최소 단어 이상 선택하여야 합니다.
최대 10 단어까지만 선택 가능합니다.
다음과 같은 기능을 한번의 로그인으로 사용 할 수 있습니다.
NTIS 바로가기IEEE transactions on plasma science, v.48 no.7, 2020년, pp.2448 - 2456
Nguyen, Van Toan (Department of Chemical and Biological Engineering, Jeju National University, Jeju, South Korea) , Nguyen, Duc Ba (Department of Chemical and Biological Engineering, Jeju National University, Jeju, South Korea) , Heo, Iljeong (Environment and Sustainable Resources Research Center, Korea Research Institute of Chemical Technology, Daejeon, South Korea) , Dinh, Duy Khoe (Department of Industrial Plasma Engineering, Korea Institute of Machinery and Materials, Daejeon, South Korea) , Mok, Young Sun (Department of Chemical and Biological Engineering, Jeju National University, Jeju, South Korea)
A high nitrogen oxides (NOx) removal rate under fluctuating temperature condition still remains a challenge to be solved. The plasma can be a potential solution to overcome this problem. This article reported catalytic NOx removal coupled with plasma in a wide temperature range below 350 °C. ...
Groen, Johan C, Peffer, Louk A.A, Pérez-Ramı́rez, Javier. Pore size determination in modified micro- and mesoporous materials. Pitfalls and limitations in gas adsorption data analysis. Microporous and mesoporous materials : the official journal of the International Zeolite Association, vol.60, no.1, 1-17.
Yang, T.T., Bi, H.T., Cheng, X.. Effects of O2, CO2 and H2O on NOx adsorption and selective catalytic reduction over Fe/ZSM-5. Applied catalysis. B, Environmental, vol.102, no.1, 163-171.
Nguyen, Van Toan, Nguyen, Duc Ba, Heo, Iljeong, Mok, Young Sun. Plasma-Assisted Selective Catalytic Reduction for Low-Temperature Removal of NOx and Soot Simulant. Catalysts, vol.9, no.10, 853-.
Jo, Jin-Oh, Trinh, Quang Hung, Kim, Seong H., Mok, Young Sun. Plasma-catalytic decomposition of nitrous oxide over γ-alumina-supported metal oxides. Catalysis today, vol.310, 42-48.
Mok, Young Sun, Huh, Yil Jeong. Simultaneous Removal of Nitrogen Oxides and Particulate Matters from Diesel Engine Exhaust using Dielectric Barrier Discharge and Catalysis Hybrid System. Plasma chemistry and plasma processing, vol.25, no.6, 625-639.
Talebizadeh, P., Babaie, M., Brown, R., Rahimzadeh, H., Ristovski, Z., Arai, M.. The role of non-thermal plasma technique in NOx treatment: A review. Renewable & sustainable energy reviews, vol.40, 886-901.
Zhang, Z.S., Crocker, M., Chen, B.B., Wang, X.K., Bai, Z.F., Shi, C.. Non-thermal plasma-assisted NOx storage and reduction over cobalt-containing LNT catalysts. Catalysis today, vol.258, no.2, 386-395.
Nguyen, Duc Ba, Heo, Il Jeong, Mok, Young Sun. Enhanced performance at an early state of hydrocarbon selective catalyst reduction of NOx by atmospheric pressure plasma. Journal of industrial and engineering chemistry : JIEC, vol.68, 372-379.
Yu, Qinqin, Wang, Hui, Liu, Tong, Xiao, Liping, Jiang, Xiaoyuan, Zheng, Xiaoming. High-Efficiency Removalof NOx Using a Combined Adsorption-DischargePlasma Catalytic Process. Environmental science & technology, vol.46, no.4, 2337-2344.
Wang, Tao, Liu, Hanzi, Zhang, Xinyu, Liu, Jun, Zhang, Yongsheng, Guo, Yonghong, Sun, Baomin. Catalytic conversion of NO assisted by plasma over Mn-Ce/ZSM5-multi-walled carbon nanotubes composites: Investigation of acidity, activity and stability of catalyst in the synergic system. Applied surface science, vol.457, 187-199.
Saaid, Ismail Mohd, Mohamed, Abdul Rahman, Bhatia, Subhash. Activity and characterization of bimetallic ZSM-5 for the selective catalytic reduction of NOx. Journal of molecular catalysis. A, Chemical, vol.189, no.2, 241-250.
Anpo, M., Matsuoka, M., Mishima, H., Yamashita, H.. The design of photocatalysts for the removal of NOx at normal temperatures - Copper (I) and Silver (I) ion catalysts anchored within zeolite cavities. Research on chemical intermediates, vol.23, no.3, 197-218.
R&D Rev Toyota CRDL NOx Reduction under oxidizing conditions by plasma-assisted catalysis itoh 2006 41 49
Fu, Mengfan, Li, Caiting, Lu, Pei, Qu, Long, Zhang, Mengying, Zhou, Yang, Yu, Minge, Fang, Yang. A review on selective catalytic reduction of NOxby supported catalysts at 100-300 °C-catalysts, mechanism, kinetics. Catalysis science & technology, vol.4, no.1, 14-25.
Shan, Wenpo, Liu, Fudong, He, Hong, Shi, Xiaoyan, Zhang, Changbin. Novel cerium–tungsten mixed oxide catalyst for the selective catalytic reduction of NOx with NH3. Chemical communications : Chem comm, vol.47, no.28, 8046-8048.
Journal of Research in Engineering and Technology Plasma assisted catalyst for NOx remediation from lean gas exhaust khacef 2013 1 112
Philos Trans R Soc A Math Phys Eng Sci Non-thermal plasma activated ${\mathrm {deNO}}_{x}$ catalysis gholami 2018 376 2110
Sun, Q., Zhu, A.-M., Yang, X.-F., Niu, J.-H., Xu, Y., Song, Z.-M., Liu, J.. Selective catalytic reduction of NOxin dielectric barrier discharge plasmas. European physical journal, EPJ. Applied physics, vol.30, no.2, 129-133.
Nguyen, Duc Ba, Nguyen, Van Toan, Heo, Il Jeong, Mok, Young Sun. Removal of NOx by selective catalytic reduction coupled with plasma under temperature fluctuation condition. Journal of industrial and engineering chemistry : JIEC, vol.72, 400-407.
De Lucas, A., Valverde, J.L., Dorado, F., Romero, A., Asencio, I.. Influence of the ion exchanged metal (Cu, Co, Ni and Mn) on the selective catalytic reduction of NOX over mordenite and ZSM-5. Journal of molecular catalysis. A, Chemical, vol.225, no.1, 47-58.
Wang, Tao, Zhang, Xinyu, Liu, Jun, Liu, Hanzi, Wang, Yang, Sun, Baomin. Effects of temperature on NOx removal with Mn-Cu/ZSM5 catalysts assisted by plasma. Applied thermal engineering, vol.130, 1224-1232.
Philos Trans Roy Soc A Math Phys Eng Sci Non-thermal-plasma-activated de-NOx catalysis gholami 2018 376
Jõgi, Indrek, Erme, Kalev, Levoll, Erik, Raud, Jüri, Stamate, Eugen. Plasma and catalyst for the oxidation of NOx. Plasma sources science & technology, vol.27, no.3, 035001-.
Proc 6th Diesel Engine Emissions Reduction Workshop Plasma-assisted heterogeneous catalysis for NOx reduction in lean-burn engine exhaust penetrante 1998 1
Plasma-Assisted Catalytic Reduction of NOx voss 1998
Shimizu, K., Hirano, T., Oda, T.. Effect of water vapor and hydrocarbons in removing NOx by using nonthermal plasma and catalyst. IEEE transactions on industry applications, vol.37, no.2, 464-471.
Landi, G., Lisi, L., Pirone, R., Russo, G., Tortorelli, M.. Effect of water on NO adsorption over Cu-ZSM-5 based catalysts. Catalysis today, vol.191, no.1, 138-141.
Sun, Qi, Zhu, Aimin, Yang, Xuefeng, Niu, Jinhai, Xu, Yong. Formation of NOx from N2 and O2 in catalyst-pellet filled dielectric barrier discharges at atmospheric pressure. Chemical communications : Chem comm, vol.2003, no.12, 1418-1419.
Cai, Xuanxuan, Sun, Wei, Xu, Chaochao, Cao, Limei, Yang, Ji. Highly selective catalytic reduction of NO via SO 2 /H 2 O-tolerant spinel catalysts at low temperature. Environmental science and pollution research international, vol.23, no.18, 18609-18620.
Groen, J.C., Peffer, L.A.A., Moulijn, J.A., Pérez-Ramı́rez, J.. On the introduction of intracrystalline mesoporosity in zeolites upon desilication in alkaline medium. Microporous and mesoporous materials : the official journal of the International Zeolite Association, vol.69, no.1, 29-34.
Miessner, H, Francke, K.-P, Rudolph, R, Hammer, Th. NO X removal in excess oxygen by plasma-enhanced selective catalytic reduction. Catalysis today, vol.75, no.1, 325-330.
High temperature catalyst and process for selective catalytic reduction of NOx in exhaust gases of fossil fuel combustion knapke 2010
Xu, C., Sun, W., Cao, L., Yang, J.. Highly efficient Pd-doped ferrite spinel catalysts for the selective catalytic reduction of NO with H2 at low temperature. Chemical engineering journal, vol.289, 231-238.
Gao, Fengyu, Tang, Xiaolong, Yi, Honghong, Zhao, Shunzheng, Li, Chenlu, Li, Jingying, Shi, Yiran, Meng, Xiaomi. A Review on Selective Catalytic Reduction of NOx by NH3 over Mn-Based Catalysts at Low Temperatures: Catalysts, Mechanisms, Kinetics and DFT Calculations. Catalysts, vol.7, no.7, 199-.
Wang, Jihui, Zhao, Huawang, Haller, Gary, Li, Yongdan. Recent advances in the selective catalytic reduction of NOx with NH3 on Cu-Chabazite catalysts. Applied catalysis. B, Environmental, vol.202, 346-354.
Zhang, Lei, Sha, Xiang-ling, Zhang, Lei, He, Hui-bin, Ma, Zhen-hua, Wang, Long-wei, Wang, Yu-xin, She, Li-xia. Synergistic catalytic removal NOX and the mechanism of plasma and hydrocarbon gas. AIP advances, vol.6, no.7, 075015-.
Sun, H., Shu, Y., Quan, X., Chen, S., Pang, B., Liu, Z.. Experimental and modeling study of selective catalytic reduction of NOx with NH3 over wire mesh honeycomb catalysts. Chemical engineering journal, vol.165, no.3, 769-775.
Gao, G., Shi, J.W., Fan, Z., Gao, C., Niu, C.. MnM2O4 microspheres (M=Co, Cu, Ni) for selective catalytic reduction of NO with NH3: Comparative study on catalytic activity and reaction mechanism via in-situ diffuse reflectance infrared Fourier transform spectroscopy. Chemical engineering journal, vol.325, 91-100.
Okubo, Masaaki, Yamada, Hideaki, Yoshida, Keiichiro, Kuroki, Tomoyuki. Simultaneous Reduction of Diesel Particulate and NOx Using a Catalysis-Combined Nonthermal Plasma Reactor. IEEE transactions on industry applications, vol.53, no.6, 5875-5882.
Int J Mech Eng Robot Res NOx from diesel engine emission and control strategies-a review hebbar 2014 3 471
Resitoglu, Ibrahim Aslan, Keskin, Ali. Hydrogen applications in selective catalytic reduction of NOx emissions from diesel engines. International journal of hydrogen energy, vol.42, no.36, 23389-23394.
Xu, C., Sun, W., Cao, L., Li, T., Cai, X., Yang, J.. Highly efficient Pd-doped aluminate spinel catalysts with different divalent cations for the selective catalytic reduction of NO with H2 at low temperature. Chemical engineering journal, vol.308, 980-987.
Reşitoğlu, İbrahim Aslan, Altinişik, Kemal, Keskin, Ali. The pollutant emissions from diesel-engine vehicles and exhaust aftertreatment systems. Clean technologies and environmental policy, vol.17, no.1, 15-27.
Jahanmiri, A., Rahimpour, M.R., Mohamadzadeh Shirazi, M., Hooshmand, N., Taghvaei, H.. Naphtha cracking through a pulsed DBD plasma reactor: Effect of applied voltage, pulse repetition frequency and electrode material. Chemical engineering journal, vol.191, 416-425.
Liu, Z., Li, J., Hao, J.. Selective catalytic reduction of NOx with propene over SnO2/Al2O3 catalyst. Chemical engineering journal, vol.165, no.2, 420-425.
Appl Chem Eng Conversion of NOx by plasma-hydrocarbon selective catalytic reduction process jo 2018 29 103
Eliasson, B., Kogelschatz, U.. Modeling and applications of silent discharge plasmas. IEEE transactions on plasma science, vol.19, no.2, 309-323.
Brandenburg, Ronny. Dielectric barrier discharges: progress on plasma sources and on the understanding of regimes and single filaments. Plasma sources science & technology, vol.26, no.5, 053001-.
Wagner, H.-E., Brandenburg, R., Kozlov, K.V., Sonnenfeld, A., Michel, P., Behnke, J.F.. The barrier discharge: basic properties and applications to surface treatment. Vacuum, vol.71, no.3, 417-436.
Sun Mok, Young, Young Yoon, Eun. Effect of Ozone Injection on the Catalytic Reduction of Nitrogen Oxides. Ozone: science & engineering, vol.28, no.2, 105-110.
Despres, Joël, Koebel, Manfred, Kröcher, Oliver, Elsener, Martin, Wokaun, Alexander. Adsorption and desorption of NO and NO2 on Cu-ZSM-5. Microporous and mesoporous materials : the official journal of the International Zeolite Association, vol.58, no.2, 175-183.
Roland, U., Holzer, F., Kopinke, F.-D.. Combination of non-thermal plasma and heterogeneous catalysis for oxidation of volatile organic compounds : Part 2. Ozone decomposition and deactivation of γ-Al2O3. Applied catalysis. B, Environmental, vol.58, no.3, 217-226.
Arai, M., Saito, M., Yoshinaga, S.. EFFECT OF OXYGEN ON NOx REMOVAL IN CORONA DISCHARGE FIELD: NOx BEHAVIOR WITHOUT A REDUCING AGENT. Combustion science and technology, vol.176, no.10, 1653-1665.
해당 논문의 주제분야에서 활용도가 높은 상위 5개 콘텐츠를 보여줍니다.
더보기 버튼을 클릭하시면 더 많은 관련자료를 살펴볼 수 있습니다.
*원문 PDF 파일 및 링크정보가 존재하지 않을 경우 KISTI DDS 시스템에서 제공하는 원문복사서비스를 사용할 수 있습니다.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.