Radio Wave Propagation Experiment in Sugarcane Fire Environments
- 1 Physics Department, University of Botswana, Gaborone, Botswana
- 2 Physics Department, University of Botswana, Gaborone, Botswana
- 3 Physics Department, University of Botswana, Gaborone, Botswana
- 4 Marine Geophysical Laboratory, James Cook University, Townsville, Australia
Abstract
Large fires have an effect of suppressing Very or Ultra High Frequency (VHF/UHF) radio wave signals strength which consequently impact negatively on the efficiency of radio communications at the frequency ranges. Mobile hand-held radio operating at the frequency ranges is a major communication tool during fire suppression; therefore inefficient radio communication systems put lives of fire fighters at risk. One of the causes of signal attenuation in fire environment is plume ionization. Plume species which include graphitic carbon, alkalis and thermally excited radicals such as methyl are responsible for ionization. As atmospheric pressure ionized medium (combustion plasma), sugarcane fire has momentum transfer electron-neutral collision frequency much higher than plasma frequency, hence propagation of VHF/UHF radio waves through such a medium is predicted to suffer a significant attenuation and phase shift. Radiowave propagation measurements were carried out in a moderate intensity prescribed sugarcane fire at 151 MHz frequency over a 590 m path using a radiowave interferometer. The radio wave interferometer measured signal attenuation of 0.43 dB through the fire with maximum temperature and flame depth of 1154 K and 8.7 m, respectively.
- Shannon, E.L. and Raine, S.R. (1996) Improving the Irrigation Efficiency of Burdekin Canegrowers. Proceedings of the 8th Australian Agronomy Conference, Australian Society of Agronomy, Toowoomba, 502-506.
- Ayer, G. (2005) Air Pollution and Climate Change: Has air Pollution Suppressed Rainfall over Australia. Clean Air and Environmental Quality, 39, 51-57.
- Meyer, M., Mueller, J.F., Beer, T., Marney, D. and Bradbury, G. (2004) Field and Laboratory Based Emission Factors for PCDD/PCDF/PCB from Sugarcane Fires. Organohalogen Compounds, 66, 928-934.
- Raison, R.J., Khaina, P.K. and Woods, P. (1985) Mechanisms of Element Transfer to the Atmosphere during Vegetation Burning. Canadian Journal of Forest Research, 15, 132-140. http://dx.doi.org/10.1139/x85-022
- Westberg, H.M., Bystrom, M. and Lecker, B. (2003) Distribution of Potassium, Chlorine and Sulphur between Solid and Vapour Phases during Combustion of Wood and Coal. Energy and Fuels, 17, 18-28. http://dx.doi.org/10.1021/ef020060l
- Okuno, T., Sonoyama, N., Hayashi, J., Li, C., Sathe, C. and Chiba, T. (2005) Primary Release of Alkali and Alkaline Earth Metallic Species during Pyrolysis of Pulverized Biomass. Energy and Fuels, 19, 2164-2171. http://dx.doi.org/10.1021/ef050002a
- Mphale, K.M. (2008) Radio Wave Propagation and Prediction in Bushfires. Ph.D. Thesis, James Cook University, Townsville.
- Akhtar, K., Scharer, E.J., Tysk, S.M. and Kho, E. (2003) Plasma Interferometry at High Pressures. Review of Scientific Instruments, 74, 996-1001. http://dx.doi.org/10.1063/1.1533104
- Charlesworth, P.B. and Bristow, K.L. (2002) Sustainable Management of the Burdekin Groundwater System. Milestone Report to the National Program for Irrigation Research and Development.
- Dupuy, J.L., Marechal, J. and Morvan, D. (2003) Fires from a Cylindrical Forest Fuel Burner: Combustion Dynamics and Flame Properties. Combustion and Flame, 135, 65-76. http://dx.doi.org/10.1016/S0010-2180(03)00147-0
- Brohez, S., Delvosalle, C. and Marlair, G. (2004) A Two Thermocouples Probe for Radiation Correction of Measured Temperatures in Compartment Fires. Fire Safety Journal, 39, 399-411. http://dx.doi.org/10.1016/j.firesaf.2004.03.002
- Silvani, X. and Morandini, F. (2009) Fire Spread Experiments in the Field: Temperature and Heat Fluxes Measurements. Fire Safety Journal, 44, 279-285. http://dx.doi.org/10.1016/j.firesaf.2008.06.004