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V. K. Tripathi

Publications and source records attributed to V. K. Tripathi.

6 recordsLinked to original sources

Confinement suppresses the effect of rotation on convection

We perform direct numerical simulations (DNS) to study the effect of bi-lateral confinement, i.e., the effect of aspect ratio, on the Rayleigh number (Ra) for the onset of wall-mode convection ($Ra_{wm}$) in rotating Rayleigh-Bénard convection (RBC) for various Ekman number E ($10^{-2}{\le}E{\le}10^{-5}$) and aspect ratio $Γ$ ($0.08{\le}Γ{\le}5$). For a given E, as the aspect ratio is lowered from a large value, $Ra_{wm}$ initially decreases slowly, reaching a minimum at $Γ=Γ_{min}$ ($Γ_{min}{\sim}E^{0.09}$). As $Γ$ is decreased further below $Γ_{min}$, $Ra_{wm}$ increases rapidly and for sufficiently strong confinement, i.e., $Γ<Γ_{\ast}$ ($Γ_{\ast}{\sim}E^{\frac{1}{3}}$), becomes indistinguishable from $Ra_{c}$, the critical Rayleigh number for non-rotating RBC, at the same $Γ$. We designate the ranges $Γ_{min}<Γ<5$ as the 'confinement-affected' regime and $Γ<Γ_{\ast}$ as the 'spatially constrained' regime. For a given rotation rate, the spatially constrained regime extends to higher Ra as the aspect ratio is decreased. We propose that in this regime, strong lateral confinement suppresses the horizontal velocity, and hence the Coriolis force, rendering rotation ineffective over most of the domain.

physics.flu-dyn

Parametric upconversion of lower hybrid wave by runaway electrons in tokamak

A kinetic formalism of parametric decay of a large amplitude lower hybrid pump wave into runaway electron mode and a uppersideband mode is investigated. The pump and the sideband exert a ponderomotive force on runaway electrons, driving the runaway mode. The density perturbation associated with the latter beats with the oscillatory velocity due to the pump to produce the sideband. The finite parallel velocity spread of the runaway electrons turns the parametric instability into a stimulated compton scattering process where growth rate scales as the square of the pump amplitude. The large phase velocity waves thus generated can potentially generate relativistic electrons.

physics.plasm-ph

Lower hybrid destabilization of trapped electron modes in tokamak and its consequences for anomalous diffusion

Parametric coupling of lower hybrid pump wave with low frequency collisionless/weakly collisional trapped electron drift wave, with frequency lower than the electron bounce frequency is studied. The coupling produces two lower hybrid sidebands. The sidebands beat with the pump to exert a low frequency ponderomotive force on electrons that causes a frequency shift in the drift wave, leading to the growth of the latter. The short wavelength modes are destabilized and they enhance the anomalous diffusion coefficient.

physics.plasm-ph

Laser Excitation of Wakefields in a Parabolic Plasma Channel

A Gaussian laser pulse with a square profile in time propagating in a parabolic plasma channel, exerts a ponderomotive force on electrons that drives a large amplitude electrostatic wake potential phi. An analytic solution for phi is possible when a characteristic relation is fulfilled. For pulse duration tau ~ 9 tau_p / 4, where tau_p is the plasma period, the plasma wake potential on the axis is twice the ponderomotive potential phi_0.

physics.plasm-ph

Excitation of wakefields in a plasma channel by a laser pulse

The excitation of wakefields by a triangular temporal profile laser pulse with an abrupt fall in a step density profile plasma channel is investigated analytically and an exact solution is obtained. The excitation is more efficient for t~tp, where t is the rise time of the pulse and tp is the plasma period, though it is still significant for t~20 tp. The wake potential in the former case is 1.7 times the ponderomotive potential, whereas it falls to 1.4 times the ponderomotive potential for the latter.

physics.plasm-ph

Femtosecond laser pulse induced Coulomb explosion

Coulomb explosion is revisited on the basis of explosion theory. The characteristics of the Coulomb explosion such as the ion kinetic energy, the energy distribution function, the laser absorption length along with the neutron yield are determined. The model explains reasonably well the experimental results.

physics.plasm-ph