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Oblique-incidence ionospheric soundings over Central Europe and their application for testing now casting and long term prediction models
Author(s)
Language
English
Obiettivo Specifico
3.9. Fisica della magnetosfera, ionosfera e meteorologia spaziale
Status
Published
JCR Journal
JCR Journal
Peer review journal
Yes
Title of the book
Issue/vol(year)
11 / 43 (2009)
Publisher
Elsevier Ltd
Pages (printed)
1611-1620
Issued date
June 2, 2009
Abstract
After a first oblique-incidence ionospheric sounding campaign over Central Europe performed during the period 2003–2004 over the radio links between Inskip (UK, 53.5°N, 2.5°W) and Rome (Italy, 41.8°N, 12.5°E) and between Inskip and Chania (Crete, 35.7°N,
24.0°E), new and more extensive analysis of systematic MUF measurements from January 2005 to December 2006 have been performed.
MUF measurements collected during moderately disturbed days (17 ≤ Ap ≤ 32), disturbed days (32 < Ap ≤ 50) and very disturbed days
(Ap > 50), have been used to test the long term prediction models (ASAPS, ICEPAC and SIRM&LKW), and the now casting models
(SIRMUP&LKW and ISWIRM&LKW). The performances of the different prediction methods in terms of r.m.s are shown for selected range of geomagnetic activity and for each season.
24.0°E), new and more extensive analysis of systematic MUF measurements from January 2005 to December 2006 have been performed.
MUF measurements collected during moderately disturbed days (17 ≤ Ap ≤ 32), disturbed days (32 < Ap ≤ 50) and very disturbed days
(Ap > 50), have been used to test the long term prediction models (ASAPS, ICEPAC and SIRM&LKW), and the now casting models
(SIRMUP&LKW and ISWIRM&LKW). The performances of the different prediction methods in terms of r.m.s are shown for selected range of geomagnetic activity and for each season.
References
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the basic maximum usable frequency of radio waves reflected from the
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Regional Model for instantaneous mapping of the critical frequency of
the F2 layer in the European region. Radio Sci. 40 (1), RS1005,
doi:10.1029/2003RS003008, 2005.
Reinisch, B.W., Huang, X. Automatic calculation of electron density
profiles from digital ionograms 3. Processing of bottomside ionograms.
Radio Sci. 18 (3), 477–492, 1983.
Tsagouri, I., Zolesi, B., Belehaki, A., et al. Evaluation of the
performance of the real-time updated simplified ionospheric regional
model for the European area. J. Atmos. Sol. Terr. Phys. 67 (12),
1137–1146, 2005.
M. Pietrella et al. / Advances in Space Research 43 (2009) 1611–1620 1619
Zolesi, B., Cander, L.R., De Franceschi, G. Simplified ionospheric
regional model for telecommunication applications. Radio Sci. 28
(4), 603–612, 1993.
Zolesi, B., Cander, L.R., De Franceschi, G. On the potential applicability
of the simplified ionospheric regional model to different mid-latitude
areas. Radio Sci. 31 (3), 547–552, 1996.
Zolesi, B., Belehaki, A., Tsagouri, I., et al. Real-time updating of the
Simplified Ionospheric Regional Model for operational applications.
Radio Sci. 39 (2), doi:10.1029/2003RS002936, 2004.
Zolesi, B., Fontana, G., Perrone, L., et al. A new campaign for obliqueincidence
ionospheric sounding over Europe and its data application.
J. Atmos. Sol. Terr. Phys. 70 (6), 854–865, 2008.
hourly autoscaled and manually scaled characteristics from the Chilton
ionosonde from 1996 to 2004. Radio Sci. 43, RS1001, doi:10.1029/
2005RS003401, 2008.
Comite Consultatif International des Radio Communications (CCIR).
Atlas of ionospheric characteristics. Rep. 340-1, Oslo, ITU, Geneva,
Switzerland, 1966.
Davies, K. Ionospheric Radio. Peter Peregrinus Ltd, London, United
Kingdom, pp. 102–105, 1989.
Haydon, G.W., Lucas, D.L. Predicting ionosphere electron density
profiles. Radio Sci. 3 (13), 111–119, 1968.
Houminer, Z., Bennet, J.A., Dyson, P.L. Real-time ionospheric model
updating. J. Electric. Electron. Eng., Australia, IE Aust. & IREE Aust.
13 (2), 99–104, 1993.
ICEPAC Technical Manual, available for download at http://www.greghand.
com/manuals/icepac_tech_manual.pdf, undated.
IPS Radio and Space Services. ASAPS Introductory Booklet, available for
download at http://www.ips.gov.au/Products_and_Services/1/1/2.
undated.
Lockwood, M. A simple M-factor algorithm for improved estimation of
the basic maximum usable frequency of radio waves reflected from the
ionospheric F region. Proc. IEE 130F, 296–302, 1983.
Pietrella, M., Perrone, L. Instantaneous Space Weighted Ionospheric
Regional Model for instantaneous mapping of the critical frequency of
the F2 layer in the European region. Radio Sci. 40 (1), RS1005,
doi:10.1029/2003RS003008, 2005.
Reinisch, B.W., Huang, X. Automatic calculation of electron density
profiles from digital ionograms 3. Processing of bottomside ionograms.
Radio Sci. 18 (3), 477–492, 1983.
Tsagouri, I., Zolesi, B., Belehaki, A., et al. Evaluation of the
performance of the real-time updated simplified ionospheric regional
model for the European area. J. Atmos. Sol. Terr. Phys. 67 (12),
1137–1146, 2005.
M. Pietrella et al. / Advances in Space Research 43 (2009) 1611–1620 1619
Zolesi, B., Cander, L.R., De Franceschi, G. Simplified ionospheric
regional model for telecommunication applications. Radio Sci. 28
(4), 603–612, 1993.
Zolesi, B., Cander, L.R., De Franceschi, G. On the potential applicability
of the simplified ionospheric regional model to different mid-latitude
areas. Radio Sci. 31 (3), 547–552, 1996.
Zolesi, B., Belehaki, A., Tsagouri, I., et al. Real-time updating of the
Simplified Ionospheric Regional Model for operational applications.
Radio Sci. 39 (2), doi:10.1029/2003RS002936, 2004.
Zolesi, B., Fontana, G., Perrone, L., et al. A new campaign for obliqueincidence
ionospheric sounding over Europe and its data application.
J. Atmos. Sol. Terr. Phys. 70 (6), 854–865, 2008.
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