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1

Dong, Jie, Z. F. Li, Xiao Qing Zeng, Chen Lu, and Wen Jiang Ding. "Effect of Strong Magnetic Field on the Discontinuous and Continuous Precipitation in AZ91 Mg Alloy." Materials Science Forum 488-489 (July 2005): 849–52. http://dx.doi.org/10.4028/www.scientific.net/msf.488-489.849.

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A strong static magnetic field (SSMF) of about 10 T was introduced to the aging process of AZ91 magnesium alloy. Comparing with conventional aging, in the first stage of aging with SSMF, discontinuous precipitation of Mg17Al12 at grain boundary was accelerated. The magnetically induced grain boundary migration might be responsible for this acceleration effect. The density of the Mg17Al12 continuous precipitates inside the grains was increased and the precipitation plates became thinner in SSMF pre-aged specimens, which might be ascribed to the retarded volume diffusion resulted from the SSMF.
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2

Barua, Anurup Gohain, Masakazu Iwasaka, Yuito Miyashita, Satoru Kurita, and Norio Owada. "Firefly flashing under strong static magnetic field." Photochem. Photobiol. Sci. 11, no. 2 (2012): 345–50. http://dx.doi.org/10.1039/c1pp05220a.

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3

Higashi, T., A. Yamagishi, T. Takeuchi, et al. "Orientation of erythrocytes in a strong static magnetic field." Blood 82, no. 4 (1993): 1328–34. http://dx.doi.org/10.1182/blood.v82.4.1328.1328.

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Abstract The frequency of exposure to strong magnetic fields has increased as the magnetic-resonance image-diagnostic technique (MRI) and passenger transport systems based on the principle of magnetic levitation have come into wider use. Accordingly, it has become necessary to more systematically assess their influence on the body and set strict guidelines on acceptable limits of magnetism exposure. Therefore, we have assessed the influence of an uniform static magnetic field (8 T in maximum) on normal erythrocytes. The erythrocytes were oriented with their disk plane parallel to the magnetic
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4

Higashi, T., A. Yamagishi, T. Takeuchi, et al. "Orientation of erythrocytes in a strong static magnetic field." Blood 82, no. 4 (1993): 1328–34. http://dx.doi.org/10.1182/blood.v82.4.1328.bloodjournal8241328.

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The frequency of exposure to strong magnetic fields has increased as the magnetic-resonance image-diagnostic technique (MRI) and passenger transport systems based on the principle of magnetic levitation have come into wider use. Accordingly, it has become necessary to more systematically assess their influence on the body and set strict guidelines on acceptable limits of magnetism exposure. Therefore, we have assessed the influence of an uniform static magnetic field (8 T in maximum) on normal erythrocytes. The erythrocytes were oriented with their disk plane parallel to the magnetic field dir
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5

Tian Xiao-Fei and Zhang Xin. "Biological effects on cells in strong static magnetic field." Acta Physica Sinica 67, no. 14 (2018): 148701. http://dx.doi.org/10.7498/aps.67.20180378.

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6

Bivona, S., and M. R. C. McDowell. "Asymmetric charge exchange in a strong static magnetic field." Journal of Physics B: Atomic and Molecular Physics 20, no. 7 (1987): 1541–54. http://dx.doi.org/10.1088/0022-3700/20/7/021.

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7

Aldinucci, Carlo, Julian Blanco Garcia, Mitri Palmi, et al. "The effect of strong static magnetic field on lymphocytes." Bioelectromagnetics 24, no. 2 (2003): 109–17. http://dx.doi.org/10.1002/bem.10071.

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8

Polunin, V. M., P. A. Ryapolov, and E. V. Sheldeshova. "Mechanics of magnetic fluid active element in strong magnetic field." EPJ Web of Conferences 185 (2018): 09005. http://dx.doi.org/10.1051/epjconf/201818509005.

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Measurements and theoretical analysis of the processes of static displacement and oscillations of the magnetic fluid column confined by magnetic levitation in a strong magnetic field in a horizontally placed tube are carried out. The calculations of the saturation magnetization, made on the basis of the obtained results of the displacement and the oscillation frequency for the sample of the magnetic fluid under study, are in good agreement with the experimental data. The described technique is of interest when studying saturation magnetization, magnetophoresis, aggregation of nanoparticles and
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9

Burkov, A. T., T. Nakama, and K. Yagasaki. "Electronic Transport in Itinerant Metamagnets with Strong Static Disorder." Solid State Phenomena 168-169 (December 2010): 521–24. http://dx.doi.org/10.4028/www.scientific.net/ssp.168-169.521.

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We report on electronic transport in nearly magnetic conductors with strong structural disorder. The initial motivation for this work was a large positive magnetoresistance (MR) found in magnetically ordered ground state of (Y1-xGdx)Co2 alloys. This was a surprising result since a large positive MR is not expected in a system with strong static magnetic or structural disorder. Contemporary theory of magnetotransport and common sense agree that an external magnetic field should suppress magnetic fluctuations, resulting in a negative MR. On the contrary; a positive MR suggests that an external m
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10

Higashi, T., S. Sagawa, N. Kawaguchi, and A. Yamagishi. "Effects of a Strong Static Magnetic Field on Blood Platelets." Platelets 4, no. 6 (1993): 341–42. http://dx.doi.org/10.3109/09537109309013238.

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11

Sun, Z. H. I., M. Guo, J. Vleugels, O. Van der Biest, and B. Blanpain. "Strong static magnetic field processing of metallic materials: A review." Current Opinion in Solid State and Materials Science 16, no. 5 (2012): 254–67. http://dx.doi.org/10.1016/j.cossms.2012.08.001.

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12

Sun, Z. H. I., M. Guo, J. Vleugels, O. Van der Biest, and B. Blanpain. "Processing of non-ferromagnetic materials in strong static magnetic field." Current Opinion in Solid State and Materials Science 17, no. 4 (2013): 193–201. http://dx.doi.org/10.1016/j.cossms.2013.05.001.

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13

Ge, Shuchao, Jingchen Li, Dengfeng Huang, et al. "Strong static magnetic field delayed the early development of zebrafish." Open Biology 9, no. 10 (2019): 190137. http://dx.doi.org/10.1098/rsob.190137.

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One of the major topics in magnetobiology is the biological effects of strong static magnetic field (SMF) on living organisms. However, there has been a paucity of the comprehensive study of the long-term effects of strong SMF on an animal's development. Here, we explored this question with zebrafish, an excellent model organism for developmental study. In our research, zebrafish eggs, just after fertilization, were exposed to a 9.0 T SMF for 24 h, the critical period of post-fertilization development from cleavage to segmentation. The effects of strong SMF exposure on the following developmen
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14

Iwasaka, Masakazu, Masateru Ikehata, Junji Miyakoshi, and Shoogo Ueno. "Strong static magnetic field effects on yeast proliferation and distribution." Bioelectrochemistry 65, no. 1 (2004): 59–68. http://dx.doi.org/10.1016/j.bioelechem.2004.04.002.

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15

Ichioka, Shigeru, Masayuki Minegishi, Masakazu Iwasaka, et al. "Skin temperature changes induced by strong static magnetic field exposure." Bioelectromagnetics 24, no. 6 (2003): 380–86. http://dx.doi.org/10.1002/bem.10115.

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16

Wang, Lei, Hua Du, Xiaoying Guo, et al. "Developmental abnormality induced by strong static magnetic field inCaenorhabditis elegans." Bioelectromagnetics 36, no. 3 (2015): 178–89. http://dx.doi.org/10.1002/bem.21906.

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17

Nakagawa, Masayoshi, and Yuzo Matsuda. "A strong static-magnetic field alters operant responding by rats." Bioelectromagnetics 9, no. 1 (1988): 25–37. http://dx.doi.org/10.1002/bem.2250090103.

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18

Zheng, Tianxiang, Yunbo Zhong, Licheng Dong, et al. "Orientation of Magnetized MnBi in a Strong Static Magnetic Field." Metallurgical and Materials Transactions A 49, no. 6 (2018): 1981–85. http://dx.doi.org/10.1007/s11661-018-4550-2.

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19

Dong, Jie, Z. F. Li, Xiao Qin Zeng, and Wen Jiang Ding. "Intermediate Phase Growth of Mg-Al Diffusion Couple under a Strong Static Magnetic Field." Materials Science Forum 546-549 (May 2007): 491–94. http://dx.doi.org/10.4028/www.scientific.net/msf.546-549.491.

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Intermediate phase growth in Mg-Al diffusion couples were studied with different intensity of a strong static magnetic field from 0 to 10 Tesla. Thickness measurement of the intermediate phases (Mg17Al12 and Al3Mg2) shows that with the increasing of magnetic field intensity, the growth rate of both intermediate phases is retarded. The decrease of the phase growth rate is ascribed to the suppressed Al, Mg atom interdiffusion in the diffusion couple under the static magnetic field. It is also found that the orientation relationship between couple interface and magnetic field direction has no inf
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20

Kuznetsov, B. I., A. S. Kutsenko, T. B. Nikitina, I. V. Bovdui, V. V. Kolomiets, and B. B. Kobylianskyi. "Method for design of two-level system of active shielding of power frequency magnetic field based on a quasi-static model." Electrical Engineering and Electromechanics 2024, no. 2 (2024): 31–39. https://doi.org/10.20998/2074-272X.2024.2.05.

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<strong><em>Aim</em></strong><em>.&nbsp;</em><em>Development of method for design a two-level active shielding system for an industrial frequency magnetic field based on a quasi-static model of a magnetic field generated by power line wires and compensating windings of an active shielding system, including coarse open and precise closed control.&nbsp;<strong>Methodology.</strong>&nbsp;At the first level&nbsp;</em><em>rough&nbsp;</em><em>control of the magnetic field in open-loop form is carried out based on a quasi-static model of a magnetic field generated by power line wires and compensating
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21

Kalmykov, Yu P., and S. V. Titov. "Complex magnetic susceptibility of uniaxial superparamagnetic particles in a strong static magnetic field." Physics of the Solid State 40, no. 9 (1998): 1492–99. http://dx.doi.org/10.1134/1.1130584.

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22

Dubov, A. A., A. A. Dubov, A. V. Yamchuk, et al. "Identification of structural defects and their impact on the magnetic memory, static and cyclic strength of VNS9-SH thin sheet trip-steel." Industrial laboratory. Diagnostics of materials 90, no. 5 (2024): 60–68. http://dx.doi.org/10.26896/1028-6861-2024-90-5-60-68.

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Identification of microstructure defects, which are stress concentrators (SC) during the operation of mechanical engineering products, is an important scientific and practical task relevant for manufacturing enterprises. This problem becomes especially urgent and difficult for critical helicopter parts made of sheet TRIP steel VNS9-Sh (23Kh15N5AM3-Sh) and operating under cyclic loads due to the complex microstructure of the steel and small thickness of strips and sheets. To assess the impact of structural defects on the cyclic strength of products made of the steel under study, the specimens w
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23

Ren, Weili, Zhongming Ren, Kang Deng, Yunbo Zhong, Zuosheng Lei, and Xi Li. "Progress in Research on Solidification in a Strong Static Magnetic Field." steel research international 78, no. 5 (2007): 373–78. http://dx.doi.org/10.1002/srin.200705906.

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24

Elblbesy, Mohamed A. "Direct monitoring of erythrocytes aggregation under the effect of the low-intensity magnetic field by measuring light transmission at wavelength 800 nm." Polish Journal of Medical Physics and Engineering 23, no. 4 (2017): 89–92. http://dx.doi.org/10.1515/pjmpe-2017-0015.

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Abstract Interacting electromagnetic field with the living organisms and cells became of the great interest in the last decade. Erythrocytes are the most common types of the blood cells and have unique rheological, electrical, and magnetic properties. Aggregation is one of the important characteristics of the erythrocytes which has a great impact in some clinical cases. The present study introduces a simple method to monitor the effect of static magnetic field on erythrocytes aggregation using light transmission. Features were extracted from the time course curve of the light transmission thro
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25

CALUCCI, GIORGIO. "POSSIBLE INSTABILITY OF THE VACUUM IN A STRONG MAGNETIC FIELD." Modern Physics Letters A 14, no. 37 (1999): 2621–27. http://dx.doi.org/10.1142/s0217732399002753.

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The possibility that a static magnetic field may decay through production of electron positron pairs is studied. The conclusion is that this decay cannot happen through production of single pairs, as in the electric case, but only through the production of a many-body state, since the mutual magnetic interactions of the created pairs play a relevant role. The investigation is made in view of the proposed existence of huge magnetic field strengths around some kind of neutron stars.
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26

Nakagawa, M. "HRV changes of adult men by exposure to strong static magnetic field." SANGYO EISEIGAKU ZASSHI 40, Special (1998): 300. http://dx.doi.org/10.1539/sangyoeisei.kj00001990127.

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27

Fujiwara, Yoshihisa, Masahiko Tomishige, Yasuhiro Itoh, et al. "Effect of horizontal strong static magnetic field on swimming behaviour ofParamecium caudatum." Molecular Physics 104, no. 10-11 (2006): 1659–66. http://dx.doi.org/10.1080/00268970600643556.

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28

Frick, Vincent, Joris Pascal, Luc Hébrard, and Jean-Philippe Blondé. "Integrated instrumental chain for magnetic pulse measurement in strong static field environment." Analog Integrated Circuits and Signal Processing 57, no. 3 (2008): 161–68. http://dx.doi.org/10.1007/s10470-007-9128-7.

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29

Sun, Z. H. I., M. Guo, J. Vleugels, O. Van der Biest, and B. Blanpain. "ChemInform Abstract: Processing of Non-ferromagnetic Materials in Strong Static Magnetic Field." ChemInform 46, no. 7 (2015): no. http://dx.doi.org/10.1002/chin.201507285.

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30

Mietchen, Daniel. "A formalization of one of the main claims of “Cortex reorganization of Xenopus laevis eggs in strong static magnetic fields” by Mietchen et al. 20051." Data Science 5, no. 1 (2022): 21–23. http://dx.doi.org/10.3233/ds-210040.

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Mietchen et al. claimed in previous work that strong static magnetic fields change the cell cortex in dejellied fertilizable stage VI Xenopus lavis oocytes. We present here a formalization of that claim, stating that all things of class “strong static magnetic field” that are in the context of a thing of class “dejellied fertilizable stage VI Xenopus laevis oocyte” generally have a relation of type “affects” to a thing of class “cell cortex” in the same context.
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31

Zarcone, M., and S. Nuzzo. "Potential scatteringTmatrix in a strong static magnetic field and a collinear low-frequency radiation field." Physical Review A 52, no. 3 (1995): 2185–94. http://dx.doi.org/10.1103/physreva.52.2185.

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32

Tessaro, Lucas W. E., Lukasz M. Karbowski, Robert M. Lafrenie, and Michael A. Persinger. "Application of Dynamic Magnetic Fields to B16-BL6 Melanoma Cells Linked with Decrease in Cellular Viability After Short Exposures." Journal of Advance Research in Pharmacy & Biological Science (ISSN: 2208-2360) 1, no. 6 (2015): 01–11. http://dx.doi.org/10.53555/nnpbs.v1i6.566.

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This experiment was designed to test the effects of an extremely low frequency electromagnetic field (ELF-EMF) generator (‘Resonator’) compared with strong static magnetic fields on cellular viability, and to illustrate the importance of dynamic patterns of fields compared with static patterns.
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33

Prato, Frank S., Dawn Desjardins-Holmes, Lynn D. Keenliside, Janice M. DeMoor, John A. Robertson, and Alex W. Thomas. "Magnetoreception in laboratory mice: sensitivity to extremely low-frequency fields exceeds 33 nT at 30 Hz." Journal of The Royal Society Interface 10, no. 81 (2013): 20121046. http://dx.doi.org/10.1098/rsif.2012.1046.

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Magnetoreception in the animal kingdom has focused primarily on behavioural responses to the static geomagnetic field and the slow changes in its magnitude and direction as animals navigate/migrate. There has been relatively little attention given to the possibility that weak extremely low-frequency magnetic fields (wELFMF) may affect animal behaviour. Previously, we showed that changes in nociception under an ambient magnetic field-shielded environment may be a good alternative biological endpoint to orientation measurements for investigations into magnetoreception. Here we show that nocicept
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34

Zhang, Tian-Cheng, Ai-Qiang Cheng, Hua-Guang Bao, and Da-Zhi Ding. "Simulation of radiation characteristic of antenna in hypersonic vehicle with static magnetic field." Acta Physica Sinica 71, no. 8 (2022): 085202. http://dx.doi.org/10.7498/aps.71.20212044.

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To enhance the radiation performance of the Beidou antenna in the near-space hypersonic vehicle, the static strong magnetic field is used to weaken the electron density in plasma surrounding the antenna. In order to demonstrate the effect of this program, a time-domain multi-physical method is proposed. In the proposed method, what is first analyzed is the reduction of electron concentration in plasma sheath by static strong magnetic field with the spectral element time domain (SETD) method, which has spectral accuracy. Then, the electron density after mitigation is extracted to replace the or
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35

DI PIAZZA, ANTONINO, та GIORGIO CALUCCI. "PRODUCTION OF π0 IN A STRONG, TIME-DEPENDENT MAGNETIC FIELD". Modern Physics Letters A 20, № 02 (2005): 117–25. http://dx.doi.org/10.1142/s0217732305016415.

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The probability that a neutral meson π0 is produced from vacuum in the presence of a strong and time-varying magnetic field is calculated. Since the π0 has zero electric charge, the interaction with the external magnetic field occurs through the magnetic moment of the constituent quark–antiquark pairs. The phenomenological SU (6) quark model is used to build up perturbatively the one-particle neutral meson states in the presence of a static magnetic field. Then, the presence probability is obtained by means of the adiabatic perturbation theory. The mechanism proposed implies that the pion is p
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36

Seliger, J., and V. Žagar. "A New Nuclear-Quadrupole Double-Resonance Technique based on Solid Effect." Zeitschrift für Naturforschung A 52, no. 4 (1997): 337–42. http://dx.doi.org/10.1515/zna-1997-0407.

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Abstract A new nuclear-quadrupole double-resonance technique is described. It has a higher sensitivity and a higher resolution than the conventional nuclear-quadrupole double-resonance technique based on solid effect. The new technique involves magnetic field cycling between a high and a low static magnetic field and simultaneous application of two rf magnetic fields when the sample is in the low static magnetic field. A strong rf magnetic field induces "forbidden" simultaneous transitions in a magnetic (usually 1H) and in a quadrupole spin system and thus couples the two spin systems. A weak
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37

Petrov, Yu V. "Solids in Strong Magnetic Fields at High Pressures: Static Properties and Lattice Dynamics." Laser and Particle Beams 15, no. 4 (1997): 597–606. http://dx.doi.org/10.1017/s0263034600011174.

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The equation of state and other thermodynamic functions of solids consisting of many electron atoms in strong magnetic fields arising in some laser experiments and astrophysical objects are calculated within the Kadomtzev's approach up to the high-pressure range. All static thermo-dynamic functions under consideration are obtained from the two-parametric scaling relations on the atomic number and magnetic field from the universal functions of the specific volume. At this high-pressure region, lattice dynamics of monoatomic solids in strong magnetic fields are considered. Vibrational spectra of
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38

Sipka, S., I. Szöllősi, Gy Batta, et al. "Decreased chemotaxis of human peripheral phagocytes exposed to a strong static magnetic field." Acta Physiologica Hungarica 91, no. 1 (2004): 59–65. http://dx.doi.org/10.1556/aphysiol.91.2004.1.4.

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39

Jan, Luka, Dušan Fefer, Katarina Košmelj, Alenka Gaberščik, and Igor Jerman. "Geomagnetic and strong static magnetic field effects on growth and chlorophyllafluorescence inLemna minor." Bioelectromagnetics 36, no. 3 (2015): 190–203. http://dx.doi.org/10.1002/bem.21898.

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40

Ward, Bryan K., Yoon H. Lee, Dale C. Roberts, Ethan Naylor, Americo A. Migliaccio, and Charles C. Della Santina. "Mouse Magnetic-field Nystagmus in Strong Static Magnetic Fields Is Dependent on the Presence of Nox3." Otology & Neurotology 39, no. 10 (2018): e1150-e1159. http://dx.doi.org/10.1097/mao.0000000000002024.

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41

Filip, Peter. "Internal structure modification and decay of hadrons in strong magnetic field." International Journal of Modern Physics: Conference Series 39 (January 2015): 1560114. http://dx.doi.org/10.1142/s2010194515601143.

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We discuss the influence of external magnetic field on strong decays of [Formula: see text], [Formula: see text] and [Formula: see text] mesons. Due to increasing energy of [Formula: see text] Landau level of charged decay products, particular decay channels may become suppressed and isospin rules for strong decays can be violated. In the case of [Formula: see text] meson, enhanced production of photons and dileptons (with modified invariant mass) may occur. Similar considerations are applied to decays of [Formula: see text] baryon. We also suggest that static electromagnetic field of sufficie
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42

Soa, Dang Van, and Tran Dinh Tham. "Production Cross Sections of Axion in a Static Electromagnetic Field." Communications in Physics 23, no. 1 (2013): 21. http://dx.doi.org/10.15625/0868-3166/23/1/897.

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Photon - axion conversions in staticelectromagnetic fields of the size \(a\times b \times c\) areconsidered in detail by the Feynman diagram methods. Thedifferential cross sections are presented and the numericalevaluations of the total cross section are given. Our result showsthat the conversion cross-sections in the electric field are quitesmall, while in the strong magnetic field, the cross-sections are much enhanced, which can be measurable in current experiments.
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43

Rajczykowski, Krzysztof, and Krzysztof Loska. "Effect of the strong magnetic field on copper adsorption processes on activated carbon." Challenges of Modern Technology 8, no. 2 (2017): 7–10. http://dx.doi.org/10.5604/01.3001.0012.2612.

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In the presented studies an influence of the strong static magnetic field on the process of copper adsorption on activated carbon was analysed. The magnetic field was generated by the annular neodymium magnets, placed at the bottom of the glass reactors, with the magnetic induction value at the surface equal 0.517 T. Additionally, during the study an effect of temperature on the adsorption process efficiency and its susceptibility to the external magnetic field was also investigated. As a result of the study, it was found that using a magnetic modification can increase the efficiency of the ad
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44

Zhang, Y. "Static Characteristics of Magnetized Journal Bearing Lubricated With Ferrofluid." Journal of Tribology 113, no. 3 (1991): 533–37. http://dx.doi.org/10.1115/1.2920656.

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The static characteristics of magnetized journal bearing, which is lubricated with ferrofluid, are investigated. The magnetic force acting on the ferrofluid is obtained using a solenoid model for the magnetized bearing. The model suggests that the position of oil film should be located with the positive magnetic force region. In the study we found that the main feature of the magnetic force is the ability to change the size of the cavitation region, and then all the static characteristics. The pressure resulting from the magnetic force should be incorporated into the Reynolds equation and it c
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45

HIROSE, HIDEKI, TAKEHISA NAKAHARA, QIU-MEI ZHANG, SHUJI YONEI, and JUNJI MIYAKOSHI. "STATIC MAGNETIC FIELD WITH A STRONG MAGNETIC FIELD GRADIENT (41.7 T/m) INDUCES C-JUN EXPRESSION IN HL-60 CELLS." In Vitro Cellular & Developmental Biology - Animal 39, no. 8 (2003): 348. http://dx.doi.org/10.1290/1543-706x(2003)039<0348:smfwas>2.0.co;2.

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46

Cattaneo, F., and D. W. Hughes. "The nonlinear breakup of a magnetic layer: instability to interchange modes." Journal of Fluid Mechanics 196 (November 1988): 323–44. http://dx.doi.org/10.1017/s0022112088002721.

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Motivated by considerations of the solar toroidal magnetic field we have studied the behaviour of a layer of uniform magnetic field embedded in a convectively stable atmosphere. Since the field can support extra mass, such a configuration is top-heavy and thus instabilities of the Rayleigh-Taylor type can occur. For both static and rotating basic states we have followed the evolution of the interchange modes (no bending of the field lines) by integrating numerically the nonlinear compressible MHD equations. The initial Rayleigh-Taylor instability of the magnetic field gives instabilities to st
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47

Beattie, James R., Christoph Federrath, and Amit Seta. "Magnetic field fluctuations in anisotropic, supersonic turbulence." Monthly Notices of the Royal Astronomical Society 498, no. 2 (2020): 1593–608. http://dx.doi.org/10.1093/mnras/staa2257.

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ABSTRACT The rich structure that we observe in molecular clouds is due to the interplay between strong magnetic fields and supersonic (turbulent) velocity fluctuations. The velocity fluctuations interact with the magnetic field, causing it too to fluctuate. Using numerical simulations, we explore the nature of such magnetic field fluctuations, $\delta \mathrm{{\boldsymbol {\mathit {B}}}}$, over a wide range of turbulent Mach numbers, $\operatorname{\mathcal {M}}= 2\!-\!20$ (i.e. from weak to strong compressibility), and Alfvén Mach numbers, $\operatorname{\mathcal {M}_{\text{A0}}}= 0.1\!-\!100
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48

Han, Bao Zhong, Wei Zhou, Chang Lin Liu, Dan Liu, and Xiang Wang. "Effect of Magnetic Field Treatment on Dielectric Properties of LDPE Composites with Carbon Nanotube and Nanographite." Advanced Materials Research 873 (December 2013): 436–40. http://dx.doi.org/10.4028/www.scientific.net/amr.873.436.

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Magnetic phenomenon is one of the most fundamental phenomena of substances. All substances possess strong or weak magnetic property, and have different responds to external magnetic field. Development of high performance materials by using external magnetic field is an important research field of material science. In this study, a static magnetic field is applied during thermoforming processing of low density polyethylene (LDPE)/carbon nanotube (CNT), LDPE/nanographite composites. The effect of magnetic field treatment on dielectric property of these composites is investigated. Experimental re
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49

Setare, M. R., and P. Majari. "The (2+1)-dimensional f-deformed Dirac oscillator in the presence of an external field." International Journal of Modern Physics A 32, no. 26 (2017): 1750158. http://dx.doi.org/10.1142/s0217751x17501585.

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We consider a two-dimensional f-deformed Dirac oscillator in the presence of an external uniform static magnetic field. We show that the two-dimensional f-deformed Dirac oscillator maps exactly onto the anti-Jaynes–Cummings (AJC) and Jaynes–Cummings (JC) models. We also obtain the energy spectrum and corresponding eigenstates in the weak and strong magnetic field regimes. We show how the change in chirality is associated with the magnitude of the magnetic field. We investigate the two-dimensional f-deformed Dirac oscillator in an external (isospin) field and find its energy spectrum.
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50

Kamantsev, A. P., V. V. Koledov, V. G. Shavrov, et al. "Magnetocaloric Effect in the Laves Phase of GdNi2 in Strong Magnetic Fields." Радиотехника и электроника 68, no. 4 (2023): 384–90. http://dx.doi.org/10.31857/s0033849423040137.

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Experimental studies of the magnetic and magnetocaloric properties of the Laves phase of GdNi2 have been carried out in external static up to 3 T and pulsed up to 50 T magnetic fields. It has been found that in a magnetic field of 3 T the change in the magnetic entropy of the alloy reaches its maximum value ΔSm = −8 J/(kg K) in the vicinity of the Curie temperature TC = 73.6 K. The corresponding adiabatic temperature change in this case, calculated by an indirect method, is ΔTad ≈ 3 K. The maximum value of the adiabatic temperature change measured by the direct method in a pulsed magnetic fiel
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