Blind fastener
12397357 ยท 2025-08-26
Assignee
Inventors
Cpc classification
B23B35/00
PERFORMING OPERATIONS; TRANSPORTING
B23B51/08
PERFORMING OPERATIONS; TRANSPORTING
F16B5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23B27/14
PERFORMING OPERATIONS; TRANSPORTING
F16B19/1054
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B19/1072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B23B35/00
PERFORMING OPERATIONS; TRANSPORTING
B23B27/14
PERFORMING OPERATIONS; TRANSPORTING
B23B51/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method includes inserting a machining tool through a hole of at least one workpiece that includes a first surface and a second surface opposite the first surface and extends from the first surface to the second surface. The hole forms an inner wall. The machining tool includes a shaft and a cutting tip proximate to one end of the shaft. The cutting tip includes a cutting portion. The method includes positioning the cutting portion of the cutting tip to abut an edge of the hole. The edge is located at a junction of the second surface of the one of the at least one workpiece and the inner wall. The method includes forming a surface modification at the edge with the cutting tip. The method includes removing the machining tool from the hole. The method includes installing a fastener within the hole. The fastener engages the surface modification.
Claims
1. A machining tool, comprising: a shaft having a longitudinal axis; and a cutting tip located proximate to one end of the shaft, wherein the cutting tip includes a first side, a second side opposite the first side, and a width extending from the first side to the second side, a first edge, a second edge opposite the first edge, a cutting portion, wherein the cutting portion includes a concave cutting surface extending towards the second edge from the first edge to a first location between the first edge and the second edge, wherein the concave cutting surface extends across an entirety of the width of the cutting tip, wherein the concave cutting surface includes an inner radius, wherein the inner radius of the concave cutting surface is sized and shaped to form a surface modification having an outer radius corresponding to the inner radius of the concave cutting surface, a first ramped portion extending obliquely in a first direction relative to a longitudinal axis of the shaft, wherein the first ramped portion extends from the second edge to a second location between the first edge and the second edge, and a second ramped portion extending uniformly obliquely in a second direction relative to the longitudinal axis of the shaft, wherein the second direction is different than the first direction, wherein the second ramped portion extends from the first location to the first ramped portion at the second location, wherein the shaft comprises a first opening, and wherein the cutting portion is configured to be retractable into the shaft in a retracted position at the first opening and configured to be extendable from the shaft in an extended position at the first opening.
2. The machining tool of claim 1, further comprising a drill bit located at the one end of the shaft.
3. The machining tool of claim 1, wherein the cutting tip is composed of carbide.
4. The machining tool of claim 3, wherein the cutting tip is coated with a diamond coating.
5. The machining tool of claim 1, wherein the machining tool includes a spring member located within the shaft, wherein the spring member is attached to the cutting tip, and wherein the spring member is configured to facilitate movement of the cutting tip to and from its retracted position to its extended position.
6. The machining tool of claim 5, further comprising a pin disposed within the shaft and extending transversely to the longitudinal axis of the shaft.
7. The machining tool of claim 6, wherein the spring member is rotatable about the pin between the extended position and the retracted position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) References are made to the accompanying drawings that form a part of this disclosure and that illustrate embodiments in which the systems and methods described in this Specification can be practiced.
(2)
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(8) Like reference numbers represent the same or similar parts throughout.
DETAILED DESCRIPTION
(9) Referring to
(10) In some embodiments, the workpiece 18 is composed of a composite material. In some embodiments, the workpiece 18 is substantially composed of a composite material. In some embodiments, the workpiece 18 is partially composed of a composite material. In some embodiments, the workpiece 18 is composed of a metallic material. In some embodiments, the workpiece 18 is substantially composed of a metallic material. In some embodiments, the workpiece 18 is partially composed of a metallic material. In some embodiments, the workpiece 18 is composed of aluminum.
(11) In some embodiments, the workpiece 20 is composed of a composite material. In some embodiments, the workpiece 20 is substantially composed of a composite material. In some embodiments, the workpiece 20 is partially composed of a composite material. In some embodiments, the workpiece 20 is composed of a metallic material. In some embodiments, the workpiece 20 is substantially composed of a metallic material. In some embodiments, the workpiece 20 is partially composed of a metallic material. In some embodiments, the workpiece 20 is composed of aluminum.
(12) In some embodiments, the core bolt 12 includes an elongated shank portion 30 extending along a longitudinal axis between a first end 32 and a second end 34 opposite the first end 32. In some embodiments, the core bolt 12 terminates with a head 36 at the first end 32. In an embodiment, the head 36 is an enlarged head. In some embodiments, the head 36 may include other shapes and sizes. In some embodiments, a fastener head 38, which is configured to be gripped by an installation tool, extends from the head 36 in a direction away from the elongated shank portion 30. In some embodiments, the fastener head 38 includes a plurality of splines 40 that are configured to be gripped by a correspondingly shaped fastener installation tool. In some embodiments, the elongated shank portion 30 includes a substantially smooth cylindrical portion 42 adjacent the first end 32, a threaded portion 44 adjacent the second end 34, and a thread run-out 46 (i.e., a step) intermediate the smooth cylindrical portion 42 and the threaded portion 44. In some embodiments, the smooth cylindrical portion 42 has an outer diameter 48. In some embodiments, the threaded portion 44 has a major diameter 50 that is less than the outer diameter 48 of the smooth cylindrical portion 42. In some embodiments, the threaded portion 44 includes a minor diameter 52.
(13) Still referring to
(14) In some embodiments, the insert 16 has a substantially tubular portion 90 extending from a first end 92 to a second end 94 opposite the first end 92. The tubular portion 90 has an outer diameter 96 that is sized and shaped to enable the installation of the insert 16 within the sleeve 14. In some embodiments, the outer diameter 96 of the insert 16 is substantially equal to the outer diameter 48 of the smooth cylindrical portion 42 of the core bolt 12. In some embodiments, the tubular portion 90 has internal threads 98 that are complementary to the threaded portion 44 of the core bolt 12. In some embodiments, the tubular portion 90 has a length 100 that is selected such that, when the fastener 10 is in a pre-installation position (see
(15) In some embodiments, the core bolt 12 is composed of steel. In some embodiments, the core bolt 12 is composed of stainless steel. In some embodiments, the core bolt 12 is composed of 300 series stainless steel. In some embodiments, the core bolt 12 is composed of alloy steel. In some embodiments, the core bolt 12 is composed of a corrosion resistant material. In some embodiments, the core bolt 12 is composed of titanium alloy. In some embodiments, the core bolt 12 is composed of nickel alloy. In some embodiments, the sleeve 14 is composed of copper. In some embodiments, the sleeve 14 is composed of brass. In some embodiments, the sleeve 14 is composed of aluminum alloy. In some embodiments, the sleeve 14 is composed of 6066 aluminum alloy. In some embodiments, the sleeve 14 is composed of stainless steel. In some embodiments, the sleeve 14 is composed of 300 series stainless steel.
(16) In some embodiments, the insert 16 is composed of metal. In some embodiments, the insert 16 is composed of copper. In some embodiments, the insert 16 is formed from a material that has lubricating properties. In some embodiments, the insert 16 includes other materials (e.g., other metals, plastics, etc.) that have frictional properties suitable to prevent thread galling and that are sufficiently malleable to aid in bulb formation.
(17) Referring now to
(18) Referring to
(19) Referring now to
(20) Continuing to refer to
(21)
(22) Referring to
(23) Referring to
(24) In some embodiments, the cutting tip 154 is composed of a hardened material. In some embodiments, the cutting tip 154 is composed of a material that is harder than the workpiece 20. In some embodiments, the cutting tip 154 is capable of cutting away part of the material of the workpiece 20. In some embodiments, the cutting tip 154 is composed of carbide. In some embodiments, the cutting tip 154 is coated with a diamond coating.
(25) In some embodiments, the cutting tip 154 includes a first ramped portion 158, a second ramped portion 160, and a cutting portion 162. In some embodiments, the first ramped portion 158 extends obliquely relative to a longitudinal axis of the shaft 152. In some embodiments, the second ramped portion 160 extends obliquely relative to a longitudinal axis of the shaft 152. In some embodiments, the first ramped portion 158 extends in a first direction, while the second ramped portion 160 extends in a second direction. In some embodiments, the first ramped portion 158 and the second ramped portion 160 are configured to enable the cutting tip 154 to extend or retract from the shaft 152 based on contact with the workpiece 18 or the workpiece 20. In some embodiments, the cutting portion 162 is has a concave cutting surface. In some embodiments, the cutting portion 162 includes an inner radius. In some embodiments, when the cutting portion 162 contacts the workpiece 20, the shaft 152 is rotated to remove a portion of the workpiece 20. In some embodiments, the cutting portion 162 is sized and shaped to form a corresponding size and shape of the radius 112 of the surface modification 110.
(26) In some embodiments, the shaft 152 includes a second opening 164. In some embodiments, the second opening 164 is located proximate to the first opening 156. In some embodiments, the second opening 164 is axially formed within the shaft 152. In some embodiments, the second opening 164 enables the cutting tip 154 to be removed from the machining tool 150. In some embodiments, the cutting tip 154 is replaceable.
(27) In some embodiments, the shaft 152 includes a third opening 166 aligned with the first opening 156. In some embodiments, the third opening 166 is configured to enable the cutting tip 154 to retract into the shaft 152. In some embodiments, the shaft includes a spring member 168, one end of which is attached to a pin 170. In some embodiments, the pin 170 extends transversely to a longitudinal axis of the shaft 152. In some embodiments, the spring member 168 is rotatable about the pin 170 to enable the cutting tip 154 to move from a first retracted position, in which the cutting tip 154 is retracted within the shaft 152, to a second position, in which the cutting tip 154 extends outwardly from the first opening 156 of the shaft 152. In some embodiments, the cutting tip 154 is fixed on the shaft 152.
(28) Referring to
(29) In some embodiments, prior to insertion of the machining tool 150 into the holes 22, 24 (see
(30) The terminology used herein is intended to describe embodiments and is not intended to be limiting. The terms a, an, and the include the plural forms as well, unless clearly indicated otherwise. The terms comprises and/or comprising, when used in this Specification, specify the presence of the stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, and/or components.
(31) It is to be understood that changes may be made in detail, especially in matters of the construction materials employed and the shape, size, and arrangement of parts without departing from the scope of the present disclosure. This Specification and the embodiments described are examples, with the true scope and spirit of the disclosure being indicated by the claims that follow.