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Part of the book series: Rheinisch-Westfälische Akademie der Wissenschaften ((VN,volume 311))

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Zusammenfassung

Eine der interessantesten gegenwärtigen Problemstellungen der Hochfrequenztechnik ist die Frage nach der Einwirkung elektromagnetischer Strahlung auf den Menschen. Die Problematik ist etwa vergleichbar mit der Analyse der Wirkung Bad Aachener Quellen auf die Gesundheit (Bild 1): Unbestritten ist der heilende Einfluß der Wärme dieser Bäder. Von einigen vermutet, von anderen bezweifelt dagegen, ob nachgewiesene Spurenelemente wie Schwefel und Selen eventuell auch zur therapeutischen Wirkung beitragen.

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Literatur

Mikrowellen Effekte

  1. Baranski, S., Czerski, P.: Biological Effects of Electromagnetic Radiation, New York, Press, 1976.

    Google Scholar 

  2. Stuchly, M. A.: Interaction of Radiofrequency and Microwave Radiation with Living-Systems — A Review of Mechanism, Radiation Environment Biophysics 16, (1979), 1–14.

    Article  CAS  Google Scholar 

  3. Czerski, P.: Biological Effects and Health Hazards of Microwave Radiation, Proc. Int. Symp. Warschau, Oct. 1973, Polish Med. Publ., Warschau 1974.

    Google Scholar 

  4. Czerski, P., Szmiglielsi, S.: Microwave Bioeffects, Current Status and Concepts, Proc. 5. EuMC, Sept. 1975, Hamburg, 348–357.

    Google Scholar 

  5. Steneck, V. H., Cook, H. V., Vander, A. J., Kane, G. L.: The Origins of U.S. Safety Standards for Microwave Radiation, Science (USA) 208, (1980), 1237.

    Google Scholar 

  6. Dietzel, F.: Tumor and Temperatur, Urban & Schwarzenberg, München, Berlin, Wien, 1975.

    Google Scholar 

  7. Dietzel, F.: Thermo-Radio-Therapie, Urban & Schwarzenberg, München, Wien, Baltimore, 1978.

    Google Scholar 

  8. Constant, E. (Chm.): Workshop on Diagnosis and Therapy Using Microwave, Proc 9. EuMC, Paris 1978.

    Google Scholar 

  9. Hornback, N. B., Shupe, R., Shidnia, M., Joe, B. T., Sayoc, E., Marshall, C. M.: Preliminary Clinical Results of Combined 433 Megahertz Microwave Therapy and Radiation Therapy on Patients with Advanced Cancer, 1977.

    Google Scholar 

  10. Nelson, A. J. M., Holt, J. A. G.: The Problem of Clinical Hyperthermia, Australian Radiology, XXI, No 1, March (1977).

    Google Scholar 

  11. Le Veen, H. H., Wapnick, S., Piccone, V., Folk, G., Ahmed, N.: Tumor Eradication by Radiofrequency Therapy, J.A.M.A., 235, May (1976).

    Google Scholar 

  12. Mendecki, J., Friedenthal, E., Brotschein, C., Sterzer, F., Paglione, R., Nowogrodzki, M., Beck, E.: Microwave-Induced Hyperthermia in Cancer Treatment: Apparatus and Preliminary Relults. Int. Jour. of Radiation Oncology, 4, Nov. (1978), 1095–1103.

    Google Scholar 

  13. Taylor, L. S.: Brain Cancer Therapy Using an Implanted Microwave Radiator, Microwave Journal, Jan. (1981), 66–71.

    Google Scholar 

  14. Magin, R.: Microwave Heating Effect in the Dog Thyroid Gland, IEEE Trans. BME 6 (1977), 522.

    Article  Google Scholar 

  15. Traub, R. J.: Microwave Hyperthermic Chemotherapy and Co-60 Radiation in the Treatment of Hamsters, Inst. of Microwave Power, 12 (1977), 40.

    CAS  Google Scholar 

  16. Short, J. G., Turner, P. F.: Physical Hyperthermia and Cancer, Proc. IEEE, 68, (1980), 133–142.

    Article  Google Scholar 

  17. Chen, K. M., Guru, B. S.: Induced Electromagnetic Field and Absorbed Power Density inside a Human Torso, Proc. IEEE. Sept. (1976), 1450–1453.

    Google Scholar 

  18. Hagmann, M. J., Chatterjee, I., Gandhi, O. P.: Dependence of Electromagnetic Energy Deposition Upon Angle of Incidence for an Inhomogeneous Block Model of Man Under Plane-Wave Irradiation, IEEE Trans. MTT. 29, March (1981), 252–255.

    Google Scholar 

  19. Guy, A. W., Webb, M. D., Sorensen, C. S.: Determination of Power Absorption in Man Exposed to High Frequency Electromagnetic Fields by Thermographic Measurements on Scale Models, IREE-Trans. BME-5, Sept. (1976), 361–371.

    Google Scholar 

  20. Karimullah, K., Chen, K. M., Nyquist, D. P.: Electromagnetic Coupling Between a Thin-Wire Antenna and a Neighboring Biological Body: Theory and Experiment, IEEE-Trans. MTT-28, (1980), 1218–1225.

    Google Scholar 

  21. Sterzer, F., Paglione, R., Nowogrodzki, M., Beck, E., Mendecki, J., Frieden-Thal, E., Botstein, C.: 27 MHz Ridged Waveguide Applicators for Localized Hyperthermia Treatment of Deep-Seated Malignant Tumors, Microwave Journal 22, (1981), 71–80.

    Google Scholar 

  22. Sterzer, F., Paglione, R., Nowogrodzki, M., Beck, E., Mendecki, J., Friedenthal, E., Botstein, C.: Microwave Apparatus for the Treatment of Cancer by Hyperthermia, Microwave Journal 23, (1980), 39–44.

    Google Scholar 

  23. Sterzer, F., Paglione, R. W., Mendecki, J., Friedenthal, E., Botstein, C.: RF-Therapy for Malignancy, IEEE-Spectrum, Dec. 1980, 32–37.

    Google Scholar 

  24. Schwan, H. P.: Electromagnetic and Ultrasonic Induction of Hyperthermia in Tissue-Like Substances. Radiation Enviroment, Biophysics 17, 3: 189–202 April, (1980).

    CAS  Google Scholar 

Temperaturmessung

  1. Robinson, J. E., Mclulloch, D., Cheung, A. C., Edelsack, E. A.: Microwave Heating of Malignant Mouse Tumors Encapsulated in a Dielectric Medium, Proc. 6. EuMC, Rom, Sept. (1976), 132–136.

    Google Scholar 

  2. Digest, XIV. Microwave Power Symposium, Monaco, June 1979 Session X, Temperature Measurements and Hyperthermia Effects in vivo.

    Google Scholar 

  3. Lödeke, K. A., Schiek, B., Köhler, J.: Radiation Balance Microwave Thermograph for Industrial and Medical Applications, Electr. Letters 14, (1978), 194–196.

    Google Scholar 

  4. Ludeke, K. A., Köhler, J., Kanzenbach, J.: A New Radiation Balance Microwave Thermography for Simultaneous and Independent Temperature and Emissivity Measurements, 9. European Microwave Conf. Paris, Sept. (1978).

    Google Scholar 

  5. Barret, A. J., Myers, P.: Microwave Thermography as a Diagnostic Tool for the Detection of Cancer, Dig. IEEE 1977 Int. Microwave Symp., San Diego, June 1977.

    Google Scholar 

  6. Edrich, J., Hardee, P. C.: Thermography at Millimeter-Wavelengths, Proc. IEEE 62, (1974), 62.

    Article  Google Scholar 

  7. Mamouni, A., Bliot, F., Leroy, Y., Moschetto, Y.: Radiometer for Temperature and Microwave Properties Measurements of Biological Substances Proc. 7. European Microwave Conf. Kopenhagen, Sept. 1977.

    Google Scholar 

  8. Hindin, H. J.: Microwaves Help Detect Tumors, Electronics April, (1979), 85–86.

    Google Scholar 

  9. Caor, K. L., El-Mahdi, A. M., Shaeffer, J.: Dual-Mode Microwave System to Enhance Early Detection of Cancer. IEEE Trans. MTT-29, (1981), 256–260.

    Google Scholar 

  10. Beckmann, F. K., Dötsch, H., Röschmann, P., Schilz, W.: Remote Temperature Sensing in Organic Tissue by Ferrimagnetic Resonance Frequency Measurements. Proc. 11. European Microwave Conf. Amsterdam, Sept. 1981 (im Druck).

    Google Scholar 

Niederfrequenzphänomene

  1. Gossel, D.: Biologische Effekte elektromagnetischer Felder, Kleinheubacher Berichte 22, (1979), FTZ Darmstadt (mit 90 Referenzen).

    Google Scholar 

  2. Lerner, E. J.: RF-radiation: biological effects. IEEE Spectrum, Dec. (1980), 51–59.

    Google Scholar 

  3. Sheppard, A. R., Eisenbud, M. E.: Biological Effects of Electric and Magnetic Fields of Extremely Low Frequency, New York University Press, New York 1977.

    Google Scholar 

  4. Presman, A. S.: Electromagnetic Fields and Life, Plenum Press, New York, London 1970.

    Google Scholar 

  5. König, H. L.: Unsichtbare Umwelt — Der Mensch im Spielfeld elektromagnetischer Kräfte, Heinz Moos Verlag München, 1975, 2. Auflage, München 1977.

    Google Scholar 

  6. Faust, V.: Biometeorologic, Hippokrates Verlag, Stuttgart 1977.

    Google Scholar 

  7. Wever, R.: Effects of Low-Level, Low-Frequency Fields on Human Circadian Rhythms, Neuro-Sciences Res. Prog. Bull 15 (1977), 39–45.

    CAS  Google Scholar 

  8. Jacobi, E., Kroskemper, G.: Der Einfluß simulierter Sferics (wetterbedingte elektromagnetische Strahlungen) auf die Trombozytenadhädivität, Inn. Med. 2, (1975), 73–81.

    Google Scholar 

  9. Bawin, S. M., Kaczmarek, L. K., Adey, W. R.: Effects of Modulated VHF-Fields on the Central Nervous System, Ann. N.Y. Acad. Sci. 247, (1975), 74–81.

    Article  PubMed  CAS  Google Scholar 

  10. Bernhardt, J.: The Direct Influence of Electromagnetic Fields on Nerve-and Muscle Cells of Man within the Frequency Range of 1 Hz to 30 MHz, Radiation Environment, Biophysics 16, (1979), 189–203.

    Google Scholar 

  11. Haup, R.: Umwelteinflüsse durch elektromagnetische Felder, etz 101,(1980), 13101312.

    Google Scholar 

  12. Silny, J.: Influence of Low-Frequency Magnetic Field on the Organism. Proc. EMC Symposium, Montreux 1980.

    Google Scholar 

  13. Silny, J.: Wirkung des niederfrequenten magnetischen Feldes auf den Organismus, 6. Int. Koll. Verhütung von Arbeitsunfällen und Berufskrankheiten durch Elektrizität, Wien, Okt. 1980 und Forschungsbericht 1/1980, Helmholtz-Institut für Biomed. Technik, RWTH Aachen.

    Google Scholar 

  14. Watson, J.: The Electrical Stimulation of Bone Healing, Proc. IEEE, 67, (1979), 1339–1352.

    Article  Google Scholar 

  15. Bowhill, S. A., Ed.: URSI-Review of Radio Science-Bioeffects of Electromagnetic Waves, Brüssel, (1978), 15–25.

    Google Scholar 

  16. Baterman, J. B.: US-ONR (London)-Report on URSI, Helsinki Conf. Biological Sciences, ESN 31–12, May 1979.

    Google Scholar 

  17. Glazer, J. R., Brown, P. F.: Bibliography of Reported Phenomena (Effects) and Clinical Manifestations Attributed to Microwave and Radio-Frequency Radiation, Naval Res. Dev. Command, Bethesda, Maryland, Rep. MF 51524 0030 (1976).

    Google Scholar 

  18. Fröhlich, H.: The Biological Effects of Microwaves and Related Questions, Adv. in Electronics and Electron Physics, 53, (1980), 85–150.

    Article  Google Scholar 

  19. Kaiser, F.: Limit Cycle Model for Brain Waves, Biol. Cybernetics, 27, (1977), 155.

    Article  CAS  Google Scholar 

  20. Webb, S. J., Booth, A. D.: Absorption of Microwaves by Microorganisms, Nature 222, (1969), 1199.

    Google Scholar 

  21. Bertheaud, A. J., Dardalhon, M., Rebeyrotte, N., Arerbeck, D.: Action d’un Rayonnement Electromagnétique â Longeur d’Onde Millimétrique sur le Croissance Bactérience, C. R. Sc. Paris 28,(1975), D 843.

    Google Scholar 

  22. Gringauz, K. I.: Div. of General Physics and Astronomy, USSR Acad. of Sciences, Sov. Phys. (Translation) 16, (1974), 568.

    Google Scholar 

  23. Grundler, W., Keilmann, F.: Nonthermal Effects of Millimeter Microwaves on Years Growth, 2. Naturforschung 33c, (1978), 15–22.

    CAS  Google Scholar 

  24. Tuengler, P., Keilmann, F., Genzel, L.: Search for Millimeter Microwave Effects on Encyme or Protein Functions, 2. Naturforschung 34c, (1979), 60–63.

    CAS  Google Scholar 

  25. Keilmann, F.: Nonthermal Microwave Resonances in Living Cells — Coherence in Spectroscopy and Modern Physics, Plenum Publ. Corp. New York (1978), 347–360.

    Google Scholar 

  26. Keilmann, F.: Techniques in Microwave Studies, IBM Conf. on Tissue Growth, Bad Neuenahr, Nov. 1979.

    Google Scholar 

  27. Cain, C. A.: A Theoretical Basis for Microwave and RF Field Effects on Excitable Cellular Membranes, IEEE Trans. MTT-28, (1980), 142–147.

    Google Scholar 

  28. Cum, C. H.: Threshold switching in Melania, J. Appl. Physics, 46, (1975), 3658–3660.

    Article  Google Scholar 

  29. Webb, S. J.: Factors Affecting the Induction of Lambda Prophages by Millimeter Microwaves, Phys. Letters, 73 A, (1979), 145–148.

    Google Scholar 

  30. Pori, F. A.: Kohärente elektromagnetische Felder in biologischen Systemen, Laser of Elektro-Optik 3 (1980), 28–32.

    Google Scholar 

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© 1982 Westdeutscher Verlag GmbH Opladen

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Schmitt, H.J. (1982). Der Mensch im elektromagnetischen Feld. In: Der Mensch im elektromagnetischen Feld. Ergonomie in der Medizin. Rheinisch-Westfälische Akademie der Wissenschaften, vol 311. VS Verlag für Sozialwissenschaften, Wiesbaden. https://doi.org/10.1007/978-3-322-88166-3_1

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  • DOI: https://doi.org/10.1007/978-3-322-88166-3_1

  • Publisher Name: VS Verlag für Sozialwissenschaften, Wiesbaden

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