The Geometry of Ultra-Fast Outflows Probed by Soft X-ray Variability in PDS 456
Riki Sato, Kouichi Hagino, Toshiya Iwata, Ehud Behar, Valentina Braito, Chris Done, Misaki Mizumoto, James N. Reeves, Rozenn Boissay-Malaquin, Pierpaolo Condó, Luigi C. Gallo, Adam G. Gonzalez, Alfredo Luminari, Aiko Miyamoto, Ryuki Mizukawa, Hirokazu Odaka, Atsushi Tanimoto, Makoto Tashiro, Francesco Tombesi, Yerong Xu, Satoshi Yamada, Tahir Yaqoob, Aya Bamba
Abstract
Constraining the location and geometry of ultra-fast outflows (UFOs) is essential for identifying where they are launched and how they are accelerated. We investigate the soft X-ray variability of the luminous quasar PDS 456 using simultaneous March 2024 observations with XRISM/Xtend and NuSTAR. A model-independent comparison between the flare and quiescent phases reveals spectral variability around 1 keV in the rest frame, while the hard X-ray spectral shape remains nearly unchanged. Broadband spectral fitting shows that the soft X-ray structure is well described by a partial-covering low-ionization UFO with (ξ/(erg~cm~s-1)) 3.1 and vout 0.30c. Time-sliced spectral analysis further reveals significant variability in the covering fraction of this absorber. Interpreting this variability as transverse motion across the X-ray source, we constrain the crossing velocity to be vcross 5 × 10-3c and derive a lower limit on the absorber distance of r 4 × 103 Rg. This location is substantially farther out than the high-ionization UFO previously inferred at ~200-600 Rg, while the two phases have comparable outflow velocities. The resulting velocity-distance structure disfavors a self-similar magnetocentrifugal wind and instead suggests either radiation-pressure acceleration following a Castor-Abbott-Klein-like velocity law or compact magnetic acceleration through magnetic reconnection. These results demonstrate that soft X-ray partial-covering variability can provide a geometrical probe of UFOs and directly connect spectral variability to wind acceleration.
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