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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Programme: B.Eng. Mining Engineering ×
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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...
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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 103
2
On completion, the students should be able to: 1. explain the concepts of heat and temperature and relate the temperature scales; 2. define, derive and apply the fundamental thermodynamic relations to thermal systems; 3....
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Heat and temperature, temperature scales; gas laws; general gas equation; thermal
conductivity; first Law of thermodynamics; heat, work and internal energy, reversibility;
thermodynamic processes; adiabatic, isothermal, isobaric; 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; Bernoullis equation and
incompressible fluid flow; surface tension; adhesion, cohesion, viscosity, capillarity, drops and
bubbles.
CHM 107
1
At the end of this course, the students should be able to: 1. state the general laboratory rules and safety procedures; 2. collect scientific data and correct carry out chemical experiments; 3. identify the basic glasswa...
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Laboratory experiments designed to reflect topics presented in courses CHM 101 and CHM
102. These include acid-base titrations, qualitative analysis, redox reactions, gravimetric
analysis, data analysis and presentation.
CHM 108
1
At the end of this course, the students should be able to: 1. state the general laboratory rules and safety procedures; 2. collect scientific data and correctly carry out chemical experiments; 3. identify the basic glass...
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Continuation of CHM 107. Additional laboratory experiments to include functional group
analysis, quantitative analysis using volumetric methods.
PHY 107
1
On completion, the student should be able to: 1. conduct measurements of some physical quantities; 2. make observations of events, collect and tabulate data; 3. identify and evaluate some common experimental errors; 4. p...
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This introductory course emphasizes quantitative measurements. Experimental techniques.
The treatment of measurement errors. Graphical analysis. The experiments include studies of
meters, the oscilloscope, mechanical systems, electrical and mechanical resonant systems,
light, heat, viscosity, etc. (covered in PHY 101, 102, 103 and PHY 104). However, emphasis
should be placed on the basic physical techniques for observation, measurements, data
collection, analysis, and deduction.
PHY 108
1
On completion, the student should be able to: 1. conduct measurements of some physical quantities; 2. make observations of events, collect and tabulate data; 3. identify and evaluate some common experimental errors; 4. p...
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This practical course is a continuation of PHY 107 and is intended to be taught during the
second semester of the 100 level to cover the practical aspect of the theoretical courses that
have been covered with emphasis on quantitative measurements, the treatment of
measurement errors, and graphical analysis. However, emphasis should be placed on the basic
physical techniques for observation, measurements, data collection, analysis and deduction.
MNE 102
2
At the end of this course, the students should be able to: 1. recognize the types of rocks that exist; 2. differentiate between rocks and minerals; 3. differentiate between surface and underground mining methods; 4. iden...
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Rocks and minerals: origin, distribution, diagnostic features and classification. Energy,
minerals and water resources. Minerals in national development. Introduction to mineral
prospecting and exploration by geological and geophysical methods. Development of mining
technology – surface mining, underground mining and other novel mining techniques
(gasification, liquification, in-situ leaching enhanced recovery, etc.) Mine surveying and the
Geographic Information System (GIS). Stages in the life of a mine. Unit operations in mining.
Mining and its environmental consequences. Processing and uses of minerals. Introduction to
mining allied programmes - Metallurgical and materials engineering, Civil Engineering,
Geology, Geophysics and Meteorology. The mineral resources of Nigeria. Introduction to
licenses, leases and rights acquisition.
MNE 501
3
At the end of this course, the students should be able to: 1. explain what is involved in designing any type of surface mine; 2. identify the various parameters used in surface mine design and how to acquire them; 3. app...
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Design of surface mine excavation methods. Determination of bench parameters. Calculation
of the width of working platform of the bench. Determination of the optimum depth of a
surface mine. Selection of mine equipment and machinery. This includes draglines, loaders,
power shovels, drilling rigs, jack hammer, compressor, conveyor belt, etc. Feasibility study of
a proposed quarry. Design of a surface mine using an existing data. Software applications to
surface mine design in planning and organisation using various software packages in the
laboratory. Slope design in surface mines to ensure safe operation. Practical exercise.
MNE 504
3
At the end of this course, the students should be able to: 1. explain what is involved in designing any type of underground mine and gallery; 2. select appropriate underground mining method and machineries for a given mi...
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Design and construction of shafts, winze and raise. Phases of shaft construction. Different
methods of shaft sinking such as bench method and Jora lift method. Detailed shaft site
investigation for construction cost optimisation and safety. Detailed application of hoisting
machines, tunnel, drifts and adrift design and constructions. Various methods of tunneling in
underground mines using tunneling machines and explosives. Drilling and blasting parameters
in shaft sinking and tunneling. Design of powered supports arch and nut and bolt supports.
Design of ventilation systems in underground mines. Selection of the best methods of mining
during the design of underground mines. Application of software packages to underground
mine design.
MNE 502
3
At the end of this course, the students should be able to: 1. differentiate between surface survey and underground survey; 2. explain the application surveying in various surface and underground mining operations; 3. exp...
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Mining theodolite. Unique difference between mining theodolite and land surveying theodolite.
Surveying in open cast mines – building and construction of an open cast deposit. Calculations
for drilling, blasting, excavation, transport operations and drainage. Mine survey control in
supports and stability of slopes in quarry/open pit mines. Factors affecting stability and
deformation of slopes in quarry or open pit mines. Methods of calculation of angle of slope in
quarry or open pit mines. Surveying in underground mine systems – control on industrial
layout of underground deposits. Construction of shaft and shaft lift; mine survey work on
contact with mineral surface (lava). Geometrical projections of mine rocks and other mine
features. Geometrical classification of industrial and non-industrial mineral deposit.
Parameters of mineral reserve estimation and methods of quantifying mineral reserve.
Concept of displacement in underground mining zone. Process of displacement of mine
rocks/earth surface. Basic understanding and parameters that characterise the process of
rock/earth/displacement. Factors affecting rock displacement in mineral deposit. Mine survey
control on displaced mine rock/earth surface. Application of photogrammetry and remote
sensing in mining. Geographic Information System (GIS) and its application in the mineral
industry. Computer application in surveying, mine planning and fieldwork.