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Journal articles on the topic 'Large-sized'

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1

Shapovalov, K. P., V. A. Belinsky, A. E. Merzlyakov, S. N. Kosinov, K. A. Yushchenko, I. I. Lychko, and S. M. Kozulin. "Electroslag welding of large-sized press frame." Paton Welding Journal 2016, no. 8 (August 28, 2016): 36–39. http://dx.doi.org/10.15407/tpwj2016.08.07.

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2

Vaidya, Kaivan, Chinmay Khandkar, and David Celermajer. "Large-sized PFO." ASVIDE 5 (December 2018): 921. http://dx.doi.org/10.21037/asvide.2018.921.

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3

Shlyakhturov, V. V. "Scintillation characteristics of deformed large-sized NaI crystals." Functional Materials 20, no. 4 (December 25, 2013): 434–37. http://dx.doi.org/10.15407/fm20.04.434.

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4

Shapovalov, K. P., V. A. Belinsky, S. N. Kosinov, S. N. Litvinenko, K. A. Yushchenko, I. I. Lychko, and S. M. Kozulin. "Manufacturing large-sized beds by consumable-nozzle electroslag welding." Paton Welding Journal 2015, no. 9 (September 28, 2015): 50–52. http://dx.doi.org/10.15407/tpwj2015.09.08.

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5

Soliwoda, Michal. "What determines investment rate of Polish large-sized farms?" Business and Economic Horizons 11, no. 3 (October 16, 2015): 183–94. http://dx.doi.org/10.15208/beh.2015.14.

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6

Inoue, Akihisa. "Large-sized Amorphous Alloys." Materia Japan 36, no. 10 (1997): 989. http://dx.doi.org/10.2320/materia.36.989.

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7

Tang, Lei. "Large-sized bilayer nanodiscs." Nature Methods 15, no. 10 (October 2018): 764. http://dx.doi.org/10.1038/s41592-018-0161-5.

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8

Domke, K., K. Wandachowicz, M. ZalesiŃska, S. Mroczkowska, and P. Skrzypczak. "Large-Sized Digital Billboards Hazard." International Journal of Design & Nature and Ecodynamics 7, no. 4 (December 18, 2012): 367–80. http://dx.doi.org/10.2495/dne-v7-n4-367-380.

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9

Shen, Wei. "Fractal invariable distribution and its application in large-sized and super large-sized mineral deposits." Geoscience Frontiers 2, no. 1 (January 2011): 87–91. http://dx.doi.org/10.1016/j.gsf.2010.11.003.

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10

Markov, I. B., I. A. Petrik, A. G. Seliverstov, and Yu A. Marchenko. "Repair of large-sized blades of the fan of gas-turbine engine." Paton Welding Journal 2018, no. 8 (August 28, 2018): 34–38. http://dx.doi.org/10.15407/tpwj2018.08.06.

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11

John, ReenaRachel, Saravanan Kandasamy, and Narendran Achuthan. "Unusually large-sized peripheral ossifying fibroma." Annals of Maxillofacial Surgery 6, no. 2 (2016): 300. http://dx.doi.org/10.4103/2231-0746.200347.

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12

Zaitsev, N. I., M. G. Nikiforov, and Yu I. Sheikin. "Large-sized simulators of magnetic fields." Russian Electrical Engineering 83, no. 4 (April 2012): 184–86. http://dx.doi.org/10.3103/s1068371212040128.

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13

Galkin, V. P., G. N. Kuryshov, A. A. Kosarin, S. A. Moiseev, and D. I. Deyanov. "Large sized wood and timber seasoning." FORESTRY BULLETIN 24, no. 137 (April 2020): 51–56. http://dx.doi.org/10.18698/2542-1468-2020-2-51-56.

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14

Sanpei, Takuho, Tomoyoshi Shimobaba, Takashi Kakue, Yutaka Endo, Ryuji Hirayama, Daisuke Hiyama, Satoki Hasegawa, et al. "Optical encryption for large-sized images." Optics Communications 361 (February 2016): 138–42. http://dx.doi.org/10.1016/j.optcom.2015.10.049.

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15

Kubo, Uichi, and Hitoshi Nakano. "Fabrication of large‐sized polystyrene shells." Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films 14, no. 3 (May 1996): 1025–27. http://dx.doi.org/10.1116/1.580126.

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16

Khomich, Vladislav Yu, and Vyacheslav A. Shmakov. "Large-sized mirrors for power optics." Uspekhi Fizicheskih Nauk 189, no. 03 (October 2018): 263–70. http://dx.doi.org/10.3367/ufnr.2018.10.038465.

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17

Khomich, V. Yu, and V. A. Shmakov. "Large-sized mirrors for power optics." Physics-Uspekhi 62, no. 3 (March 31, 2019): 249–56. http://dx.doi.org/10.3367/ufne.2018.10.038465.

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18

TSUKAHARA, Shigeji, Shintaro TAKAHASHI, Masayoshi SONOBE, and Taichi TAMURA. "Study on Large-Sized Stirling Engine." Proceedings of the Symposium on Stirlling Cycle 2002.6 (2002): 45–48. http://dx.doi.org/10.1299/jsmessc.2002.6.45.

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19

Mori, Shigeo, Genyo Mitarai, Sadaharu Takagi, Akira Takabayashi, Shiro Usui, Tetsuro Nakamura, Manabu Sakakibara, Makoto Nagatomo, and Rudolf J. von Baumgarten. "Space experiment using large-sized fish." Acta Astronautica 33 (July 1994): 41–47. http://dx.doi.org/10.1016/0094-5765(94)90107-4.

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20

Nizhegorodov, A. I. "TECHNOLOGY AND EQUIPMENT FOR PROCESSING OF LARGE-SIZED VERMICULITE MICAS OF THE KOVDOR DEPOSIT." Eurasian Physical Technical Journal 17, no. 2 (December 24, 2020): 100–109. http://dx.doi.org/10.31489/2020no2/100-109.

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The development of technology and equipment for the processing of large-sized vermiculite mica obtained from mining waste from the Kovdorsky deposit allows the large-scale vermiculite to be returned to processing industry. This article reviews the aspects of the technology for processing of large-sized mica with dimensions of 20 mm or more. The aim of the research is to study the grinding technology of large-sized vermiculite raw materials by the chopping overall particles, to develop the technological equipment and to study of its operating processes. The object of the research is the operating process of the chopping unit for grinding the large-sized vermiculite raw materials and its design. The methods are based on study of simulated movement of chopped large-sized particles and the determination of the main characteristics of the chipping unit operating process. It was found that the firing of large particles without grinding in chopping units requires a significant increase in firing time, which reduces the productivity of electric furnaces. The time of dropping particles out in the slot of the receiving drums of the chopping unit is determined, based on which the rotation speed of the receiving drums and its operational efficiency are calculated.
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21

Mohd, Yousuf Qureshi, R. Meher Sudhakar, R. Meher Sudhakar, R. Naga Sailaja, and V. Sunil Chandra. "Pyogenic granuloma: Reappraisal of etiopathogenesis and case report of large sized pyogenic granuloma." Asian Pacific Journal of Health Sciences 2, no. 4 (October 2015): 47–51. http://dx.doi.org/10.21276/apjhs.2015.2.4.11.

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22

Liu, Xiao Li, and Jun Ding. "Large-Scale Synthesis of Large-Sized Monodispersed Iron Oxide Nanoeggs." Applied Mechanics and Materials 692 (November 2014): 206–9. http://dx.doi.org/10.4028/www.scientific.net/amm.692.206.

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Single-crystal hematite (α-Fe2O3) nanoeggs are firstly synthesized using an anion-assisted hydrothermal method. By adjusting the ratios of phosphate to ferric ions, we are able to produce an egg-like nanostructure. And then α-Fe2O3nanoeggs are converted to magnetite (Fe3O4) by a chemical reduction while preserving the same morphology. The characterizations of Fe3O4nanoeggs indicate Fe3O4nanoeggs with uniform size and shape are successful synthesized. Our results provide an easily scaled-up method for preparing tailor-made large-sized iron oxide nanoeggs that could meet the demands of a variety of applications.
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23

KURAOKA, Yasuo, Yasuhiro TSUCHIDA, Koji FUJIOKA, Yosio KAWATE, Takefumi HORIUCHI, Sigehiro NISHIJIMA, and Toichi OKADA. "Development of the large-sized GFRP dewar." TEION KOGAKU (Journal of Cryogenics and Superconductivity Society of Japan) 21, no. 1 (1986): 44–50. http://dx.doi.org/10.2221/jcsj.21.44.

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24

Xu, Zhen Ying, Ran Ran Xu, and Dan Dan Cao. "Large Sized Workpiece Measurement Based on SIFT." Key Engineering Materials 464 (January 2011): 250–53. http://dx.doi.org/10.4028/www.scientific.net/kem.464.250.

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A measuring method of large sized workpiece based on SIFT algorithm is proposed in this paper. After the different image matching algorithms are compared, SIFT algorithm, which has much more robust, is introduced in detail. Then measuring platform is built, and large sized workpiece is measured by SIFT image stitching and image processing. The experiment proves that SIFT algorithm is viable and advantageous in the measurement of large sized workpiece. At last, the precision and affecting factors are analyzed.
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25

Evgrafov, A. A., A. P. Kokko, P. P. Bolshakov, A. L. Bunin, A. D. Plotnikov, and Sergei Ya Betsofen. "A Powder Diffractometer for Large-Sized Specimens." Materials Science Forum 79-82 (January 1991): 317–22. http://dx.doi.org/10.4028/www.scientific.net/msf.79-82.317.

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26

Kityk, I. V., A. Kassiba, K. Plucinski, and J. Berdowski. "Band structure of large-sized SiC nanocomposites." Physics Letters A 265, no. 5-6 (February 2000): 403–10. http://dx.doi.org/10.1016/s0375-9601(99)00912-3.

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27

Liou, Donald D. "Thermal Effects in Large-Sized Diaphragm Wall." Journal of Performance of Constructed Facilities 13, no. 1 (February 1999): 17–21. http://dx.doi.org/10.1061/(asce)0887-3828(1999)13:1(17).

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28

Shapovalov, K. P., V. A. Belinsky, A. E. Merzlyakov, S. N. Kosinov, K. A. Yushchenko, I. I. Lychko, and S. M. Kozulin. "Electroslag welding of large-sized press frame." Автоматическая сварка 2016, no. 8 (August 28, 2016): 43–46. http://dx.doi.org/10.15407/as2016.08.07.

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29

Jacobson, Lena. "Large Cups in Normal-Sized Optic Discs." Archives of Ophthalmology 115, no. 10 (October 1, 1997): 1263. http://dx.doi.org/10.1001/archopht.1997.01100160433007.

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30

Chen, Wei-Hung, Ying-Shiou Chen, Shu-Juan Fu, Wen-Yin Ko, and Kuan-Jiuh Lin. "Large-Sized Fabrication of Tunable Plasmonic ElectrodesViaElectrodeposition." Journal of the Chinese Chemical Society 57, no. 2 (April 2010): 162–66. http://dx.doi.org/10.1002/jccs.201000026.

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31

Chung, Ho-Kyoon, Ki-Yong Lee, and Seong Taek Lee. "Alternative approach to large-sized AMOLED HDTV." Journal of the Society for Information Display 14, no. 1 (2006): 49. http://dx.doi.org/10.1889/1.2166835.

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32

Kolesnikov, A. I., R. M. Grechishkin, S. A. Tretiakov, V. Ya Molchanov, A. I. Ivanova, E. I. Kaplunova, and E. Yu Vorontsova. "Laser conoscopy of large-sized optical crystals." IOP Conference Series: Materials Science and Engineering 49 (December 13, 2013): 012037. http://dx.doi.org/10.1088/1757-899x/49/1/012037.

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33

Paviotti, Anna, Filippo Ratti, Luca Poletto, and Guido Maria Cortelazzo. "Multispectral Acquisition of Large-Sized Pictorial Surfaces." EURASIP Journal on Image and Video Processing 2009 (2009): 1–17. http://dx.doi.org/10.1155/2009/793756.

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34

OSADA, Toshiko, Ryuichi HASHIKAWA, Kentaro KUDO, Fujio TSUMORI, and Hideshi MIURA. "Deformation Control of Large Sized MIM Parts." Proceedings of Mechanical Engineering Congress, Japan 2016 (2016): S0410101. http://dx.doi.org/10.1299/jsmemecj.2016.s0410101.

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35

Spisak, E., and F. Stachowicz. "Deformation analysis of large-sized autobody panels." Journal of Materials Processing Technology 53, no. 3-4 (September 1995): 817–26. http://dx.doi.org/10.1016/0924-0136(94)01758-s.

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36

Loginov, V. M., and N. S. Yugai. "Mechanization of molding of large-sized pottery." Glass and Ceramics 56, no. 9-10 (September 1999): 305–7. http://dx.doi.org/10.1007/bf02681383.

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37

Wang, Long-Hai, Jun-Jie Yan, and Ye-Zi You. "A versatile method for encapsulating large-sized DNA into small-sized bioreducible nanocapsules." Nanomedicine: Nanotechnology, Biology and Medicine 12, no. 2 (February 2016): 477–78. http://dx.doi.org/10.1016/j.nano.2015.12.093.

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38

Wang, Long-Hai, Sheng-Gang Ding, Jun-Jie Yan, and Ye-Zi You. "A Versatile Method for Encapsulating Large-Sized DNA into Small-Sized Bioreducible Nanocapsules." Journal of Physical Chemistry B 118, no. 14 (March 28, 2014): 3893–98. http://dx.doi.org/10.1021/jp500683n.

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39

Leshchinskyi, L. K., V. M. Matviyenko, V. P. Ivanov, K. K. Stepnov, and E. I. Vozyanov. "Improvement of the surfacing technology for large-sized backup rolls of hot rolling mills." Paton Welding Journal 2021, no. 3 (March 28, 2021): 32–35. http://dx.doi.org/10.37434/tpwj2021.03.06.

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40

Gourcuff, V., O. de Smet, and J. M. Faure. "Improving large-sized PLC programs verification using abstractions." IFAC Proceedings Volumes 41, no. 2 (2008): 5101–6. http://dx.doi.org/10.3182/20080706-5-kr-1001.00857.

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41

Shin, Seung Yong, Eun Jung Park, and Jae Jun Park. "Large-sized iatrogenic colonic perforation during diagnostic colonoscopy." Gastrointestinal Intervention 7, no. 2 (July 31, 2018): 94–97. http://dx.doi.org/10.18528/gii180023.

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42

Kityk. "BAND STRUCTURE OF NON-STEIOCHIOMETRIC LARGE-SIZED NANOCRYSTALLITES." Condensed Matter Physics 7, no. 2 (2004): 401. http://dx.doi.org/10.5488/cmp.7.2.401.

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43

Mydlarz, Katarzyna, and Marek Wieruszewski. "Problems of Sustainable Transport of Large-Sized Roundwood." Sustainability 12, no. 5 (March 6, 2020): 2038. http://dx.doi.org/10.3390/su12052038.

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When considering the economic and environmental aspects of forestry, especially the issues related to timber harvesting, emphasis should be placed on the importance of the availability of raw material resources for the sustainable flow of goods. It would also be difficult to disregard certain issues related to transport, which play a key role in the efficient flow of wooden raw materials. It has to be noticed that timber transport options are limited by a number of factors, including the considerable fragmentation of wood resources and the lack of adequately developed railway transport facilities. This paper focuses on issues related to the road transport of timber carried out by transport companies. Observations to date of large-sized roundwood (thicker than 14 cm and longer than 3 m) transport in Poland indicate a relatively frequent occurrence of overloaded vehicles, exceeding the permissible total weight limit. Empirical evidence also suggests that in many cases, it is an effect of improperly endorsed standards with regard to the density of the transported material. Moreover, there is a clear correlation between the loading volume and economic as well as environmental factors. Therefore, the aim of this article was to show both the current situation in the transport of bulky timber and to present the possibilities for its optimization, from the point of view of locational, economic and environmental factors.
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44

Arakawa, Koji, Kenji Kawai, Shigeru Katahashi, Kazuyuki Taniguchi, Hideo Mori, and Kenzo Ayata. "Development of Large Sized Semi-continuous Casting Process." ISIJ International 36, Suppl (1996): S204—S207. http://dx.doi.org/10.2355/isijinternational.36.suppl_s204.

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45

MURAMATSU, Yoshitaka, Ichiro NISHIKAWA, Ichizou KAWABATA, Masaharu TAKAYAMA, and Yuichi KIMURA. "TENSILE PROPERTY OF LARGE-SIZED NATURAL RUBBER BEARING." AIJ Journal of Technology and Design 7, no. 12 (2001): 53–56. http://dx.doi.org/10.3130/aijt.7.53_1.

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46

Cheng, Wei Yuan, Kuo Lung Lo, Yu Pei Chang, Chung Wei Wang, Pei Ju Su, Hsin Hung Lee, Da Wei Lee, et al. "37.1: Novel Development of Large-Sized Electrowetting Display." SID Symposium Digest of Technical Papers 39, no. 1 (2008): 526. http://dx.doi.org/10.1889/1.3069718.

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47

Suzuki, Kiyoshi. "Trouble Shooting in Large Sized Marine Diesel Engine." JOURNAL OF THE MARINE ENGINEERING SOCIETY IN JAPAN 34, no. 5 (1999): 320–27. http://dx.doi.org/10.5988/jime1966.34.320.

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48

TANAKA, Seiichi, Hiroshi MORI, Masao KASUGA, and Kenji SHOJI. "KANSEI Evaluation for High-definition Large-sized Images." Transactions of Japan Society of Kansei Engineering 14, no. 2 (2015): 277–84. http://dx.doi.org/10.5057/jjske.14.277.

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49

Brown, Michael E., and Bryan J. Butler. "Medium-sized Satellites of Large Kuiper Belt Objects." Astronomical Journal 156, no. 4 (September 18, 2018): 164. http://dx.doi.org/10.3847/1538-3881/aad9f2.

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50

Zhang, Jun, and Yan Hui Guo. "Preparation and Characterization of Large-Sized ADM Monocrystals." Applied Mechanics and Materials 152-154 (January 2012): 126–29. http://dx.doi.org/10.4028/www.scientific.net/amm.152-154.126.

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Non-agglomerated ammonium dimolybdate (ADM) monocrystals with large diameter and high dispersion has been prepared through reaction-evaporation-crystallization (REC) process using ammonium tetramolybdate and ammonia solution as reactants. The as-prepared ADM monocrystals were systematically characterized by x-ray powder diffraction, transmission-reflection optical microscope, Fourier transform infrared spectroscopy and TG-DSC thermal analysis. It is shown that the as-prepared ADM samples are disperse monocrystals with well grain distribution and geometric shape, which can well meet the quality requirements for the subsequent production of molybdenum powders.
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