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I. Wave Mechanics
I. Wave Mechanics

Topological Order and the Kitaev Model
Topological Order and the Kitaev Model

Fluids - Duke Physics
Fluids - Duke Physics

... These situations define the three commonly occurring phases of matter. In the liquid and gas phases, the particles move about (flow) until the system takes the shape of the solid container surrounding them. Such systems are called fluids. They are the object of our study here. For the most part we w ...
112, 110404 (2014)
112, 110404 (2014)

research statement - University of Illinois at Chicago
research statement - University of Illinois at Chicago

Waves and Particles: Basic Concepts of Quantum
Waves and Particles: Basic Concepts of Quantum

... key results: (1) the fact that the location of each individual photon on the screen is random (but has a finite probability, different for each location), and (2) the fact that the interference pattern is different when the two slits are open than the pattern obtained as a sum of two single open sli ...
FLUID MECHANICS PART II(1)
FLUID MECHANICS PART II(1)

... Using eqution (9) one can calculate the equilibrium velocity of the liquid coming out from a hole in the bottom of the vessel filled upto a height say h . Let us assume that the density of the liquid to be a constant. Let the cross section of the vessel is large and the opening, i.e., the hole is sm ...
Quantum collision theory with phase-space distributions
Quantum collision theory with phase-space distributions

A New Quantum Behaved Particle Swarm Optimization
A New Quantum Behaved Particle Swarm Optimization

A New Quantum Behaved Particle Swarm Optimization
A New Quantum Behaved Particle Swarm Optimization

... PSO has undergone a plethora of changes since its development. One of the recent developments in PSO is the application of Quantum laws of mechanics to observe the behavior of PSO. Such PSO’s are called Quantum PSO (QPSO). Some variants of QPSO include mutation based PSO [2], [3], where mutation is ...
Solitons of the resonant nonlinear Schrödinger equation with
Solitons of the resonant nonlinear Schrödinger equation with

Nature template - PC Word 97
Nature template - PC Word 97

Quantum field theory and Green`s function
Quantum field theory and Green`s function

... The reason why it is hard to write down wavefunctions for indistinguishable particles is because when we write do the wavefunciton, we need to specify which particle is in which quantum state. For example, yi r j  means the particle number j is in the quantum state yi . This procedure is natural f ...
Boundary induced streaming
Boundary induced streaming

The Mean-Field Limit for the Dynamics of Large Particle
The Mean-Field Limit for the Dynamics of Large Particle

A class of quantum many-body states that can be efficiently simulated
A class of quantum many-body states that can be efficiently simulated

Equation of a Straight Line
Equation of a Straight Line

N - Princeton University
N - Princeton University

... The significance of this result is that it must be a purely intrabasin vibrational phenomenon. In this low temperature limit, the system resides exclusively in one of the permutationequivalent basins for the perfect BCC crystal. While the isochoric inherent structures for the fluid phase above T*mp( ...
PPT
PPT

... Even this permits to define a characteristic length ...
Macroscopic system: Microscopic system:
Macroscopic system: Microscopic system:

MINIMUM UNCERTAINTY STATES USING n
MINIMUM UNCERTAINTY STATES USING n

Notes #11
Notes #11

Continuous Time Quantum Monte Carlo method for fermions
Continuous Time Quantum Monte Carlo method for fermions

Grand canonical ensemble
Grand canonical ensemble

1 Particle Size and Concentration Measurements
1 Particle Size and Concentration Measurements

< 1 ... 12 13 14 15 16 17 18 19 20 ... 48 >

Lattice Boltzmann methods

Lattice Boltzmann methods (LBM) (or Thermal Lattice Boltzmann methods (TLBM)) is a class of computational fluid dynamics (CFD) methods for fluid simulation. Instead of solving the Navier–Stokes equations, the discrete Boltzmann equation is solved to simulate the flow of a Newtonian fluid with collision models such as Bhatnagar-Gross-Krook (BGK). By simulating streaming and collision processes across a limited number of particles, the intrinsic particle interactions evince a microcosm of viscous flow behavior applicable across the greater mass.
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