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    Manufacture & Design of a Programmable Micro Syringe for Injecting of Biodegradable Photo Polymers

    , M.Sc. Thesis Sharif University of Technology Sheydaeian, Esmat (Author) ; Durali, Mohammad (Supervisor) ; Toyserkani, Ehsan (Co-Advisor)
    Abstract
    The micro-scale channel creation in Osteochondral scaffolds is a prominent issue in tissue engineering. In this project we tried to identify the relevant parameters to obtain the method for injecting a biodegradable photo polymer to achieve a micro channel by predictable size.Due to inadequate accuracy in measuring the properties of the non –Newtonian working fluid, it was decided to use the Newtonian fluid equations in this study. The relevant equations for injecting the liquid under constant pressure were extracted. The modeling and design of micro syringe system was then completed. Using the made set up experiment to measure the fluid viscosity were performed.The next step was the... 

    Investigation of the Effect of Additive Manufacturing Process Parameters on the Geometry of Components Made of Inconel 625 by Direct Metal Deposition

    , M.Sc. Thesis Sharif University of Technology Nankali, Mobin (Author) ; Akbary, Javad (Supervisor) ; Moradi, Mahmoud (Supervisor)
    Abstract
    Additive manufacturing technology (AM) is one of the new methods of rapid prototyping. Experts claim that using this process can produce a prototype of the product with any complex geometry in the shortest possible time. Among the methods of metal additive fabrication, the direct metal layering method with the powder coaxial nozzle has different capabilities and has received much attention by researchers. In this research, we intend to find a relationship between device parameters and the geometry of samples made by direct metal layer method. According to the research, many parameters affect the quality of the samples made by this method, the most effective of which are the three parameters... 

    Study of Physical Properties of Three Dimensional Graphene-Based Structures for Sensing Application

    , Ph.D. Dissertation Sharif University of Technology Mirmotallebi, Mona (Author) ; Iraji zad, Azam (Supervisor) ; Jafari, Akbar (Co-Supervisor)
    Abstract
    In this thesis, physical properties and gas sensing application of three-dimensional graphene-based structures are studied. The three-dimensional structures of reduced graphene oxide and relative hybrids were synthesized through reducing graphene oxide aqueous solution. The arrangement of two-dimensional graphene layers in three-dimensional architectures has some advantages such as high surface area, hence increasing available adsorption sites. These properties result in changing electrical parameters of the structure, such as electrical impedance and phase angle in the presence of different mediums and alteration of temperature and pressure. Various characterization techniques like atomic... 

    The effect of the physical properties of the substrate on the kinetics of cell adhesion and crawling studied by an axisymmetric diffusion-energy balance coupled model

    , Article Soft Matter ; Volume 11, Issue 18 , Mar , 2015 , Pages 3693-3705 ; 1744683X (ISSN) Samadi Dooki, A ; Shodja, H. M ; Malekmotiei, L ; Sharif University of Technology
    Royal Society of Chemistry  2015
    Abstract
    In this paper an analytical approach to study the effect of the substrate physical properties on the kinetics of adhesion and motility behavior of cells is presented. Cell adhesion is mediated by the binding of cell wall receptors and substrate's complementary ligands, and tight adhesion is accomplished by the recruitment of the cell wall binders to the adhesion zone. The binders' movement is modeled as their axisymmetric diffusion in the fluid-like cell membrane. In order to preserve the thermodynamic consistency, the energy balance for the cell-substrate interaction is imposed on the diffusion equation. Solving the axisymmetric diffusion-energy balance coupled equations, it turns out that... 

    Flow fields investigation and temperature distribution on a rotating disk imposed by a turbulent impinging jet

    , Article 2010 14th International Heat Transfer Conference, IHTC 14, 8 August 2010 through 13 August 2010, Washington, DC ; Volume 5 , 2010 , Pages 719-725 ; 9780791849408 (ISBN) Karrabi, H ; Rasoulipour, S ; Sharif University of Technology
    2010
    Abstract
    Numerical investigation of fluid flow structure and convective heat transfer due to a circular jet impinging on a rotating disk is performed. Temperature and convection heat transfer coefficient are calculated. Flow is considered to be steady, incompressible and turbulent. k-ε RNG model is used to model the turbulent flow. Results are compared with experimental data showing good agreement. Two new criteria are introduced and used to evaluate the performance of cooling process, the first is maximum temperature difference on the disk, and the second is the average temperature of the disk. The first parameter shows the uniformity of temperature distribution in the disk and the second shows the... 

    Contribution of steel fiber as reinforcement to the properties of cement-based concrete: a review

    , Article Computers and Concrete ; Volume 20, Issue 2 , 2017 , Pages 155-164 ; 15988198 (ISSN) Najigivi, A ; Nazerigivi, A ; Nejati, H. R ; Sharif University of Technology
    Abstract
    During the past decades, development of reinforcing materials caused a revolution in the structure of high strength and high performance cement-based concrete. Among the most important and exciting reinforcing materials, Steel Fiber (SF) becomes a widely used in the recent years. The main reason for addition of SF is to enhance the toughness and tensile strength and limit development and propagation of cracks and deformation characteristics of the SF blended concrete. Basically this technique of strengthening the concrete structures considerably modifies the physical and mechanical properties of plain cement-based concrete which is brittle in nature with low flexural and tensile strength... 

    Experimental investigation on the thermal performance of ultra-stable kerosene-based MWCNTs and Graphene nanofluids

    , Article International Communications in Heat and Mass Transfer ; Volume 108 , 2019 ; 07351933 (ISSN) Askari, S ; Rashidi, A ; Koolivand, H ; Sharif University of Technology
    Elsevier Ltd  2019
    Abstract
    A simple chemisorption method was used to graft on the surface of MWCNTs and Graphene nanoparticles to prepare stable kerosene-based MWCNTs and Graphene nanofluids. The prepared nanofluids remained stable for more than five months and no sedimentation was observed. Regarding the effect of temperature on thermo-physical properties, it was observed that although increasing nanoparticle concentration led to an increase in the fluid viscosity, it was negligible enough at lower nanoparticle loading. Moreover, adding nanoparticles to the base fluid did not have any noticeable impact on the fluid density which was negligible even at high concentrations. The thermal conductivity improvement was... 

    On the applicability range of Cassie–Baxter and Wenzel equation: a numerical study

    , Article Journal of the Brazilian Society of Mechanical Sciences and Engineering ; Volume 41, Issue 10 , 2019 ; 16785878 (ISSN) Azadi Tabar, M ; Barzegar, F ; Ghazanfari, M. H ; Mohammadi, M ; Sharif University of Technology
    Springer Verlag  2019
    Abstract
    In this study, the range of applicability for Cassie–Baxter and Wenzel equations for estimating apparent contact angle on rough surfaces is numerically discussed. To do this, circular drops with different sizes are simulated on rough surfaces with a square pillar pattern and randomly distributed cylindrical pillar. With the aid of numerical method, the local surface fraction, local length fraction and local roughness factor for drops with different sizes on the surface are computed. Then, the global surface fraction and global roughness factor have been compared with the local surface fraction and local roughness factor, respectively. Local surface and local length fractions, as well as... 

    An analytical review on Spark Plasma Sintering of metals and alloys: from processing window, phase transformation, and property perspective

    , Article Critical Reviews in Solid State and Materials Sciences ; 2022 ; 10408436 (ISSN) Abedi, M ; Sovizi, S ; Azarniya, A ; Giuntini, D ; Seraji, M. E ; Hosseini, H. R. M ; Amutha, C ; Ramakrishna, S ; Mukasyan, A ; Sharif University of Technology
    Taylor and Francis Ltd  2022
    Abstract
    ABSTRACTs: The need for fully dense material with well-engineered microstructures has led to the promising emergence of innovative sintering technologies among which the Spark Plasma Sintering (SPS) is one of the most favorite. Unlike the conventional sintering processes, SPS takes advantage of a current flow passing through the sintering die and metallic powders by which fast densification with minimal grain growth and enhanced physicomechanical properties can be obtained. Albeit there is a growing interest in the exploitation of SPS in producing sufficiently consolidated metallic parts, no analytical review has been released over the effects of SPS parameters on the densification behavior,... 

    An analytical study on laser forming process of sheet metals, using new elasto-plastic temperature dependent material model

    , Article Advanced Materials Research ; Volume 622 , 2013 , Pages 569-574 ; 10226680 (ISSN) ; 9783037855638 (ISBN) Torabnia, S ; Banazadeh, A ; Sharif University of Technology
    2013
    Abstract
    The laser forming process is one of the last technologies on forming of sheet metals with laser beam heat distribution. In this process laser beam moves across the top surface of the sheet metal and the heated zone expands and causes a great moment that deforms the sheet metal. Subsequently, the heated zone gets cooled and provides a reverse strain and moment. The final bending angle is a combination of two phases. Due to the complexity of the process, it is studied with different approaches; FEM analysis and analytical as well as empirical methods. The laser forming is a sensible process regarding the material properties. Also, because of the temperature change during the process, it is... 

    Physical properties of sputtered amorphous carbon coating

    , Article Journal of Alloys and Compounds ; Volume 513 , 2012 , Pages 135-138 ; 09258388 (ISSN) Yari, M ; Larijani, M. M ; Afshar, A ; Eshghabadi, M ; Shokouhy, A ; Sharif University of Technology
    Abstract
    In this study the effect of deposition temperature and thickness on the physical properties of carbon films deposited by magnetron sputtering PVD was investigated. The results of Raman spectra and grazing incidence XRD (GIXRD) patterns show that the graphitization increases by increasing the deposition temperature. There is a change in deposition mechanism at 400 °C from amorphous carbon deposition to nano-structured graphite deposition. Also by increasing substrate temperature the electrical resistance of carbon films reduces significantly up to 300 °C and then remains largely constant. High intrinsic compressive stress in low temperature deposited carbon films causes cracks and... 

    Numerical simulation of turbulent heat transfer on a rotating disk with an impinging jet

    , Article ASME 2010 10th Biennial Conference on Engineering Systems Design and Analysis, ESDA2010, 12 July 2010 through 14 July 2010 ; Volume 2 , 2010 , Pages 627-631 ; 9780791849163 (ISBN) Saidi, M. H ; Karrabi, H ; Avval, H. B ; Asgarshamsi, A ; Sharif University of Technology
    Abstract
    A numerical study has been carried out to investigate the fluid flow structure and convective heat transfer due to a circular jet impinging on a rotating disk. The temperature distribution and convection heat transfer coefficient on the disk are calculated. Flow is considered to be steady, incompressible and turbulent. k-e RNG model is used to model the turbulent flow. Two new criteria are introduced and used to evaluate the performance of cooling process which are maximum temperature difference on the disk and the average temperature of the disk. The first parameter shows the uniformity of temperature distribution in the disk and the second shows the effect of both thermo physical... 

    Thermal stresses and kinetics of phase transformation on the run-out table after hot strip rolling of low-carbon steels

    , Article International Journal of Advanced Manufacturing Technology ; Volume 83, Issue 9-12 , 2016 , Pages 1725-1736 ; 02683768 (ISSN) Hasan Nasab, M ; Serajzadeh, S ; Sharif University of Technology
    Abstract
    A thermo-elastic analysis coupled with a phase change model is employed to evaluate thermal stresses as well as progress of austenite decomposition after hot strip rolling operations. The thermo-mechanical finite element analysis is utilized to assess the distributions of temperature and thermal stresses during cooling while at the same time, a model based on the additivity rule is used to determine the rate of austenite to ferrite decomposition. The proposed model is applicable to multi-pass rolling schedules while the effects of different process parameters including the rolling speed and cooling configuration of the run-out table can be taken into account. In order to verify the... 

    Modeling and experimental investigation of bubble formation in shear-thinning liquids

    , Article Journal of Fluids Engineering, Transactions of the ASME ; Volume 139, Issue 7 , 2017 ; 00982202 (ISSN) Taghi Esfidani, M ; Reza Oshaghi, M ; Afshin, H ; Firoozabadi, B ; Sharif University of Technology
    American Society of Mechanical Engineers (ASME)  2017
    Abstract
    This investigation presents both theoretical and experimental studies on the size of a growing bubble in power-law non-Newtonian liquids. At first, some previous works on the prediction of bubble size in Newtonian liquids have been extended by considering the balance of forces acting on the bubble at the moment of separation. Predicted bubble sizes were validated against the experimental results for a wide range of operating conditions, including different gas flow rates and needle diameters as well as a wide range of physical properties of the Newtonian liquids. Furthermore, in order to determine the size of the bubbles formed in power-law non-Newtonian liquids with a similar analysis, the... 

    Optimizing the mechanical and physical properties of thermoplastic starch via tuning the molecular microstructure through co-plasticization by sorbitol and glycerol

    , Article Polymer International ; Volume 66, Issue 6 , 2017 , Pages 809-819 ; 09598103 (ISSN) Esmaeili, M ; Pircheraghi, G ; Bagheri, R ; Sharif University of Technology
    John Wiley and Sons Ltd  2017
    Abstract
    Nowadays, environmental hazards caused by plastic wastes are a major concern in academia and industry. Utilization of biodegradable polymers derived from renewable sources for replacing common petroleum-based plastics is a potential solution for reducing the problem. In this regard, starch has become one of the most promising alternatives to non-biodegradable polymers for depleting plastic waste thanks to its low expense, abundance, renewability and biodegradability. However, the main drawbacks of starch are its poor processability, weak mechanical properties and severe hydrophilicity. In this work, thermoplastic starch (TPS) samples have been prepared using glycerol and sorbitol as... 

    Production and properties of Cu/TiO2nano-composites

    , Article Journal of Alloys and Compounds ; Volume 698 , 2017 , Pages 518-524 ; 09258388 (ISSN) Moghanian, A ; Sharifianjazi, F ; Abachi, P ; Sadeghi, E ; Jafarikhorami, H ; Sedghi, A ; Sharif University of Technology
    Abstract
    Copper matrix composites reinforced with TiO2particles are promising materials widely used as contact materials due to their excellent mechanical and physical properties such as good electrical and thermal conductivity and strength at high temperature. In this research, the novel contact material were prepared by in-situ oxidation of Cu-Ti pre alloyed powders. The morphology of milled powders and microstructure of nano-composite specimens were studied by SEM and TEM. To evaluate mechanical alloying progress of Cu and Ti powders mixture and internal oxidation after Cu2O addition, XRD analysis were carried out. The Physical and mechanical properties results of specimens indicate that the... 

    Investigation of the fracture resistance in hoop wound composites modified with two different reactive oligomers

    , Article Materials and Design ; Volume 30, Issue 8 , 2009 , Pages 3048-3055 ; 02641275 (ISSN) Abadyan, M ; Bagheri, R ; Haddadpour, H ; Motamedi, P ; Sharif University of Technology
    2009
    Abstract
    Rubber modification of hoop filament wound epoxy composites was investigated using amine-terminated butadiene acrylonitrile (ATBN) and carboxyl-terminated butadiene acrylonitrile (CTBN) oligomers. Both mechanical and physical properties of modified composites were investigated and the morphology of the samples was studied via scanning electron microscopy. Results indicated that, when added to the epoxy matrix, ATBN effected a superior increase in toughness, yet a more severe decline in compressive and flexural strength, compared to CTBN. In contrast, in the case of composite samples, incorporation of ATBN led to more favorable mechanical properties, from the viewpoint of both toughness and... 

    A molecular-dynamics study of thermal and physical properties of platinum nanoclusters

    , Article Fluid Phase Equilibria ; Volume 280, Issue 1-2 , 2009 , Pages 16-21 ; 03783812 (ISSN) Akbarzadeh, H ; Parsafar, G. A ; Sharif University of Technology
    2009
    Abstract
    Metallic nanoclusters are interesting because of their utility in catalysis and sensors. The thermal and physical characteristics of metallic Pt nanoclusters with different sizes were investigated via molecular-dynamics simulations using Quantum Sutton-Chen (QSC) potential. This force field accurately predicts solid and liquid states properties as well as melting of the bulk platinum. Molecular dynamic simulations of Pt nanoclusters with 256, 456, 500, 864, 1372, 2048, 2916, 4000, 5324, 6912, 8788 atoms have been carried out at various temperatures. The Pt-Pt radial distribution function, internal energy, heat capacity, enthalpy, entropy of the nanoclusters were calculated at some... 

    Study of VLE phase behavior and correlating the thermophysical properties of polymer solutions using a local composition-based model

    , Article Journal of Applied Polymer Science ; Volume 112, Issue 3 , 2009 , Pages 1356-1364 ; 00218995 (ISSN) Pazuki, G. R ; Taghikhani, V ; Vossoughi, M ; Sharif University of Technology
    2009
    Abstract
    In this study, the recently proposed model by Pazuki et al., based on the local composition concept (LCC), has been used in correlating the vapor-liquid phase behavior of polymer solutions. Similar to the LCC models available in the literature, the proposed model has two combinatorial and residual terms to account for both entropic as well as enthalpic effects in solution. The Flory-Huggins model has been considered as the combinatorial part of the proposed model, while the equation proposed by Pazuki et al. was considered as the residual term. The proposed model has been used in correlating the vapor-liquid phase behavior for a large number of polymer-solvent mixtures at different... 

    Hole transport material based on modified N-annulated perylene for efficient and stable perovskite solar cells

    , Article Solar Energy ; Volume 194 , 2019 , Pages 279-285 ; 0038092X (ISSN) Sheibani, E ; Amini, M ; Heydari, M ; Ahangar, H ; Keshavarzi, R ; Zhang, J ; Mirkhani, V ; Sharif University of Technology
    Elsevier Ltd  2019
    Abstract
    N-annulated perylene based materials show outstanding and tunable optical and physical properties, making them suitable to be charge transport materials for optoelectronic applications. However, this type of materials has so far not been well studied in solar cells. Here, we develop a new hole transport material (HTM), namely S5, based on perylene building block terms, for organic-inorganic hybrid perovskite solar cells (PSCs). We have systematically studied the influences of the film thickness of S5 on their photovoltaic performance, and a low concentration of S5 with a thinner HTM film is favorable for obtaining higher solar cell efficiency. S5 shows excellent energy alignment with...