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Online since: July 2014
Authors: Zun Jie Wei, Hong Wei Wang, Chun Ming Zou, Shan Qiang Su
Acknowledgements
This work is supported by the National Natural Science Foundation of China (51001041) and Foundation of National Key Laboratory for Precision Hot Processing of Metals.
Progress in Aerospace Sciences Vol. 40 (2004), p.199
Journal of Materials Processing Technology Vol. 211 (2011), p. 2123
Progress in Aerospace Sciences Vol. 40 (2004), p.199
Journal of Materials Processing Technology Vol. 211 (2011), p. 2123
Online since: August 2013
Authors: Yi Jin, Biao Chu, Yuan Shen, Chang An Zhu
Dynamic analysis of scratch system of grating ruling machine
Biao Chu1, a, Yuan Shen1, 2, b, Yi Jin1, c, Chang’an Zhu1, d
1Dept. of Precise Machine and Precise Instrument, University of Science and Technology of China, Hefei, 230027, China
2School of Electronics and Information Engineering, Hefei Normal University, Hefei, 230027, China
achubiao@mail.ustc.edu.cn, bshenyuan@ustc.edu.cn, cjinyi08@mail.ustc.edu.cn, dchangan@ustc.edu.cn
Keywords: grating ruling machine; scratch system; modal analysis; multi-body dynamic analysis
Abstract.
The analysis of the material are quartz for the knife bridge, HT200 for the foundation and C45 for others.
The friction coefficient is supposed to be 0.08, the element is C3D4 while the material property is the same as former of the modal analysis.
Acknowledgement The authors acknowledge financial support from the USTC Special Grant for Postgraduate Research, Innovation and Practice, the CAS Special Grant for Postgraduate Research, Innovation and Practice, Natural Science Foundation of Anhui Province (1308085QE92), Fundamental Research Funds for the Central Universities (WK2090090010) and Hefei Normal University's Research Foundation for Talent (2013RCJJ04).
[3] Li Y Qing, Hao D F, Development of Diffraction Grating Manufacture[J], Journal of Changchun Institute of Optics and Fine Mechanics, 2003, Vol.26(3):66-68
The analysis of the material are quartz for the knife bridge, HT200 for the foundation and C45 for others.
The friction coefficient is supposed to be 0.08, the element is C3D4 while the material property is the same as former of the modal analysis.
Acknowledgement The authors acknowledge financial support from the USTC Special Grant for Postgraduate Research, Innovation and Practice, the CAS Special Grant for Postgraduate Research, Innovation and Practice, Natural Science Foundation of Anhui Province (1308085QE92), Fundamental Research Funds for the Central Universities (WK2090090010) and Hefei Normal University's Research Foundation for Talent (2013RCJJ04).
[3] Li Y Qing, Hao D F, Development of Diffraction Grating Manufacture[J], Journal of Changchun Institute of Optics and Fine Mechanics, 2003, Vol.26(3):66-68
Online since: February 2021
Authors: Farid Sebaai, Masaki Inaba, Efrain Altamirano-Sanchez, Shota Iwahata
The loss amount of HfO2, TaN, and TiN was determined by weight measurement and converted to film thickness using the material’s density.
One of the reasons is the organic material amount difference between SOC film and KrF photoresist (i.e. density).
Bao, et al., Journal of Vacuum Science & Technology B 26, 219 (2008) [4] E.
Intezarova, et al., Bulletin of the Academy of Sciences of the USSR 16, p 2326–2331(1967) [5] Sidney W.
One of the reasons is the organic material amount difference between SOC film and KrF photoresist (i.e. density).
Bao, et al., Journal of Vacuum Science & Technology B 26, 219 (2008) [4] E.
Intezarova, et al., Bulletin of the Academy of Sciences of the USSR 16, p 2326–2331(1967) [5] Sidney W.
Online since: May 2012
Authors: Qing He Chu, Wei Hua Li, Chun Hua Sun
While the recursive optimization is excellent for any kind of operation mode of hydropower station, from the most basic raw materials such as water and power flow (or the total load ), the power station for all possible operation combined with corresponding water diversion system combination, the form the whole operation , it finds out the optimal order of the boot or optimal matching scheme of the unit operation.
Acknowledgments The project is supported by the Science and the National Natural Science Foundation under Grant No. 10947162.
[4] Yuexian Ma, Wenlin Yuan and Hao Wu: submitted to Journal of Hydroelectric Engineering(2006).
Acknowledgments The project is supported by the Science and the National Natural Science Foundation under Grant No. 10947162.
[4] Yuexian Ma, Wenlin Yuan and Hao Wu: submitted to Journal of Hydroelectric Engineering(2006).
Online since: May 2016
Authors: Kenji Fukuda, Hiromu Shiomi, Takashi Tsuji, Yasuhiko Onishi, Naoyuki Ohse
3300V-class 4H SiC Implantation-Epitaxial MOSFETs
with Low Specific On-resistance of 11.6mWcm2
and High Avalanche Withstanding Capability
Takashi Tsuji1,a *, Hiromu Shiomi2,b, Naoyuki Ohse1,c,
Yasuhiko Onishi1,d and Kenji Fukuda3,e
1assignee at National Institute of Advanced Industrial Science and Technology (AIST)
from Fuji Electric Co.
Arai, Materials Science Forum 527-529 (2006) 1281-1284
Oomori, Japanese Journal of Applied Physics, 52, (2013) 04CP03
Arai, Materials Science Forum 527-529 (2006) 1281-1284
Oomori, Japanese Journal of Applied Physics, 52, (2013) 04CP03
Online since: December 2011
Authors: Xiao Li Xu, Yu Hai Gu, Jian Ming Jiang
FPGA-based Micro Fiber-optic Spectrometer Hardware Circuit System
Yuhai Gua, Jianming Jiangb and Xiaoli Xuc
Key Laboratory of Modern Measurement and Control Technology, Ministry of Education,
Beijing Information Science and Technology University, Beijing 100192, China
aguyuhai@foxmail.com, bjjm242424@yahoo.com.cn, cxuxiaoli@bistu.edu.cn
Keywords: FPGA. spectrometer.
With the development of optical technology, microelectronics, computer technology and new materials technology, portability has become an inevitable trend.
International Journal of Radiation Oncology Biology Physics.
Science Technology and Engineering (In Chinese).
With the development of optical technology, microelectronics, computer technology and new materials technology, portability has become an inevitable trend.
International Journal of Radiation Oncology Biology Physics.
Science Technology and Engineering (In Chinese).
Online since: January 2006
Authors: Han Zhu
In the
same month, with the help from two engineers with Rinker Materials in Arizona, P.
Senouci: Rubber-tired particles as concrete aggregate, Journal of Materials in Civil Engineering, 5(4)(1993), pp. 478-496
Clark: Cement-Based materials containing shredded scrap truck tyre rubber, Construction and Building Materials, 10 (4) (1996), pp. 229-236
Jung: Development of tire-added latex concrete, ACI Materials Journal, 95 (4) (1998), pp. 356-364
Bayomy: Rubberized Portland Cement Concrete, Journal of Materials in Civil Engineering, August (1999), pp. 206-213
Senouci: Rubber-tired particles as concrete aggregate, Journal of Materials in Civil Engineering, 5(4)(1993), pp. 478-496
Clark: Cement-Based materials containing shredded scrap truck tyre rubber, Construction and Building Materials, 10 (4) (1996), pp. 229-236
Jung: Development of tire-added latex concrete, ACI Materials Journal, 95 (4) (1998), pp. 356-364
Bayomy: Rubberized Portland Cement Concrete, Journal of Materials in Civil Engineering, August (1999), pp. 206-213
Online since: December 2007
Authors: Yu Pin Chen, Ming Fei Chen, Wen Tse Hsiao, Zhi Peng Gu
However, the wet etching
processing is not adopted in the plastic materials because the chemical fluid usually damages the
plastic substrate.
Laser direct writing can flexibly produce the ITO circuit patterns on the glass and plastic substrate, which the laser beam focuses on the ITO films and ablates the materials to form the ITO circuit patterns.
The overlapping rate is an important parameter in the laser materials processing and depends on the feeding rate and repletion rate of laser.
This research developed a UV laser materials processing system and produces the ITO circuit patterns on the glass substrates which uses the third-harmonic laser to ablate the ITO films.
Mahdavian: Journal of Materials Processing Technology Vol. 146 (2004), p. 188.
Laser direct writing can flexibly produce the ITO circuit patterns on the glass and plastic substrate, which the laser beam focuses on the ITO films and ablates the materials to form the ITO circuit patterns.
The overlapping rate is an important parameter in the laser materials processing and depends on the feeding rate and repletion rate of laser.
This research developed a UV laser materials processing system and produces the ITO circuit patterns on the glass substrates which uses the third-harmonic laser to ablate the ITO films.
Mahdavian: Journal of Materials Processing Technology Vol. 146 (2004), p. 188.
Online since: April 2014
Authors: Kai Hu
And the measured value of materials are shown in Table 4.
And the MAT_BRITTLE_DAMAGE and the MAT_PLASTIC_KINEMATIC were adopted as the concrete material model and the reinforcement material model with the parameters shown in Table 5 and 6.
Journal of JISHOU University (Natural Science Edition) Vol. 31 (2010), p. 76-79
Journal of TONGJI University Vol. 24 (1996), p. 492-497
Journal Of Building Structures Vol. 28 (2007), p. 104-109
And the MAT_BRITTLE_DAMAGE and the MAT_PLASTIC_KINEMATIC were adopted as the concrete material model and the reinforcement material model with the parameters shown in Table 5 and 6.
Journal of JISHOU University (Natural Science Edition) Vol. 31 (2010), p. 76-79
Journal of TONGJI University Vol. 24 (1996), p. 492-497
Journal Of Building Structures Vol. 28 (2007), p. 104-109
Online since: October 2011
Authors: Satya Prakash, Hazoor Singh, Buta Singh Sidhu
Chemical composition of the substrate materials.
Xu: Materials Science and Engineering A, vol. 352, (2003) p. 55-63 [2] C.
Martin: Materials Science and Engineering, vol. 234-236, (1997), p. 731-734, [3] D.
Coddet: Materials and Design, vol. 24, (2003), p. 309–313
Martin: Materials Science and Engineering A, vol. 246, (1998), p. 11–24 [19] J.
Xu: Materials Science and Engineering A, vol. 352, (2003) p. 55-63 [2] C.
Martin: Materials Science and Engineering, vol. 234-236, (1997), p. 731-734, [3] D.
Coddet: Materials and Design, vol. 24, (2003), p. 309–313
Martin: Materials Science and Engineering A, vol. 246, (1998), p. 11–24 [19] J.