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| # | Type | Title | Author | Publisher | Pub. Year | Subjects | Call Number |
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| 1 | مقاله | Microstructural and mechanical characteristics of AA1050/mischmetal oxide in-situ hybrid surface nanocomposite by multi-pass friction stir processing | Alishavandi, M. | Elsevier B.V, | 2020 |
Aluminum alloy.
Friction stir processing. Grain structure. Mechanical properties improvement. Mischmetal oxide. Aluminum alloys. Chemical analysis. Crystal microstructure. Ductile fracture. Friction. Friction stir welding. Nanocomposites. Particle size. Particle size analysis. Rare earth alloys. Solid state reactions. Yield stress. Agglomerated particles. Friction stir processing. Mechanical characteristics. Misch metal. Multi-pass friction stir processing. Particle distributions. Properties improvements. Solid state chemical reactions. In situ processing. |
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| 2 | مقاله | Corrosion-wear behavior of AA1050/mischmetal oxides surface nanocomposite fabricated by friction stir processing | Alishavandi, M. | Elsevier Ltd, | 2020 |
AA1050.
Corrosion. Friction stir processing. Mischmetal oxide. Nanocomposite. Wear. Adhesives. Corrosion rate. Corrosion resistance. Field emission microscopes. Friction. Nanocomposites. Polarization. Scanning electron microscopy. Tribology. Wear of materials. Coefficient of frictions. Corrosion characteristics. Corrosion-wear behaviors. Dry sliding wear test. Field emission scanning electron microscopy. Surface nano-composite. Wear characteristics. Wear resistance. |
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| 3 | مقاله | Optimization of parameters for the friction stir processing and welding of aa1050 aluminum alloy | Alishavandi, M. | Iran University of Science and Technology, | 2021 | Surfe coating and corrosion. |
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| 4 | مقاله | Optimization of parameters for the friction stir processing and welding of aa1050 aluminum alloy | Alishavandi, M. | Iran University of Science and Technology, | 2021 |
Friction stir processing.
Rotational and traverse speed. Mechanical properties. Tool probe shape|grain structure. AA1050 aluminum alloy. |
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| 5 | مقاله | Microstructural and mechanical evaluation of submerged arc welded HSLA 4135 steel by modeled and manufactured granular Cr-Mo bonded active basic flux | Alishavandi, M. | Elsevier Ltd, | 2021 |
Alloying.
Alloying elements. Binary alloys. Chromium alloys. High-strength low-alloy steel. Slags. Submerged arc welding. Cvn impact tests. Fracture mechanisms. Longitudinal tensile. Mechanical evaluation. Micro-structural. Micro-structure evolutions. Submerged arc welded. Welding wires. Molybdenum steel. |
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| 6 | مقاله | Microstructural and mechanical evaluation of submerged arc welded HSLA 4135 steel by modeled and manufactured granular Cr-Mo bonded active basic flux | Alishavandi, M. | Elsevier Ltd, | 2021 |
Alloying.
Alloying elements. Binary alloys. Chromium alloys. High-strength low-alloy steel. Slags. Submerged arc welding. Cvn impact tests. Fracture mechanisms. Longitudinal tensile. Mechanical evaluation. Micro-structural. Micro-structure evolutions. Submerged arc welded. Welding wires. Molybdenum steel. |
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| 7 | مقاله | Microstructural and mechanical evaluations of SAW by manufactured granular basic bonded Cr, Mo, and Cr–Mo active fluxes on ST37 low carbon steel | Alishavandi, M. | Springer Science and Business Media Deutschland GmbH, | 2022 |
Acicular ferrite.
Impact test. Inclusion. Submerged arc welding. Unfused flux. Chemical analysis. Energy dispersive spectroscopy. Ferrite. Fractography. Fracture mechanics. Fracture toughness. Heat affected zone. Low carbon steel. Slags. Tensile strength. Vickers hardness. Active bonded flux. Active flux. Bead on plate. Low-carbon steels. Mechanical evaluation. Microstructural evaluation. Submerged-arc welding. Scanning electron microscopy. Slag. |
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| 8 | پایان نامه | ارتباط بین ریزساختار و خواص مکانیکی در نانوکامپوزیت AA1050/MMO تولیدی با فرایند همزن اصطکاکی The Relationship between Microstructure and Mechanical Properties of AA1050/MMO Nanocomposite Fabricated by Friction Stir Processing | عالیشوندی، مهدی Alishavandi, Mahdi | صنعتی شریف | 1396 | آلیاژ آلومینیوم Aluminum Alloy / خواص مکانیکی Mechanical Properties / ریزساختار Microstructure / نانوکامپوزیت Nanocomposite / میش متال Mischmetal / جوشکاری اصطکاکی تلاطمی Friction Stir Welding / آلیاژ آلومینیوم 1050 Aluminum Alloy 1050 / مقاوم سازی (فلز) Strengthening (Metal) |
07-50214
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| 9 | مقاله | Probability of missed detection as a criterion for receiver placement in MIMO PCL | Majd, M. N. | IEEE, | 2012 |
Missed detections.
Multiple antenna. Multiple receivers. Passive radars. Radar performance. Receive antenna. Receiving antennas. MIMO radar. |
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| 10 | مقاله | An efficient method for the ring opening of epoxides with aromatic amines by Sb(III) chloride under microwave irradiation | Ghazanfari, D. | 2008 |
Epoxides.
β-amino alcohols. Aromatic amines. SbCl3. |
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| 11 | مقاله | Resource allocation for uav-enabled integrated sensing and communication (isac) via multi-objective optimization | Rezaei, O. | Institute of Electrical and Electronics Engineers Inc, | 2023 |
Integrated sensing and communication (ISAC)
Unmanned aerial vehicle (UAV) Waveform design. Wireless power transfer (WPT) |
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| 12 | مقاله | MIMO radar signal design to improve the MIMO ambiguity function via maximizing its peak | Chitgarha, M. M. | Elsevier, | 2016 |
Ambiguity function.
Multiple-Input Multiple-Output radar. Power allocation. Waterfilling. Waveform design. Codes (symbols) Design. Feedback control. MIMO systems. Radar. Radar signal processing. Radar systems. Telecommunication repeaters. Multiple input multiple output (MIMO) radars. Power allocations. MIMO radar. |
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| 13 | مقاله | Detection-localization tradeoff in MIMO radars | Nazari Majd, M. | 2017 |
Detection.
Localization. MIMO radar. Tradeoff. Widely separated antennas. |
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| 14 | مقاله | Antenna placement and power allocation optimization in MIMO detection | Radmard, M. | 2014 |
Antennas.
Transmitters. Antenna placement. Detection performance. MIMO detection. Multiple antenna. Neyman Pearson detectors. Power allocations. Total power. MIMO systems. |
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| 15 | مقاله | Ambiguity function of MIMO radar with widely separated antennas | Radmard, M. | 2014 |
Ambiguity function.
Widely separated antennas. Antennas. MIMO systems. Radar antennas. Separation. Multiple antenna. Multiple input multiple output techniques. System's performance. MIMO radar. |
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| 16 | مقاله | Choosing the position of the receiver in a MISO passive radar system | Chitgarha, M. M. | 2012 |
MIMO.
Passive Coherent Location. Receiver positioning. MIMO Multiple Input Multiple Output. MISO. Multiple antenna. Multiple receive antennas. Neyman Pearson detectors. Passive coherent locations. Passive radars. Probability of missed detections. Receive antenna. Spatial diversity. Local area networks. MIMO systems. Receiving antennas. MIMO radar. |
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| 17 | مقاله | Adaptive filtering techniques in passive radar | Chitgarha, M. M. | 2013 |
Direct signal.
Filtering technique. Limited dynamic ranges. Passive radars. Adaptive filters. Radar. |
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| 18 | مقاله | Ambiguity function based receiver placement in multi-site radar | Radmard, M. | 2017 |
Genetic algorithm.
Multi-site radar. Receiver placement. Antennas. Genetic algorithms. Radar antennas. Radar systems. Receiving antennas. Ambiguity function. Aspect angles. Multi-site. Multiple antenna. Multiple targets. Multiple transmit antennas. Receive antenna. System's performance. Radar. |
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| 19 | مقاله | Improving MIMO radar's performance through receivers' positioning | Chitgarha, M. M. | Institution of Engineering and Technology, | 2017 |
Antennas.
MIMO systems. Radar. Radar antennas. Radar signal processing. Radar systems. Receiving antennas. Ambiguity function. MIMO (multiple-input multiple output) MIMO detectors. Positioning procedures. Probability of detection. Receive antenna. System's performance. MIMO radar. |
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| 20 | مقاله | Silylation of hydroxy groups with HMDS under microwave irradiation and solvent-free conditions | Mojtahedi, M. M. | 2002 |
Phenols.
Silylation of alcohols. |
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