Multihour Stratospheric Flights with the Heliotrope Solar Hot-Air Balloon

Author:

Bowman Daniel C.1,Norman Paul E.2,Pauken Michael T.3,Albert Sarah A.1,Dexheimer Darielle1,Yang Xiao4,Krishnamoorthy Siddharth3,Komjathy Attila3,Cutts James A.3

Affiliation:

1. a Sandia National Laboratories, Albuquerque, New Mexico

2. b University of Minnesota, Minneapolis, Minnesota

3. c NASA Jet Propulsion Laboratory, California Institute of Technology, Pasadena, California

4. d University of North Carolina at Chapel Hill, Chapel Hill, North Carolina

Abstract

AbstractStandard meteorological balloons can deliver small scientific payloads to the stratosphere for a few tens of minutes, but achieving multihour level flight in this region is more difficult. We have developed a solar-powered hot-air balloon named the heliotrope that can maintain a nearly constant altitude in the upper troposphere–lower stratosphere as long as the sun is above the horizon. It can accommodate scientific payloads ranging from hundreds of grams to several kilograms. The balloon can achieve float altitudes exceeding 24 km and fly for days in the Arctic summer, although sunset provides a convenient flight termination mechanism at lower latitudes. Two people can build an envelope in about 3.5 h, and the materials cost about $30. The low cost and simplicity of the heliotrope enables a class of missions that is generally out of reach of institutions lacking specialized balloon expertise. Here, we discuss the design history, construction techniques, trajectory characteristics, and flight prediction of the heliotrope balloon. We conclude with a discussion of the physics of solar hot-air balloon flight.

Funder

Sandia National Laboratories

Office of Defense Nuclear Nonproliferation

Jet Propulsion Laboratory

Publisher

American Meteorological Society

Subject

Atmospheric Science,Ocean Engineering

Reference23 articles.

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2. Besset, L. , 2016: The solar hot air balloons of Dominic Michaelis. Orange, http://ballonsolaire.pagesperso-orange.fr/en-historique2.htm.

3. The Hilbert–Huang transform: A high resolution spectral method for nonlinear and nonstationary time series;Bowman;Seismol. Res. Lett.,2013

4. Infrasound in the middle stratosphere measured with a free flying acoustic array;Bowman;Geophys. Res. Lett.,2015

5. Acoustic event location and background noise characterization on a free flying infrasound sensor network in the stratosphere;Bowman;Geophys. J. Int.,2018

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