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公开(公告)号:US11739606B2
公开(公告)日:2023-08-29
申请号:US17880384
申请日:2022-08-03
Applicant: Terves, LLC
Inventor: Andrew Sherman , Brian Doud , Nicholas Farkas , Kurt Gilbert
CPC classification number: E21B33/12 , E21B29/02 , E21B2200/08
Abstract: A temporary well isolation device which has an axial passage that comprises a temporary housing having an internal cavity containing a chemical material and a temporary barrier or plug member that can be actuated by an external mechanism to allow fluid to flow into the internal chamber and contact the chemical material in the internal chamber. When the chemical material is exposed to fluid, the chemical material causes the temporary housing to corrode, dissolve, and/or degrade.
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公开(公告)号:US11268364B2
公开(公告)日:2022-03-08
申请号:US16226973
申请日:2018-12-20
Applicant: Terves, LLC
Inventor: Andrew Sherman
Abstract: A high strength engineered reactive composite that includes a reactive core. These reactive composites are useful for oil and gas completions and well stimulation processes, enhanced oil and gas recovery operations, as well as in defensive and mining applications requiring high energy density and good mechanical properties.
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公开(公告)号:US20210189854A1
公开(公告)日:2021-06-24
申请号:US17192500
申请日:2021-03-04
Applicant: Terves, LLC
Inventor: Andrew Sherman
Abstract: A high strength engineered reactive composite that includes a reactive core. These reactive composites are useful for oil and gas completions and well stimulation processes, enhanced oil and gas recovery operations, as well as in defensive and mining applications requiring high energy density and good mechanical properties.
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公开(公告)号:US20210101204A1
公开(公告)日:2021-04-08
申请号:US17123695
申请日:2020-12-16
Applicant: Terves LLC
Inventor: David Wolf , Brian Doud , Nicholas Farkas , Andrew Sherman
IPC: B22D23/06 , C22C1/03 , B22D27/11 , B22F1/00 , B22D27/08 , B22D21/00 , B22D21/04 , B22D25/06 , B22D27/00 , C22C23/00 , C22C23/02 , C22C47/08 , C22C49/04 , B22D19/14 , B22D27/02 , C22C49/14
Abstract: A castable, moldable, and/or extrudable structure using a metallic primary alloy. One or more additives are added to the metallic primary alloy so that in situ galvanically-active reinforcement particles are formed in the melt or on cooling from the melt. The composite contains an optimal composition and morphology to achieve a specific galvanic corrosion rate in the entire composite. The in situ formed galvanically-active particles can be used to enhance mechanical properties of the composite, such as ductility and/or tensile strength. The final casting can also he enhanced by heat treatment, as well as deformation processing such as extrusion, forging, or rolling, to further improve the strength of the final composite over the as-cast material.
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