Additive manufacturing of complex objects using refractory matrix materials

公开(公告)号:
CA3213973A1
公开(公告)日:
2020-05-28
申请号:
CA3213973
申请日:
2019-07-31
授权日:
-
受理局:
加拿大
专利类型:
发明申请
简单法律状态:
审中
法律状态/事件:
实质审查
IPC分类号:
-
战略新兴产业分类:
先进无机非金属材料
国民经济行业分类号:
-
当前申请(专利权)人:
UT-BATTELLE, LLC
原始申请(专利权)人:
UT-BATTELLE, LLC
当前申请(专利权)人地址:
P.O. Box 2008, 4500 N, MS-6258,OAK RIDGE,TN,US
工商统一社会信用代码:
-
工商登记状态:
-
工商注册地址:
-
工商成立日期:
2000-01-01
工商企业类型:
-
发明人:
TERRANI, KURT A. | TRAMMELL, MICHAEL P. | JOLLY, BRIAN C.
代理机构:
-
代理人:
WILSON LUE LLP
摘要:
A method for the manufacture of a three-dimensional object using a refractory matrix material is provided. The method includes the additive manufacture of a green body from a powder- based refractory matrix material followed by densification via chemical vapor infiltration (CVI). The refractory matrix material can be a refractory ceramic or a refractory metal. In one embodiment, the matrix material is deposited according to a binder-jet printing process to produce a green body having a complex geometry. The CVI process increases its density, provides a hermetic seal, and yields an object with mechanical integrity. The residual binder content dissociates and is removed from the green body prior to the start of the CVI process as temperatures increase in the CVI reactor. The CVI process selective deposits a fully dense coating on all internal and external surfaces of the finished object.
技术问题语段:
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技术功效语段:
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权利要求:
CLAIMS 1. An integral nuclear fuel element comprising: a fuel envelope having a content of silicon carbide of greater than 85% by weight , the fuel envelope including an outer sidewall, an inner sidewall, a base, and a cap that define therebetween a hermetically sealed internal fuel volume, wherein the outer sidewall, the inner sidewall, the base, and the cap of the fuel envelope each include a densified outer layer of silicon carbide having a greater density than an inner layer of silicon carbide, with the densified outer layer having a thickness of at least 20 microns, the fuel envelope defining at least one cooling channel extending from the base to the cap along the inner sidewall; and a plurality of fuel particles contained within the hermetically sealed internal fuel volume of the fuel envelope, the plurality of fuel particles including a fissile material, wherein silicon carbide powders are disposed in the hermetically sealed internal fuel volume between adjacent ones of the plurality of fuel particles, the silicon carbide powders being at least an order of magnitude smaller than the plurality of fuel particles, wherein the plurality of fuel particles achieve a packing fraction of greater than 50% such that the integral nuclear fuel element includes a content of silicon carbide of less than 25% by volume. 2. The integral nuclear fuel element of claim 1 wherein the densified outer layer of silicon carbide includes a thickness of between 20 microns and 200 microns. 3. The integral nuclear fuel element of claim 1 wherein the outer sidewall of the fuel envelope comprises a hexagonal sidewall extending between the base and the cap. 4. The integral nuclear fuel element of claim 1 wherein the at least one cooling channel includes a plurality of curvilinear passageways. 5. The integral nuclear fuel element of claim 1 wherein the at least one cooling channel includes a first portion that is converging and a second portion that is diverging. 6. The integral nuclear fuel element of claim 1 wherein the at least one cooling channel is adapted to direct a cooling gas at a non-zero angle relative to a vertical axis. Date Recue/Date Received 2023-09-25 7. The integral nuclear fuel element of claim 1 further including a burnable absorber in the internal fuel volume. 8. The integral nuclear fuel element of claim 1 further including a neutron moderator in the internal fuel volume. Date Recue/Date Received 2023-09-25
技术领域:
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背景技术:
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发明内容:
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具体实施方式:
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