Tie rod connection for a hydraulic hammer
10112291 ยท 2018-10-30
Assignee
Inventors
Cpc classification
F16B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B13/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B25D2250/361
PERFORMING OPERATIONS; TRANSPORTING
B25D17/00
PERFORMING OPERATIONS; TRANSPORTING
F16B35/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B25D17/00
PERFORMING OPERATIONS; TRANSPORTING
F16B13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A tie rod for use with a powered hammer assembly is provided that includes a body that defines a first end that is configured as a torque end, a second end that is configured as a fastening connecting end, and a longitudinal axis that extends from the first end to the second end, and a bearing surface that is positioned proximate the torque end along the longitudinal axis and that defines a tangent to the surface that forms an oblique angle with the longitudinal axis.
Claims
1. A powered hammer assembly comprising: a lower head that defines a plurality of tie rod bores; an upper head that defines a plurality of tie rod bores, wherein the bores of the lower head and the upper head define longitudinal axes; a power cell; and a plurality of tie rods, wherein at least one tie rod comprises a torque end and a bearing surface positioned adjacent the torque end and the upper head defines at least one bearing surface that is at least partially complimentary shaped to the bearing surface of the tire rod for engagement therewith, wherein at least one of the bearing surfaces of either the upper head or the tie rod define a tangent to the surface that forms an oblique angle to the longitudinal axis of a bore and at least one of the bearing surfaces of the upper head or the tie rod is axis-symmetrical about the longitudinal axis of a bore.
2. The powered hammer assembly of claim 1 wherein both the bearing surfaces of the upper head and the tie rod form an oblique angle with the longitudinal axis of a bore and are axis-symmetrical about the longitudinal axis.
3. The powered hammer assembly of claim 2 wherein every tie rod is similarly configured and every bore of the upper head is positioned adjacent a bearing surface that is complimentary shaped to engage the corresponding bearing surface of the tie rod.
4. The powered hammer assembly of claim 2 wherein the bearing surfaces are all conically shaped.
5. The powered hammer assembly of claim 1 wherein the torque end of the tie rod includes a standardized hexagonal shape.
6. The powered hammer assembly of claim 1 wherein the tie rod further defines a second end that is opposite the torque end and a longitudinal axis that extends between the torque end and the second end.
7. The powered hammer assembly of claim 6 wherein the second end comprises threads.
8. The powered hammer assembly of claim 7 wherein the tie rod further comprises a shank portion positioned between the torque end and the second end along the longitudinal axis.
9. The powered hammer assembly of claim 8 wherein the shank portion is longer than the second threaded end along the longitudinal axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate several embodiments of the disclosure and together with the description, serve to explain the principles of the disclosure. In the drawings:
(2)
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DETAILED DESCRIPTION
(7) Reference will now be made in detail to embodiments of the disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts. In some cases, a reference number will be indicated in this specification and the drawings will show the reference number followed by a letter for example, 100a, 100b etc. It is to be understood that the use of letters immediately after a reference number indicates that these features are similarly shaped and have similar function as is often the case when geometry is mirrored about a plane of symmetry. For ease of explanation in this specification, letters will often not be included herein but may be shown in the drawings to indicate duplications of features discussed within this written specification.
(8) While specific mention will be made to hydraulic hammer assemblies hereinafter, it is to be understood that any of the embodiments discussed herein may be used with any type of powered hammer assembly including those that are mechanically powered, electrically powered, etc.
(9) Referring initially to
(10) Referring now also to
(11) Referring now also to
(12) The lower front head portion 122 may define an actual front head 128, which may function as a structural housing to support the upper end (not shown) of the hammer tool 120 (shown only fragmentarily in
(13) Looking now at
(14) A plurality of tie rods 408 are provided although only one is shown here in
(15) In some embodiments, at least one of the bearing surfaces 412, 414 of either the upper head 402 or the tie rod 408 define a tangent 416 to the surface 412, 414 that forms an oblique angle to the longitudinal axis 406 of a bore and at least one of the bearing surfaces 412, 414 of the upper head 402 or the tie rod 408 is axis-symmetrical about the longitudinal axis 406 of a bore 404 while the other may not. For example, the perimeter 420 of the bore 404 may have a square shape that is proximate angled surfaces that are tangent to the conical surface of the tie rod 408 or vice versa.
(16) For this embodiment, both the bearing surfaces 412, 414 of the upper head 402 and the tie rod 408 form an oblique angle with the longitudinal axis of the bore 404 and are axis-symmetrical about the longitudinal axis 406.
(17) For the embodiment shown in
(18) The upper end of the tie rod 408 is configured to act as the torque end 410 and includes a standardized hexagonal shape that fits with a standardized wrench configuration. Other shapes such as allen wrench shapes, torx wrench shapes, etc. could also be used.
(19)
(20) Focusing now on
(21) The torque end 410 may comprise a faceted perimeter 426. This may be defined by a protrusion as shown in
(22) In
INDUSTRIAL APPLICABILITY
(23) In some embodiments of the present disclosure, using a conical, spherical, or other axis-symmetric shape for the torque end means that a flat spot-face is no longer required on the held component. Also, the conical seat reduces the cost of machining by reducing the diameter of the bar stock required. In still other embodiments, an improvement of the bolted joint is provided by eliminating lateral and angular misalignment as well as providing a better contact surface. Furthermore, a conical or spherical surface can also be designed to be self-supporting in a 3D print configuration, eliminating the need for building support structures and its subsequent removal.
(24) For this embodiment, the bearing surface is made integral with the body of the tie rod itself, however, it is contemplated that the bearing surface could be incorporated into a separate nut member that surrounds the shaft of the tie rod in other embodiments. In embodiments where the tie rod has an integral flange for pushing down on the nut member that includes the bearing surface, the internal hole of the nut may lack any threads and may ride on a smooth portion of the shaft of the tie rod. In other embodiments, the internal hole of the nut member may be internally threaded for engaging external threads disposed on the shaft of the tie rod.
(25) Using the embodiments of the apparatus as discussed, rotating the tie rod causes the threaded end to tighten on a nut, pulling the tie rod downward until its bearing surface contacts the bearing surface of the upper head. Since these surfaces are configured to provide a lead-in, proper alignment of the tie rod occurs and better contact is achieved.
(26) It will be apparent to those skilled in the art that various modifications and variations can be made to the embodiments of the apparatus and methods of assembly as discussed herein without departing from the scope or spirit of the invention(s). Other embodiments of this disclosure will be apparent to those skilled in the art from consideration of the specification and practice of the various embodiments disclosed herein. For example, some of the equipment may be constructed and function differently than what has been described herein and certain steps of any method may be omitted, performed in an order that is different than what has been specifically mentioned or in some cases performed simultaneously or in sub-steps. Furthermore, variations or modifications to certain aspects or features of various embodiments may be made to create further embodiments and features and aspects of various embodiments may be added to or substituted for other features or aspects of other embodiments in order to provide still further embodiments.
(27) Accordingly, it is intended that the specification and examples be considered as exemplary only, with a true scope and spirit of the invention(s) being indicated by the following claims and their equivalents.