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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
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10
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168
Programmes
Faculty: Engineering and Technology × Programme: B.Eng. Marine and Offshore Engineering × Clear all filters
Showing 31–40 of 58 courses
MAR 531 3
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, the students should be able to: 1. explain the procedures for engine performance determination and improvement; 2. describe low-speed diesel engines with respect to operations, starting air sys...
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Engine performance: indicator, scavenging and supercharging turbocharging and turbochargers. Operation of low-speed engines starting air system and reversing mechanism. Controls and instrumentation. Starting (normal and stopping) operations. Overload operation. Maneuvering. Minimum speed operation in specific conditions. Typical operating troubles. Running in service safety devices. Dynamics of crank gear. Vibration: simple system, torsional, multi-cylinder crankshaft system: imbalance correction. Energy balance and engine efficiency calculations. Various cooling systems in I.C. engines; their merits and demerits. Safety and prevention of mishaps in I.C. Engines: causes and prevention of crank-case explosion and Scavenge fires. Detection of hazard and safety fittings provided to prevent damage. Fuel combustion in I.C. engines and air-fuel ratio. Grades of suitable fuels, preparation of fuels for efficient combustion. Fuel atomization and requirements of fuel injectors. Design aspects of combustion chamber. Fundamentals of tribology. Lubrication: theories, classification and characteristics. Types of lubricants: fluid and solid; their properties, applications, additives and limitations. Bearings and seals; theories, types and applications.
MAR 352 3
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, the students should be able to: 1. perform basic installation, operation and maintenance of electrical systems; 2. explain onboard electrical system: their circuit diagram, calculations and saf...
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Ships’ Electrical System: DC and AC systems: their circuit diagram, calculations and safety. Circuit and insulation testing and over-current protection. Main and standby generators. Main switchboard, circuit breakers and automatic voltage control. Motors and starters: types, ratings, operation, control equipment and maintenance. Auxiliary Electrical Services: Refrigeration and air conditioning; Galley and laundry; Cathodic protection and Battery Supplies. Special electrical practice for oil, gas and chemical tankers. Classification society’s requirements for electrical equipment for: Bridge controls, Steering gears, and Navigation lights, basic electronics, operations and maintenance: alarm system, engine room telegraph, Radar and counter, Remote helm indicator, Echo sounder, Salinity indicators, smoke detectors, carbon dioxide recorder, Watertight door control, traducers for velocity, force, temperature, flow, pressure, displacement and position measurements. Output devices and feedback control systems. Electric propulsion –systems, engines, generators, motors, excitation system and control. Electrical faults detection, prevention and repair. Class requirements for spares on board. Simple electronics measuring devices, such as VTVM, CRO, IC tester, signal generator. 400 level GET 402 Engineering Project I (2 Units: C; PH 90) Learning Outcomes At the end of this course, the students should be able to: 1. Complete the design phase of a complex engineering problem sourced from industry or community during the SIWES III programme. 2. Demonstrate the connection between engineering product-making and the theoretical courses they have learned following the applicable industry best practices. Course Contents In the second semester of the 400-level students, preferably in groups, work from the university on the identified industry or organization to tackle industry complex engineering problems. Theoretical issues may be provided by the department faculty or industry experts. During the vacation, students will now work full time with the organisation/industry on the project as part of the SIWES III. The students can also go beyond the department and engage in multidisciplinary undertakings. Literature survey, review of existing systems etc. must be achieved to a satisfactory extent. GET 404 Engineering Valuation and Appraisal (2 Units: C; LH 30) Learning Outcomes At the end of this course, the students should be able to: 1. Identify at least three (3) objectives of engineering valuation work, valuer's primary duty and responsibility and valuation terminologies. 2. Describe at least four (4) Valuer's obligation to his or her client, to other valuers, and to the society. 3. Demonstrate with example the engineering valuation methods, valuation standards, and practices. 4. Prepare engineering valuation and appraisal reports and review 5. Discuss expert witnessing and ethics in valuation. 6. Determine price, cost, value, depreciation and obsolescence in real property, personal property, personal property, machinery and equipment, oil, gas, mines, and quarries valuation.
MAR 314 3
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, the students should be able to: 1. evaluate the operating principles and efficiencies of thermodynamic cycles; 2. describe steam and gas turbines and combined power plants, their theory, design...
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Principles of operation and classification. Rankine cycle, reheat cycle, regenerative cycle, reheat/regenerative cycle and cycle efficiencies. Theory of steam expansion in cascade. Gas turbine. Principles of operation and classification. Brayton cycle, heat exchange cycle, reheat cycle, intercooled cycle, intercooler/reheat/heat exchange cycle, cycle efficiencies, combined steam and gas turbine cycles. Turbomachinery theory: Expansion of fluids in nozzles. Expansion process in turbine stator blades, work done in turbine rotors, velocity distribution across compressor and turbine, pressure, velocity and pressure-velocity compounding. Steam turbine construction: Governors, safety devices, glands, couplings, Astern turbine, blades, rotors, blade fixing, seals, casings and condensers. Gas turbine construction. Rotors, compressor blades, intakes, combustors, turbines and exhausts.
MAR 565 3
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, the students should be able to: 1. identify and analyse mooring systems, the different configurations and components; 2. evaluate mooring design criteria, constraints, equations and failure mod...
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Mooring configurations: single-leg mooring, spread mooring, turret mooring; mooring components: wire ropes, synthetic fibre ropes, chains, clump weights, drag and suction anchors, piles; winches and windlass; single component and multi-component catenary equations; soil-mooring interaction; mooring failure modes; static, quasi-static, and dynamic mooring analyses; mooring design criteria and considerations. Drilling risers, production risers: flexible, steel catenary; flexible riser configurations: steep/lazy S and wave, free hanging; flexible riser components: bend stiffeners/ bell-mouths, unbonded/bonded flexible risers, bend restrictors; rigid riser components: tieback connectors, stress joints, riser joints and connectors, buoyancy modules, tensioners; riser casing; soil-riser interaction; riser failure modes; structural riser analysis; static and dynamic riser analyses; interference analysis; riser design criteria and considerations. Minimum Academic Standards Equipment Minimum Standards for Laboratories/ Workshops Although other laboratories and workshops not listed here will be shared with many other departments in the faculty and University in general, the laboratories and facilities listed in the table below should be provided and equipped specifically for every Marine Engineering degree programme. Each laboratory or workshop should have sufficient working spaces with safety equipment and relevant manuals. Marine Engineering Workshop Equipment Metalworks and Fabrication Section 1. Work benches with vices for metal work 2. Tool boxes containing hand tools such as screw drivers, wrenches, hammers, hacksaws, files, centre punch, chisel, scrapers, etc. 3. Lathe machines 4. CNC lathe machine 5. Milling machines 6. CNC milling machine 7. Drilling machines 8. Grinding machines 9. Folding machines 10. Power hacksaw 11. Shaping machines 12. Tennoning machine 13. Vertical mortising machine 14. Dovetailing machine 15. Vernier Callipers and Micrometer Screw Gauges 16. Sheet metal folding machine 17. Furnaces (heat treatment facility) 18. Casting facilities 19. Arc welding machines and accessories 20. Gas welding facilities 21. Safety gadgets and first-aid equipment (for fire, electric shocks, impact, etc.) 22. Personal protective equipment (for eye, skin, ear, etc.) 23. Pop riveting machine 24. Guillotine cutting Machine 25. Rolling machine, etc. Carpentry & Woodwork Section 1. Band saw, radial arm saw and circular saw 2. Surfacing machine 3. Mortise machine 4. Thicknessing/Planing machine 5. Wood Lathe machine 6. Portable sander machine 7. Jig saw, rip saw, cross-cut saw, panel saw, tenon saw, compass saw 8. Drilling machine 9. Chest drill 10. Spraying machine 11. Oil stone 12. Wood workbenches with vices 13. G clamp, F clamp, Sash clamp 14. Jack planes, smooth planes 15. Other hand tools such as tri square, claw hammer, pincer, marking gauge, mortise gauge, spirit level, flat chisel, wood rasp, round chisel, wood mallet, spoke shave, screw drivers, tape rule, scraper, etc. Marine Electrical Section 1. Water distillers 2. Hydrometers 3. Multi-meters, voltmeters, ammeters and clamp meters 4. Soldering irons 5. Battery chargers 6. Standard tool boxes for electrical and electronics works 7. Electrical/electronics data books 8. Oscilloscopes 9. Tachometers and phase sequence meters 10. Logic probes 11. Etching machines complete with accessories 12. Coil winding machine, etc. Drafting and Design Studio 1. Drawing tables and chairs 2. Drawing boards, T-squares and instruments 3. Automatic drafting machine 4. Drafting gadgets, stencils, etc 5. Automatic stencil cutter 6. Computer studio or workstation with at least 50 computers 7. Computer graphics and design hall with necessary design software (e.g. AutoCAD, Maxsurf, SACS, Orcaflex, Flexcom, SolidWorks, Inventor, etc.) 8. 3-D printer List of Marine Laboratories S/NO LABORATORY/FACILITY EQUIPMENT/MACHINERY Engine test bed (4- or 6-cylinder turbocharged diesel engine on an engine test bed with Marine Engines and dynamometer and computer interface). 1 Auxiliary Machinery Steam turbine and boiler model Gas turbine model Internal combustion engine model Two-stage compressor Injector testing machine Ship navigation simulator 2 Simulation Laboratory Dynamic positioning simulator Engine room simulator Wave simulator Rigid-rotor balancing machine Bentley Navada rotor Kit Vibrometer 3 Rotordynamics and Proximeters and displacement sensors Vibration Piezoelectric accelerometers Voltage-regulator inverter Fast-fourier transform (FFT) analyzer + frontend Offshore structure models Ship models Fluid bench 4 Marine Structures/ Wind tunnel Hydrodynamics Offshore basin and/or Towing tank Carriage for model Wave makers Underwater Camera (HD) U-tube oscillating water tunnels Cavitation tunnels. Staffing Academic Staff The NUC guidelines on staff/student ratio of 1:15 for Engineering and Technology departments shall apply. However, there should be a minimum of six full-time equivalents of Staff in the department. There is need to have a reasonable number of Staff with doctoral degrees as well as sufficient industrial experience. With a minimum load of 15 Units per semester for students and a minimum of six full-time equivalent of staff in each programme, staff should have a maximum of 15 contact hours per week for lectures, tutorials, practical’s and supervision of projects. NUC requirement encourages all academic staff to have PhD degrees; hence appointment of academic staff is preferably to the Lecturer cadre. Only in exceptional cases are candidates with great promise appointed to Graduate Assistant and Assistant Lecturer positions for the purpose of being developed to the Lecturer cadre as registered PhD candidates. Academic Support Personnel Teaching Assistant/Demonstrators to help lecturers in the conduct of tutorials, practical’s and field work. This category of personnel is not expected to be regular staff as they are to be paid on the basis of approved hourly rate. Administrative Support Staff The services of the administrative support staff are indispensable in the proper administration of the departments and faculty offices. It is important to recruit very competent senior staff that are computer literate. Technical Support Personnel The services of technical support staff, which are indispensable in the proper running of laboratories and workshop/studios are required. It is important to recruit very competent senior technical staff to maintain teaching and research equipment. They are also to undergo regular training to keep them abreast of developments in equipment operation and maintenance. The minimum of academic staff to technical staff ratio of 5:1 should be maintained. Minimum Number of Staff Subject to the general standards specified by NUC: 1. there should be a minimum of two PhDs and four M.Eng degree holders full-time academic staff to mount the programme; 2. each workshop or laboratory should have an adequate number of staff with the right mix, such that each unit or section in that workshop or laboratory can run efficiently; and 3. there should be an adequate number of administrative staff of the appropriate caliber for the office of the Head of Department to run. Student/Staff Ratio The minimum staff-to-student ratio should be 1:15 from 200 level to 500 level. Library Supplementary to the university and faculty libraries, the programme must have adepartmental library well equipped with specialized books, journals, periodicals and bulletines in both physical collections and E-collections from credible academic and professional sources. A compendium of field and research reports of the programme must also be available in the library for staff, students and researchers. In addition, the library must subscribe to the intellectual property/ repositories of: 1. Renowned academic institutions (national and international); 2. Open access sources and E-learning platforms; and 3. Relevant local and international professional Bodies. The library must also have adequate facilities for: 1. Internet services; 2. Reading and e-learning; and 3. Lending and reservation of specialized materials. Classrooms, laboratories, Workshops, Clinics and Offices The NUC recommends the following physical space requirement: Academic m2 Professor’s Office 18.50 Head of Department’s Office 18.50 Tutorial Teaching Staff Space 13.50 Other Teaching Staff Space 7.00 Technical Staff Space 7.00 Science Staff Research Laboratory 16.50 Engineering Staff Research Laboratory 14.50 Seminar Space per student 1.85 Drawing Office Space (A.O. Board) (Per Student) 4.60 Drawing Office Space (A.I. Board) (Per Student) 3.70 Laboratory Space 7.50 Non-Academic Secretarial Space 7.00 Office Facilities S/No Office No in Facilities Room 1. HOD 1 Table, chairs, A/C, filing cabinet, bookshelves, computer unit, Secretary and facilities. 2. Professor 1 Table, chairs, A/C, filing cabinet, bookshelves, computer unit, Secretary and facilities. 3. Reader 1 Table, chairs, A/C, filing cabinet, bookshelves, computer unit. 4. Senior 1 Table, chairs, A/C, filing cabinet, bookshelves, Lecturer computer unit. 5. Lecturer I 2 Table, chairs, fan, filing cabinet, bookshelves. 6. Lecturer II 3 Table, chairs, fan, filing cabinet, bookshelves B.Eng. Materials and Metallurgical
MAR 323 2
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, the students should be able to: 1. employ numerical techniques to estimate ship geometry and size; 2. determine and draw hydrodynamic curves; 3. calculate stability parameters of marine vessels...
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Ship’s principal terms, geometry and hydrostatic calculation: ships lines, coefficients of form, wetted surface area, volumes, moments, displacement, tonnes per cm immersion and Bonjean curves. Simpson’s rules, application to area, moments and volume calculations. Trapezoidal rule, mean and mid-ordinate rule, Tchebycheff’s rule and their applications. Transverse stability of ships: Statical stability at small and large angles of heel, angle of loll; stability of a wall sided ship. Inclining experiment. Calculation of GM, BM, GZ and KM. Curves of statical stability and dynamical stability Determination of: Free surface effect. Centers of Buoyancy, and floatation. Centre of gravity: Effects of shifting, addition and removal of masses and of suspended masses. Trim: change in trim and draughts. Statutory Regulations; classification societies requirements; IMO Regulations.
MAR 523 2
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, the students should be able to: 1. calculate and plot the hydrostatic parameters, form coefficients and stability curves; 2. explain the provisions of SOLAS convention in ship design and kittin...
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Ship body line design and calculation: ship’s body plan drawing, Bonjean diagram and hydrostatic curves calculations and plotting. Ship stability: calculation and plotting of cross curves of stability by conventional and computer methods. Ship subdivision and damaged stability: calculation and plotting of floodable length curves. SOLAS convention. Longitudinal stability and trim: longitudinal BM, moment to change trim by one cm. Change of L.C.B. with change of trim. Change of trim due to addition, removal or shift of weights. Change of draught due to density and flooding. Flooding calculations and floodable length curves. Factors of compartmentalisation. Loss of stability due to grounding. Docking stability. Pressure on chocks. Strength of ships: loading diagram (buoyancy and gravity loads); shearing force and bending moment diagrams. Determination of B.M., longitudinal strength, moment of inertia, section modulus and deflection of ship. Balancing ship on wave.
MAR 201 2
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, students should be able to: 1. demonstrate good seamanship skills, ropework and boat rigging; 2. identify and describe Marine Communications Systems and Global Maritime Distress and Safety Syst...
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Introduction to seamanship skills. Ship nomenclature. Ship Equipment: deck gear and machinery. Cargo plans, stowage methods, ventilation and handling. Marine Communications Systems and Global Maritime Distress and Safety Systems (GMDSS). Hatch work and bulk heading. Rope work and boat rigging. Cargo protection. Anchor arrangements. Mooring and towing arrangements. Small boat handling with oars or engine. Mooring, anchoring, lowering mand lifting of life boats. Use of life saving equipment. First Aid, Personal survival. Merchant ship departmental organisation and station bills. Bridge equipment. Navigational Aids. Signalling and communications. International convention. Weather: types, impact and prediction. Climatology. Meteorological equipment and application in Navigation. Marine ecology. Practicals: Seamanship practice.
GST 112 2
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, students should be able to: analyse the historical foundation of Nigerian cultures and arts in pre-colonial times; 1. identify and list the major linguistic groups in Nigeria; 2. explain the gr...
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Nigerian history, culture and art up to 1800 (Yoruba, Hausa and Igbo peoples and cultures; peoples and cultures of the minority ethnic groups). Nigeria under colonial rule (advent of colonial rule in Nigeria; colonial administration of Nigeria). Evolution of Nigeria as a political unit (amalgamation of Nigeria in 1914; formation of political parties in Nigeria; nationalist movement and struggle for independence). Nigeria and challenges of nation building (military intervention in Nigerian politics; Nigerian Civil War). Concepts of trade and economics of self- reliance (indigenous trade and market system; indigenous apprenticeship system among Nigerian peoples; trade, skill acquisition and self-reliance). Social justice and national development (definition and classification of law); Judiciary and fundamental rights. Individuals, norms and values (basic Nigerian norms and values, patterns of citizenship acquisition; citizenship and civic responsibilities; indigenous languages, usage and development; negative attitudes and conducts [Cultism, kidnapping and other related social vices]). Re-orientation, moral and national values (The 3Rs – Reconstruction, Rehabilitation and Re-orientation; re-orientation strategies: Operation Feed the Nation (OFN), Green Revolution, Austerity Measures, War Against Indiscipline and Corruption(WAIC), Mass Mobilization for Self-Reliance, Social Justice and Economic Recovery (MAMSER), National Orientation Agency (NOA). Current socio-political and cultural developments in Nigeria.
MAR 465 3
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, the students should be able to: 1. describe offshore systems, design considerations and applications; 2. evaluate subsea field development, pipelines, Christmas trees; 3. explain most canonical...
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Offshore systems & design; platforms, subsea development and pipelines; underwater operation & design; sub-marines, robotics and remotely vehicles design and applications, corrosion and cathodic protection; underwater inspections, maintenance and repair operations. Coastal engineering: Dredging and sand-filling mechanism and piping system; maintenance; design of breakwaters and jetties. Application of Bayesian, fuzzy and ANN software.
MAR 461 2
Engineering and Technology  ·  B.Eng. Marine and Offshore Engineering
At the end of this course, the students should be able to: 1. explain field development, concept selection and class requirements; 2. undertake preliminary design of fixed and floating offshore structures, their design f...
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Overview of basic design concepts; environmental design considerations - wind, current and wave conditions for different return periods; field development and concept selection; design features, considerations and issues of fixed offshore structures; jacket structures, jack-up structures and compliant tower structures; design features, considerations and issues of floating offshore structures; FPSO systems, semi-submersibles, TLPs, Spars and design project.
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