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This teacher has a fast response time and rate, demonstrating a high quality of service to their students.
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Since February 2023
Instructor since February 2023
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1 repeat student
Trusted choice for 1 returning student
Mechanics of Materials (Stress Analysis - strength of materials)
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From 30 C$ /h
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Mechanics of materials (or strength of materials) is a branch of engineering that analyzes the behavior of solid objects subject to various loads, focusing on deformation, stress, strain, and failure. It determines the internal resistance of components (e.g., beams, columns, shafts) to ensure structural safety. Key concepts include elasticity, plasticity, torsion, bending, and material stress-strain relationships.
Location
location type icon
Online from Egypt
About Me
I have more than 14 years of experience in teaching and tutoring university students (face to face and online) at different levels and different education systems. I am an engineer and I got my Master degree and currently working on my PhD.
You can rely on me to let you understand then apply to get the outcomes of your lessons. Also, you can ask me to help you understand the required from exams and quizzes to make sure you will answer them correctly and get high scores on your own I promise because, this is what we do.
Education
Master of Science in Mechanical Engineering (Jul, 2017) - Faculty of engineering, Helwan university.
BSc in mechanical Engineering (Jul, 2010) - Faculty of engineering - Helwan university.
Experience / Qualifications
14 years of experience in teaching and tutoring university students (face to face and online) at different levels and different education systems.
Age
Teenagers (13-17 years old)
Adults (18-64 years old)
Student level
Beginner
Intermediate
Advanced
Duration
60 minutes
The class is taught in
English
Arabic
Reviews
Availability of a typical week
(GMT -04:00)
New York
at teacher icon
Online via webcam
Mon
Tue
Wed
Thu
Fri
Sat
Sun
00-04
04-08
08-12
12-16
16-20
20-24
Statics and dynamics are the main subjects for level one engineering students.
You will understand these subjects perfectly.
Together, you will understand vectors, motion in multiple directions, relative motion, Newton's laws of motion, .... and simple harmonic motion.
Read more
Engineering drawings are used to communicate design ideas and technical information to engineers and other professionals throughout the design process. An engineering drawing represents a complex three-dimensional object on a two-dimensional piece of paper or computer screen by a process called projection.
Read more
Show more
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We explain the information in several different ways, far removed from the usual methods.
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Psychological preparation for exams
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If you are curious about robotics, Arduino, programming, or engineering and want to learn in a simple and practical way, this class is made for you.

Together, we will explore how electronic components work and learn step by step how to program Arduino boards using C++. Through fun hands-on projects, students will create systems using LEDs, sensors, motors, and other smart components used in real robotics projects.

My teaching style focuses on practice, creativity, and understanding rather than only theory. I aim to help students build confidence while learning how to solve problems and think like engineers.

I have participated in several robotics and STEM experiences, including FIRST Tech Challenge (FTC), World Robot Olympiad (WRO), and space-related programs and projects such as space camps and engineering activities focused on innovation and technology. These experiences helped me gain practical knowledge that I now share with students in an easy and engaging way.

I can also teach CATIA V5 for students interested in mechanical design, engineering projects, and 3D modeling. These lessons can help students better understand mechanical engineering concepts and learn how to design professional parts and assemblies used in real engineering projects.

This class is perfect for beginners and intermediate learners who want to start or improve their journey in robotics, technology, mechanical engineering, and space-related fields.
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Hello! My name is Zewdu, and I am a Master's student in Global Production Engineering and Management at Warsaw University of Technology. I hold a Bachelor's degree in Mechatronics Engineering and have experience in engineering projects, research, and STEM education.
I offer personalized tutoring in Mathematics, Physics, Calculus, Mechanics, and Engineering-related subjects for secondary school, high school, and university students. My goal is to help students understand concepts clearly, improve problem-solving skills, and build confidence in their studies.
Lessons are adapted to each student's level and learning pace. Whether you need help with homework, exam preparation, assignments, SAT preparation or understanding challenging topics, I will provide clear explanations and practical examples to support your learning.
I welcome students of all levels I mentioned and look forward to helping you achieve your academic goals.

I offer lessons online to students worldwide and in person in Warsaw, Poland.
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I am a PhD researcher at the University of Oxford, with an MRes from the University of Cambridge and research experience with Rolls-Royce.

I enjoy helping students build confidence in engineering, physics, and mathematics through clear explanations and a supportive, personalised approach. Whether you are preparing for exams, working through challenging coursework, or simply looking to strengthen your understanding, lessons are tailored to your goals and learning style.

My aim is not only to help you achieve better results, but also to develop the problem-solving skills and intuition that make technical subjects more enjoyable and rewarding.
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Supporto completo per Analisi 1: teoria, esercizi, metodo e preparazione agli esami universitari.
Lavoro con un approccio chiaro, graduale e orientato alla comprensione dei concetti fondamentali (limiti, continuità, derivate, integrali, serie).
Aiuto lo studente a costruire un metodo solido, utile sia per superare l’esame sia per affrontare gli esami successivi del percorso STEM.
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Are you an engineering or mathematics (Bachelor's/Master's) student who finds numerical analysis too abstract or difficult to apply?

This course provides a rigorous yet practical introduction to scientific computing, showing how numerical methods are used to solve real engineering and scientific problems.
You'll first learn how numerical computations behave by studying floating-point arithmetic, rounding and truncation errors, conditioning, stability, and error propagation. These concepts are essential for understanding why numerical algorithms succeed—or fail.
Next, you'll learn how to solve nonlinear equations using the bisection method, fixed-point iteration, and Newton's method, before moving on to linear systems through both direct methods (Gaussian elimination, LU decomposition, Cholesky factorization) and iterative methods (Jacobi, Gauss-Seidel, and relaxation methods).
The second half of the course covers polynomial interpolation and approximation (Lagrange, Newton, Hermite, least-squares approximation, and splines), numerical differentiation and integration, and numerical methods for ordinary differential equations, including Euler's method, Runge-Kutta methods, and finite difference techniques.
Every algorithm is implemented step by step in Matlab so that you not only understand the mathematics behind it but also learn how to apply it to practical engineering problems. Throughout the course, we compare the accuracy, convergence, stability, and computational efficiency of the different numerical methods.
This course is ideal for students preparing for university exams, engineering projects, scientific computing courses, or anyone wishing to build solid foundations in numerical analysis.

Prerequisites: A good understanding of single-variable calculus, basic linear algebra, and elementary programming concepts is recommended.
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Engineering and design become much easier when analysis, geometry, technical representation, digital modelling, spatial reasoning, and visual communication are connected within one coherent problem-solving process.

I am a PhD-qualified engineer, university professor, researcher, technical trainer, designer, and multidisciplinary consultant with more than 30 years of experience across engineering, teaching, project work, CAD, technical drawing, 3D modelling, GIS, visualization, information systems, and professional problem solving.

This class provides a personalized pathway for school and university students, engineering and design learners, architects and technicians, researchers, professionals, career changers, and adult learners. Depending on your goals, we can focus deeply on one specialized area or connect several areas within a complete technical workflow.

ENGINEERING DESIGN & PROBLEM SOLVING
• Understanding and structuring engineering problems
• Translating requirements into technical objectives
• Identifying constraints, assumptions, variables, and criteria
• Engineering calculations and quantitative reasoning
• Applied mechanics and engineering fundamentals when relevant
• Dimensional reasoning and unit consistency
• Design alternatives and trade-off analysis
• Verification and reasonableness checking
• Engineering decision making
• Design methodology and iterative improvement
• Interpreting technical specifications
• Connecting analysis to drawings, models, and deliverables
• Engineering-management and multidisciplinary project contexts

AUTOCAD & TECHNICAL DRAFTING
• AutoCAD interface and efficient workflows
• Coordinate systems and precise geometric construction
• 2D drafting fundamentals
• Layers, properties, object organization, and standards
• Blocks and reusable drawing content
• Dimensions, annotations, text, and hatching
• Model space and paper space
• Layouts, viewports, scales, and plotting
• Technical drawing principles
• Reading and interpreting engineering drawings
• Plans, sections, elevations, and details
• Drawing organization and documentation quality
• Advanced drafting workflows
• AutoCAD 3D concepts when relevant
• Improving speed, accuracy, and drawing consistency

BIM & REVIT WORKFLOWS
• BIM concepts and model-based thinking
• Revit project organization
• Levels and grids
• Walls, floors, roofs, and building elements
• Doors, windows, components, and families
• Views, sections, elevations, and schedules
• Annotation and documentation workflows
• Sheets and presentation standards
• View templates and graphical consistency
• Family-library organization
• BIM coordination principles
• Connecting models to professional documentation
• Developing structured Revit templates and repeatable workflows

3D MODELLING & PARAMETRIC DESIGN
• 3D geometric thinking
• Curves, surfaces, solids, and meshes
• Constructive and feature-based modelling concepts
• Precision modelling
• Product and engineering geometry
• Architectural and spatial modelling
• Rhino 3D workflows
• Grasshopper and visual parametric thinking
• Parameters, relationships, dependencies, and constraints
• Algorithmic generation of geometry
• Reusable and adaptive design logic
• Design iterations and controlled variation
• SolidWorks and Inventor workflows when relevant
• 3D Studio Max and visualization contexts when relevant
• Connecting models to drawings, analysis, fabrication, or presentation

GIS, MAPPING & SPATIAL ANALYSIS
• Foundations of Geographic Information Systems
• Spatial data models
• Vector and raster concepts
• Coordinate systems and projections
• Georeferencing
• Spatial data collection and organization
• Attribute data and database relationships
• Geodatabases
• Selection and spatial queries
• Buffering, overlay, proximity, and spatial analysis
• Thematic mapping
• Cartographic principles
• Spatial patterns and decision support
• ArcGIS Desktop and ArcGIS Pro workflows when relevant
• Remote-sensing and imagery concepts when relevant
• Integrating maps, analysis, and professional reporting

GRAPHIC DESIGN & VISUAL COMMUNICATION
• Principles of visual communication
• Composition and layout
• Visual hierarchy
• Typography
• Colour and contrast
• Image preparation and editing
• Vector graphics and illustration
• Technical diagrams and infographics
• Maps and spatial presentation
• Engineering and architectural presentation
• Portfolio and project-board development
• Presentation graphics
• Adobe Photoshop workflows
• Adobe Illustrator workflows
• Adobe InDesign workflows
• Connecting technical accuracy with visual clarity

Depending on your objectives, practical work may involve AutoCAD, Revit, BIM workflows, Rhino, Grasshopper, SolidWorks, Inventor, 3ds Max, ArcGIS Desktop, ArcGIS Pro, Adobe Photoshop, Illustrator, InDesign, or other relevant technical and design tools.

My teaching approach follows a structured workflow:
define the problem → understand the requirements → analyze the constraints → develop the geometry or data structure → create the drawing, model, or spatial analysis → verify accuracy → refine the solution → communicate it clearly

I do not simply demonstrate isolated commands. I help you understand why a workflow is appropriate, how information should be structured, how accuracy can be verified, how alternative solutions can be evaluated, and how the final technical idea should be communicated professionally.

We can work with your course syllabus, engineering problem, technical drawing, CAD file, Revit/BIM model, 3D model, parametric definition, GIS dataset, map, design project, portfolio, graphic layout, or professional workflow challenge.

Whether you are learning your first CAD commands, solving an engineering problem, developing a BIM workflow, building a 3D or parametric model, conducting spatial analysis, or improving technical visual communication, I will adapt the sessions to your level, objectives, and pace.

My goal is to help you become an independent technical problem solver who can analyze, design, model, verify, visualize, and communicate solutions with confidence.
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We explain the information in several different ways, far removed from the usual methods.
Giving real-world examples of what is being taught
Ongoing practical follow-up with varying levels of questions
Psychological preparation for exams
Systematic linking of educational lessons
Providing visual content and real-life examples
Good-fit Instructor Guarantee
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