METHOD OF MAKING WHISKER REINFORCED HIGH FRACTURE TOUGHNESS CERAMIC THREADED FASTENERS
20180187710 ยท 2018-07-05
Assignee
Inventors
Cpc classification
B28B7/18
PERFORMING OPERATIONS; TRANSPORTING
B28B7/0064
PERFORMING OPERATIONS; TRANSPORTING
F16B37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B33/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B28B3/025
PERFORMING OPERATIONS; TRANSPORTING
C04B35/80
CHEMISTRY; METALLURGY
International classification
F16B33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B28B7/18
PERFORMING OPERATIONS; TRANSPORTING
F16B37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B28B3/02
PERFORMING OPERATIONS; TRANSPORTING
C04B35/80
CHEMISTRY; METALLURGY
Abstract
A high temperature fastener including a bolt and a nut, where the bolt and the nut are constructed of an aluminum oxide ceramic material reinforced with silicon-carbide crystal whiskers or silicon nitride.
Claims
1-17. (canceled)
18. A method of making a fastener comprising: creating a mixture of ceramic material powder; simultaneously heating and pressurizing the mixture creating a solid blank; and, forming a screw threaded surface on the blank.
19. The method of claim 18, further comprising: creating the mixture of ceramic material powder from aluminum oxide ceramic material powder and silicon-carbide crystal whiskers disbursed in the aluminum oxide ceramic material powder.
20. (canceled)
21. The method of claim 19, further comprising: forming the screw threaded surface on the blank by machining the blank to form a screw threaded exterior surface on the blank.
22. The method of claim 19, further comprising: forming a channel inside the blank by positioning an insert inside the mixture of aluminum oxide ceramic material powder and silicon-carbide crystal whiskers prior to simultaneously heating and pressurizing the mixture; simultaneously heating and pressurizing the mixture creating a blank; and, removing at least a portion of the insert from inside the blank.
23. The method of claim 22, further comprising: removing at least a portion of the insert from inside the blank creating a tool interface interior surface inside a blank.
24. The method of claim 22, further comprising: removing at least a portion of the insert from inside the blank creating a cooling channel inside the blank.
25. The method of claim 22, further comprising: removing at least a portion of the insert from inside the blank creating a screw threaded interior surface inside the blank.
26. The method of claim 19, further comprising: creating a mixture of aluminum oxide ceramic material powder and silicon-carbide crystal whiskers with a percentage of silicon-carbide crystal whiskers in the mixture being in a range of 18% to 30% of the mixture.
27. The method of claim 19, further comprising: the fastener having a low cataycity and high emissivity.
28. A method of making a fastener comprising creating a mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers; hot pressing the mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers at a high temperature and a high pressure creating a solid blank of hard ceramic material; and, forming a screw threaded surface on the solid blank of hard ceramic material.
29. The method of claim 28, further comprising creating the solid blank of hard ceramic material with a head and a shaft.
30. The method of claim 29, further comprising machining a tool interface surface on the head of the solid blank of hard ceramic material.
31. The method of claim 29, further comprising machining a screw threaded exterior surface on the shaft of the solid blank of hard ceramic material.
32. The method of claim 31, further comprising machining the screw threaded exterior surface with shallow valleys reducing a potential for crack initiation and reducing notch sensitivity.
33. The method of claim 28, further comprising inserting a pre-form with external screw threads inside the mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers prior to hot pressing the mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers at a high temperature and a high pressure creating the solid blank of hard ceramic material; and, forming the screw threaded surface on the solid blank of hard ceramic material by cleaning the pre-form out of the solid blank of hard ceramic material leaving internal screw threads in the solid blank of hard ceramic material.
34. The method of claim 28, further comprising: inserting a pre-form inside the mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers prior to hot pressing the mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers at a high temperature and a high pressure creating the solid blank of hard ceramic material; and, forming a cooling channel through the solid blank of hard ceramic material by cleaning the pre-form out of the solid blank of hard ceramic material leaving the cooling channel in the solid blank of hard ceramic material.
35. The method of claim 28, further comprising: inserting a pre-form inside the mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers prior to hot pressing the mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers at a high temperature and a high pressure creating the solid blank of hard ceramic material; and, forming an internal tool interface surface in the solid blank of hard ceramic material by cleaning the pre-form out of the solid blank of hard ceramic material leaving the internal tool interface surface in the solid blank of hard ceramic material.
36. A method of making a fastener comprising: creating a first mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers; hot pressing the first mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers at a high temperature and a high pressure creating a solid first blank of hard ceramic material; machining a screw threaded exterior surface on the solid first blank of hard ceramic material; creating a second mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers; inserting a pre-form with external screw threads into the second mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers; hot pressing the second mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers at a high temperature and a high pressure creating a solid second blank of hard ceramic material; and, forming an internal screw threaded surface in the solid second blank of hard ceramic material by cleaning the pre-form out of the solid second blank of hard ceramic material leaving internal screw threads in the solid second blank of hard ceramic material.
37. The method of claim 36, further comprising: machining a tool interface surface on the solid second blank of hard ceramic material.
38. The method of claim 36, further comprising: machining the screw threaded exterior surface on the solid first blank of hard ceramic material with shallow valleys reducing a potential for crack initiation and reducing notch sensitivity.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
DESCRIPTION
[0021]
[0022] The bolt 12 is shown with a head 16 and a shaft 18 with a screw threaded exterior surface 22. The bolt head 16 is shown having a hex-shaped tool interface surface 24. The hex-shaped configuration of the bolt head tool interface surface 24 is only one example of the tool interface surface configuration the bolt head 16 could have. The bolt head 16 could be constructed with any other equivalent tool interface surface configuration.
[0023] The fastener nut 14 has a cylindrical interior bore 26 with a screw threaded interior surface 28 surrounding the interior bore 26, The screw threaded interior surface 28 is formed complementary to the screw threaded exterior surface 22 of the bolt 12, enabling the nut 14 to be screw threaded on the bolt 12. The nut 14 is also formed with a hex-shaped tool interface surface 32 on the exterior of the nut. As with the fastener bolt 12, the fastener nut 14 could be constructed with any other equivalent tool interface surface configuration.
[0024] As stated earlier, the configurations of the fastener bolt 12 and the fastener nut 14 are conventional. What makes the fastener bolt 12 and fastener nut 14 unique is that they are constructed as a high temperature threaded fastener. This is achieved by both the bolt 12 and nut 14 being constructed of a ceramic composite that uses the technology of whisker reinforcement. The hard ceramic matrix is reinforced with extremely strong, stiff, silicon-carbide crystals, commonly called whiskers. Both the bolt 12 and nut 14 are constructed of a ceramic matrix composite material that is a mixture of aluminum oxide ceramic material reinforced with silicon carbide crystal whiskers. One example of a ceramic matrix composite material used to construct the bolt 12 and nut 14 is the whisker reinforced ceramic material WG-300, which is a registered trademark of Greenleaf Corporation. In WG-300, the percentage of silicon-carbide crystal whiskers in the mixture of aluminum oxide ceramic material powder and the silicone carbine crystal whiskers is approximately 30%. In other examples of the ceramic composite material used to construct the bolt 12 and nut 14, the percentage of silicon-carbide crystal whiskers in the mixture of aluminum oxide ceramic material powder and the silicon-carbide crystal whiskers is in a range of 10%-30% of the mixture.
[0025] The method of constructing the high temperature threaded fastener bolt 12 is represented in
[0026] The aluminum oxide ceramic material and the reinforcing silicon-carbide crystal whiskers 54 produce the blank 48 of hard ceramic material with high fracture toughness that can be machined.
[0027] A tool interface surface, for example the hex-shaped bolt head 24 represented in
[0028] The method of constructing the fastener nut 14 is similar to that of the fastener bolt 12 and is represented in
[0029] In developing the method of forming internal screw threads in the blank 64 of the nut 14, it was recognized that it would be very difficult, if possible to machine internal screw threads in the very hard ceramic material of the nut blank 64, at least cost efficiently. To form the screw threaded interior surface 28 in the nut 14, a graphite preform 66 is machined with external screw threads 68 that are complementary to the screw threaded interior surface 28 of the nut 14. As represented in
[0030] As an alternative to using the mixture of aluminum oxide ceramic material powder and silicon-carbide whiskers in constructing the bolt 12 and nut 14, silicon nitride (Si.sub.3N.sub.4) could be used in their place.
[0031] A tool interface surface, for example the hex shaped exterior surface 32 of the nut 14 is then machined on the nut 14. Alternatively, the tool interface surface 32 could be molded on the nut blank 64.
[0032]
[0033] One of the preforms 74 represented in
[0034] In addition to the preform 74 are positioned in the mixture 34 along the length of the bolt 12 to be formed, a further preform 76 could be positioned in the mixture 34 across the width of the bolt 72 to be formed. As represented in
[0035] The press 36 is operated to heat and compress the mixture 34 in the press to form the fastener bolt 72 in the same manner as described earlier. Once the blank for the fastener bolt 72 is formed and removed from the press 36, the graphite preforms 74, 76 can be removed from the blank in the same manner discussed earlier with regard to the fastener nut 14. This produces the fastener bolt 72 with internal cooling channels in the fastener bolt and/or an interior tool interface surface in the fastener bolt.
[0036] Fastener bolts and fastener nuts made out of Greenleaf WG-300 with 30% SiC whisker reinforced alumina has a coefficient of thermal expansion (CTE) of 6.010.sup.6 and WG-150 with 18% SiC whisker reinforcement has a CTE of 7.010.sup.6. These fastener has a close CTE match to the oxide CMC using Nextel-720 fiber reinforcement which has an in-plane CTE is 6.5610.sup.6/C or the oxide CMC with the Nextel-610 fiber has an in-plane CTE of 7.8710.sup.6/C.
[0037] As an alternative to using the mixture of aluminum oxide ceramic material powder and silicon-carbide crystal whiskers in construction of the bolt and nut fasteners, silicon nitride (Si.sub.3N.sub.4) could be used in their place. While SiC whisker reinforced alumina has a preferred higher fracture toughness of 10 MPam compared to 6-7 MPam for Si.sub.3N.sub.4 components the CTE is much lower 3.0-3.810.sup.6/C which it would make it ideal to be used with non-oxide CMC like C/SiC and SiC/SiC which also has a low CTE in the range of 3.0-510.sup.6/C. While the lower fracture toughness of Si3N4 makes it more challenging to fabricate these shapes it still should work for a number of applications.
[0038] As various modifications could be made in the construction of the apparatus and its method of operation herein described and illustrated without departing from the scope of the invention, it is intended that all matter contained in the foregoing description or shown in the accompanying drawings shall be interpreted as illustrative rather than limiting. Thus, the breadth and scope of the present disclosure should not be limited by any of the above described exemplary embodiments, but should be defined only in accordance with the following claims appended hereto and their equivalents.