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Armin Memarian

Publications and source records attributed to Armin Memarian.

2 recordsLinked to original sources

Thermal Stability of Radiation-Pressure-Dominated Accretion Disks Threaded by Net Vertical Magnetic Flux

The classical radiation-pressure instability predicts strong thermal variability in luminous black-hole accretion disks, whereas most disk-dominated X-ray binary soft states remain comparatively stable. We examine whether net vertical magnetic flux can weaken this instability through its contribution to the radial stress. The stability depends not only on the equilibrium magnetic stress but also on how that stress changes during a thermal perturbation. We write the local stability condition in terms of the logarithmic heating response, $q_+<q_{+,\rm crit}$, which avoids specifying how the turbulent stress is divided into reference and net-flux components. For the illustrative closure $\delta=\zeta\sqrt{\bpol\btor}/\alpha$, $\etad=-d\ln\delta/d\ln H$ describes the response of the fractional stress correction, while $\Gnf=d\ln W_{\rm nf}/d\ln H$ describes the response of the additional net-flux stress itself. For an accretion disk around a $10M_\odot$ black hole at $R=20\rg$ and $\Mdot=0.5\MEdd$, we adopt fixed local mass flux on the thermal timescale, $(\gamma,\gp)=(1,0)$, and $d\ln\zeta/d\ln H=0$. Marginal stability then occurs at $\bpol^{\rm crit}=0.0176$ for $\zeta=1$ and $0.1338$ for $\zeta=0.25$. These thresholds depend on the adopted stress closure and field-response prescription and should not be interpreted as universal magnetic-pressure fractions. Fixed-$B_z$ equilibrium sequences, using a separate relation for the variation of $B_\varphi$ between steady states, show that increasing vertical field narrows the thermally unstable accretion-rate interval but does not eliminate it for either $H/R<0.1$ or $H/R<0.2$. The relevant quantity for stabilization is therefore the thermal response of the stress associated with net vertical flux rather than the vertical magnetic-pressure fraction alone.

astro-ph.HE

Braking indices as probes of r-mode spin-down in young pulsars

We present a timing-based framework for interpreting braking-index measurements in young pulsars using a four-channel spin-down model that includes particle-wind, magnetic-dipole, mass-quadrupole, and current-quadrupole torques. The observed braking index is a torque-weighted average of the channel exponents, enabling equation-of-state-independent constraints on the torque fraction of a possible r-mode-like current-quadrupole component from timing data alone. For positive, slowly varying secular torques, the allowed range is (1\le n_{\rm obs}\le 7), with (f_{7,\min}=\max[0,(n_{\rm obs}-5)/2]) and (f_{7,\max}^{\rm phys}=\min{1,\max[0,(n_{\rm obs}-1)/6]}). These bounds rely on non-negative, slowly evolving torque coefficients; if these assumptions fail, a large braking index need not uniquely indicate a current-quadrupole torque. Applied to young pulsars with measured braking indices, the analysis shows that most sources do not require gravitational-wave spin-down and are consistent with wind-plus-dipole braking. Sources with (3<n_{\rm obs}<5) require an additional higher-order contribution, but timing alone cannot identify it uniquely as an r-mode torque. PSR~J0537$-$6910 is the most suggestive case: its large inter-glitch braking index approaches the (n\simeq7) limit and is consistent, within the restricted secular model, with a strong current-quadrupole-like contribution. However, vortex-creep and superfluid-recovery effects may produce similar inter-glitch behaviour without gravitational-wave emission. We also derive stellar-model-dependent r-mode amplitude bounds, braking-index-corrected ages, and continuous-wave ranking metrics for current and future detectors, including the reduced sensitivity expected for glitch-limited semi-coherent searches.

astro-ph.HE