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Learn SOLIDWORKS

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Preview this course
Self-paced Beginner

Learn SOLIDWORKS

4(1581)
1 enrolled
5593 views
₹ 299
141 min
Anytime
English , Hindi
5593 views
Team EveryEng
Team EveryEngMechanical Engineering
  • 7-day money-back guarantee
  • Lifetime access
  • Certificate of completion

Why enroll

Bring your ideas to life with SolidWorks - learn the industry-leading 3D CAD software from scratch and become a design master!By the end of this course, you will have gained the confidence and proficiency needed to navigate SolidWorks software effectively, enabling you to create high-quality designs for various industries and applications.Whether you aspire to pursue a career in engineering, product design, manufacturing, or simply want to enhance your CAD skills, learning SolidWorks can open up a world of opportunities. Join us on this exciting learning journey and unleash your creativity with SolidWorks!

Is this course for you?

You should take this if

  • You work in Manufacturing & Industrial
  • You're a CAD & Analysis / Mechanical Engineering professional
  • You prefer self-paced learning you can revisit

You should skip if

  • You need a different specialisation outside CAD & Analysis
  • You need live interaction with an instructor

Course details

The SOLIDWORKS course is designed to help beginners and engineering students learn the fundamentals of 3D design and product modeling. In this course, participants will understand how to create sketches, build 3D parts, and develop complete assemblies using easy step-by-step methods. It introduces important tools used in modern product design, manufacturing, and mechanical engineering. Learners will practice creating different components, applying dimensions, and modifying designs efficiently. The course also covers features such as extrusion, revolutions, patterns, and fillets that are widely used in real-world design projects. Participants will learn how to create technical drawings and prepare models for production. Hands-on exercises will help improve practical design skills and confidence in using the software. The course focuses on simple explanations so that even beginners can easily understand the concepts. By the end of the course, learners will be able to design basic mechanical parts and assemblies using professional CAD techniques. This course is useful for students, engineers, and anyone interested in learning computer-aided design for product development.

Course suitable for

Key topics covered

The course curriculum is designed to provide a structured and accessible learning path for beginners, ensuring a smooth transition into the world of CAD. Here's an overview of what you can expect to learn:

  • 1    Introduction to SolidWorks: Familiarize yourself with the SolidWorks interface, navigation tools, and basic terminology.

  • 2.      Sketching Fundamentals: Master the art of sketching by learning about sketch entities, constraints, and sketch relations.

  • 3.      Part Modeling: Explore the process of creating 3D solid models using features like extrude, revolve, loft, sweep, and more.

  • 4.      Assembly Modeling: Learn how to assemble individual parts into complex assemblies, apply mates and constraints, and simulate motion.

  • 5.      Drawing Creation: Develop skills in creating detailed 2D drawings with annotations, dimensions, and geometric tolerancing.

  • 6.      Additional Features and Tips: Delve into advanced tools and functionalities within SolidWorks, along with tips and tricks to enhance your workflow and productivity.

Course content

The course is readily available, allowing learners to start and complete it at their own pace.

11 lectures2 hr 21 min
  1. Introduction of SOLIDWORKS
    13 min
  2. Sketch tools Part-1
    12 min
  3. Sketch tools Part-2
    10 min
  4. Part Modelling -1
    10 min
  5. Part Modelling -2
    15 min
  6. Part Modelling -3
    15 min
  7. Part Modelling -4
    10 min
  8. Part Modelling -5
    9 min
  9. Part Modelling -6
    6 min
  10. Assembly in SOLIDWORKS Part-1
    15 min
  11. Assembly in SOLIDWORKS Part-2
    26 min

Opportunities that await you!

Skills & tools you'll gain

SolidWorks

Career opportunities

Where this fits — what comes before, what comes next

Why people choose EveryEng

Industry-aligned courses, expert training, hands-on learning, recognized certifications, and job opportunities-all in a flexible and supportive environment.

What learners say about this course

Ayshwarya Mahadevan
Ayshwarya Mahadevan Engineer
Jan 27, 2026

good

viren prajapati
viren prajapati piping stress engineer
Jan 19, 2026

.

sandeep saroj
sandeep saroj
Jan 4, 2026

Valuable content

Dipansh Sharma
Dipansh Sharma Mechanical Design Intern
May 3, 2026

Nice change of pace to see edge cases treated like first-class citizens instead of footnotes, especially for a beginner/intermediate Solidworks track. The moment that stuck was the section on the bolt lug geometry where he intentionally breaks the fillet, runs interference, then walks back tolerances; that’s the kind of thing that shows up later in prod and costs a PR. I’ve shipped CAD that looked fine in a repo but blew up at assembly, so the emphasis on mates failing felt real. The pacing mostly worked, though I wasn’t sold on how quickly configs were introduced; a bit more time on why one config beats another would help. still, the way he frames failure modes and stress paths maps cleanly to how I think about arch and CI checks in infra, even if you’re not building rifles. That framing alone made the time worthwhile between meetings.

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Questions and Answers

A: Principle: Projection method is a document-level property, not a view-level one. Applied here, SOLIDWORKS will obey the template setting even if the symbol is wrong, so manufacturing reads the symbol and builds the wrong hand. Option B traps engineers who know origins matter for assemblies but import that logic into drawing projection, where it doesn't drive handedness.

A: Principle: Volume times density gets you in the right decade before arguing details. Here the full block is ~0.00072 m³; steel puts that near 5.6 kg, and partial hollowing pushes you upward only if ribs dominate. Option B catches people used to sheet-metal intuition, dropping thickness-driven volume too aggressively.

A: Principle: Neutral formats are unforgiving to borderline geometry. Zero-thickness or sliver faces survive parametric rebuilds but fail when converted to B-rep in STEP. Option B hooks engineers who know tessellation affects STL and import display, not STEP topology.

A: Principle: Lightweight defers feature data, not mating intent. Solver effort drops, yet accuracy is restored on demand when a component resolves. Option B catches those who equate Lightweight with display states and miss the solver interaction.