Explore core subjects, laboratories, electives, projects and practical learning across the programme.
Oil and Paint Technology Syllabus
The curriculum follows a logical path from science and mathematics to process analysis, equipment, control and design. The precise semester order differs by university. Course application: oil-based coatings.
Indicative semester-wise syllabus
| Semester | Common subjects |
|---|---|
| Semester 1 | Mathematics, Physics, Chemistry, Graphics, Computing and Communication |
| Semester 2 | Mathematics, Mechanics, Electrical Science, Environmental Studies and Workshop |
| Semester 3 | Process Calculations, Fluid Mechanics, Oil and Paint Technology Thermodynamics and laboratories |
| Semester 4 | Mechanical Operations, Heat Transfer, Material Science, Numerical Methods and laboratories |
| Semester 5 | Mass Transfer, Reaction Engineering, Process Instrumentation and Chemical Technology |
| Semester 6 | Process Control, Equipment Design, Safety, Biochemical or Environmental Engineering and training |
| Semester 7 | Plant Design, Process Simulation, Economics, electives, seminar and project |
| Semester 8 | Advanced electives, major project, dissertation, management and viva voce |
Engineering Mathematics
Mathematics supports differential balances, heat and mass transfer, reactor models, optimisation and control. Students study calculus, differential equations, linear algebra, probability and numerical methods. Course application: oil-based coatings.
Engineering Chemistry
Chemistry develops knowledge of bonding, reactions, equilibrium, electrochemistry, polymers and industrial substances. It is a foundation but does not dominate the complete degree. Course application: oil-based coatings.
Process Calculations
Process Calculations, also called Stoichiometry or Material and Energy Balances, is one of the earliest core subjects. Students calculate stream flow, composition, conversion, recycle and energy. Course application: oil-based coatings.
They learn to select a basis, draw a flow diagram and check degrees of freedom. Clear systematic work prevents errors. Course application: oil-based coatings.
Oil and Paint Technology Thermodynamics
Students study laws of thermodynamics, properties, equations of state, fugacity, activity and phase equilibrium. These concepts support distillation, extraction, refrigeration and reactor equilibrium. Course application: oil-based coatings.
Fluid Mechanics
Topics include hydrostatics, continuity, momentum, laminar and turbulent flow, pipe networks, pumps, compressors and flow meters. Laboratory work compares theory with real pressure and flow data. Course application: oil-based coatings.
Mechanical Operations
Mechanical Operations covers size reduction, screening, filtration, sedimentation, centrifugation, mixing and solids handling. These steps are used in minerals, food, pharmaceuticals, cement and chemicals. Course application: oil-based coatings.
Particle Technology
Particle Technology examines size distributions, shape, flow, fluidisation and powder processing. Fine powders can create dust and explosion hazards, so safety is important. Course application: oil-based coatings.
Heat Transfer
Students study conduction, convection, radiation, boiling and condensation. They design or analyse heat exchangers and evaporators and account for fouling. Course application: oil-based coatings.
Mass Transfer
Mass Transfer covers diffusion and separation operations. Students study distillation, gas absorption, extraction, humidification, drying, adsorption, crystallisation and membranes. Course application: oil-based coatings.
Distillation
Distillation separates components through differences in volatility. Students use vapour-liquid equilibrium, stage calculations and reflux concepts. Industrial columns require substantial energy and careful control. Course application: oil-based coatings.
Absorption and stripping
Absorption transfers a gas component into a liquid, while stripping removes a volatile component. Applications include gas purification, pollution control and solvent recovery. Course application: oil-based coatings.
Liquid-liquid extraction
Extraction separates a solute between immiscible liquids. Solvent selection considers equilibrium, selectivity, safety and recovery.
Drying
Drying removes moisture using heat and mass transfer. Students study drying rates and equipment. Product sensitivity matters in food and pharmaceuticals. Course application: oil-based coatings.
Crystallisation
Crystallisation produces solid particles with controlled purity and size. Supersaturation, nucleation and growth affect product quality.
Membrane separation
Membranes separate species through selective barriers. Applications include water purification, gas separation and bioprocessing. Fouling and selectivity are important limitations. Course application: oil-based coatings.
Chemical Reaction Engineering
Students combine reaction kinetics with reactor flow and heat effects. They design ideal batch, mixed-flow and plug-flow reactors and examine non-ideal systems. Course application: oil-based coatings.
Catalysis
Catalysts increase reaction rates without being consumed overall. Students study heterogeneous and homogeneous catalysis, adsorption, diffusion and deactivation. Course application: oil-based coatings.
Process Dynamics and Control
Students model how processes respond over time. They study feedback, stability and controllers. Laboratory systems may control temperature, level, pressure or flow. Course application: oil-based coatings.
Process Instrumentation
Instrumentation covers measurement principles, sensors, transmitters, control valves and data acquisition. Engineers should understand accuracy, calibration and failure modes. Course application: oil-based coatings.
Chemical Technology
Chemical Technology surveys industrial manufacture of acids, alkalis, fertilisers, petrochemicals, polymers, oils, soaps, pulp, paper and other products. It connects core principles with real processes. Course application: oil-based coatings.
Petroleum Refining
Refining electives cover crude characterisation, distillation, cracking, reforming, hydrotreating and blending. Environmental specifications and energy use are important. Course application: oil-based coatings.
Petrochemical Technology
Students study conversion of hydrocarbon feedstocks into olefins, aromatics, polymers and intermediates. Integrated material and energy systems are emphasised. Course application: oil-based coatings.
Polymer Engineering
Polymer courses cover polymerisation, structure, properties, processing and applications. Students may study extrusion, moulding and recycling.
Biochemical Engineering
Biochemical Engineering covers microbial growth, enzyme kinetics, fermentation, bioreactors and downstream processing. Sterility and biological variability distinguish it from many conventional processes. Course application: oil-based coatings.
Environmental Engineering
Students learn water, wastewater, air pollution and waste treatment. Topics may include biological treatment, adsorption, membranes and environmental assessment. Course application: oil-based coatings.
Materials of Construction
Equipment materials must resist corrosion, temperature and pressure. Students study metals, polymers, ceramics, linings and selection. Corrosion can create both economic and safety risks. Course application: oil-based coatings.
Equipment Design
Students apply process and mechanical principles to vessels, heat exchangers, columns and reactors. They consider pressure, temperature, materials, fabrication and codes. Course application: oil-based coatings.
Undergraduate design is educational and does not replace detailed professional engineering under applicable standards.
Plant Design
Plant Design integrates flowsheets, equipment, utilities, layout, safety and economics. Teams may design a complete process from feed to product and waste treatment. Course application: oil-based coatings.
Process Simulation
Simulation software calculates flows, properties, equipment and energy. Students should understand model assumptions and validate results rather than accept software output blindly. Course application: oil-based coatings.
Process Optimisation
Optimisation selects operating or design conditions that maximise value or minimise cost, energy or waste under constraints. A mathematically optimum result must still be safe and practical. Course application: oil-based coatings.
Process Economics
Economics covers capital cost, operating cost, depreciation, cash flow, profitability and uncertainty. Engineers compare alternatives and understand business consequences. Course application: oil-based coatings.
Process Safety
Safety subjects cover fire, explosion, toxicity, relief, hazard studies, inherently safer design and emergency planning. Case studies teach how technical and organisational failures combine. Course application: oil-based coatings.
HAZOP
Hazard and Operability Study is a structured team method for identifying deviations, causes and consequences. Students may learn guide words and safeguards. Competent industrial facilitation requires experience. Course application: oil-based coatings.
Relief and flare systems
Relief devices protect equipment from overpressure. Flares and treatment systems dispose of emergency releases. Design requires scenario analysis and applicable standards. Course application: oil-based coatings.
Plant utilities
Utilities include steam, cooling water, refrigeration, electricity, compressed air, nitrogen and water treatment. They support every process and can represent a major energy cost. Course application: oil-based coatings.
Energy integration
Pinch analysis and heat-exchanger-network concepts help recover heat between streams. Integration reduces utilities but must consider operability and safety. Course application: oil-based coatings.
Renewable energy
Electives may cover biofuels, hydrogen, solar thermal processing, batteries and carbon management. Oil and Paint Technology principles help design energy-conversion systems.
Food Process Engineering
Food electives apply transport, reaction and separation principles to edible products. Hygiene, texture, nutrition and sensory quality matter. Course application: oil-based coatings.
Pharmaceutical Engineering
Students may study batch processing, crystallisation, filtration, drying, clean systems and validation. Good manufacturing practice and documentation are essential. Course application: oil-based coatings.
Nanotechnology and advanced materials
Courses introduce nanoparticles, surface effects, synthesis and applications. Safe handling and scale-up are major considerations.
Computational methods
Students use numerical methods, programming, spreadsheets and simulation. Data analysis and basic Python can strengthen modern engineering work. Course application: oil-based coatings.
Laboratory courses
Typical laboratories include fluid flow, heat transfer, mass transfer, reaction engineering, process control and chemical technology. Experiments develop measurement, analysis and safety skills. Course application: oil-based coatings.
Industrial training
Training exposes students to real equipment, procedures, shift systems, quality and safety. They should ask questions, maintain a learning record and respect confidentiality. Course application: oil-based coatings.
Final-year project
Projects may involve simulation, reaction kinetics, adsorption, wastewater, heat recovery, process optimisation, materials or experimental work. The project should have clear objectives, method and limitations. Course application: oil-based coatings.
Supplementary learning
Students can strengthen process simulation, spreadsheets, Python, technical drawing, statistics and report writing. Safety certifications can add value when credible and relevant. Course application: oil-based coatings.
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Course at a Glance
- Course AreaMechanical and Oil and Paint Technology
- Study PathwaysDiploma, B.E./B.Tech, M.E./M.Tech, certificates and doctoral study
- Primary FocusStudy Oil and Paint Technology eligibility, syllabus, fees, entrance exams, colleges, practical skills and career scope in India.