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Numerical Modeling of the Effects of Pore Characteristics on the Electric Breakdown of Rock for Plasma Pulse Geo Drilling
by
Ezzat, Mohamed
, Adams, Benjamin M.
, Saar, Martin O.
, Vogler, Daniel
in
Costs
/ Drilling
/ Electric fields
/ Electricity
/ electropulse drilling
/ Energy
/ geothermal energy
/ Geothermal power
/ Investigations
/ micro-plasma modeling
/ partial discharge
/ Permeability
/ Plasma
/ plasma physics
/ plasma pulse geo drilling
/ Pore size
2022
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Numerical Modeling of the Effects of Pore Characteristics on the Electric Breakdown of Rock for Plasma Pulse Geo Drilling
by
Ezzat, Mohamed
, Adams, Benjamin M.
, Saar, Martin O.
, Vogler, Daniel
in
Costs
/ Drilling
/ Electric fields
/ Electricity
/ electropulse drilling
/ Energy
/ geothermal energy
/ Geothermal power
/ Investigations
/ micro-plasma modeling
/ partial discharge
/ Permeability
/ Plasma
/ plasma physics
/ plasma pulse geo drilling
/ Pore size
2022
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Do you wish to request the book?
Numerical Modeling of the Effects of Pore Characteristics on the Electric Breakdown of Rock for Plasma Pulse Geo Drilling
by
Ezzat, Mohamed
, Adams, Benjamin M.
, Saar, Martin O.
, Vogler, Daniel
in
Costs
/ Drilling
/ Electric fields
/ Electricity
/ electropulse drilling
/ Energy
/ geothermal energy
/ Geothermal power
/ Investigations
/ micro-plasma modeling
/ partial discharge
/ Permeability
/ Plasma
/ plasma physics
/ plasma pulse geo drilling
/ Pore size
2022
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Numerical Modeling of the Effects of Pore Characteristics on the Electric Breakdown of Rock for Plasma Pulse Geo Drilling
Journal Article
Numerical Modeling of the Effects of Pore Characteristics on the Electric Breakdown of Rock for Plasma Pulse Geo Drilling
2022
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Overview
Drilling costs can be 80% of geothermal project investment, so decreasing these deep drilling costs substantially reduces overall project costs, contributing to less expensive geothermal electricity or heat generation. Plasma Pulse Geo Drilling (PPGD) is a contactless drilling technique that uses high-voltage pulses to fracture the rock without mechanical abrasion, which may reduce drilling costs by up to 90% of conventional mechanical rotary drilling costs. However, further development of PPGD requires a better understanding of the underlying fundamental physics, specifically the dielectric breakdown of rocks with pore fluids subjected to high-voltage pulses. This paper presents a numerical model to investigate the effects of the pore characteristics (i.e., pore fluid, shape, size, and pressure) on the occurrence of the local electric breakdown (i.e., plasma formation in the pore fluid) inside the granite pores and thus on PPGD efficiency. Investigated are: (i) two pore fluids, consisting of air (gas) or liquid water; (ii) three pore shapes, i.e., ellipses, circles, and squares; (iii) pore sizes ranging from 10 to 150 μm; (iv) pore pressures ranging from 0.1 to 2.5 MPa. The study shows how the investigated pore characteristics affect the local electric breakdown and, consequently, the PPGD process.
Publisher
MDPI AG
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