The divertor configuration defines the power exhaust capabilities of DEMO as one of the major key design parameters and sets a number of requirements on the tokamak layout, including port sizes, poloidal field coil positions, and size of toroidal field coils. It also requires a corresponding configuration of plasma-facing components (PFCs) and a remote handling scheme to be able to handle the cassettes and associated in-vessel components (IVC) the configuration requires.There is a risk that the baseline ITER-like single-null (SN) divertor configuration cannot meet the PFC technology limits regarding power exhaust and first wall protection while achieving the target plasma performance requirements of DEMO or a future fusion power plant. Alte...
To prepare the DEMO conceptual design phase a number of physics and engineering assessments were car...
Conventional divertor concepts for recent DEMOs (P_fus=1.5-2GW, R_p=7-9m) were summarized. Requireme...
In the present work, the role of plasma facing components protection in driving the EU-DEMO design w...
The divertor configuration defines the power exhaust capabilities of DEMO as one of the major key de...
Plasma exhaust has been identified as a major challenge towards the realisation of magnetic confinem...
The European roadmap to the realisation of fusion energy has identified a number of technological an...
One of the main challenges in the roadmap to the realization of fusion energy is to develop a heat a...
In the pursuit of realistically achievable design options for demonstrating fusion electricity gener...
For a recent Japanese (JA) DEMO reactor design (Rp: 8 m size), the exhausted power to the SOL (Psep)...
The standard Single Null (SN) divertor is currently expected to be installed in DEMO. However, a num...
To prepare the DEMO conceptual design phase a number of physics and engineering assessments were car...
Conventional divertor concepts for recent DEMOs (P_fus=1.5-2GW, R_p=7-9m) were summarized. Requireme...
In the present work, the role of plasma facing components protection in driving the EU-DEMO design w...
The divertor configuration defines the power exhaust capabilities of DEMO as one of the major key de...
Plasma exhaust has been identified as a major challenge towards the realisation of magnetic confinem...
The European roadmap to the realisation of fusion energy has identified a number of technological an...
One of the main challenges in the roadmap to the realization of fusion energy is to develop a heat a...
In the pursuit of realistically achievable design options for demonstrating fusion electricity gener...
For a recent Japanese (JA) DEMO reactor design (Rp: 8 m size), the exhausted power to the SOL (Psep)...
The standard Single Null (SN) divertor is currently expected to be installed in DEMO. However, a num...
To prepare the DEMO conceptual design phase a number of physics and engineering assessments were car...
Conventional divertor concepts for recent DEMOs (P_fus=1.5-2GW, R_p=7-9m) were summarized. Requireme...
In the present work, the role of plasma facing components protection in driving the EU-DEMO design w...