Driver Having Helical Toothed Blades
20220297270 · 2022-09-22
Inventors
Cpc classification
B25B15/005
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A driver for threaded fasteners has helical blades with engagement surfaces on one side and teeth on an opposite side. The engagement surfaces engage surfaces within the recesses in the fastener head to drive the fastener when the driver is rotated in a first direction. The teeth engage the fastener head when the driver is rotated in an opposite direction to remove the fastener.
Claims
1. A driver for applying torque to a threaded fastener, said driver comprising: a body having first and second ends oppositely disposed, a longitudinal axis extending lengthwise along said body between said first and second ends; a plurality of blades positioned at said first end of said body, each said blade extending lengthwise along and projecting away from said longitudinal axis, each said blade having a helical twist about said longitudinal axis, each said blade defining a respective engagement surface on a first side thereof and a respective back surface on a second side thereof oppositely disposed from said first side, each said engagement surface adapted for engagement with said threaded fastener, at least one said back surface comprising a plurality of teeth projecting transversely to said back surface.
2. The driver according to claim 1, wherein said teeth extend along said at least one back surface in a direction transverse to said longitudinal axis.
3. The driver according to claim 2, wherein said at least one back surface comprises three said teeth.
4. The driver according to claim 1, wherein each said engagement surface is oriented angularly with respect to said longitudinal axis.
5. The driver according to claim 4, wherein each said engagement surface has an orientation angle ranging from 15° to 60° relative to said longitudinal axis.
6. The driver according to claim 4, wherein each said engagement surface has an orientation angle of 30° relative to said longitudinal axis.
7. The driver according to claim 4, wherein each said back surface is oriented angularly with respect to said longitudinal axis.
8. The driver according to claim 7, wherein each said back surface has an orientation angle ranging from 15° to 60° relative to said longitudinal axis.
9. The driver according to claim 7, wherein each said back surface has an orientation angle of 30° relative to said longitudinal axis.
10. The driver according to claim 1, wherein each said engagement surface and each said back surface is oriented angularly with respect to said longitudinal axis, each said back surface having an orientation angle equal to an orientation angle of said engagement surface relative to said longitudinal axis.
11. The driver according to claim 1, wherein each said engagement surface comprises a flat surface.
12. The driver according to claim 1, wherein each said engagement surface comprises a curved surface.
13. The driver according to claim 12, wherein said curved surface is selected from the group consisting essentially of convex surfaces and concave surfaces.
14. The driver according to claim 1, wherein each said back surface comprises a curved surface.
15. The driver according to claim 14, wherein said curved surface is selected from the group consisting essentially of convex surfaces and concave surfaces.
16. The driver according to claim 1, comprising four of said blades.
17. The driver according to claim 1, comprising three of said blades.
18. The driver according to claim 1, wherein each said blade further comprises an end surface extending between said engagement surface and said back surface, each said end surface having a polygonal perimeter, each said end surface being oriented angularly with respect to said longitudinal axis, each said end surface defining a respective vertex, each said vertex meeting at an apex located on said longitudinal axis.
19. The driver according to claim 18, wherein each said perimeter comprises a triangle.
20. The driver according to claim 1, further comprising a plurality of second blades positioned at said second end of said body, each said second blade extending lengthwise along and projecting away from said longitudinal axis, each said second blade having a helical twist about said longitudinal axis, each said second blade defining a respective second engagement surface on a first side thereof and a respective second back surface on a second side thereof oppositely disposed from said first side of said second blade, each said second engagement surface adapted for engagement with said threaded fastener.
21. The driver according to claim 20, wherein at least one said second back surface comprises a plurality of second teeth projecting transversely thereto.
22. The driver according to claim 21, wherein said second teeth extend along said at least one second back surface in a direction transverse to said longitudinal axis.
23. The driver according to claim 22, wherein said at least one second back surface comprises three said second teeth.
24. The driver according to claim 20, wherein said helical twist of each said second blade is in a direction opposite to said helical twist of said first blades.
25. The driver according to claim 20, where each said second engagement surface is oriented angularly with respect to said longitudinal axis.
26. The driver according to claim 20, wherein said body has an outer surface, a portion of said outer surface positioned between said first and second ends comprising a plurality of flat surfaces.
27. The driver according to claim 26, further comprising a groove extending circumferentially around said body, said groove positioned between said first and second ends.
28. The driver according to claim 20, wherein each said second blade further comprises an end surface extending between said second engagement surface and said second back surface, each said end surface having a polygonal perimeter, each said end surface being oriented angularly with respect to said longitudinal axis, each said end surface defining a respective vertex, each said vertex meeting at an apex located on said longitudinal axis.
29. The driver according to claim 28, wherein each said perimeter comprises a triangle.
30. The driver according to claim 1, wherein each said back surface comprises said plurality of said teeth.
31. A driver for applying torque to a threaded fastener, said driver comprising: a body having first and second ends oppositely disposed, a longitudinal axis extending lengthwise along said body between said first and second ends; a plurality of blades positioned at said first end of said body, each said blade extending lengthwise along and projecting away from said longitudinal axis, each said blade having a helical twist about said longitudinal axis, each said blade defining a respective engagement surface on a first side thereof and a respective back surface on a second side thereof oppositely disposed from said first side, each said engagement surface adapted for engagement with said threaded fastener, each said blade further comprises an end surface extending between said engagement surface and said back surface, each said end surface having a polygonal perimeter, each said end surface being oriented angularly with respect to said longitudinal axis, each said end surface defining a respective vertex, each said vertex meeting at an apex located on said longitudinal axis.
32-59. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0018] The invention concerns a driver for applying torque to a threaded fastener.
[0019] As shown in
[0020] In the embodiments 10 and 22 as shown in
[0021] As shown in
[0022] As further shown in
[0023]
[0024] It is expected that drivers according to the invention will provide advantages when driving threaded fasteners into and withdrawing fasteners from various materials.