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Core Concepts of Engineering Mechanics

Core Concepts of Engineering Mechanics banner
Preview this course
Self-paced Beginner

Core Concepts of Engineering Mechanics

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67 enrolled
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FREE
1771 min
Anytime
English
1717 views
Team EveryEng
Team EveryEngMechanical Engineering
  • Lifetime access
  • Certificate of completion
  • Foundational Learning
  • Access to Study Materials
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Why enroll

To improve your grades in Engineering Mechanics - Statics, focus on developing a strong foundation in vector operations, force systems, and equilibrium principles. Practice solving problems regularly, starting with simple trusses and gradually moving to more complex systems. Visualize the problems by drawing free-body diagrams and use coordinate systems to simplify calculations. Review and master key concepts such as moments, centroids, and friction. Additionally, seek help from instructors or classmates when needed, and utilize online resources or study groups to supplement your learning. By staying consistent and persistent, you'll see improvement in your understanding and grades in Engineering Mechanics - Statics.

Is this course for you?

You should take this if

  • You work in Aerospace or Automotive
  • You're a Civil & Structural / Mechanical Engineering professional
  • You prefer self-paced learning you can revisit

You should skip if

  • You need a different specialisation outside Civil & Structural
  • You need live interaction with an instructor

Course details

This course introduces the basic principles of engineering mechanics used to analyze forces and motion in engineering systems. It starts with the concept of equilibrium, helping students understand how forces act on objects and how structures remain stable. The course also covers planar trusses, which are commonly used in bridges and buildings. Students will learn about friction and how it affects motion between surfaces.The course explains properties of surfaces such as centroid and moment of inertia, which are important for structural design. It also introduces the method of virtual work to solve equilibrium problems efficiently. Motion of particles is studied using different coordinate systems and constraints. Students will understand how friction and drag influence the motion of moving objects.The course further explores momentum, work, and energy principles to analyze motion and forces. Rotational motion concepts help students understand how objects rotate and how torque affects them. Finally, the course covers simple harmonic motion and motion in accelerating or rotating frames. Overall, this course builds a strong foundation for solving real engineering mechanics problems.

Course suitable for

Key topics covered

  • Module-1: Engineering Mechanics

  • EQUILIBRIUM - I

  • EQUILIBRIUM - II

  • EQUILIBRIUM - III

  • Module -2: PLAN TRUSSES - I

  • PROPERTIES OF SURFACES - I

  • Module -3: PROPERTIES OF SURFACES - I

  • Module -4: METHOD OF VIRTUAL WORK

  • Module-5: MOTION OF PARTICLES PLANAR POLAR COORDIN

  • Module -6: MOMENTUM

  • Module -7: ROTATIONAL MOTION - I

  • Module -8: SIMPLE HARMONIC MOTION - I

  • Module-9: MOTION IN UNIFORMLY ACCELERATING FRAMES

Course content

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

31 lectures29 hr 31 min
  1. Module-1: Engineering Mechanics
    61 min
  2. EQUILIBRIUM - I
    55 min
  3. EQUILIBRIUM - II
    54 min
  4. EQUILIBRIUM - III
    54 min
  5. Module -2: PLAN TRUSSES - I
    63 min
  6. PLAN TRUSSES - II
    61 min
  7. FRICTION
    56 min
  8. Module -3: PROPERTIES OF SURFACES - I
    55 min
  9. PROPERTIES OF SURFACES - II
    52 min
  10. PROPERTIES OF SURFACES - III
    53 min
  11. Module -4: METHOD OF VIRTUAL WORK
    61 min
  12. Module-5: MOTION OF PARTICLES PLANAR POLAR COORDIN
    61 min
  13. MOTION WITH CONSTRAINTS
    59 min
  14. MOTION OF PARTICLE WITH FRICTION
    54 min
  15. MOTION OF PARTICES WITH DRAG
    56 min
  16. Module -6: MOMENTUM
    46 min
  17. WORK AND ENERGY - I
    52 min
  18. WORK AND ENERGY - II
    61 min
  19. WORK AND ENERGY - III
    56 min
  20. WORK AND ENERGY - IV
    60 min
  21. Module -7: ROTATIONAL MOTION - I
    59 min
  22. ROTATIONAL MOTION - II
    57 min
  23. ROTATIONAL MOTION - III
    59 min
  24. ROTATIONAL MOTION - IV
    60 min
  25. ROTATIONAL MOTION - V
    57 min
  26. ROTATIONAL MOTION - VI
    59 min
  27. Module -8: SIMPLE HARMONIC MOTION - I
    59 min
  28. SIMPLE HARMONIC MOTION - II
    58 min
  29. SIMPLE HARMONIC MOTION - III
    63 min
  30. Module-9: MOTION IN UNIFORMLY ACCELERATING FRAMES
    56 min
  31. Motion In Rotating Frame
    54 min

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Questions and Answers

A: Principle: Flatness is a form control and is independent of datums. Applied here: The drawing only limits the surface’s own form within 0.2 mm; it says nothing about its angle or offset to Datum A, so checking parallelism injects a requirement that isn’t there. Distractor C pulls in functional intent thinking, which feels right, but inspection has to follow the symbol actually used, not the one you wish was there.

A: Principle: Static equilibrium requires sum of moments and forces to be zero. Applied here: Taking moments about the right support gives RL × 4 m = 10 kN × 3 m, so RL = 7.5 kN upward. Distractor B traps engineers who reason qualitatively about proximity but skip the lever arm math.

A: Principle: A safeguard only addresses the failure mode it’s designed for. Applied here: The shear pin limits torque, but it doesn’t dissipate kinetic energy already in the system, so parts can still separate violently when it lets go. Distractor B catches people who conflate shear pins with torque limiters that slip rather than fracture.

A: Principle: Verification has to match the acceptance criterion defined in the spec. Applied here: The requirement is torque-based, so you verify torque with calibrated tooling before loading the joint. Distractor B appeals to engineers who know elongation is better for clamp load, but that’s not the stated acceptance method.