MAGNETIC FIELD AS FACTOR OF CONTROL FOR STRUCTURE AND PROPERTIES OF CEMENT SYSTEMS. PART 1. THEORETICAL PREREQUISITES FOR MAGNETIC EFFECT ON PHYSICOCHEMICAL PROCESSES
Abstract
Keywords
About the Authors
NIKOLAI P. GorlenkoRussian Federation
VLADIMIR N. Safronov
Russian Federation
YURII A. Abzaev
Russian Federation
YURII S. Sarkisov
Russian Federation
SOF''YA N. Kugaevskaya
Russian Federation
TAT''YANA A. Ermilova
Russian Federation
References
1. Buchachenko A.L. Khimiya na rubezhe vekov. Sversheniya i prognozy [Chemistry at the turn of centuries. Accomplishment and forecasts]. Russ. Chem. Rev. 1999. V. 68. No. 2. Pp. 99–118. (rus)
2. Zheleztsov A.V. Magnitnye yavleniya v rastvorakh [magnetic phenomena in mortars]. Elektronnaya obrabotka materialov. 1976. No. 4. Pp. 25–31. (rus)
3. Kirgintsev A.N., Sokolov V.M., Khanaev V.I. K voprosu o vliyanii magnitnogo polya na fizikokhimicheskie svoistva rastvorov [Towards the magnetic effect on physicochemical properties of mortars]. Russian Journal of Physical Chemistry A. 1968. V. 48. Pp. 301–303. (rus)
4. Minenko V.I., Petrov V.I. O fiziko-khimicheskikh osnovakh magnitnoi obrabotki vody [Physicochemical basics of magnetic water processing]. Thermal Engineering. 1962. V. 9. P. 63. (rus)
5. Williams М.R. Activation of molecular processes by controlled electromagnetic stimulation. American. Chemical Society. All Rights Reserved. 1997. 44 р.
6. Berg H. Problems of Weak Electromagnetic-Field Effects in Cell Biologу. Bioelectrochemistry and Bioenergetics. 1999. V. 48. P. 355.
7. Li Yang, Ma Wei, Ma Rongjun, Ma Wenji. Effects of magnetic fields on production of activated ZnO and its mechanism. Dep. Polymer Science and Eng. 1998. No. 50. P. 85.
8. Wang Chao, Lei Sheng-bin, Chen Shen-hao, Yu Xi-ling. Potentiostatic current oscillations of iron in H2S04 solution under the influence of CI- and magnetic fields. Electrochemistry. 1999. V. 8. No. 4. P. 69.
9. Sakurai H., Yasui H., Kunitomi K., Kamatari M., Kaneko N., Nakayama A. Effects of static magnetic field on dissolved oxygen levels inaqueous solutions containing copper (II), iron (II), and heme iron (III) complexes. Pathophysiology. 2000. V. 7. No. 2. Pр. 93–99.
10. Ebner A.D., Ritter J.A. , Ploehn H.J., Kochen R.L., Navratii J.D. New magnetic field enhanced process for the treatment of aqueous wastes. Separation Science and Technology. 1999. V. 34. No. 6. P. 1277.
11. Kiselev V.F., Saletskii A.M., Semikhina L.P. Strukturnye izmeneniya v vode posle vozdeistviya slabykh peremennykh magnitnykh polei [Structural modification of water subjected to weak variable magnetic fields]. Moscow University Physics Bulletin. 1990. V. 31. No. 2. Pp. 53–58. (rus)
12. Gorlenko N.P. Nizkoenergeticheskaya aktivatsiya gomogennykh i geterogennykh sred [Lowenergy activation of homogeneous and heterogeneous media]. Vestnik TSUAB. 2002. No. 1. Pp. 12–21. (rus)
13. Polyukhovich L.Ya., Gorlenko N.P. Issledovanie aktivirovannykh vodnykh rastvorov kaliya, natriya, kal'tsiya metodom impedansa [A study of activated aquatic solutions of K, Na, Ca using impedance method]. Vestnik TSUAB. 2002. No. 1. Pp. 34–40. (rus)
14. Gorlenko N.P., Kulinich E.A., Alesina N.V., Sarkisov Yu.S. Aktiviruyushchee vozdeistvie magnitnogo polya na protsessy strukturoobrazovaniya dispersnykh sistem [Magnetic activation effect on structure formation of dispersion systems]. Vestnik TSUAB. 2001. No. 1. Pp. 5–8. (rus)
15. Gorlenko N.P., Mokrousov G.M. The magnetic field influence upon anion radical photochemical generation in radical media. Proc. 3rd All-Union Sci. Conf. ‘Polarization of electrons and nuclei and magnetic effects in chemical reactions’, Novosibirsk, 1981. P. 39. (rus)
16. Gorlenko N.P., Mokrousov G.M. Metastabil'nost' protsessov kak neobkhodimoe uslovie proyavleniya effektov magnitnoi obrabotki, Deponirovannaya rukopis' N 646-khp -D82. [Metastable processes as a necessary condition for magnetic treatment effects. Manuscript].ONIITEKhIM Publ., 1982. (rus)
17. Safronov, V.N., Sarkisov, Yu.S., Kugaevskaya, S.A. Tsiklovaya magnitnaya aktivatsiya gazonapolnennykh zhidkikh sred zatvoreniya tsementnykh sistem [Cycle magnetic activation of gas-filled mixing waters for cement pastes]. Vestnik TSUAB. 2009. No. 4. Pp. 89–99. (rus)
18. Safronov V.N., Gorlenko N.P., Sarkisov Yu.S., Abzaev Yu.A., Kugaevskaya S.A., Ermilova T.A. Rol' tsiklovoi magnitnoi obrabotki vody zatvoreniya v upravlenii svoistvami i protsessami gidratatsii i strukturoobrazovaniya tsementnykh sistem [Mixing water magnetic activation cycle effect on hydration and structure formation of cement systems] Vestnik TSUAB. 2014. No. 4. Pp. 135–148. (rus)
19. Usatenko S.T., Morozov V.I., Kdassen V.I. Vliyanie magnitnykh polei na vrashchatel'nye IKspektry vody [Magnetic field effect on rotational IR-spectra of water]. Colloid Journal. 1977. V. 39. No. 5. Pp. 1018–1020. (rus)
20. Karavaeva, A.P., Marshakov I.K., Zhidkonozhkina A.A. Nekotorye svoistva omagnichennoi glubokoobessolennoi vody [Properties of highly demineralized water]. Teoriya i praktika sorbtsionnykh protsessov. 1976. V. 11. Pp. 78–83. (rus)
21. Ershova G.F., Churaev N.V. Issledovanie neravnovesnykh sostoyanii vodnykh rastvorov po infrakrasnym spektram [Research of non-equilibrium states of water solutions by IRspectra].Russian Journal of Physical Chemistry A. 1979. V. 53. No. 9. Pp. 2392–2394. (rus)
22. Chekanov V.V., Drozdov V.I., Nuzubidze P.V., et al. Izmenenie namagnichennosti magnitnoi zhidkosti pri obrazovanii agregatov [Change of liquid magnetization at aggregate formation]. Magnetohydrodynamics. 1984. No. 1. Pp. 3–9. (rus)
23. Varlamova Yu.D., Kaplun A.V. Issledovanie protsessov strukturoobrazovaniya v magnitnykh zhidkostyakh [Structure formation in magnetic liquids]. Magnetohydrodynamics. 1983. No. 1. Pp. 33–39. (rus)
24. Bantysh L.A. Osobennosti fazovykh perekhodov voda-led i voda-par pri deistvii postryannogo magnitnogo polya [Phase transformations water-ice exposed to magnetostatic field]. Elektronnaya obrabotka materialov. 1977. No. 5. Pp. 63–64. (rus)
25. Boichenko V.A., Zolotov E.V., Sapogin L.G. K voprosu o vzaimodeistvii vody s vneshnim magnitnym polem [Interaction between water and external magnetic field]. ONIITEKhIM Publ., 1975. No. 710/76. 11 p. (rus)
26. Voprosy teorii i praktiki magnitnoi obrabotki vody i vodnykh rastvorov [Theory and practice of magnetic water and water solution activation].Coll. Papers. Novocherkassk : NPI Publ.,1975. 265 p. (rus)
27. Zyat'kov A.I. K voprosu o prirode svoistv magnitoobrabotannoi vody [Properties of water treated by magnetic field]. Russian Journal of Applied Chemistry. 1977. V. 50. No. 1. Pp. 16–19. (rus)
28. Zelenkov V.E., Chernov Yu.K. Izmenenie diamagnetizma vody pri magnitnoi obrabotke [Diamagnetism of water at magnetic treatment]. In: Ochistka stochnykh i oborotnykh vod. Moscow : Metallurgiya Publ., 1971. Pp. 150–160. (rus)
29. Kronenderg K.J. Verzuge der magnetischen vvasserhandlung, die neue arzliche. 1988. V. 22. No. 35. Pp. 69–74.
30. Dubov A.P. Geomagnitnoe pole i zhizn' [Geomagnetic Earth’s field]. Leningrad : Gidrometeoizdat. 1974. 176 p. (rus)
31. Dukhanin B.C. Issledovanie vliyaniya magnitnogo polya na gidratatsiyu ionov v rastvorakh elektrolitov i na skorost' nekotorykh khimicheskikh reaktsii: avtoref. diss … kand. khim. Nauk [A study of magnetic field effect on ion hydration in electrolyte solutions and chemical reaction rate. PhD abstract].Moscow : 1973. 21 p. (rus)
32. Gak E.Z., Rokhinson E.Kh., Bondarenko N.F. Vliyanie magnitogidrodinamicheskikh yavlenii v elektrolitakh na kinetiku geterogennykh protsessov [Magnetic hydrodynamic phenomena in electrolytes affecting kinetics of heterogeneous processes]. Elektronnaya obrabotka materialov. 1977. No. 4. Pp. 62–66. (rus)
33. Gak E.Z. Gidrodinamichekie effekty v vodnykh sredakh v elektricheskikh i magnitnykh polyakh [Hydrodynamic effects in aquatic solutions in electric and magnetic fields]. J. Eng. Phys. and Thermophys.. 1982. V. XLIII. No. 1. Pp. 140–153. (rus)
34. Evdokimov V.B., Manukyan S.D. Fiziko-khimicheskie osnovy magnitogidrodinamicheskoi demineralizatsii zhidkostei [Physicochemical basics of magnetic hydrodynamic water demineralization]. J. Physical Chem. 1975. V. 3. Pp. 569–578. (rus)
35. О' Brien K.N., Santhanam K.S. Magnetic field on the growth on the diffusion layer at vertical electrodes during electrodeposition. J. Electrochem. Soc. 1982. V. 129. No. 6. Pp. 1266–1268.
36. Guraichi M.S., Eahidy T.Z. A technique for the study of flow patterns in electrolysis, J. Electrochim. Soc. 1980. V. 127. P. 666.
37. Evdokimov V.B., Manukyan S.D., Tikhomirov V.G. Issledovanie poperechnykh i prodol'nykh effektov v rastvorakh elektrolitov [A study of transverse and longitudinal effects in electrolyte solutions]. J. Physical Chem. 1978. V. 52. No. 1. Pp. 225–227. (rus)
38. Aleksandrov P.A., Gramberg I.S., Marmorshtein L.M., Kazarinov V.E., Krylov B.C. Vliyanie magnitnogo polya na elektroprovodnost' rastvorov elektrolitov v geterogennykh sistemakh [Magnetic field effect on electric conductivity of electrolytes in heterogeneous systems]. Proc. USSR Academy of Sciences, 1983. V. 268. No.4. Pp. 848–850. (rus)
39. Gak E.Z., Rik G.R. O primenenii magnitogidrodinamicheskikh effektov v elektrolitakh dlya modelirovaniya nekotorykh protsessov perenosa [The use of magnetic hydrodynamic effects in electrolytes for transformation process modeling].Technical Physics. The Russian Journal of Applied Physics. 1968. V. 38. No. 5. Pp. 931–934. (rus)
40. Noninski С.J., Noninski V.C., Terziyski V.J. Coper deposition and overvoltage in magnetic field in the tafel potential region. Renn. Soc. Int. Electrochem., 1982. V. 2. Pp. 939–941.
41. Zheng J.M., Chin W.C., Khijniak E., et al. Surfaces and interfacial water: evidence that hydrophilic surfaces have long-range impact. Adv. Colloid Interface Sci. 2006. V. 127. Pp. 19–27.
42. Katsir Y., Miller L., Aharonov Y., et al. The effect of RF-irradiation on electrochemical deposition and its stabilization by nanoparticle doping. Journal of the Electrochemical Society, 154[4]: D249-D259 (2007).
43. Zhao Q., Ovchinnikova K., Chai B., et al. Role of proton gradients in the mechanism of osmosis. J. Phys Chem B. 2009. Aug 6.113 (31): 10708-14.
44. Collacicco, G. Electrical potential of the water surface. Chemica Scripta. 1988. No. 2. V. 28. Pp. 141–144.
45. Andreev V.G. Vliyanie poverkhnostnogo potentsiala vody na reologicheskie svoistva dispersnykh sistem [Water surface potential effect on rheological properties of dispersion systems]. Proc. Int. Symp. ‘Reliability and Quality’. Penza, 2004. Pp. 385–386. (rus)
46. Lo S.Y., Geng, X., Gann D. Evidence for the existence of stable-water-clusters at room temperature and normal pressure. Physics Letters A. 2009. V. 373. Pp. 3872–3876.
47. Voeikov V.L. Klyuchevaya rol' ustoichivo neravnovesnogo sostoyaniya vodnykh sistem v bioenergetike [The key role of steady non-equilibrium state of water systems in bioenergetics]. Russian Journal of General Chemistry. 2009. V. LIII. No. 6. Pp. 41–49. (rus)
48. Kha D.M., Mukhitova O.G., Vilenskaya N.D., et al. Aktivirovannye perekis'yu vodoroda vodnye rastvory bikarbonatov – dolgovremennye istochniki nizkointensivnogo izlucheniya, reagiruyushchie na slabye i sverkh-slabye vozdeistviya [Bicarbonate aquatic solutions activated by hydrogen peroxide as long-term sources of low-intensive radiation responding to weak and superweak effects]. Biomedical Radioelectronics. 2011. No. 2. Pp. 28–38. (rus)
49. Mokrousov G.M., Gorlenko N.P. Fiziko-khimicheskie protsessy v magnitnom pole [Physicochemical processes in magnetic field]. Tomsk, TSU Publ., 1988. 128 p. (rus)
50. Gorlenko N.P., Sarkisov Yu.S. Nizkoenergeticheskaya aktivatsiya dispersnykh sistem [Lowenergy activation of dispersion media]. TSUAB Publ., 2011. 264 p. (rus)
Review
For citations:
Gorlenko N.P., Safronov V.N., Abzaev Yu.A., Sarkisov Yu.S., Kugaevskaya S.N., Ermilova T.A. MAGNETIC FIELD AS FACTOR OF CONTROL FOR STRUCTURE AND PROPERTIES OF CEMENT SYSTEMS. PART 1. THEORETICAL PREREQUISITES FOR MAGNETIC EFFECT ON PHYSICOCHEMICAL PROCESSES. Vestnik of Tomsk state university of architecture and building. 2015;(3):134-150. (In Russ.)