CCMAS Course Search
Browse BRIDGE's courses under the National Universities Commission's Core Curriculum Minimum Academic Standards (CCMAS) — Nigeria's unified benchmark curriculum for every accredited program. Search by course title, code, faculty or programme to see full descriptions, learning outlines and credit-hour loads.
4,624
Courses
10
Faculties
168
Programmes
Showing 2151–2160
of 4,624 courses
PHY 101
2 Unit(s) (LH 30)
At the end of the course, student should be able to; 1. identify and deduce the physical quantities and their units; 2. differentiate between vectors and scalars; 3. describe and evaluate motion of systems on the basis o...
View learning outline
Space and time. Units and dimension, Vectors and Scalars. Differentiation of vectors:
displacement, velocity and acceleration. Kinematics. Newton laws of motion (Inertial frames,
Impulse, force and action at a distance, momentum conservation). Relative motion. Application
of Newtonian mechanics. Equations of motion.Conservation principles in physics. Conservative
forces. Conservation of linear momentum. Kinetic energy and work. Potential energy. System of
particles. Centre of mass. Rotational motion:Torque, vector product, moment, rotation of
coordinate axes and angular momentum. Polar coordinates. Conservation of angular momentum.
Circular motion. Moments of inertia. gyroscopes and precession. Gravitation: Newton’s Law of
Gravitation. Kepler’s Laws of Planetary Motion. Gravitational Potential Energy. Escape velocity.
Satellites motion and orbits.
PHY 101
2 Unit(s) (LH 30)
At the end of the course, student should be able to; 1. identify and deduce the physical quantities and their units; 2. differentiate between vectors and scalars; 3. describe and evaluate motion of systems on the basis o...
View learning outline
Space and time. Units and dimension, Vectors and Scalars. Differentiation of vectors:
displacement, velocity and acceleration. Kinematics. Newton laws of motion (Inertial frames,
Impulse, force and action at a distance, momentum conservation). Relative motion. Application
of Newtonian mechanics. Equations of motion.Conservation principles in physics. Conservative
forces. Conservation of linear momentum. Kinetic energy and work. Potential energy. System of
particles. Centre of mass. Rotational motion:Torque, vector product, moment, rotation of
coordinate axes and angular momentum. Polar coordinates. Conservation of angular momentum.
Circular motion. Moments of inertia. gyroscopes and precession. Gravitation: Newton’s Law of
Gravitation. Kepler’s Laws of Planetary Motion. Gravitational Potential Energy. Escape velocity.
Satellites motion and orbits.
PHY 101
2 Unit(s) (LH 30)
At the end of the course, student should be able to; 1. identify and deduce the physical quantities and their units; 2. differentiate between vectors and scalars; 3. describe and evaluate motion of systems on the basis o...
View learning outline
Space and time. Units and dimension, Vectors and Scalars. Differentiation of vectors:
displacement, velocity and acceleration. Kinematics. Newton laws of motion (Inertial frames,
Impulse, force and action at a distance, momentum conservation). Relative motion. Application
of Newtonian mechanics. Equations of motion.Conservation principles in physics. Conservative
forces. Conservation of linear momentum. Kinetic energy and work. Potential energy. System of
particles. Centre of mass. Rotational motion:Torque, vector product, moment, rotation of
coordinate axes and angular momentum. Polar coordinates. Conservation of angular momentum.
Circular motion. Moments of inertia. gyroscopes and precession. Gravitation: Newton’s Law of
Gravitation. Kepler’s Laws of Planetary Motion. Gravitational Potential Energy. Escape velocity.
Satellites motion and orbits.
PHY 101
2 Unit(s) (LH 30)
At the end of this course, the students should be able to: 1. identify and deduce the physical quantities and their units; 2. differentiate between vectors and scalars; 3. describe and evaluate motion of systems on the b...
View learning outline
Space and time. units and dimension. Vectors and Scalars. Differentiation of vectors:
displacement. velocity and acceleration. kinematics. Newton laws of motion (Inertial frames.
Impulse. force and action at a distance. momentum conservation). Relative motion. Application
of Newtonian mechanics. Equations of motion. Conservation principles in physics. Conservative
forces. Conservation of linear momentum. Kinetic energy and work. Potential energy. System of
particles. Centre of mass. Rotational motion. Torque. vector product. Moment. Rotation of
coordinate axes and angular momentum. Polar coordinates. conservation of angular momentum.
Circular motion. Moments of inertia. gyroscopes and precession. Gravitation: Newton’s Law of
Gravitation. Kepler’s Laws of Planetary Motion. Gravitational Potential Energy. Escape velocity.
Satellites motion and orbits.
PHY 101
2 Unit(s) (LH 30)
At the end of this course, students should be able to: 1. identify and deduce the physical quantities and their units; 2. differentiate between vectors and scalars; 3. describe and evaluate motion of systems on the basis...
View learning outline
Space and Time, Frames of Reference, Invariance of physical laws, Relativity of simultaneity,
Relativity of time intervals, relativity of length, units and dimension; standards and units, unit
consistency and conversions. Kinematics, Vectors and vector addition, Components of vectors,
Unit vectors, Products of vectors. Displacement, Time and average velocity, instantaneous
velocity, average acceleration, motion with constant acceleration, freely falling bodies, position
and velocity vectors, acceleration vector, projectile motion. Motion in a circle and Relative velocity.
Fundamental laws of mechanics: forces and interactions, Newton’s first law, Newton’s second
law, Mass and weight, Newton’s third law. Statics and dynamics: application of Newton’s laws,
dynamics of particles, frictional forces, dynamics of circular motion. Galilean invariance, universal
gravitation, gravitational potential energy, elastic potential energy, conservative and non-
conservative forces. Work and energy, kinetic energy and the work-energy theorem, power,
momentum and impulse, conservation of momentum, collisions and momentum conservation,
elastic collisions, centre of Mass. Rotational dynamics and angular momentum, angular velocity
and acceleration, energy in rotational motion, parallel axis theorem, torque, torque and rotation
about a moving axis, simple harmonic motion and its applications. The simple pendulum, damped
oscillations, forced oscillations and resonance.
PHY 101
2 Unit(s) (LH 30)
At the end of the course, the student should be able to; 1. identify and deduce the physical quantities and their units; 2. differentiate between vectors and scalars; 3. describe and evaluate motion of systems on the bas...
View learning outline
Space and time. Units and dimension, Vectors and Scalars. Differentiation of vectors:
displacement, velocity and acceleration. Kinematics. Newton laws of motion (Inertial frames,
Impulse, force and action at a distance, momentum conservation). Relative motion. Application
of Newtonian mechanics. Equations of motion.Conservation principles in physics. Conservative
forces. Conservation of linear momentum. Kinetic energy and work. Potential energy. System of
particles. Centre of mass. Rotational motion:Torque, vector product, moment, rotation of
coordinate axes and angular momentum. Polar coordinates. Conservation of angular momentum.
Circular motion. Moments of inertia. gyroscopes and precession. Gravitation: Newton’s Law of
Gravitation. Kepler’s Laws of Planetary Motion. Gravitational Potential Energy. Escape velocity.
Satellites motion and orbits.
PHY 101
2 Unit(s) (LH 30)
At the end of the course, students should be able to: 1. identify and deduce the physical quantities and their units; 2. differentiate between vectors and scalars; 3. describe and evaluate motion of systems on the basis...
View learning outline
Space and time, units and dimension, vectors and scalars, differentiation of vectors:
displacement, velocity and acceleration. Kinematics: Newton laws of motion (Inertial frames,
Impulse, force and action at a distance, momentum conservation), relative motion. Application
of Newtonian mechanics: equations of motion, conservation principles in physics, conservative
forces, conservation of linear momentum, kinetic energy and work, potential energy, system
of particles, centre of mass. Rotational motion, torque, vector product, moment, rotation of
coordinate axes and angular momentum, polar coordinates, conservation of angular
momentum; Circular motion. Moments of inertia, gyroscopes and precession. Gravitation:
Newton’s Law of gravitation, Kepler’s Laws of planetary motion, gravitational potential energy,
escape velocity, satellites motion and orbits.
PHY 101
2 Unit(s) (LH 30)
On completion, student should be able to: 1. identify and deduce the physical quantities and their units; 2. differentiate between vectors and scalars; 3. describe and evaluate motion of systems on the basis of the funda...
View learning outline
Space and time, units and dimension, vectors and scalars, differentiation of vectors:
displacement, velocity and acceleration. Kinematics: Newton laws of motion (Inertial frames,
Impulse, force and action at a distance, momentum conservation), relative motion. Application
of Newtonian mechanics: equations of motion, conservation principles in physics, conservative
forces, conservation of linear momentum, kinetic energy and work, potential energy, system
of particles, centre of mass. Rotational motion, torque, vector product, moment, rotation of
coordinate axes and angular momentum, polar coordinates, conservation of angular
momentum; Circular motion. Moments of inertia, gyroscopes and precession. Gravitation:
Newton’s Law of gravitation, Kepler’s Laws of planetary motion, gravitational potential energy,
escape velocity, satellites motion and orbits.
PHY 101
2
On completion, the students should be able to: 1. identify and deduce the physical quantities and their units; 2. differentiate between vectors and scalars; 3. describe and evaluate motion of systems on the basis of the...
View learning outline
Space and time; units and dimension, vectors and scalars, differentiation of vectors:
displacement, velocity and acceleration; kinematics; Newton’s laws of motion (inertial frames,
impulse, force and action at a distance, momentum conservation); relative motion; application
of Newtonian mechanics; equations of motion; conservation principles in physics,
conservative forces, conservation of linear momentum, kinetic energy and work, potential
energy, system of particles, centre of mass; rotational motion; torque, vector product,
moment, rotation of coordinate axes and angular momentum. Polar coordinates; conservation
of angular momentum; circular motion; moments of inertia, gyroscopes and precession;
gravitation: Newton’s law of gravitation, Kepler’s laws of planetary motion, gravitational
potential energy, escape velocity, satellites motion and orbits.
PHY 102
2
On completion of this course, students should be able to: 1. explain the concepts of heat and temperature and relate the temperature scales; 2. derive, and apply the fundamental thermodynamic relations to thermal systems...
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Heat, temperature and temperature scales. Gas laws; general gas equation, thermal conductivity.
First Law of thermodynamics, heat, work and internal energy. Reversibility, second law of
thermodynamics, heat engines and entropy. Zero’s law of thermodynamics, kinetic theory of
gases, molecular collisions and mean free path. Elasticity, Hooke's law, Young's, shear and bulk
moduli. Hydrostatics, pressure, buoyancy, Archimedes' principles. Bernoulli’s equation and
incompressible fluid flow. Surface tension, adhesion, cohesion, viscosity, capillarity, drops and
bubbles.