
Prof. VENKATESWARARAO Alapati
Ph.D., Princeton University
F.R.S., F.R.Eng., J.C. Maxwell.,
Cavendish Professor of Physics
PPPL ASTROPHYSICAL SCIENCES Princeton USA
ENGINEERING DESIGN CENTRE
University of Cambridge UK
ITER France
St. Paul lez Durance Cadarache France
Department of Applied Mathematics & Theoretical Physics University of Cambridge UK

Jean-Loup STRUDEL
Professor Emeritus of Mechanical Engineering
Website : https://matperso.minesparis.psl.eu/&?lang=fr&user=jean-loup.strudel
MINES ParisTech
Centre des Matériaux - UMR CNRS 7633
63 - 65 rue Henri Desbruères,
B.P. 87 91003 EVRY CEDEX
Email: jean-loup.strudel@mines-paristech.fr
Tel : 01.60.76.30.02 (Office)
Fax : 01.60.76.31.50
[1]. Website: Ernest Lawrence, University of California, Berkeley, CA, USA https://www.nobelprize.org/prizes/physics/1939/lawrence/facts/
[2]. Website: Louis Néel, University of Grenoble, Grenoble, France https://www.nobelprize.org/prizes/physics/1970/neel/facts/
[3]. Website: John H. Van Vleck, Harvard University, Cambridge, MA, USA https://www.nobelprize.org/prizes/physics/1977/vleck/facts/
STELLARATOR, PRINCETON PLASMA PHYSICS LABORATORY (PPPL):
https://www.pppl.gov/timeline
Sir Lawrence Bragg at Royal Institution of great Britain
Film Videos -
(1). Vibrations with Sir Lawrence Bragg
(2). Waves and Vibrations with Sir Lawrence Bragg
(3). Magnetism #1 #2 #3 #4 #5 - with Sir Lawrence Bragg
(4). Electromagnetic Waves with Sir Lawrence Bragg
(5). Bubble Model of a Metal
(6). Metals - Properties of Matter 3
(***). Plastics and Rubbers - Properties of Matter - 4
(**). Atoms and Molecules - Properties of Matter 2
(*). Solids Liquids Gases - Properties of Matter - 1
(7). Experiments with Bubble Model of Metal
(8). Bubble Model - Combinations of Dislocations
(9). Dislocations and Stacking Faults in Stainless Steel
(10). Movement of Dislocations in Aluminium Foil
(##). Plutonium* Vapours - Isotopes of Pu*
(#). The Bubble Model of Crystal with High Temperatures
(###). Uranium* Vapours - Isotope of U* separation
($). Electron capture - flux of Hydrogen Isotopes turn to Protons flux
($$). Neutrino hypothesis - Protons flux turn to Neutrons flux (Fermi Interactions)
slow moving ($$) targeting on (##) and (###) - Feasibility of Fission (principle of Atomic Bomb) to initiate Fusion under controlled in the high gain mode for the design of Thermonuclear Fusion Test Reactor (TFTR), Stellarator, Spheromak, International Thermonuclear Experimental Reactor (ITER), Joint European Torus Experiment (JET) - UKAEA etc.,
Reference - 1: Electron capture -
Luis Walter Alvarez; University of California Berkeley California USA
Reference - 2: Fermi Hypothesis -
Enrico Fermi; Department of Physics and Institute for Nuclear Studies, University of Chicago, Chicago, Illinois USA
Reference - 3:
Report to the American Physical Society by the study group on physics problems relating to energy technologies: Radiation effects on materials* - APS Study Group Participants
Reference - 4:
Report to the American Physical Society by the study group on light-water reactor safety* - APS Study Group Participants
Reference -5: F. L. RIBE
a). Electron-Capture Cross Sections for Protons Passing through Hydrogen Gas*, Institute for Nuclear Studies, University of Chicago, Chicago, Illinois USA b). Fusion reactor systems*, University of California, Los Alamos Scientific Laboratory, Los Alamos, Dew Mexico 87544
Problem detection: Turbulence -
Answer to problem: Slow moving state of neutron flux employing us in the chain reactions for fission whereas turbulence cause it is equal and opposite in reaction to preventing the chain reactions effectively analogous to Newton's laws of action and reaction is this and will drive it further initiatives for fusion.
Comment: We may find it instabilities of the order of scalable scales can come into against stability.
Tel: 01.64.57.67.94 (Home)
Cell: 01.68.50.92.13
-------------------------------------
+ Additional (more reference)
[4]. Website: Paul A.M. Dirac, University of Cambridge, Cambridge, United Kingdom
https://www.nobelprize.org/prizes/physics/1933/dirac/facts/
[5]. Website: Julian Schwinger, Harvard University, Cambridge, MA, USA
https://www.nobelprize.org/prizes/physics/1965/schwinger/facts/
[6]. Website: Albert Fert, Université Paris-Sud, Orsay, France; Unité Mixte de Physique CNRS/THALES, Orsay, France
https://www.nobelprize.org/prizes/physics/2007/fert/facts/
ITER, Saint Paul-lez-Durance, southern France, FRANCE : https://www.iter.org/few-lines
VIDEO FILM by Asher SHAPIRO
https://techtv.mit.edu/collections/ifluids/videos/32607-pressure-fields-fluid-acceleration
NEWS LLNL
A primary goal of ignition is to help ensure the reliability and safety of the nation’s nuclear deterrent in the absence of underground weapons testing
WPMAT-PR(17) 17931 N Castin et al.
On the onset of void swelling in pure tungsten under neutron irradiation: an object kinetic Monte Carlo approach
HAL Id: hal-03881996 N Castin et al. Multiscale modelling in nuclear ferritic steels: From nano-sized defects to embrittlement
https://normandie-univ.hal.science/hal-03881996v2
PHYSICAL REVIEW B 67, 094103 (2003)
S. L. Dudarev et al. Heterogeneous void swelling near grain boundaries in irradiated materials https://doi.org/10.1103/PhysRevB.67.094103
Nature Scientifc Reports | (2023) 13:3544. P. Martínez‑Albertos et al. Assessment of ITER radiation environment during the remote‑handling operation of In‑Vessel components with D1SUNED https://doi.org/10.1038/s41598-023-30534-x
Bahcall, John N. Caltech Library https://feeds.library.caltech.edu/people/Bahcall-J-N/combined.html?highlight=bahcall