INDUSTRIAL POLLUTION CONTROL
- Course
- ENVE420 - INDUSTRIAL POLLUTION CONTROL
- Department
- Environmental Engineering - English - Undergraduate
- Course Type
- Course
- Status
- Required
- Language
- English
- Credit
- 3
- ECTS
- 6
- T+P+L
- 3 + 1 + 0
- Course Coordinator(s)
- -
- Prerequisite
- -
Course Description
Industrial Pollution course deals with the students learn how to manage the following topics: Source and Characterization of Industrial Pollutants, Industrial Waste Survey, Sampling and Waste Characterization. The lecturer focuses on the application of the Wastewater Treatment Processes, Pre- and Primary Treatment, Flotation, Oil and Grease Separation, Coagulation and Precipitation, Metal Precipitation, Chemical Oxidation, Sludge Handling, Membrane processes, Process water preparation, Ion exchange, Reverse osmosis and other membrane processes, Activated carbon adsorption. Students are supposed to have theoretical and practical information about Waste Characterization and Treatment Methods for Various Industries: Textile, Pulp and paper, Meat processing, Tanneries, Metal plating, Detergents etc.
INDUSTRIAL POLLUTION CONTROL
Evaluation Tools (Active Term)
No evaluation items have been defined.
Course outcomes
- 01 1.Select appropriate the pollution prevention measures
- 02 2. Summarize Waste minimization, waste exchange activities for industrial facilities 2. Waste minimization, waste exchange activities. 2. Waste minimization, waste exchange activities. 2. Waste minimization, waste exchange activities. 2. Waste minimization, waste exchange activities.
- 03 3. Construct various Treatment methods of industrial wastes 3. Treatment methods of industrial wastes 3. Treatment methods of industrial wastes 3. Treatment methods of industrial wastes 3. Treatment methods of industrial wastes
- 04 4- Calculate the waste loads resulting from various industrial processes
- 05 5- Generalize the pollution category of industries by comparing the waste loads of facilities with the international standards
Course Syllabus
| Week | Topic |
|---|---|
| Week 1 | Introduction |
| Week 2 | Source and characterization of industrial pollutants |
| Week 3 | İndustries and industrial waste survey |
| Week 4 | Sampling and waste characterization, Pollution prevention |
| Week 5 | Waste minimization, waste exchange |
| Week 6 | Pretreatment and primary treatment, oil removal |
| Week 7 | Coagulation and precipitation |
| Week 8 | Aeration, biological wastewater treatment |
| Week 9 | Lime-Soda-ash Softening of Hardness |
| Week 10 | Midterm week |
| Week 11 | Lime-Soda-ash Softening of Hardness |
| Week 12 | Chemical oxidation, membrane processes, ion exchange |
| Week 13 | Treatment of gaseous emissions, sludge handling |
| Week 14 | Waste characterization and treatment methods for various industries |
| Week 15 | presentations |
Reference Books & Course Materials
- 01 W.Wesley Eckenfelder,Jr., Industrial Water Pollution Control, McGraw-Hill, 3 edition, 1999
Learning Outcomes
- L01 1.Select appropriate the pollution prevention measures
- L02 2. Summarize Waste minimization, waste exchange activities for industrial facilities 2. Waste minimization, waste exchange activities. 2. Waste minimization, waste exchange activities. 2. Waste minimization, waste exchange activities. 2. Waste minimization, waste exchange activities.
- L03 3. Construct various Treatment methods of industrial wastes 3. Treatment methods of industrial wastes 3. Treatment methods of industrial wastes 3. Treatment methods of industrial wastes 3. Treatment methods of industrial wastes
- L04 4- Calculate the waste loads resulting from various industrial processes
- L05 5- Generalize the pollution category of industries by comparing the waste loads of facilities with the international standards
Program Outcomes
- Adequate knowledge in mathematics, science and engineering subjects pertaining to the relevant discipline; ability to use theoretical and applied knowledgein these areas in complex engineering problems
- Ability to identify, formulate, and solve complex environmental problems; ability to select and apply proper analysis and modeling methods for this purpose.
- Ability to design and conduct experiments, gather data, analyze and interpret results for investigating environmental problems or discipline specific research questions.
- Ability to work efficiently in intra-disciplinary and multi-disciplinary teams; ability to work individually.
- Ability to communicate effectively in English, both orally and in writing; knowledge of a minimum of one foreign language
- Recognition of the need for lifelong learning; ability to access information, to follow developments in science and technology, and to continue to educate him/herself.
- Consciousness to behave according to ethical principles and professional and ethical responsibility; knowledge on standards used in engineering practice.
- Knowledge about business life practices such as project management, risk management, and change management; awareness in entrepreneurship, innovation; knowledge about sustainable development.
- Knowledge about the global and social effects of engineering practices on health, environment, and safety, and contemporary issues of the century reflected into the field of engineering; awareness of the legal consequences of engineering solutions.
Po-Lo Matrix
| LO | Average | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| L01 | - | - | - | - | - | - | - | - | - | - |
| L02 | - | - | - | - | - | - | - | - | - | - |
| L03 | - | - | - | - | - | - | - | - | - | - |
| L04 | - | - | - | - | - | - | - | - | - | - |
| L05 | - | - | - | - | - | - | - | - | - | - |