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Martin Harwit

Publications and source records attributed to Martin Harwit.

20 records · Page 2Linked to original sources

ISO observations of molecular hydrogen in HH 54: measurement of a non-equilibrium ortho- to para-H2 ratio

We have detected the S(1), S(2), S(3), S(4) and S(5) pure rotational lines of molecular hydrogen toward the outflow source HH 54, using the Short Wavelength Spectrometer (SWS) on board the Infrared Space Observatory (ISO). The observed H2 line ratios indicate the presence of warm molecular gas with an H2 density of at least 100,000 per cubic centimeter and a temperature ~ 650 K in which the ortho- to para-H2 ratio is only 1.2 +/- 0.4, significantly smaller than the equilibrium ratio of 3 expected in gas at that temperature. These observations imply that the measured ortho- to para-H2 ratio is the legacy of an earlier stage in the thermal history of the gas when the gas had reached equilibrium at a temperature < 90 K. Based upon the expected timescale for equilibration, we argue that the non-equilibrium ortho- to para-H2 ratio observed in HH 54 serves as a chronometer that places a conservative upper limit ~ 5000 yr on the period for which the emitting gas has been warm. The S(2)/S(1) and S(3)/S(1) H2 line ratios measured toward HH 54 are consistent with recent theoretical models of Timmermann for the conversion of para- to ortho-H2 behind slow, `C'-type shocks, but only if the preshock ortho- to para-H2 ratio was < 0.2.

astro-ph↗

Thermal Water Vapor Emission from Shocked Regions in Orion

Using the Long Wavelength Spectrometer (LWS) onboard the Infrared Space Observatory (ISO), we have observed thermal water vapor emission from a roughly circular field of view approximately 75 arc seconds in diameter centered on the Orion BN-KL region. The Fabry-Perot line strengths, line widths, and spectral line shifts observed in eight transitions between 71 and 125 microns show good agreement with models of thermal emission arising from a molecular cloud subjected to a magnetohydrodynamic C-type shock. Both the breadth and the relative strengths of the observed lines argue for emission from a shock rather than from warm quiescent gas in the Orion core. Though one of the eight transitions appears anomalously strong, and may be subject to the effects of radiative pumping, the other seven indicate an H2O/H2 abundance ratio of order 5E-4, and a corresponding gas-phase oxygen-to-hydrogen abundance ratio of order 4E-4. Given current estimates of the interstellar, gas-phase, oxygen and carbon abundances in the solar vicinity, this value is consistent with theoretical shock models that predict the conversion into water of all the gas-phase oxygen that is not bound as CO. The overall cooling provided by rotational transitions of H2O in this region appears to be comparable to the cooling through rotational lines of CO, but is an order of magnitude lower than cooling through H2 emission. However, the model that best fits our observations shows cooling by H2O and CO dominant in that portion of the post-shock region where temperatures are below ~ 800 K and neither vibrational nor rotational radiative cooling by H2 is appreciable.

astro-ph↗