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      • Open Access Article

        1 - Optimization of the Pulsed Gas Tungsten Arc Welding in Dissimilar Joining Austenitic Stainless Steel AISI 316L to Nickel-Base Super Alloy of Monel 400
        علی خلیلی مسعود کثیری عسگرانی مرتضی شمعانیان
        In this research, optimization of the pulsed gas tungsten arc welding including pulse current, background current, pulse frequency and on time were investigated in welding of non-similar materials of austenitic stainless steel AISI 316L and nickel-base super alloy of Mo More
        In this research, optimization of the pulsed gas tungsten arc welding including pulse current, background current, pulse frequency and on time were investigated in welding of non-similar materials of austenitic stainless steel AISI 316L and nickel-base super alloy of Monel 400 by using ERNiCr3 filler metal. In order to obtain optimum conditions of welding the Taguchi method with the L9 array was used. The mechanical properties such as bending, tesile test and hardness test were performed on the samples and after that analysis of the variance was performed. By predicting optimal conditions, the proposed model was examined and the results of computational analysis shows a significant similarity with results of the experiment. Optimal parameters of pulsed tungsten arc welding were the pulse current of 140 mA, background current of 60 mA, pulse frequency of 3 Hz and the ON periods of pulse was 50%. The optimized sample with the Taguchi method and the welded sample shows the similarity of 98.7%. Pulse current percentage of 23.4 and pulse frequency of 28.2 were identified as the most influential parameters during the welding. Tensile test results showed that the failure occurs on the side of the base metal on Monel 400 one and hence the failure is the ductile one. These results show the strength of the weld metal confirmed the tensile and bending tests Manuscript profile
      • Open Access Article

        2 - Experimental investigation of relative thermal conductivity of MWCNTs-CuO/Water nanofluids
        مسعود زاده‌خواست داود طغرایی آرش کریمی‌پور
        This work presents a model for calculating the effective ‎thermal conductivity of nanofluids. The proposed model ‎includes the effects of nanoparticles and thermal conductivity ‎base fluid.We will focus on experimental of the volume ‎concentration parame More
        This work presents a model for calculating the effective ‎thermal conductivity of nanofluids. The proposed model ‎includes the effects of nanoparticles and thermal conductivity ‎base fluid.We will focus on experimental of the volume ‎concentration parameter and temperature on thermal ‎conductivity, nano-fluid combination and Multi-Walled ‎Carbon nanotubes-Oxide / Copper-paid deionized Water. This ‎water-based nanofluids, For two-step volume fractions of the ‎‎0.1, 0.2, 0.6 Percentage produced And then, Effective thermal ‎conductivity is measured precisely. In order to measure the ‎thermal conductivity of nanofluids. To measure the thermal ‎conductivity coefficient in THW method, KD2-pro and KS1 ‎probe was used, also with the fluid significantly enhancement ‎shows in thermal conductivity coefficient. Also with the fluid ‎significantly enhancement shows in thermal conductivity ‎coefficient. In lower volume fractions we observed ‎significantly increase in thermal conductivity and receive high ‎degree thermal. Due to the lack of similar studies Due to the ‎lack of similar studies to comprehensively and inefficient of ‎classical thermal conductivity, In order to estimate the thermal ‎conductivity of nanofluids An empirical model that estimates ‎the thermal conductivity of nanofluids model with deviation ‎margin is very low Manuscript profile
      • Open Access Article

        3 - Optimization of the parameters of low-carbon steel (EN10130) welding using friction stir welding method
        اکبر علیمحمدی مسعود کثیری مسعود افرند حسین نوروزی فروشانی
        Friction-stir welding process is a novel method of solid state welding, which produces heat due to friction between the pin, the shoulder and the workpiece. This heat causes a paste area. Shoulder pressure and pin spin cause edges integration and lead to welding. In thi More
        Friction-stir welding process is a novel method of solid state welding, which produces heat due to friction between the pin, the shoulder and the workpiece. This heat causes a paste area. Shoulder pressure and pin spin cause edges integration and lead to welding. In this study, firstly, the feasibility of welding of steel sheet (EN10130) with a thickness of 1.5mm has been tested by 58 experiments. After making perfect welds, the ranges of 500-1000 RPM and 30-160 mm/min were selected as the suitable upper and lower levels, respectively, for rotational speed and linear speed. To achieve a maximum tensile strength, 29 tests were designed by using the Box-Benken method considering specified levels of the parameters. Then, the response surface methodology was used for optimization of the parameters. Results showed that the optimal outputs and experimental data were in good agreement, which indicate the adequacy of the design of experiments and optimization predict results. Micro-hardness tests, metallography and normal tensile test were carried out on three series of plates produced with the most appropriate tensile strength and elongation. Results showed that heat-affected zone weaked the sheet of advancing side compared to other welding zones. Manuscript profile
      • Open Access Article

        4 - Numerical study on the effect of input variations on bulge height in hot tube metal gas forming process
        مهدی چوگان محسن لوح موسوی
        .Hot metal gas forming of tubes can be used in various industries such as automotive and aerospace industries. In this process tube is formed at elevated temperatures, by using gas instead of fluid pressure. Lower required pressure and low power are its advantages in co More
        .Hot metal gas forming of tubes can be used in various industries such as automotive and aerospace industries. In this process tube is formed at elevated temperatures, by using gas instead of fluid pressure. Lower required pressure and low power are its advantages in comparison to hydroforming process. In this paper, a hot metal gas bulging process of an aluminum alloy tube has been investigated by finite element method. In addition, The HMGF process was simulated by ) Dynamic, Temp-Disp, Explicit( because of the temperature distribution along the tube length, whereas temperature was simplified and assumed to be uniform in analytical method. The bulge height parameter was investigated by changing the input variations such as internal pressure, outer diameter, die entry radius, initial tube length and initial tube wall thickness in numerical method. The numerical result shows that the input variations have significant effects on tube bulge height in this process. Manuscript profile
      • Open Access Article

        5 - Fatigue Analysis and Optimization of Crankshaft of V8 Diesel Engine
        علی عبداللهی فر محمدامید خشوعی سید مسعود هاشمی
        The crankshaft is one of the most critically loaded components as it experiences cyclic loads in the form of bending and torsion during its service life. Its failure will cause serious damage to the engine so it’s important at the time of design to verify fatigue More
        The crankshaft is one of the most critically loaded components as it experiences cyclic loads in the form of bending and torsion during its service life. Its failure will cause serious damage to the engine so it’s important at the time of design to verify fatigue strength. More challenges in crankshaft design due to increasing vehicle payloads, lower weight requirement, higher efficiency and longer durability life. In this study a dynamic simulation was conducted on a crankshaft from a V8 diesel four stroke engine. Finite element analysis was performed to obtain and analysis the variation of the stress magnitude at every location of crankshaft especially at critical points. Results obtained from the aforementioned analysis were then used in optimization of the crankshaft. Also accumulated fatigue damage caused by the change in loading in different crankshaft speeds was determined. The goal of this study is designing crankshaft with suitable and optimum dimensions which can serve the longer durability life without any failures. Manuscript profile
      • Open Access Article

        6 - Free vibration analysis of circular sandwich plates with clamped FG face sheets
        یونس محمدی کیوان حسینی صفری محسن رحمانی
        Free vibration of sandwich plates with temperature dependent functionally graded (FG) face sheets in various thermal environments is investigated. The material properties of FG face sheets are assumed to be temperature-dependent and vary continuously through the thickne More
        Free vibration of sandwich plates with temperature dependent functionally graded (FG) face sheets in various thermal environments is investigated. The material properties of FG face sheets are assumed to be temperature-dependent and vary continuously through the thickness according to a power-law distribution in terms of the volume fractions of the constituents. Also, the material properties of the core are assumed to be temperature dependent. The governing equations of motion in polar system and in free natural vibration are derived using Hamilton’s principle and Galerkin method is used to solve the equations and obtain the natural frequency. In-plane stresses of the core that usually are ignored in the vibration characteristics of the sandwich structures are considered in this formulation. The results obtained by Galerkin method for symmetric circular sandwich plate with fixed support is compared with finite element method that obtained by ABAQUS and good agreement is found. The results show that varying the power-law index and temperature have important effects on natural frequency. Manuscript profile
      • Open Access Article

        7 - Assessment of a Column Type Six-Component Force/Torque Sensor by Theoretical, Simulation and Experimental Approaches
        سیدرضا حمزه لو محمدمراد شیخی حسین اکبری
        حسگرهای نیرو/گشتاور چند‌مولفه‌ای کرنش‌سنج‌دار، برای اندازه‌گیری همزمان نیروها و گشتاورهای استاتیکی و دینامیکی شامل سه مولفه‌ی نیرو و سه مولفه‌ی گشتاور در دستگاه مختصات دکارتی یک سیستم استفاده می‌شوند. در این تحقیق، یک حسگر نیرو/گشتاور شش‌مولفه‌ای نوع ستونی، با سطح مقطع More
        حسگرهای نیرو/گشتاور چند‌مولفه‌ای کرنش‌سنج‌دار، برای اندازه‌گیری همزمان نیروها و گشتاورهای استاتیکی و دینامیکی شامل سه مولفه‌ی نیرو و سه مولفه‌ی گشتاور در دستگاه مختصات دکارتی یک سیستم استفاده می‌شوند. در این تحقیق، یک حسگر نیرو/گشتاور شش‌مولفه‌ای نوع ستونی، با سطح مقطع دایروی توخالی معرفی شده است. به منظور جداسازی الکتریکی مولفه‌های بار اعمالی بر آن و بر پایه‌ی مبانی نظری، الگوهایی خاصی برای نصب کرنش‌سنج‌ها ارائه شده که بررسی صحت این الگوها با شیبه‌سازی المان محدود در نرم‌افزار آباکوس انجام گرفته است. در ادامه بارگذاری‌های مختلفی به یک نمونه‌ی ساخته شده از این حسگر اعمال شده و کرنش‌های تجربی اندازه‌گیری شده است. نتایج نشان می‌دهد که نه تنها اندازه‌ی واقعی درایه‌های قطر اصلی ماتریس کالیبراسیون، انحراف‌هایی نسبت به اندازه‌ی نظری آن‌ها دارد بلکه؛ این ماتریس لزوماً قطری نیست. درصد انحراف کرنش‌های شبیه‌سازی از نظری در همه پل‌ها زیر %0/3 در تمام شرایط بارگذاری بدست آمده است. همچنین کمترین و بیشترین درصد انحراف کرنش‌های تجربی از نظری در بیشینه بار مجاز هر محور، به ترتیب مربوط به نیروی برشی Px و ممان خمشی Mx بوده که برابر %%62/1 و %12/8 می‌باشد. Manuscript profile
      • Open Access Article

        8 - Time Dependent Analysis of Micro-tubes Conveying Nanofluids Under Time-Varying Heat Flux
        محمد حسینی میثم خالویی عباس زندی باغچه مریم
        In this paper the numerical analysis of flow and time dependent heat transfer of micro-tube conveying nanofluid in laminar flow is investigated. In this study, convection heat transfer of nanofluid and base fluid and transient analysis for time-varying heat flux for tim More
        In this paper the numerical analysis of flow and time dependent heat transfer of micro-tube conveying nanofluid in laminar flow is investigated. In this study, convection heat transfer of nanofluid and base fluid and transient analysis for time-varying heat flux for time step of 0.0001 second are elucidated. It is observed that the pumping power of nanofluid flowing and the maximum temperature of micro-tube wall, respectively, is increased and decreased with increases in the volume fraction of nanoparticle. The maximum temperature of base fluid (water) is 305.6K and the maximum temperature is 304.2K for alumina oxide nanoparticle AF with volume fraction 3%. In addition, the results show that using nanofluid has the advantage of heat transfer despite periodic heat flux. However, the results show that these parameters are vital in investigation of the heat transfer of system. Also, It is obvious that the maximum temperature of micro-tube wall decreases with increase in the Reynolds number. For example, for Reynolds numbers 180, 360 and 720, the maximum temperatures occur at 307.8K, 304.6K and 302.8K, respectively. In addition, it is indicated that the variation of temperature decreases when the volume fraction of nanoparticles increases. Also the results of numerical modeling are compared with those available in literature and good agreement is observed. Manuscript profile
      • Open Access Article

        9 - Experimental Investigation of Nano-structured Aluminum Production Using Accumulative channel-die compression bonding (ACCB)
        محسن مطهری نژاد سعید شهرکی
        In this paper, the Accumulative Channel-die Compression Bounding (ACCB) method is investigated as a new method of severe plastic deformation to produce Nano-crystalline bulk metals on the basis of pressing in a channel mold. Aluminum as One of the most usable metal in i More
        In this paper, the Accumulative Channel-die Compression Bounding (ACCB) method is investigated as a new method of severe plastic deformation to produce Nano-crystalline bulk metals on the basis of pressing in a channel mold. Aluminum as One of the most usable metal in industry is processed using this method. Analyzing the processed samples show that after four passes of ACCB method, the ultimate strength of samples reaches to 120 from 60 Mpa. The grain sizes of samples reaches to 627 nm from 8-6µm in annealed phase after four passes of ACCB method. Also, the vicker's hardness of samples reaches to 51.8 from 20 HV after four passes. These changes consist of the increasing the hardness and strength of aluminum sample and achieving to the high ratio of strength to weight of sample can help us to better use this materials to fabricate less weight structures for using in automotive and airplane industry. Manuscript profile
      • Open Access Article

        10 - Friction Stir Welding؛ Material Flow؛ Heat Generation؛ Thermal Simulation؛ Poly methyl methacrylate (PMMA)
        حامد آقاجانی درازکلا
        In this study, the effects of linear and rotational speed of the friction stir welding tool was investigated on the heat generation and distribution at surface and inside of workpiece, material flow and geometry of the welding area of poly methyl methacrylate (PMMA) wor More
        In this study, the effects of linear and rotational speed of the friction stir welding tool was investigated on the heat generation and distribution at surface and inside of workpiece, material flow and geometry of the welding area of poly methyl methacrylate (PMMA) workpiece. The commercial CFD Fluent 6.4 software was used to simulation of the process with computational fluid dynamic technique. To increase the accuracy of simulation, weld area was modeled as a non-Newtonian fluid with pseudo melt behavior around tool pin. The results of the simulation showed at the higher the proportion of rotational speed to linear speed, the material flow in front of the tool and the welding region became bigger. The maximum temperature and turbulence generated heat and material flow were observed at the advancing side. The simulation results were showed acceptable agreement with experimental results. Based on the studied parameters, the maximum generated heat was of 115° C, the maximum material velocity was 0.24 m/s around tool shoulder and maximum pressure on the workpiece was predicted 9 MPa. Manuscript profile