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<ArticleSet>
		<Article>
		<Journal>
			<PublisherName>Majlesi Journal of Electrical Engineering</PublisherName>
			<JournalTitle>Gain and Bandwidth Improvement of a Cylindrical Dielectric Resonator Antenna (CDRA) by Using of Metamaterial Structures</JournalTitle>
			<Issn></Issn>
			<Volume>Volume 15 (2021)</Volume>
			<Issue>Issue 2, June 2021</Issue>
			<PubDate PubStatus="epublish">
                <Year>2024</Year>
                <Month>02</Month>
                <Day>12</Day>
			</PubDate>
		</Journal>
		<ArticleTitle>Gain and Bandwidth Improvement of a Cylindrical Dielectric Resonator Antenna (CDRA) by Using of Metamaterial Structures</ArticleTitle>
		<VernacularTitle></VernacularTitle>
		<FirstPage></FirstPage>
		<LastPage></LastPage>
		<ELocationID EIdType="doi">10.52547/mjee.15.2.1</ELocationID>
		<Language>EN</Language>
		<AuthorList>
            			<Author>
                				<FirstName>Seyed</FirstName>
				<LastName>Omidreza Miri</LastName>
				<Affiliation>Department of Communication, School of Electrical and Computer Engineering, Shiraz University, Shiraz, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Farzad</FirstName>
				<LastName>Mohajeri</LastName>
				<Affiliation>Department of Communication Engineering, Shiraz University, Shiraz, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            		</AuthorList>
		<PublicationType>Journal Article</PublicationType>
		<History>
			<PubDate PubStatus="received">
				<Year>2024</Year>
				<Month>02</Month>
				<Day>12</Day>
			</PubDate>
		</History>
		<Abstract>Using metamaterials on the top of the antenna’s accordance to magneto-dielectric superstrate and near zero refraction index theories causes improvement of radiation efficiency and gain of antennas. In this article, two novel metamaterial unit cells are proposed for gain and bandwidth improvement of Cylindrical Dielectric Resonator Antenna (CDRA). The first metamaterial unit cell is a negative magnetic structure including two rings implemented on both sides of RT/doroid 5880 substrate with dielectric constant of 2.2. Besides, the second metamaterial unit cell is a Double Negative Structure (DNG) realized consisting of two rings printed in one side and a thin wire in other side of RT/doroid 5880 substrate. Two 7 7 arrays of proposed unit cells are considered and used as superstrate layers on the top of a CDRA. Also, the CDRA is made of RT/doroid 6010 material with dielectric constant of 10.2 working at the frequency of 10 GHz. Using proposed metamaterial structures as superstrate layers on the top of the CDRA causes gain and bandwidth improvement up to 3.3 dB and 4.8%, respectively. CDRA in the presence of proposed metamaterial superstrates are analyzed using a 3D full-wave simulator.</Abstract>
		<ObjectList>
            			<Object Type="keyword">
				<Param Name="value">Dielectric Resonator Antenna</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Bandwidth</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Metamaterial</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Superstrate</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">gain.</Param>
			</Object>
					</ObjectList>
	</Article>
		<Article>
		<Journal>
			<PublisherName>Majlesi Journal of Electrical Engineering</PublisherName>
			<JournalTitle>Techno-Economic Impact of Electrification Rural Areas in Palestine using Micro-Grid Solar Energy “Al-Mkahel&#038; Saeed Villages – Case Study”</JournalTitle>
			<Issn></Issn>
			<Volume>Volume 15 (2021)</Volume>
			<Issue>Issue 2, June 2021</Issue>
			<PubDate PubStatus="epublish">
                <Year>2024</Year>
                <Month>02</Month>
                <Day>12</Day>
			</PubDate>
		</Journal>
		<ArticleTitle>Techno-Economic Impact of Electrification Rural Areas in Palestine using Micro-Grid Solar Energy “Al-Mkahel&#038; Saeed Villages – Case Study”</ArticleTitle>
		<VernacularTitle></VernacularTitle>
		<FirstPage></FirstPage>
		<LastPage></LastPage>
		<ELocationID EIdType="doi">10.52547/mjee.15.2.9</ELocationID>
		<Language>EN</Language>
		<AuthorList>
            			<Author>
                				<FirstName>Imad</FirstName>
				<LastName>Ibrik</LastName>
				<Affiliation>An-Najah National University, Nablus, Palestine.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Fida</FirstName>
				<LastName>Salameh</LastName>
				<Affiliation>An-Najah National University, Nablus, Palestine.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            		</AuthorList>
		<PublicationType>Journal Article</PublicationType>
		<History>
			<PubDate PubStatus="received">
				<Year>2024</Year>
				<Month>02</Month>
				<Day>12</Day>
			</PubDate>
		</History>
		<Abstract>Palestine has a large number of remote small communities with no electricity services and the probability of connecting them with local grid in the near future is very poor, because of political and financial issues. This paper will illustrate the techno- economic impact of electrification small communities using micro-grid photovoltaic systems, and also the CO2 emission that will be reduced in comparative of using diesel generator which pollutes the environment. The implementation of two micro-grid PV-systems for electrification of two communities in Palestine will cover the electricity needs of households and street lighting, and can replace candles, kerosene and traditional unsustainable biomass</Abstract>
		<ObjectList>
            			<Object Type="keyword">
				<Param Name="value">Energy Poverty</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Rural Electriﬁcation</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Off-grid PV System</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Sustainable Development.</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Micro-grid</Param>
			</Object>
					</ObjectList>
	</Article>
		<Article>
		<Journal>
			<PublisherName>Majlesi Journal of Electrical Engineering</PublisherName>
			<JournalTitle>Random Modeling of Optimal Economic, Security and Environmental Operation of Micro-grid by Managing Responsive Loads and Charging and Discharging Electric Vehicles</JournalTitle>
			<Issn></Issn>
			<Volume>Volume 15 (2021)</Volume>
			<Issue>Issue 2, June 2021</Issue>
			<PubDate PubStatus="epublish">
                <Year>2024</Year>
                <Month>02</Month>
                <Day>12</Day>
			</PubDate>
		</Journal>
		<ArticleTitle>Random Modeling of Optimal Economic, Security and Environmental Operation of Micro-grid by Managing Responsive Loads and Charging and Discharging Electric Vehicles</ArticleTitle>
		<VernacularTitle></VernacularTitle>
		<FirstPage></FirstPage>
		<LastPage></LastPage>
		<ELocationID EIdType="doi">10.52547/mjee.15.2.15</ELocationID>
		<Language>EN</Language>
		<AuthorList>
            			<Author>
                				<FirstName>Alireza</FirstName>
				<LastName>Bakhshinejad</LastName>
				<Affiliation>Department of Engineering, Lahijan Branch, Islamic Azad University, Lahijan, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Abdolreza</FirstName>
				<LastName>Tavakoli</LastName>
				<Affiliation>Department of Engineering, Islamic Azad university, Lahijan branch, Lahijan, Guilan, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Maziar</FirstName>
				<LastName>Mirhosseini Moghaddam</LastName>
				<Affiliation>Department of Engineering, Lahijan Branch, Islamic Azad University, Lahijan, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            		</AuthorList>
		<PublicationType>Journal Article</PublicationType>
		<History>
			<PubDate PubStatus="received">
				<Year>2024</Year>
				<Month>02</Month>
				<Day>12</Day>
			</PubDate>
		</History>
		<Abstract>The micro-grid operator must provide the energy required by its customers at the lowest cost and consider issues such as greenhouse gas emissions and security. The operator is faced with a multi-objective optimization problem in which customer demand must be provided at the lowest cost and safely. This research provides a new energy management system for islanded micro-grids. The small size of the islanded micro-grids, the high level of intermittent operation and the low inertia of distributed generation of inverter energy production resources make the frequency and voltage security two vital factors in the energy management system, which must be managed alongside economic-environmental policies. In this study, two practical tools are provided to help with the optimal operation and increase the profitability of the micro-grid operator. The first tool is the optimal and managed use of the V2G mode of electric vehicles. In the proposed approach, not only the penetration of electric vehicles in the network is managed but also this equipment is used to solve some of the network&#039;s challenges. The second tool is responsive loads and demand response programs in order to achieve the goals of the micro-grid operator. Covering the uncertainty of renewable energy sources by responsive loads, and how to model a demand response program in a micro-grid, are followed in this study. The strategy pursued several goals, including reducing energy and load costs, reducing the cost of charging EVs, and improving network parameters and security, such as voltage and frequency. The results confirm the effectiveness of the proposed approach.</Abstract>
		<ObjectList>
            			<Object Type="keyword">
				<Param Name="value">Electric vehicles</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Optimal Operation</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Stochastic model</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Demand Response</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Voltage Safety</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">renewable energy resources</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Frequency Safety</Param>
			</Object>
					</ObjectList>
	</Article>
		<Article>
		<Journal>
			<PublisherName>Majlesi Journal of Electrical Engineering</PublisherName>
			<JournalTitle>Tuning of Novel Fractional Order Fuzzy PID Controller for Automatic Voltage Regulator using Grasshopper Optimization Algorithm</JournalTitle>
			<Issn></Issn>
			<Volume>Volume 15 (2021)</Volume>
			<Issue>Issue 2, June 2021</Issue>
			<PubDate PubStatus="epublish">
                <Year>2024</Year>
                <Month>02</Month>
                <Day>12</Day>
			</PubDate>
		</Journal>
		<ArticleTitle>Tuning of Novel Fractional Order Fuzzy PID Controller for Automatic Voltage Regulator using Grasshopper Optimization Algorithm</ArticleTitle>
		<VernacularTitle></VernacularTitle>
		<FirstPage></FirstPage>
		<LastPage></LastPage>
		<ELocationID EIdType="doi">10.52547/mjee.15.2.39</ELocationID>
		<Language>EN</Language>
		<AuthorList>
            			<Author>
                				<FirstName>Mohammad</FirstName>
				<LastName>Ali Khaniki</LastName>
				<Affiliation>Department of Control Engineering, K.N. Toosi University of Technology, Tehran, Iran.</Affiliation>
				<Identifier Source="ORCID">0000-0003-3461-9250</Identifier>
			</Author>
            			<Author>
                				<FirstName>Mohammad</FirstName>
				<LastName>Hadi</LastName>
				<Affiliation>Department of Energy Engineering, Sharif University of Technology, Tehran, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Mohammad</FirstName>
				<LastName>Manthouri</LastName>
				<Affiliation>Department of Electrical and Electronic Engineering, Shahed University, Tehran, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            		</AuthorList>
		<PublicationType>Journal Article</PublicationType>
		<History>
			<PubDate PubStatus="received">
				<Year>2024</Year>
				<Month>02</Month>
				<Day>12</Day>
			</PubDate>
		</History>
		<Abstract>One of the most important equipment in the power system is the Automatic Voltage Regulator (AVR) or synchronous generator excitation. The goal of the system is to maintain the terminal voltage of the synchronous generator in the desired level. AVR is inherently uncertain. Hence, the proposed controller should be able to handle the problem. In this paper, Fractional Order Fuzzy PID (FOFPID) controller has been employed to control the system. In order to enhance the performance of the controller, Grasshopper Optimization Algorithm (GOA) is used to tune the parameters of the controller. Unlike other methods, the gains of FOFPID controller are not constant and alter in different operating conditions. The robustness of the controller has been investigated and the comparative results show that the proposed controller has a better performance against other methods.Automatic Voltage Regulator (AVR), Synchronous generator excitation, Fractional-order fuzzy PID (FOFPID) controller, Grasshopper Optimization Algorithm (GOA), Uncertainty</Abstract>
		<ObjectList>
            			<Object Type="keyword">
				<Param Name="value">Uncertainty</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Automatic voltage regulator (AVR)</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Synchronous Generator Excitation</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Fractional-order Fuzzy PID (FOFPID) Controller</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Grasshopper Optimization Algorithm (GOA)</Param>
			</Object>
					</ObjectList>
	</Article>
		<Article>
		<Journal>
			<PublisherName>Majlesi Journal of Electrical Engineering</PublisherName>
			<JournalTitle>Comparison of Scattering from Electrically Large PEC and PMC Targets Coated with Uniaxial Dielectric Medium based on Asymptotic Solution in Spectral Domain</JournalTitle>
			<Issn></Issn>
			<Volume>Volume 15 (2021)</Volume>
			<Issue>Issue 2, June 2021</Issue>
			<PubDate PubStatus="epublish">
                <Year>2024</Year>
                <Month>02</Month>
                <Day>12</Day>
			</PubDate>
		</Journal>
		<ArticleTitle>Comparison of Scattering from Electrically Large PEC and PMC Targets Coated with Uniaxial Dielectric Medium based on Asymptotic Solution in Spectral Domain</ArticleTitle>
		<VernacularTitle></VernacularTitle>
		<FirstPage></FirstPage>
		<LastPage></LastPage>
		<ELocationID EIdType="doi">10.52547/mjee.15.2.47</ELocationID>
		<Language>EN</Language>
		<AuthorList>
            			<Author>
                				<FirstName>Maryam</FirstName>
				<LastName>Samadpour Hendevari</LastName>
				<Affiliation>Department of Electrical and Computer Engineering, University of Tabriz, Tabriz, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Ali</FirstName>
				<LastName>Pourziad</LastName>
				<Affiliation>Department of Electrical and Computer Engineering, University of Tabriz, Tabriz, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Saeid</FirstName>
				<LastName>Nikmehr</LastName>
				<Affiliation>Department of Electrical and Computer Engineering, University of Tabriz, Tabriz, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            		</AuthorList>
		<PublicationType>Journal Article</PublicationType>
		<History>
			<PubDate PubStatus="received">
				<Year>2024</Year>
				<Month>02</Month>
				<Day>12</Day>
			</PubDate>
		</History>
		<Abstract>In this paper, electromagnetic (EM) scatterings from electrically large Perfect Electric Conductor (PEC) and Perfect Magnetic Conductor (PMC) targets coated with Uniaxial Electric Anisotropic Medium (UEAM) layer are evaluated and compared. The effect of the coating layer’s parameters including εu, εv and the thickness (d) are studied. It is shown that radar cross section (RCS) of a PMC with UEAM coating is less than that of PEC with the same coating. In some cases, about 20 dB reduction in RCS has been obtained for UEAM coated PMC plate.</Abstract>
		<ObjectList>
            			<Object Type="keyword">
				<Param Name="value">Scattering</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">uniaxial electric anisotropic medium (UEAM) coating</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">spectral domain method (SDM).</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Electrically large PEC target</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">PMC target</Param>
			</Object>
					</ObjectList>
	</Article>
		<Article>
		<Journal>
			<PublisherName>Majlesi Journal of Electrical Engineering</PublisherName>
			<JournalTitle>A ZVT Auxiliary Circuit for High Step-Up Multi-Input Converters with Diode-Capacitor Multiplier</JournalTitle>
			<Issn></Issn>
			<Volume>Volume 15 (2021)</Volume>
			<Issue>Issue 2, June 2021</Issue>
			<PubDate PubStatus="epublish">
                <Year>2024</Year>
                <Month>02</Month>
                <Day>12</Day>
			</PubDate>
		</Journal>
		<ArticleTitle>A ZVT Auxiliary Circuit for High Step-Up Multi-Input Converters with Diode-Capacitor Multiplier</ArticleTitle>
		<VernacularTitle></VernacularTitle>
		<FirstPage></FirstPage>
		<LastPage></LastPage>
		<ELocationID EIdType="doi">10.52547/mjee.15.2.53</ELocationID>
		<Language>EN</Language>
		<AuthorList>
            			<Author>
                				<FirstName>Sayed</FirstName>
				<LastName>Hossein Mirlohi</LastName>
				<Affiliation>Department of Electrical Engineering, Isfahan (Khorasgan) Branch, Islamic Azad University, Isfahan, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Mohammad</FirstName>
				<LastName>Yazdani</LastName>
				<Affiliation>Department of Electrical Engineering, Isfahan (Khorasgan) Branch, Islamic Azad University, Isfahan, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Mohammad</FirstName>
				<LastName>Reza Amini</LastName>
				<Affiliation>Department of Electrical Engineering, Isfahan (Khorasgan) Branch, Islamic Azad University, Isfahan, Iran</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            		</AuthorList>
		<PublicationType>Journal Article</PublicationType>
		<History>
			<PubDate PubStatus="received">
				<Year>2024</Year>
				<Month>02</Month>
				<Day>12</Day>
			</PubDate>
		</History>
		<Abstract>In this paper, a Zero-Voltage Transition (ZVT) non-isolated high step-up multi-input DC-DC converters is proposed which employs an auxiliary cell and diode-capacitor multiplier. The auxiliary cell has only one switch and is suitable for high step converters with diode-capacitor multiplier. In the proposed converter, all semiconductor devices operate under fully soft switching condition. The main switches turn on and turn off under Zero Voltage Switching (ZVS) condition whereas the auxiliary switch turns on under Zero Current Switching (ZCS) condition and turns off under zero Voltage and Zero Current Switching (ZVZCS) condition. Also, ZCS condition at turn-off is provided for all diodes to eliminate reverse recovery issue. The structure of the proposed converter includes two boost cells, one diode-capacitor multiplier cell, and one ZVT auxiliary circuit. Soft switching conditions for all main switches are provided by only one auxiliary circuit. The proposed converter has high step-up conversion gain without any coupled inductor. Soft switching conditions, continuous current of input sources, high efficiency, expansion capability of input sources, returning the energy of the auxiliary circuit to the diode-capacitor multiplier and low-voltage stress on switches are the main advantages of the proposed converter. The steady-state analysis of the converter and operation modes are discussed. A 160-W prototype of the proposed converter is designed and implemented. Experimental results confirm that the theoretical and the efficiency of the proposed converter reaches 96.4% at the nominal load.</Abstract>
		<ObjectList>
            			<Object Type="keyword">
				<Param Name="value">Cost</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Soft switching</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">zero voltage transition</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">High Step‐Up Conversion</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Multi‐Input Converter</Param>
			</Object>
					</ObjectList>
	</Article>
		<Article>
		<Journal>
			<PublisherName>Majlesi Journal of Electrical Engineering</PublisherName>
			<JournalTitle>Simulation and Analytical Analysis of the Blumlein Discharge Circuit for the Generation of Coherent UV Pulses in Air</JournalTitle>
			<Issn></Issn>
			<Volume>Volume 15 (2021)</Volume>
			<Issue>Issue 2, June 2021</Issue>
			<PubDate PubStatus="epublish">
                <Year>2024</Year>
                <Month>02</Month>
                <Day>12</Day>
			</PubDate>
		</Journal>
		<ArticleTitle>Simulation and Analytical Analysis of the Blumlein Discharge Circuit for the Generation of Coherent UV Pulses in Air</ArticleTitle>
		<VernacularTitle></VernacularTitle>
		<FirstPage></FirstPage>
		<LastPage></LastPage>
		<ELocationID EIdType="doi">10.52547/mjee.15.2.65</ELocationID>
		<Language>EN</Language>
		<AuthorList>
            			<Author>
                				<FirstName>Muddasir</FirstName>
				<LastName>Naeem</LastName>
				<Affiliation>Department of Physics, Research Laboratory of Lasers (RLL)-Group of Laser Development (GoLD), COMSATS University Islamabad, Park Road, 45550, Islamabad, Pakistan.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Rabiya</FirstName>
				<LastName>Munawar</LastName>
				<Affiliation>Department of Physics, Research Laboratory of Lasers (RLL)-Group of Laser Development (GoLD), COMSATS University Islamabad, Park Road, 45550, Islamabad, Pakistan.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Mukhtar</FirstName>
				<LastName>Hussain</LastName>
				<Affiliation>GoLP/Instituto de Plasmas e Fusão Nuclear-Laboratório Associado, Instituto Superior Técnico, Universidade de Lisboa, 1049-001 Lisboa, Portugal.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Tayyab</FirstName>
				<LastName>Imran</LastName>
				<Affiliation>Department of Physics, Research Laboratory of Lasers (RLL)-Group of Laser Development (GoLD), COMSATS University Islamabad, Park Road, 45550, Islamabad, Pakistan.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Arshad</FirstName>
				<LastName>Bhatti</LastName>
				<Affiliation>Department of Physics, Research Laboratory of Lasers (RLL)-Group of Laser Development (GoLD), COMSATS University Islamabad, Park Road, 45550, Islamabad, Pakistan.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            		</AuthorList>
		<PublicationType>Journal Article</PublicationType>
		<History>
			<PubDate PubStatus="received">
				<Year>2024</Year>
				<Month>02</Month>
				<Day>12</Day>
			</PubDate>
		</History>
		<Abstract>Blumlein discharge circuit stores electrical energy in its transmission line and can release this energy within a few nanoseconds. This leads the Blumlein to discharge circuit for many applications ranging from electrical discharge in the air to generate nitrogen laser, excitation source for vapor lasers to sub-nanosecond avalanche drivers. In this letter, we have simulated the equivalent Blumlein discharge circuit in Multisimulation and compared the results with the analytical model to have the insight of variations of voltage, current and power in the Blumlein circuit. The Blumlein circuit is divided into spark gap (spark gap) and Blumlein transmission line sections to observe the voltage, current and power oscillations. The rapid oscillations of voltage across the spark gap initiate the discharge in the long transmission lines of Blumlein that generates the coherent UV pulses. This study could pave the way towards the generation of ultraviolet (UV) pulses in the air at the atmospheric pressure.</Abstract>
		<ObjectList>
            			<Object Type="keyword">
				<Param Name="value">Blumlein Circuit</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Blumlein Transmission Line</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Multisimulation</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Cost</Param>
			</Object>
					</ObjectList>
	</Article>
		<Article>
		<Journal>
			<PublisherName>Majlesi Journal of Electrical Engineering</PublisherName>
			<JournalTitle>Non-Blocking and Multi Wavelength Optical Router Design based on Mach-zehnder Interferometer in 3-D Optical Network on Chip</JournalTitle>
			<Issn></Issn>
			<Volume>Volume 15 (2021)</Volume>
			<Issue>Issue 2, June 2021</Issue>
			<PubDate PubStatus="epublish">
                <Year>2024</Year>
                <Month>02</Month>
                <Day>12</Day>
			</PubDate>
		</Journal>
		<ArticleTitle>Non-Blocking and Multi Wavelength Optical Router Design based on Mach-zehnder Interferometer in 3-D Optical Network on Chip</ArticleTitle>
		<VernacularTitle></VernacularTitle>
		<FirstPage></FirstPage>
		<LastPage></LastPage>
		<ELocationID EIdType="doi">10.52547/mjee.15.2.73</ELocationID>
		<Language>EN</Language>
		<AuthorList>
            			<Author>
                				<FirstName>Sanaz</FirstName>
				<LastName>Asadinia</LastName>
				<Affiliation>Department of Computer Engineering, Shiraz Branch, Islamic Azad University, Shiraz, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Mahdi</FirstName>
				<LastName>Mehrabi</LastName>
				<Affiliation>Department of Computer Engineering, Shiraz Branch, Islamic Azad University, Shiraz, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            			<Author>
                				<FirstName>Elham</FirstName>
				<LastName>Yaghoubi</LastName>
				<Affiliation>Faculty of Computer Engineering, Najafabad Branch, Islamic Azad University, Najafabad, Iran.</Affiliation>
				<Identifier Source="ORCID"></Identifier>
			</Author>
            		</AuthorList>
		<PublicationType>Journal Article</PublicationType>
		<History>
			<PubDate PubStatus="received">
				<Year>2024</Year>
				<Month>02</Month>
				<Day>12</Day>
			</PubDate>
		</History>
		<Abstract>Due to the increasing number of cores in a chip, electronic networks on chip cannot be an effective solution for using multi-core processors. The use of optical connection technology for networks on 3D chip is an ideal choice recommended in response to delay and reliability. In optical network architecture on 3D chip, 7-port routers are used to data transfer. The structure of the optical routers in the network on the 3D optical chip affects the Performance transmission of the entire network so that the provision of optical router with minimal loss and power consumption is considered by researchers in this domain. In this study, a seven-port Non-blocking optical router based on the Mach Zehnder interferometer optical switch in the network on a 3-D optical chip is presented. This router consists of 18 Mach Zehnder interferometer optical switches that can transfer multiple wavelengths concurrently. To evaluate the proposed 7-port router in the network on the 3D optical chip, the parameters of insertion loss, bandwidth density and power consumption are considered and the simulation results represent that this router decreases the loss as much as possible and improves the use of the wavelength channel comparing to available router and has the ability to transfer 4 wavelengths simultaneously with a wavelength range of 1525-1565 nm and a data transfer rate of 20Gbps for all 42 optical links. So it is useable for optical connection on the chip.</Abstract>
		<ObjectList>
            			<Object Type="keyword">
				<Param Name="value">Power Consumption</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Insertion Loss</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">non-blocking</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Mach-Zehnder Interferometer (MZI)</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">optical router</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">Wavelength Division Multiplexing (WDM)</Param>
			</Object>
						<Object Type="keyword">
				<Param Name="value">3D Optical Network on Chip (3D-ONoC)</Param>
			</Object>
					</ObjectList>
	</Article>
	</ArticleSet>
