TCH 308
Numerical Methods in Chemical Engineering
2
Course Description
At the end of this course, the students should be able to:
1. apply numerical method techniques to solve problems arising from heat and mass transfer,
chemical reactions, thermodynamics, fluid mechanics and molecular simulations;
2. apply numerical method techniques to solve different categories of mathematical
equations;
3. apply numerical methods such as navier-stokes, runge kutta, newton-raphson, taylor’s
series etc to solve ODES and PDES; and
4. perform numerical integrations and differentiation.
Course Outline
Numerical methods for solving problems arising in heat and mass transfer, fluid mechanics,
chemical reaction engineering, and molecular simulation. Topics: numerical linear algebra,
solution of nonlinear algebraic equations and ordinary differential equations, solution of partial
differential equations (e.g., Navier-Stokes), numerical methods in molecular simulation
(dynamics, geometry optimization). Runge Kutta and other methods in the solutions of ODE
and PDEs. Numerical integration and differentiation. All methods are presented within the
context of chemical engineering problems.
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; and
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; and
6. determine price, cost, value, depreciation and obsolescence in real property, personal
property, personal property, machinery and equipment, oil, gas, mines, and quarries
valuation.