Academic literature on the topic 'Dushmani'

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Journal articles on the topic "Dushmani"

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Rasulov, Shomurod Mahmudovich, Shaxrizoda Bobir qizi Xujanazarova, and Munisa Otabek qizi Ulug'ova. "TEZ TIBBIY YORDAMGA MUHTOJ BO'LGAN BEMORNING YONIDAGI SHIFOKORNING VAZIFASI VA MASULYATI." GOLDEN BRAIN 1, no. 3 (2023): 337–40. https://doi.org/10.5281/zenodo.7606971.

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<em>Har bir shifokor Gippokrat qasamini icharkan unga berilgan masulyatini his qilishi kerak. Shifokor tez tibbiy yordamga muhtoj b</em><em>o&lsquo;</em><em>lgan bemorlarni, nafaqat bemorlar </em><em>o&lsquo;</em><em>sha bemor </em><em>o&lsquo;</em><em>z dushmani b</em><em>o&lsquo;</em><em>lsada ung yordam q</em><em>o&lsquo;</em><em>lini ch</em><em>o&lsquo;</em><em>zishi kerak. </em>
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Okwundu, Onyeka, Mohammed Fuseini, Ahmed El-Shazly, and Marwa Elkady. "Comparison of mixing performances of T, Y and arrow-shaped micromixers using Villermaux-Dushman protocol at low Reynolds number." Journal of the Serbian Chemical Society 85, no. 3 (2020): 381–94. http://dx.doi.org/10.2298/jsc190328095o.

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Mixing performance is commonly assessed using the Villermaux? ?Dushman protocol. Mixing in passive mixers may need to be at very low Reynolds number (Re). This study is aimed at comparing the mixing performances of T, Y and arrow-shaped micromixers using the Villermaux?Dushman protocol at Re &lt; 100. The mixing performance test was run at flow rates of 500 to 1 mL h-1 with the pressure drop measurement. Based on UV absorbance values and experimental mixing times of mixed fluids from the three micromixers, the order of mixing performance at Re &gt; 26.5 was Y &lt; T &lt; arrow-shaped micromixe
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Sen, T. N., and K. P. Ghatak. "Einstein's Photoemission and the Richardson-Dushman Formula." Quantum Matter 5, no. 6 (2016): 732–33. http://dx.doi.org/10.1166/qm.2016.1374.

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Greenslade, Thomas B. "A new tube for Richardson–Dushman experiments." American Journal of Physics 59, no. 10 (1991): 957–58. http://dx.doi.org/10.1119/1.16684.

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Csekõ, György, Dénes Varga, Attila K. Horváth, and István Nagypál. "Simultaneous Investigation of the Landolt and Dushman Reactions." Journal of Physical Chemistry A 112, no. 26 (2008): 5954–59. http://dx.doi.org/10.1021/jp802239b.

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Commenge, Jean-Marc, and Laurent Falk. "Villermaux–Dushman protocol for experimental characterization of micromixers." Chemical Engineering and Processing: Process Intensification 50, no. 10 (2011): 979–90. http://dx.doi.org/10.1016/j.cep.2011.06.006.

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Schmitz, G. "Kinetics of the Dushman reaction at low I- concentrations." Physical Chemistry Chemical Physics 2, no. 18 (2000): 4041–44. http://dx.doi.org/10.1039/b003606o.

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Lüdke, Everton. "Medidas de elétrons livres no vácuo e estatística de Fermi-Dirac." Revista Brasileira de Ensino de Física 33, no. 4 (2011): 4701. http://dx.doi.org/10.1590/s1806-11172011000400022.

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Neste artigo, apresento uma série de experimentos laboratoriais de baixo custo para comprovação de conceitos fundamentais da estatística quântica de Fermi-Dirac e medidas quantitativas da densidade de corrente de um feixe de elétrons livres térmicos no vácuo para comprovar experimentalmente a equação de Richard-Dushman. As técnicas experimentais e a analise numérica para a equação da densidade de corrente são discutidas nesse trabalho. Válvulas termoiônicas comerciais se mostraram excelentes para corroborar os conceitos discutidos no presente trabalho.
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Lima, E. F. de, M. Foschini, and M. Magini. "O efeito termoiônico: uma nova proposta experimental." Revista Brasileira de Ensino de Física 23, no. 4 (2001): 391–94. http://dx.doi.org/10.1590/s0102-47442001000400005.

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O efeito termoiônico desempenha um importante papel no desenvolvimento da ciência e da compreensão das propriedades da matéria. Aqui é feita uma proposta simples visando o estudo deste efeito com o uso de uma lâmpada de carro de dois lamentos. Através da experiencia, foi possível determinar a equação de Richardson - Dushman, a Lei de child e observar propriedades de retificação. Estes resultados mostram que, através de uma proposta simples, é possível estudar o efeito termoiônico em toda a sua riqueza física.
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B o d i r o v ], [. A., and Z. B o d i r o v a. "SAMARQANDLIK JANGCHILARNI FASHIZMNI TOR-MOR ETISHDAGI ISHTIROKI." 2022-yil, 3-son (133/1) ANIQ FANLAR SERIYASI 4, no. 122/1 (2020): 1–9. http://dx.doi.org/10.59251/2181-1296.v4.1221.788.

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Ushbu maqolada ikkinchi jahon urushi yillarida Samarqand viloyati vakillarining urush frontlarida ona yurtlari uchun olib borilgan ayovsiz janglarda, dushmanga qarshi qonli urushda oʻzbek xalqiga xos boʻlgan qahramonliklari va mardligi, qoʻlida qurol bilan muqaddas zaminimizni himoya qilganligi bayon etilgan.
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Books on the topic "Dushmani"

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Intishārāt-i Kānūn-i Farhangī-i Rahbar-i Shahīd., ed. Dushman kīst? Intishārāt-i Kānūn-i Farhangī-i Rahbar-i Shahīd, 1995.

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Narula, Surinder Singh. Lok dushman. Lahore Book Shop, 1991.

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Patel, Ambubhai D. Jani dushman. Vandit, 1990.

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Khilāṇī, Lakhmī. Panhinjo dushmanu: Nāṭaku. Sindhī Ṭāʼīms Pablīkeshani, 1993.

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Haqqi, Alimul Haq. Hisaab-e-dushman. Ali Mian Publications, 2000.

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Anand, Major. Desh ke dushman. Gujarat Pocket Books, 1991.

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Ilyas, M. Dushman: M. Ilyas. Ali Mian, 2002.

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Salmānī, Muḥammad. Dushman-i qasamʹkhvurdah. Āvā-yi Kalār, 2014.

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1981-, Mīr ʻĀbid, ред. Dushman kī ʻaiyāriyān̲. Āsāp Pablīkeshanz, 2008.

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Mira. Sindur mera dushman. Manoj, 1988.

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Book chapters on the topic "Dushmani"

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"Richardson-Laue-Dushman equation." In Introduction to the Physics of Electron Emission. John Wiley & Sons, Ltd, 2017. http://dx.doi.org/10.1002/9781119051794.ch12.

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"Richardson–Dushman equation, n." In Oxford English Dictionary, 3rd ed. Oxford University Press, 2023. http://dx.doi.org/10.1093/oed/5650960783.

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"Billī Aur Chūhey kī Dushmanī Kaysey Hī’ī?" In Urdu for Children, Book II, Teacher’s Manual. McGill-Queen's University Press, 2004. http://dx.doi.org/10.1515/9780773580534-024.

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"2. Celluloid Splatter: The Graphic Violence of Jaani Dushman." In Seeing Things. University of California Press, 2024. http://dx.doi.org/10.1525/9780520392298-004.

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Reich, Anna. "Vytas Cironka." In I Try Not to Think of Afghanistan. Cornell University Press, 2024. http://dx.doi.org/10.7591/cornell/9781501774546.003.0017.

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This chapter describes the story of Vytas Cironka, who was conscripted into the Soviet army in 1985. He spent the first six months in Uzbekistan before an eighteen-month deployment to Afghanistan. According to Cironka, locals were often referred to as dushman, the Uzbek word for enemy. Nevertheless, the Soviet army had agreements with the locals, which permitted caravans to pass unbothered and goods to be transported and traded. Relations with fellow soldiers could also be contentious, according to Cironka. He was called a fascist by the Russians in his unit because he wanted everything to be
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White, Guy K., and Philip J. Meeson. "Other techniques." In Experimental Techniques in Low-Temperature Physics. Oxford University PressOxford, 2002. http://dx.doi.org/10.1093/oso/9780198514282.003.0010.

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Abstract The earlier chapters should have made obvious the importance of high vacua in reaching and maintaining low temperatures. The present chapter discusses the main types of vacuum pumps, vacuum gauges and sealing techniques. More details of their role in small and large systems-cryogenic and otherwise-can be found in the many textbooks on vacuum technology (e.g. Dushman 1962; Yarwood 1967; Holland et al. 1974; Roth 1982). At low temperatures, the cryogen itself is a source of pumping-cryopumping. However, low temperatures present another problem, namely the brittle nature of the seals whi
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Conference papers on the topic "Dushmani"

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Olawole, Olukunle C., and Dilip K. De. "Modeling thermionic emission from carbon nanotubes with modified Richardson-Dushman equation." In SPIE Nanoscience + Engineering, edited by Eva M. Campo, Elizabeth A. Dobisz, and Louay A. Eldada. SPIE, 2016. http://dx.doi.org/10.1117/12.2231357.

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De, Dilip K., and Olukunle C. Olawole. "Modified Richardson-Dushman equation and modeling thermionic emission from monolayer graphene." In SPIE Nanoscience + Engineering, edited by Eva M. Campo, Elizabeth A. Dobisz, and Louay A. Eldada. SPIE, 2016. http://dx.doi.org/10.1117/12.2231364.

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Frey, Torben, Markus Grabellus, Xuan Le, et al. "Local Interpretation of Micro Mixing Through the Villermaux-Dushman Reaction and the Imaging UV-Vis Spectroscopy." In 17th European Conference on Mixing. MIXING17 - 17th European Conference On Mixing, 2024. http://dx.doi.org/10.52202/074122-0042.

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Kockmann, Norbert, Thomas Kiefer, Michael Engler, and Peter Woias. "Silicon Microstructures for High Throughput Mixing Devices." In ASME 3rd International Conference on Microchannels and Minichannels. ASMEDC, 2005. http://dx.doi.org/10.1115/icmm2005-75125.

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Convective mixing in microstructures gives good mixing results in a very short time. In this work a theoretical and experimental study was performed on convective micro mixing in different mixing structures and their combinations. Various mixing elements had been integrated on a silicon chip to achieve a device for a high mass flow above 15 kg/h. These test structures were fabricated and tested concerning their flow behavior and mixing characteristics. Flow measurements with pH neutralisation and indication by Bromothymol Blue confirm the numerical simulations of the flow characteristics and m
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Engler, Michael, Norbert Kockmann, Thomas Kiefer, and Peter Woias. "Convective Mixing and Its Application to Micro Reactors." In ASME 2004 2nd International Conference on Microchannels and Minichannels. ASMEDC, 2004. http://dx.doi.org/10.1115/icmm2004-2412.

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This work shows the application of convective fluid flow caused by flow-induced secondary vortices to fluidic single-phase micro mixers. As an example we used simple static T-shaped micro mixers. The convective flow was observed both by simulations and by experiments and is suitable for enhancing the mixing quality. Concerning micro reactors, it is necessary that the mixing is faster than the chemical reaction to be induced so that the creation of unwanted side products is minimized. The mixing model by Bourne is slightly modified for continuous flow reactors and applied to our mixers. Using t
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Ghanem, Akram, Thierry Lemenand, Dominique Della Valle, and Hassan Peerhossaini. "Assessment of Mixing by Chemical Probe in Swirl Flow HEX Reactors." In ASME 2012 Fluids Engineering Division Summer Meeting collocated with the ASME 2012 Heat Transfer Summer Conference and the ASME 2012 10th International Conference on Nanochannels, Microchannels, and Minichannels. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/fedsm2012-72035.

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Mixing is a fundamental issue in process engineering and many industrial fields. It is closely related to a large number of different applications, such as chemical reactions, thermal transfer, liquid-liquid extraction, crystallization, and the like. In fact, mixing whether at the reactor scale, sustained by the flow structures, or at molecular scales, influences the selectivity and hence the productivity of reactions. Understanding and quantification of the micromixing mechanism is critical in industrial chemical processes, especially for fast exothermal reactions. Micromixing can be characte
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