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.
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TEL 202
3
Upon the completion of the course, students will be able to: 1. use computational tools and packages in the design of electric power systems, electronic, and digital equipment and systems; 2. solve common, technical prob...
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Power factor, Power in AC circuit, Resonance in RLC series and parallel circuit, Three Phase
Circuits: Voltages of three balanced phase system, delta and star connection, relationship
between line and phase quantities, phasor diagrams. DC Machines: Construction, Basic
concepts of winding (Lap and wave); DC generator: Principle of operation, EMF equation,
characteristics (open circuit, load) DC motors: Principle of operation, Torque Equation, Speed
Torque Characteristics (shunt and series machine); Single Phase Transformer: Constructional
parts, Types of transformers, Emf equation, No Load no load and on load operation, phasor
diagram and equivalent circuit, losses of a transformer, regulation and efficiency calculation;
Three Phase Induction Motor: Types, Construction, production of rotating field, principle of
operation, Slip and Frequency, rotor emf and current, Equivalent circuit and phasor diagram,
Torque Slip characteristics torque-speed characteristics; General Structure of Electrical Power
System: Power generation to distribution through overhead lines and underground cables with
single line diagram, Earthing of Electrical Equipment, Electrical Wiring Practice.
MEE 403
2
At the end of this course, the students should be able to: 1. apply the knowledge of mathematics, science and engineering fundamentals to model the energy conversion phenomenon; 2. identify fuel types, availability, util...
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Multistage reciprocating compressors. Rotary compressors – centrifugal and axial-flow;
stagnation properties. Simple gas turbine plant. The steam power plant. Combustion of fuels;
chemistry of common hydrocarbon fuels, combustion with deficiency or excess air. Thermo-
chemistry: Hess’ Law of Heat Summation; heats of combustion and reaction; ideal adiabatic
flame temperature. Reciprocating internal combustion engines. General thermodynamics
relations. Kinetic theory of gas. Mixture of gases, psychometry, air-conditioning and cooling
towers. Introduction to heat transfer.
MEE 404
2
At the end of this course, the students should be able to: 1. identify the various types of fluids and flows; 2. carry out simple calculations on floating and submerged surfaces; 3. explain the concept of fluid machinery...
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Unsteady flow; oscillation in U-tube; surge tank; water hammer. Open-channel flows.
Introductory concepts of boundary layer and re-circulating flows, mathematical derivation of
Navier-stokes equations and its application. Dimensional analysis and similitude. Introduction
to turbo machinery; characteristic curve for axial-flow and centrifugal pumps, fans, blowers,
impulse and reaction turbines. Pump selection and application. Pipeline systems (Series and
Parallel). Open channel flow. Overview of computational fluid dynamics (CFD)
PEE 313
2
At the end of the course, students should be able to: 1. aply the fundamental principles of geophysics applied to oil and gas industry; 2. explain elastic theory and wave propagation in different formations; and 3. expla...
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The scope of geophysics. Solid earth geophysics. The shape of the earth. Geomagnetism.
Marine geophysics; Isostacy. Geophysical instruments. Field data processing: electrical,
seismic, radiometric, etc. Elastic theory. Waves and Ray path. Wave propagation. Seismic
refraction principles and techniques including data acquisition. Seismic reflection principles
and techniques - 2D, 3D, 4D (Time Lapse). Geophysical logging of borehole. Geophysical
prospecting and exploration.
GET 207
3
Students will acquire the ability to: explain the fundamental principles of applied mechanics, particularly equilibrium analysis, friction, kinematics and momentum; identify, formulate, and solve complex engineering prob...
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Forces, moments, couples. Equilibrium of simple structures and machine parts. Friction.
First and second moments of area; centroids. Kinematics of particles and rigid bodies in
plane motion. Newton's laws of motion. Kinetic energy and momentum analyse
GET 207
3
Students will acquire the ability to: 1. explain the fundamental principles of applied mechanics, particularly equilibrium analysis, friction, kinematics and momentum; 2. identify, formulate, and solve complex engineerin...
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Forces, moments, couples. Equilibrium of simple structures and machine parts. Friction. First
and second moments of area; centroids. Kinematics of particles and rigid bodies in plane
motion. Newton's laws of motion. Kinetic energy and momentum analyse.
GET 207
3
Students will acquire the ability to: 1. Understand the fundamental principles of applied mechanics, particularly equilibrium analysis, friction, kinematics and momentum. 2. identify, formulate, and solve complex enginee...
View learning outline
Forces, moments, couples. Equilibrium of simple structures and machine parts. Friction. First
and second moments of area; centroids. Kinematics of particles and rigid bodies in plane
motion. Newton's laws of motion. Kinetic energy and momentum analyses.
GET 207
3
Students will acquire the ability to: 1. explain the fundamental principles of applied mechanics, particularly equilibrium analysis, friction, kinematics and momentum. 2. identify, formulate, and solve complex engineerin...
View learning outline
Forces, moments, couples. Equilibrium of simple structures and machine parts. Friction. First
and second moments of area; centroids. Kinematics of particles and rigid bodies in plane
motion. Newton's laws of motion. Kinetic energy and momentum analyse
GET 207
3
1 institution need this
Students will acquire the ability to: 1. explain the fundamental principles of applied mechanics, particularly equilibrium analysis, friction, kinematics and momentum; 2. identify, formulate, and solve complex engineerin...
View learning outline
Forces, moments, couples. Equilibrium of simple structures and machine parts. Friction. First
and second moments of area; centroids. Kinematics of particles and rigid bodies in plane
motion. Newton's laws of motion. Kinetic energy and momentum analyse.
GET 207
3
Students will acquire the ability to: 1. explain the fundamental principles of applied mechanics, particularly equilibrium analysis, friction, kinematics and momentum; 2. identify, formulate, and solve complex engineerin...
View learning outline
Forces, moments, couples. Equilibrium of simple structures and machine parts. Friction. First
and second moments of area; centroids. Kinematics of particles and rigid bodies in plane
motion. Newton's laws of motion. Kinetic energy and momentum analyse