Patent classifications
H05H1/54
HIGH POWER ION BEAM GENERATOR SYSTEMS AND METHODS
Provided herein are high energy ion beam generator systems and methods that provide low cost, high performance, robust, consistent, uniform, low gas consumption and high current/high-moderate voltage generation of neutrons and protons. Such systems and methods find use for the commercial-scale generation of neutrons and protons for a wide variety of research, medical, security, and industrial processes.
HIGH POWER ION BEAM GENERATOR SYSTEMS AND METHODS
Provided herein are high energy ion beam generator systems and methods that provide low cost, high performance, robust, consistent, uniform, low gas consumption and high current/high-moderate voltage generation of neutrons and protons. Such systems and methods find use for the commercial-scale generation of neutrons and protons for a wide variety of research, medical, security, and industrial processes.
PLASMA CONFINEMENT SYSTEM AND METHODS FOR USE
An example plasma confinement system includes an inner electrode having a rounded first end that is disposed on a longitudinal axis of the plasma confinement system and an outer electrode that at least partially surrounds the inner electrode. The outer electrode includes a solid conductive shell and an electrically conductive material disposed on the solid conductive shell and on the longitudinal axis of the plasma confinement system. The electrically conductive material has a melting point within a range of 170 C. to 800 C. at 1 atmosphere of pressure. Related plasma confinement systems and methods are also disclosed herein.
PLASMA CONFINEMENT SYSTEM AND METHODS FOR USE
An example plasma confinement system includes an inner electrode having a rounded first end that is disposed on a longitudinal axis of the plasma confinement system and an outer electrode that at least partially surrounds the inner electrode. The outer electrode includes a solid conductive shell and an electrically conductive material disposed on the solid conductive shell and on the longitudinal axis of the plasma confinement system. The electrically conductive material has a melting point within a range of 170 C. to 800 C. at 1 atmosphere of pressure. Related plasma confinement systems and methods are also disclosed herein.
Systems and methods for merging and compressing compact tori
Systems and methods utilizing successive, axially symmetric acceleration and adiabatic compression stages to heat and accelerate two compact tori towards each other and ultimately collide and compress the compact tori within a central chamber. Alternatively, systems and methods utilizing successive, axially asymmetric acceleration and adiabatic compression stages to heat and accelerate a first compact toroid towards and position within a central chamber and to heat and accelerate a second compact toroid towards the central chamber and ultimately collide and merge the first and second compact toroids and compress the compact merge tori within the central chamber.
Systems and methods for merging and compressing compact tori
Systems and methods utilizing successive, axially symmetric acceleration and adiabatic compression stages to heat and accelerate two compact tori towards each other and ultimately collide and compress the compact tori within a central chamber. Alternatively, systems and methods utilizing successive, axially asymmetric acceleration and adiabatic compression stages to heat and accelerate a first compact toroid towards and position within a central chamber and to heat and accelerate a second compact toroid towards the central chamber and ultimately collide and merge the first and second compact toroids and compress the compact merge tori within the central chamber.
METHODS AND SYSTEMS FOR PLASMA SELF-COMPRESSION
Described are systems and methods for compressing a plasma through electric and magnetic interactions between groups of positively charged particles and negatively charged particles of the plasma.
METHODS AND SYSTEMS FOR PLASMA SELF-COMPRESSION
Described are systems and methods for compressing a plasma through electric and magnetic interactions between groups of positively charged particles and negatively charged particles of the plasma.
PLASMA GENERATOR INCLUDING ANODE AND CATHODE HELD WITHIN A CONTAINMENT HOUSING
A plasma generator includes a cylindrical containment housing, an anode in a confinement space within the containment housing and a cathode within the anode. The cylindrical containment housing includes an open end and a closed end. A base forms the closed end. That base includes a first gas inlet and a first gas outlet.
Plasma generation apparatus including measurement device and plasma thruster
A plasma generation apparatus, and a plasma thruster configured to use the plasma generation apparatus are disclosed. The plasma generation apparatus includes a discharge vessel, a light-emitting monitor, a probe measuring instrument, a control device, and an optical axis driving unit. The discharge vessel is configured to ionize gas which is introduced to an inside thereof so as to generate plasma. The light-emitting monitor is configured to measure electron density of the plasma by emission spectra of the plasma. The probe measuring instrument is configured to measure the electron density of the plasma by a probe in the discharge vessel.