claimed in claim 1 comprises:
the fastener-engagement body comprises a torque-transferring portion and a fastener-receiving cavity;
the torque-transferring portion being concentrically and adjacently connected to the spur gear, opposite the ratchet head;
the torque-transferring portion being laterally offset from the proximal base;
the fastener-receiving cavity laterally traversing through the torque- transferring portion and the spur gear; and
the fastener-receiving cavity being collinear with a rotation axis of the spur gear.
9. The power driven direct drive ratchet/wrench tool as claimed in claim 1
comprises:
each of the plurality of drive pins comprises a fixed end, a tooth body, and a free end;
the fixed end being connected onto the proximal base; and
the tooth body tapering from the fixed end to the free end.
10. The power driven direct drive ratchet/wrench tool as claimed in claim 1, wherein each of the plurality of drive pins is truncated conical shape.
PCT/IB2017/052453 2014-04-30 2017-04-27 Power-driven direct drive ratchet/wrench tool WO2017187388A1 (en)

Priority Applications (17)

Application Number Priority Date Filing Date Title
CA3022514A CA3022514A1 (en) 2016-04-27 2017-04-27 Power-driven direct drive ratchet/wrench tool
JP2019508313A JP2019515809A (en) 2016-04-27 2017-04-27 Power Drive Direct Drive Ratchet / Wrench Tool
AU2017257440A AU2017257440A1 (en) 2016-04-27 2017-04-27 Power-driven direct drive ratchet/wrench tool
CN201780039652.8A CN109414805A (en) 2016-04-27 2017-04-27 Power directly-driving formula ratchet/Wrench
EP17788925.0A EP3436218A4 (en) 2016-04-27 2017-04-27 Power-driven direct drive ratchet/wrench tool
US15/650,768 US10081094B2 (en) 2014-04-30 2017-07-14 Multi-grip socket bit
US15/882,787 US10882162B2 (en) 2014-04-30 2018-01-29 Spherical anti-slip fastener remover
US16/107,842 US10780556B2 (en) 2014-04-30 2018-08-21 Anti-slip, multidirectional driver bit
US16/107,899 US10814461B2 (en) 2014-04-30 2018-08-21 Power-driven direct drive ratchet/wrench tool
US16/255,341 US11154969B2 (en) 2016-04-27 2019-01-23 Fastener extractor device
US29/698,391 USD880968S1 (en) 2015-04-30 2019-07-16 Driver bit
US16/514,117 US20190337131A1 (en) 2016-04-27 2019-07-17 Fastener Extractor and Dislodging Tool Apparatus
US29/707,740 USD885149S1 (en) 2017-04-27 2019-09-30 Fastener extractor device
US17/509,633 US20220040834A1 (en) 2016-04-27 2021-10-25 Fastener Extractor Device
US17/672,538 US11590637B2 (en) 2017-04-27 2022-02-15 Methods and apparatuses for extracting and dislodging fasteners
US18/049,489 US20230060398A1 (en) 2016-04-27 2022-10-25 Methods and Apparatuses for Extracting Fasteners
US18/176,015 US20230256576A1 (en) 2016-04-27 2023-02-28 Methods and Apparatuses for Extracting and Dislodging Fasteners

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201662328102P 2016-04-27 2016-04-27
US62/328,102 2016-04-27

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
US29592608 Continuation-In-Part 2014-04-30 2017-01-31

Related Child Applications (4)

Application Number Title Priority Date Filing Date
US29/604,799 Continuation-In-Part USD829069S1 (en) 2014-04-30 2017-05-19 Multi-grip socket bit
US15/601,864 Continuation-In-Part US20170252905A1 (en) 2014-04-30 2017-05-22 Anti-slip Wrench-Type Tool
PCT/IB2017/054379 Continuation-In-Part WO2018172831A1 (en) 2016-04-27 2017-07-19 Multi-grip socket bit
US16/107,842 Continuation-In-Part US10780556B2 (en) 2014-04-30 2018-08-21 Anti-slip, multidirectional driver bit

Publications (1)

Publication Number Publication Date
WO2017187388A1 true WO2017187388A1 (en) 2017-11-02

Family

ID=60161282

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/IB2017/052453 WO2017187388A1 (en) 2014-04-30 2017-04-27 Power-driven direct drive ratchet/wrench tool

Country Status (7)

Country Link
EP (1) EP3436218A4 (en)
JP (1) JP2019515809A (en)
CN (1) CN109414805A (en)
AU (1) AU2017257440A1 (en)
CA (1) CA3022514A1 (en)
TW (1) TW201738043A (en)
WO (1) WO2017187388A1 (en)

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USD859946S1 (en) 2017-05-22 2019-09-17 Grip Holdings Llc Twin cavity ball end screw bit
USD859947S1 (en) 2017-05-22 2019-09-17 Grip Holdings Llc Ball end screw bit
CN114147654A (en) * 2021-12-13 2022-03-08 安徽德孚转向系统股份有限公司 Spanner
US11504829B2 (en) 2020-03-19 2022-11-22 Joseph Pannone Powered socket wrench assembly
US11590637B2 (en) 2017-04-27 2023-02-28 Grip Holdings Llc Methods and apparatuses for extracting and dislodging fasteners
US11701757B2 (en) 2018-09-19 2023-07-18 Grip Holdings Llc Anti-slip fastener remover tool
USD1026602S1 (en) 2022-03-17 2024-05-14 Grip Holdings Llc Selectable twist tool
US12023786B2 (en) 2017-02-15 2024-07-02 Grip Holdings Llc Multi-directional driver bit
USD1042059S1 (en) 2022-02-25 2024-09-17 Grip Holdings Llc Percussion drive

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US11154969B2 (en) 2016-04-27 2021-10-26 Grip Holdings Llc Fastener extractor device
CN111618771A (en) * 2020-04-16 2020-09-04 浙江飞碟汽车制造有限公司 Tool for assembling and disassembling bolt in narrow space and using method thereof

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Cited By (10)

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Publication number Priority date Publication date Assignee Title
US12023786B2 (en) 2017-02-15 2024-07-02 Grip Holdings Llc Multi-directional driver bit
US11590637B2 (en) 2017-04-27 2023-02-28 Grip Holdings Llc Methods and apparatuses for extracting and dislodging fasteners
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USD859947S1 (en) 2017-05-22 2019-09-17 Grip Holdings Llc Ball end screw bit
US11701757B2 (en) 2018-09-19 2023-07-18 Grip Holdings Llc Anti-slip fastener remover tool
US11504829B2 (en) 2020-03-19 2022-11-22 Joseph Pannone Powered socket wrench assembly
CN114147654A (en) * 2021-12-13 2022-03-08 安徽德孚转向系统股份有限公司 Spanner
CN114147654B (en) * 2021-12-13 2024-01-26 安徽德孚转向系统股份有限公司 Spanner wrench
USD1042059S1 (en) 2022-02-25 2024-09-17 Grip Holdings Llc Percussion drive
USD1026602S1 (en) 2022-03-17 2024-05-14 Grip Holdings Llc Selectable twist tool

Also Published As

Publication number Publication date
EP3436218A1 (en) 2019-02-06
CA3022514A1 (en) 2017-11-02
TW201738043A (en) 2017-11-01
AU2017257440A1 (en) 2018-11-15
JP2019515809A (en) 2019-06-13
CN109414805A (en) 2019-03-01
EP3436218A4 (en) 2020-01-01

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