CES420 Statics & Dynamics UITM Assignment Sample Malaysia

CES420 Statics & Dynamics is a course at Universiti Teknologi MARA (UiTM). This course is designed to provide students with a comprehensive understanding of the principles of statics and dynamics, which are essential to engineering and related fields. Statics is the study of forces acting on bodies at rest, while dynamics is the study of forces and their effects on bodies in motion. In this course, students will learn the fundamental principles of both statics and dynamics, including the concepts of equilibrium, motion, acceleration, and energy.

Through a combination of lectures, laboratory exercises, and problem-solving sessions, students will develop their analytical skills and gain practical experience in the application of statics and dynamics principles to real-world problems. By the end of this course, students will have gained a strong foundation in statics and dynamics, which will serve as a basis for more advanced coursework and professional practice in engineering and related fields.

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In this section, we will describe some assignment objectives. These are:

Assignment Objective 1: Apply the fundamental concepts and principles of mechanics for statics and dynamics.

Mechanics is the branch of physics that deals with the study of motion, forces, and energy. It is a fundamental subject in engineering and plays a crucial role in understanding and predicting the behavior of physical systems.


Statics is a branch of mechanics that deals with the study of forces and moments that are in balance or at rest. In other words, it is the study of objects that are not moving. The fundamental concepts and principles of mechanics for statics include:

  1. Newton’s Laws of Motion: The laws of motion state that an object at rest will remain at rest, and an object in motion will continue to move at a constant velocity unless acted upon by an external force.
  2. Force: Force is a vector quantity that describes the interaction between two objects. The magnitude of the force is proportional to the mass of the object and the acceleration produced by the force.
  3. Equilibrium: An object is said to be in equilibrium if the net force acting on it is zero. In other words, the sum of all the forces acting on the object is equal to zero.
  4. Moments: Moments are the rotational equivalents of forces. They describe the tendency of a force to cause an object to rotate about a pivot point. Moments are calculated as the product of the force and the perpendicular distance from the pivot point.


Dynamics is a branch of mechanics that deals with the study of forces and motion. In other words, it is the study of objects that are moving. The fundamental concepts and principles of mechanics for dynamics include:

  1. Newton’s Laws of Motion: The laws of motion are also applicable in dynamics, as they describe the relationship between the motion of an object and the forces acting upon it.
  2. Force: Force is still a vector quantity that describes the interaction between two objects. In dynamics, the force acting on an object can cause it to accelerate, decelerate, or change direction.
  3. Momentum: Momentum is a vector quantity that describes the motion of an object. It is calculated as the product of the mass and velocity of the object.
  4. Energy: Energy is a scalar quantity that describes the ability of an object to do work. It can be kinetic energy, potential energy, or a combination of both.
  5. Conservation of Energy: The principle of conservation of energy states that energy cannot be created or destroyed, but it can be transformed from one form to another. This principle is crucial in understanding the behavior of physical systems, as it allows us to predict the motion of objects based on their initial conditions and the forces acting upon them.

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Assignment Objective 2: Analyze various statics and dynamics problems including three dimensional problems.

Statics is the branch of mechanics that deals with the study of objects in equilibrium, that is, at rest or moving at a constant velocity. In statics, we analyze the forces acting on an object and their effects on its motion. Some common examples of statics problems include analyzing the forces acting on a bridge or a building, determining the tension in a rope, or calculating the friction between two surfaces.

Dynamics, on the other hand, deals with the study of objects in motion and the forces that cause that motion. In dynamics, we analyze the acceleration, velocity, and position of an object as it moves through space. Some common examples of dynamics problems include calculating the trajectory of a projectile, analyzing the motion of a car on a curved road, or determining the forces acting on an airplane in flight.

Three-dimensional problems involve analyzing the motion and forces acting on objects in three-dimensional space. This can include objects moving in three-dimensional space, such as satellites orbiting the Earth, or objects that are three-dimensional in shape, such as a box being lifted and moved around.

To solve three-dimensional problems in statics and dynamics, we typically use vector calculus and linear algebra. These mathematical tools allow us to analyze the forces acting on an object and determine its motion in three-dimensional space. We also use computer simulations and modeling to simulate complex three-dimensional problems and predict their behavior.

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