Reinforced press base, strengthening ring, and method of reinforcing a press base
11534999 · 2022-12-27
Assignee
Inventors
Cpc classification
Y10T29/49863
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T29/49865
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B30B11/007
PERFORMING OPERATIONS; TRANSPORTING
B30B11/004
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A press base assembly, a strengthening ring for use with press bases and related methods are disclosed. In one embodiment, a press base assembly includes a press base having a body that includes a piston cavity at one end. The body, at a second end opposite that of the piston cavity, may exhibit a desired geometry. A strengthening ring may be shaped, sized and configured to substantially mate with the geometry of the second end of the body and be placed thereover. For example, the geometry of the second end may be substantially circular exhibiting a particular diameter and circumference. The strengthening ring may have substantially circular internal surface sized and configured such that the strengthening ring is positioned on the second end of the body in a manner that results in an interference fit between the two components.
Claims
1. A high-pressure, high-temperature (HPHT) press comprising: a plurality of press bases, each press base including a piston cavity housing a piston, at least one press base of the plurality of press bases comprising: a first end having an outer circumference and a top surface; a second end opposite the first end, the piston cavity being located adjacent the second end; and at least one strengthening ring positioned around, and configured to maintain fixedly contact with, the outer circumference of the first end of the press base, the at least one strengthening ring including: an upper surface generally facing the same direction as the top surface, a distance between the top surface and the second end is greater than a distance between the upper surface and the second end, and the upper surface is spaced below the top surface; a bottom surface opposite the upper surface; and an inner diameter wall of the at least one strengthening ring is configured to contact with the outer circumference of the first end, the inner diameter wall extending between the upper surface and the bottom surface, wherein the top and bottom surfaces are positioned adjacent to the first end of the press base.
2. The HPHT press of claim 1, wherein the plurality of press bases includes six press bases.
3. The HPHT press of claim 1, wherein the plurality of press bases is arranged such that each piston is displaceable toward a central region.
4. The HPHT press of claim 1, wherein the at least one press base further comprises at least one tie rod receiving hole located between the first end and second end.
5. The HPHT press of claim 4, further comprising a tie rod extending between the at least one tie rod receiving hole of the at least one press base and an adjacent press base of the plurality of press bases.
6. The HPHT press of claim 1, wherein the at least one strengthening ring is pre-stressed.
7. The HPHT press of claim 1, wherein the at least one strengthening ring further comprises an outer diameter wall opposite the inner diameter wall, wherein: the upper surface and the bottom surface are annular surfaces; the inner diameter wall is substantially perpendicular to each of the upper surface and the bottom surface; and the outer diameter wall is substantially perpendicular to each of the upper surface and the bottom surface.
8. The HPHT press of claim 1, wherein the at least one strengthening ring is secured to the press base.
9. The HPHT press of claim 8, wherein the at least one strengthening ring is secured to the press base by an interference fit between the at least one strengthening ring and the press base.
10. The HPHT press of claim 1, wherein the at least one strengthening ring comprises steel.
11. The HPHT press of claim 1, further comprising a support bar coupled with a first portion of the at least one strengthening ring and a second portion of the at least one strengthening ring.
12. The HPHT press of claim 1, wherein the at least one strengthening ring is formed as a single, continuous structure.
13. A high-pressure, high-temperature (HPHT) press comprising: six press bases, each press base including: a first end having an outer circumference and a top surface, a second end, a piston cavity located adjacent the second end, the piston cavity housing a piston, wherein the six press bases are arranged such that each piston is displaceable toward a common region, and wherein at least one press base of the six press bases comprises: at least one strengthening ring positioned around, and configured to fixedly contact with, an outer circumference of the first end of the at least one press base, the at least one strengthening ring including: an upper surface generally facing the same direction as the top surface, a distance between the top surface and the second end is greater than a distance between the upper surface and the second end, and the upper surface is spaced below the top surface; a bottom surface opposite the upper surface; and an inner diameter wall of the at least one strengthening ring is configured to contact with only the outer circumference of the first end, the inner diameter wall extending between the upper surface and the bottom surface, wherein the top and bottom surfaces are positioned adjacent to the first end of the press base.
14. The HPHT press of claim 13, wherein each press base of the six press bases includes at least one strengthening ring positioned around, and configured to maintain contact with, an outer circumference of the first end of the at least one press base.
15. The HPHT press of claim 13, a plurality of tie bars, each tie bar extending between two adjacent press bases of the six press bases.
16. The HPHT press of claim 13, wherein the at least one strengthening ring is secured to the press base.
17. The HPHT press of claim 16, wherein the at least one strengthening ring is secured to the press base by an interference fit between the at least one strengthening ring and the press base.
18. The HPHT press of claim 13, wherein the at least one strengthening ring comprises steel.
19. The HPHT press of claim 13, further comprising a support bar coupled with a first portion of the at least one strengthening ring and a second portion of the at least one strengthening ring.
20. The HPHT press of claim 13, wherein the at least one strengthening ring is formed as a single, continuous structure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5) Throughout the drawings, identical reference characters and descriptions indicate similar, but not necessarily identical, elements. While the embodiments described herein are susceptible to various modifications and alternative forms, specific embodiments have been shown by way of example in the drawings and will be described in detail herein. However, the embodiments described herein are not intended to be limited to the particular forms disclosed. Rather, the instant disclosure covers all modifications, equivalents, and alternatives falling within the scope of the appended claims.
DETAILED DESCRIPTION
(6) The instant disclosure relates generally to high pressure presses, improved components for high pressure presses and related methods. For purposes of explaining the features of the embodiments described herein, a cubic high pressure press will be described and illustrated. However, the embodiments and features described herein are not limited to use in or with a cubic press configuration. For example, the features disclosed herein could also be used in a tetrahedral press.
(7)
(8) Press base strengthening ring 100 may also include an inner diameter wall 130 and an outer diameter wall 140 that is opposite inner diameter wall 130. As shown in
(9)
(10) The material of press base strengthening ring 100 may include high strength materials, but is not limited to specific materials. In one embodiment, press base strengthening ring 100 may comprise, for example, steel or some other metal or metal alloy. In other embodiments, a composite material or any other high strength material may be used. Press base strengthening ring 100 may also comprise the same material as the press base with which press base strengthening ring 100 will be used. In one embodiment, press base strengthening ring 100 may also be configured to be pre-stressed or to apply a load to the press base while the press base assembly is in a non-load applying state so as to provide added strength to an associated press base.
(11) Still referring to
(12) As shown in
(13) Press base strengthening ring 100 may have an inner diameter that is approximately equal to an outer diameter of the press base with which press base strengthening ring 100 will be used. In so doing, press base strengthening ring 100 may be secured to a press base by an interference fit between the two pieces.
(14) Application of press base strengthening ring 100 to a press base may generally comprise passing press base strengthening ring 100 over an outer end of the press base such that press base strengthening ring 100 surrounds an end of the press base. In one embodiment, the inner diameter of press base strengthening ring 100 may be sized, relative to the outer diameter of the end of the press base, such that press bar strengthening ring 100 is secured to the press base by an interference fit.
(15) During operation of the cubic press, the thickness, material and fit of press bar strengthening ring 100 about the press base provides additional strength and support to the press base to thereby assist the press base in resisting the operational stress that tends to deform unsupported press bases. Where press bases are allowed to deform, the result may include high stress fields. Continued stress may lead to fatigue cracking, crack propagation and eventual failure of the component. Press base strengthening ring 100 provides support and resistance to deformation so as to help prevent fatigue cracking and slow fatigue crack propagation in the press bases.
(16) It is also noted that press bases with existing cracks may be fitted with a strengthening ring 100. While a crack may have already been initiated in the press base, the subsequent use of the strengthening ring may be used to slow crack propagation and extend the useful life of the press base.
(17) Another embodiment of the present invention relates to a press base assembly 200. As shown in
(18) Press base 210 may include a first end 212 and a second end 214 opposite first end 212. First end 212 may generally be considered the outer end of press base 200 since it is the end opposite of where a piston is thrust out of press base 210. First end 212 of press base may include surface exhibiting a first outer diameter and associated circumference. In one embodiment, press base 210 may be configured generally cylindrically such that it exhibits a generally constant outer diameter and outer circumference from first end 212 to second end 214. In another embodiment, the outer diameter and outer circumference may vary along the length of press base 210 such as shown in
(19) Press base 210 may also comprise one or more tie rod receiving holes 216. Tie rod receiving holes 216 may be located, generally, between first end 212 and second end 214 of press base 210 and may extend from a first outer surface 217 of press base 210 to a top surface 218 (based on the orientation shown in
(20) Strengthening ring 220 may be similar, or even identical, to the press base strengthening ring described in the previous embodiment (i.e., strengthening ring 100). Accordingly, strengthening ring 220 may have a first annular face, a second annular face opposite the first annular face, an inner diameter wall, and an outer diameter wall opposite the inner diameter wall as described in greater detail above. As shown in
(21) Also, as previously noted, the material of strengthening ring 220 may be formed, at least in part, from a metal, a metal alloy, a composite or any other high strength material, but is not limited to any specific material. Strengthening ring 220 may also be pre-stressed to provide additional strength and support when installed on the press base 210.
(22) Once positioned on press base 210, strengthening ring 220 may be secured to press base 210. Any manner of securing strengthening ring 220 to press base 210 may be used. For example, strengthening ring 220 may be secured to press base 210 by an interference fit between strengthening ring 220 and press base 210. Strengthening ring 220 may have an inner diameter approximately equal to (but slightly smaller than) the first outer diameter at first end 212 of press base 210 to provide an interference fit between the two components.
(23) Strengthening ring 220 may also include a support bar 230. Support bar 230 may extend across the diameter of strengthening ring 220 and may be used to transport and install strengthening ring 220 on press base 210 as described in greater detail above.
(24) Strengthening ring 220 may also be a unitary element. In other embodiments, strengthening ring 220 may be formed of two or more pieces, such as two semi-circular portions connected together to form a ring or multiple concentric rings.
(25) Referring now to
(26) As indicated at 300, the method may include providing a press base of a high pressure press. The press base may be, for example, similar to the press bases described hereinabove. Accordingly, the press base may comprise a first outer diameter and a first outer circumference. The first outer diameter and first outer circumference may be located at a first end of the press base. The first end of the press base may be opposite the end having a piston cavity for receiving a piston. The press base may also include other features such as, for example, one or more tie bar receiving holes. Tie bar receiving holes may be sized and configured to receive tie bars extending between adjacent press bases and which are configured to provide increased stability and strength to the high pressure press.
(27) As indicated at 310 of the presently considered method, a strengthening ring may be provided. The strengthening ring may have an inner diameter that is approximately equal to the first outer diameter of the press base. The strengthening ring may be similar to the press base strengthening ring described in the first embodiment disclosed herein. Accordingly, the strengthening ring may comprise a first annular surface, a second annular surface opposite the first annular surface, an inner diameter wall, and an outer diameter wall opposite the inner diameter wall. The inner diameter and outer diameter walls may be aligned substantially perpendicular to the first and second annular surfaces.
(28) The strengthening ring may be made from any suitable material such as has been discussed above. The strengthening ring may also be pre-stressed to provide additional strength and support.
(29) As shown at 320, the strengthening ring may be positioned about the first circumference of the press base. Positioning the strengthening ring about the first circumference of the press base may be accomplished by, for example, passing the strengthening ring over the first end of the press base.
(30) The method disclosed herein may also comprise securing the strengthening ring to the press base. Any suitable manner of securing the strengthening ring to the press base may be used. For example, an interference fit between the strengthening ring and the press base may be used to secure the strengthening ring to the press base. In other embodiments, a close fit between the strengthening ring and the press base may be employed with other securing techniques such as by use of fasteners, welding, adhesives, or other appropriate means.
(31) Optionally, prior to positioning the strengthening ring about the first circumference of the press base, the method may include heating the strengthening ring, as indicated at 315, so as to enlarge the size of the strengthening ring through thermal expansion. Optionally, at least a portion of the press base may be cooled (e.g., with liquid nitrogen, or by any other method) so as to shrink the size of the end upon which the strengthening ring is to be positioned. Of course, heating the stress reducing ring and/or cooling tat least a portion of the press base may be employed, without limitation.
(32) In so doing, positioning the strengthening ring over the first end of the press base may be made easier by virtue of the inner diameter of the strengthening ring being slightly larger than the first outer diameter of the press base rather than approximately equal to the first outer diameter of the press base.
(33) Following the heating and positioning of the strengthening ring, the method may also comprise cooling the strengthening ring once it is in place about the first outer circumference of the press base as indicated at 325. In so doing, the size of the strengthening ring may be reduced (due to thermal contraction) to thereby constrict the strengthening ring about the first outer circumference of the press base and effect a tight fit between the press base and the strengthening ring.
(34) While certain embodiments have been shown to include a strengthening ring formed as a single continuous structure, such a ring may be formed of multiple components. For example, multiple semicircular components may be bolted together to form a strengthening ring. Such may be sized and configured so that tightening of the bolts or fasteners used to join the components together also serve to apply a pre-load to the press base when installed.
(35) In another example embodiment that includes multiple components, a first ring may be placed around the press base where the first ring includes ramped surfaces. Additionally rings may be configured with respect to the ramped surfaces such that the additional rings may be clamped axially toward one another effecting application of a radial compressive load (via interaction with the ramped surfaces) on the first ring and, thus, the press base.
(36) In yet another example embodiment that incorporates multiple components, a ring may be placed about the press base and then several turns of a continuous wire may be placed about the ring while the wire is in tension. Thus, the tensile wire may apply a load to the ring and the press base.
(37) While certain embodiments and details have been included herein for purposes of illustrating aspects of the instant disclosure, it will be apparent to those skilled in the art that various changes in systems, apparatus, and methods disclosed herein may be made without departing from the scope of the instant disclosure, which is defined, in part, in the appended claims. The words “including” and “having,” as used herein including the claims, shall have the same meaning as the word “comprising.”