Advanced Tokamak Scenario Modeling with Off-Axix ECH in DIII-D.

Advanced Tokamak Scenario Modeling with Off-Axix ECH in DIII-D.
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Total Pages: 4
Release: 1999
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Time-dependent simulations with transport coefficients derived from experimentally achieved discharges are used to explore the capability of off-axis electron cyclotron current drive (ECCD) to control hollow current profiles in negative central shear discharges. Assuming these transport coefficients remain unchanged at higher EC power levels, the simulation results show that high confinement, high normalized beta and high bootstrap fraction can be achieved with EC power expected to be available in the near future in the DIII-D tokamak.


Advanced Tokamak Scenario Modeling with Off-Axix ECH in DIII-D.
Language: en
Pages: 4
Authors:
Categories:
Type: BOOK - Published: 1999 - Publisher:

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Time-dependent simulations with transport coefficients derived from experimentally achieved discharges are used to explore the capability of off-axis electron c
Status of Advanced Tokamak Scenario Modeling with Off-Axis Electron Cyclotron Current Drive in DIII-D.
Language: en
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Type: BOOK - Published: 2001 - Publisher:

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The status of modeling work focused on developing the advanced tokamak scenarios in DIII-D is discussed. The objectives of the work are two-fold: (1) to develop
ADVANCED TOKAMAK PROFILE EVOLUTION IN DIII-D.
Language: en
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Type: BOOK - Published: 2003 - Publisher:

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Using off-axis electron cyclotron current drive (ECCD), self-consistent integrated advanced tokamak operation has been demonstrated on DIII-D, combining high[be
100% NONINDUCTIVE OPERATION AT HIGH BETA USING OFF-AXIS ECCD.
Language: en
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Type: BOOK - Published: 2005 - Publisher:

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The Advanced Tokamak (AT) program on DIII-D is developing the scientific basis for steady-state, high-performance operation in future devices. The key element o
ACHIEVING AND SUSTAINING STEADY-STATE ADVANCED TOKAMAK CONDITIONS ON DIII-D.
Language: en
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Type: BOOK - Published: 2003 - Publisher:

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Recent experiments on the DIII-D tokamak have demonstrated the feasibility of sustaining advanced tokamak conditions that combine high fusion power density ([be