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Mechanical engineering for EEs
Module 1
Statics: Rigid Body Equilibrium and Structures
1
Free-Body Diagrams for Rigid Bodies
Define a free-body diagram for a rigid body to identify all external forces and moments.
Define a free-body diagram for a rigid body to identify all external forces and moments.
2
Vector Force Analysis
Resolve forces into components and calculate resultant forces and moments using vector methods.
Resolve forces into components and calculate resultant forces and moments using vector methods.
3
Solving 2D Equilibrium Problems
Apply equilibrium equations to solve for unknown forces and support reactions in 2D systems.
Apply equilibrium equations to solve for unknown forces and support reactions in 2D systems.
4
Truss Analysis: Method of Joints & Sections
Analyze forces in simple truss structures using the method of joints and the method of sections.
Analyze forces in simple truss structures using the method of joints and the method of sections.
5
Forces in Frames and Machines
Analyze forces in frames and machines with multiple connected members.
Analyze forces in frames and machines with multiple connected members.
6
3D Equilibrium: Solving for Reactions
Apply equilibrium concepts to solve for reactions in simple 3D rigid bodies.
Apply equilibrium concepts to solve for reactions in simple 3D rigid bodies.
7
Friction: Slip or Tip?
Apply Coulomb's friction law to determine if objects will slip or tip under applied forces.
Apply Coulomb's friction law to determine if objects will slip or tip under applied forces.
Module 2
Mechanics of Materials: Stress, Strain, and Axial Loading
8
Normal Stress and Strain in Axially Loaded Members
Calculate normal stress and strain in axially loaded members.
Calculate normal stress and strain in axially loaded members.
9
Stress-Strain Curves and Hooke's Law
Interpret material properties from stress-strain curves and apply Hooke's Law.
Interpret material properties from stress-strain curves and apply Hooke's Law.
10
Direct Shear & Bearing Stress Analysis
Calculate shear stress and strain in materials under direct shear and bearing stress in connections.
Calculate shear stress and strain in materials under direct shear and bearing stress in connections.
11
Axial Deformation: Statically Determinate and Indeterminate Bars
Analyze deformation and elongation in bars under axial loads, including statically indeterminate cases.
Analyze deformation and elongation in bars under axial loads, including statically indeterminate cases.
12
Thin-Walled Pressure Vessel Stress Analysis
Determine stresses in thin-walled pressure vessels using hoop and longitudinal stress formulas.
Determine stresses in thin-walled pressure vessels using hoop and longitudinal stress formulas.
13
Safety Factors & Allowable Stress
Apply factors of safety to determine allowable stresses and assess simple designs.
Apply factors of safety to determine allowable stresses and assess simple designs.
Module 3
Mechanics of Materials: Torsion and Bending in Beams
14
Centroids and Moments of Inertia
Calculate centroids and area moments of inertia for common and composite cross-sections.
Calculate centroids and area moments of inertia for common and composite cross-sections.
15
Torsion in Circular Shafts
Calculate shear stress and angle of twist in circular shafts under torsion and apply to power transmission.
Calculate shear stress and angle of twist in circular shafts under torsion and apply to power transmission.
16
Shear Force and Bending Moment Diagrams
Construct shear force and bending moment diagrams for beams under various loads.
Construct shear force and bending moment diagrams for beams under various loads.
17
Flexure Formula: Normal Stress in Beams
Apply the flexure formula to calculate normal stress in beams due to bending.
Apply the flexure formula to calculate normal stress in beams due to bending.
18
Beam Bending Stress & Section Selection
Determine maximum bending stress and select appropriate beam sections for strength.
Determine maximum bending stress and select appropriate beam sections for strength.
Module 4
Mechanics of Materials: Deflection, Stress Analysis, and Failure
19
Beam Deflection: Formulas and Superposition
Calculate beam deflections and slopes using standard formulas and the principle of superposition.
Calculate beam deflections and slopes using standard formulas and the principle of superposition.
20
Stress Transformation on Inclined Planes
Apply stress transformation equations to determine stresses on inclined planes.
Apply stress transformation equations to determine stresses on inclined planes.
21
Stress Transformation and Mohr's Circle
Calculate principal stresses and maximum in-plane shear stress using transformation equations or Mohr's circle.
Calculate principal stresses and maximum in-plane shear stress using transformation equations or Mohr's circle.
22
Combined Loading Analysis
Analyze states of combined loading involving axial, torsional, and bending stresses.
Analyze states of combined loading involving axial, torsional, and bending stresses.
23
Predicting Material Failure with Combined Stress Theories
Apply failure theories (e.g., Maximum Shear Stress, von Mises) to predict material failure under combined stress.
Apply failure theories (e.g., Maximum Shear Stress, von Mises) to predict material failure under combined stress.
Module 5
Dynamics: Particle Kinematics and Kinetics
24
Kinematics of Particle Motion
Apply kinematic equations to solve problems of rectilinear and curvilinear motion for a particle.
Apply kinematic equations to solve problems of rectilinear and curvilinear motion for a particle.
25
Projectile Motion and Normal-Tangential Coordinates
Analyze projectile motion and motion in normal-tangential coordinates.
Analyze projectile motion and motion in normal-tangential coordinates.
26
Solving Problems with Newton's Second Law
Apply Newton's second law (F=ma) to solve for forces and accelerations in particle dynamics problems.
Apply Newton's second law (F=ma) to solve for forces and accelerations in particle dynamics problems.
27
Work-Energy Theorem: Analyzing Particle Speed Changes
Apply the work-energy principle to analyze changes in particle speed due to applied forces.
Apply the work-energy principle to analyze changes in particle speed due to applied forces.
28
Impulse-Momentum in Collisions
Apply the impulse-momentum principle to analyze collisions and impacts between particles.
Apply the impulse-momentum principle to analyze collisions and impacts between particles.
Module 6
Dynamics: Planar Kinematics of Rigid Bodies
29
Fixed-Axis Rotation: Relating Angular and Linear Motion
Relate angular and linear motion quantities for a rigid body in fixed-axis rotation.
Relate angular and linear motion quantities for a rigid body in fixed-axis rotation.
30
Planar Rigid Body Velocity: Relative Velocity Equation
Analyze velocity in planar rigid body motion using the relative velocity equation.
Analyze velocity in planar rigid body motion using the relative velocity equation.
31
Instantaneous Center of Zero Velocity
Determine the instantaneous center of zero velocity to simplify velocity analysis.
Determine the instantaneous center of zero velocity to simplify velocity analysis.
32
Relative Acceleration in Planar Rigid Body Motion
Analyze acceleration in planar rigid body motion using the relative acceleration equation.
Analyze acceleration in planar rigid body motion using the relative acceleration equation.
33
Rolling Motion Kinematics
Solve kinematics problems for bodies rolling without slipping.
Solve kinematics problems for bodies rolling without slipping.
Module 7
Dynamics: Planar Kinetics of Rigid Bodies
34
Mass Moment of Inertia for Composite Shapes
Calculate the mass moment of inertia for composite shapes using the parallel axis theorem.
Calculate the mass moment of inertia for composite shapes using the parallel axis theorem.
35
Equations of Motion for Rigid Bodies in General Planar Motion
Apply the three equations of motion for a rigid body in general planar motion.
Apply the three equations of motion for a rigid body in general planar motion.
36
Fixed-Axis Rotation Kinetics
Solve rigid body kinetics problems involving fixed-axis rotation.
Solve rigid body kinetics problems involving fixed-axis rotation.
37
Work-Energy Method for Rigid Bodies
Apply the work-energy method for rigid bodies to relate forces, moments, and changes in speed.
Apply the work-energy method for rigid bodies to relate forces, moments, and changes in speed.
38
Rigid Body Impulse-Momentum
Apply the principles of linear and angular impulse-momentum to rigid bodies.
Apply the principles of linear and angular impulse-momentum to rigid bodies.
Module 8
Introduction to Mechanical Vibrations
39
Equation of Motion for a Single DOF Spring-Mass System
Derive the equation of motion for a single degree-of-freedom spring-mass system.
Derive the equation of motion for a single degree-of-freedom spring-mass system.
40
Natural Frequency & Period Calculation
Calculate the natural frequency and period for undamped free vibrations.
Calculate the natural frequency and period for undamped free vibrations.
41
Damped Systems Analysis
Analyze the characteristics of underdamped, critically damped, and overdamped systems.
Analyze the characteristics of underdamped, critically damped, and overdamped systems.
42
Steady-State Response to Harmonic Forcing
Determine the steady-state response of a damped system under harmonic forcing.
Determine the steady-state response of a damped system under harmonic forcing.
43
Resonance in Mechanical Design
Explain the concept of resonance and its significance in mechanical design.
Explain the concept of resonance and its significance in mechanical design.
Module 9
Fluid Mechanics Fundamentals
44
Fluid Properties: Definitions & Calculations
Define and calculate key fluid properties such as density, viscosity, and specific gravity.
Define and calculate key fluid properties such as density, viscosity, and specific gravity.
45
Hydrostatic Pressure in Static Fluids
Apply the hydrostatic pressure equation to determine pressure in static fluids.
Apply the hydrostatic pressure equation to determine pressure in static fluids.
46
Hydrostatic Forces on Submerged Planes
Calculate hydrostatic forces and the center of pressure on submerged plane surfaces.
Calculate hydrostatic forces and the center of pressure on submerged plane surfaces.
47
Archimedes' Principle: Buoyancy and Stability of Submerged Bodies
Apply Archimedes' principle to solve problems of buoyancy and stability for submerged bodies.
Apply Archimedes' principle to solve problems of buoyancy and stability for submerged bodies.
48
Reynolds Number: Laminar vs. Turbulent Flow
Distinguish between laminar and turbulent flow using the Reynolds number.
Distinguish between laminar and turbulent flow using the Reynolds number.
49
Continuity Equation for Incompressible Flow
Apply the continuity equation (conservation of mass) to incompressible flows.
Apply the continuity equation (conservation of mass) to incompressible flows.
50
Bernoulli's Equation for Fluid Flow
Apply Bernoulli's equation to analyze pressure and velocity in frictionless fluid flow.
Apply Bernoulli's equation to analyze pressure and velocity in frictionless fluid flow.
Module 10
Fluid Flow Applications and Analysis
51
Darcy-Weisbach & Moody Chart: Major Head Loss
Calculate major head loss in pipes due to friction using the Darcy-Weisbach equation and Moody chart.
Calculate major head loss in pipes due to friction using the Darcy-Weisbach equation and Moody chart.
52
Calculating Minor Losses in Pipe Systems
Account for minor losses in pipe systems from fittings, bends, and valves using loss coefficients.
Account for minor losses in pipe systems from fittings, bends, and valves using loss coefficients.
53
Fluid Forces on Objects: Linear Momentum Approach
Apply the linear momentum equation to determine forces exerted by flowing fluids on objects.
Apply the linear momentum equation to determine forces exerted by flowing fluids on objects.
54
Drag and Lift Coefficients for Immersed Bodies
Analyze flow around immersed bodies using drag and lift coefficients.
Analyze flow around immersed bodies using drag and lift coefficients.
55
Energy Analysis of Pumps and Turbines
Apply the steady flow energy equation to analyze pumps and turbines in a fluid system.
Apply the steady flow energy equation to analyze pumps and turbines in a fluid system.
Module 11
Thermodynamics: Energy and the First Law
56
Thermodynamic Fundamentals
Define thermodynamic systems, states, processes, and properties (e.g., enthalpy).
Define thermodynamic systems, states, processes, and properties (e.g., enthalpy).
57
Ideal Gas Law Applications
Apply the Ideal Gas Law to relate pressure, volume, and temperature for ideal gases.
Apply the Ideal Gas Law to relate pressure, volume, and temperature for ideal gases.
58
Heat, Work, and Internal Energy: Definitions and Sign Conventions
Distinguish between heat, work, and internal energy, and apply sign conventions.
Distinguish between heat, work, and internal energy, and apply sign conventions.
59
First Law of Thermodynamics for Closed Systems
Apply the First Law of Thermodynamics to analyze closed systems (non-flow processes).
Apply the First Law of Thermodynamics to analyze closed systems (non-flow processes).
60
Thermodynamic Processes for Ideal Gases
Analyze common thermodynamic processes for ideal gases: isobaric, isochoric, isothermal, and adiabatic.
Analyze common thermodynamic processes for ideal gases: isobaric, isochoric, isothermal, and adiabatic.
61
Steady-Flow Energy Equation: Applications to Engineering Devices
Apply the steady-flow energy equation (First Law for open systems) to components like nozzles, diffusers, and heat exchangers.
Apply the steady-flow energy equation (First Law for open systems) to components like nozzles, diffusers, and heat exchangers.
Module 12
Thermodynamics: The Second Law and Aerospace Cycles
62
The Second Law and Entropy
State the Second Law of Thermodynamics and define entropy as a property.
State the Second Law of Thermodynamics and define entropy as a property.
63
Entropy and Spontaneity: Predicting Process Direction
Apply the principle of increasing entropy to determine the possibility and direction of a process.
Apply the principle of increasing entropy to determine the possibility and direction of a process.
64
Entropy Changes in Ideal Gas Processes
Calculate entropy changes for ideal gases undergoing various thermodynamic processes.
Calculate entropy changes for ideal gases undergoing various thermodynamic processes.
65
Carnot Cycle: The Ideal Thermal Benchmark
Analyze the Carnot cycle and define its role as a benchmark for thermal efficiency.
Analyze the Carnot cycle and define its role as a benchmark for thermal efficiency.
66
Ideal Brayton Cycle Analysis
Analyze the ideal Brayton cycle for gas turbine engines, including its T-s and P-v diagrams.
Analyze the ideal Brayton cycle for gas turbine engines, including its T-s and P-v diagrams.
67
Brayton Cycle Efficiency & Back Work Ratio
Calculate the thermal efficiency and back work ratio for an ideal Brayton cycle.
Calculate the thermal efficiency and back work ratio for an ideal Brayton cycle.
68
Real-World Turbines & Compressors: Isentropic Efficiency Analysis
Apply isentropic efficiencies to analyze the performance of real turbines and compressors in a cycle.
Apply isentropic efficiencies to analyze the performance of real turbines and compressors in a cycle.