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Chemical Engineering 475: Applied Microbiology and Bioengineering
3.00 Credits
The University of Tennessee
Cross-disciplinary course combining basic concepts in microbiology, biochemistry, reaction kinetics, and biochemical and environmental engineering. Commercial processes, biodegradation/wastewater treatment, analysis of basic bioreactor systems, biosensors, and immobilization methods.
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Chemical Engineering 475 - Applied Microbiology and Bioengineering
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Chemical Engineering 477: Honors:Applied Process Automation Laboratory
3.00 Credits
The University of Tennessee
Interfacing flexible batch continuous processes to automation systems. Top down analysis with bottom up implementation, hierarchical structures and object-oriented concepts are used to design automation solutions including human-machine interfaces. Workstations with modern industrial equipment provide an interactive graphics and visualization environment. Recommended Background: 360. Registration Permission: Consent of instructor.
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Chemical Engineering 477 - Honors:Applied Process Automation Laboratory
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Chemical Engineering 478: Honors:Applied Process Automation Design Projects
3.00 Credits
The University of Tennessee
Industrial programmable logic controllers (PLCs) and industrial automation and human-machine-interface (HMI) design software are used on workstations to develop automation solutions by small teams of students. Advanced control strategies, networking and Internet issues. Registration Permission: Consent of instructor.
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Chemical Engineering 478 - Honors:Applied Process Automation Design Projects
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Chemical Engineering 480: Equipment Design and Economic Methods
3.00 Credits
The University of Tennessee
Design, optimization, and costing of chemical and biochemical plant equipment. Introduction to economic evaluation methods, capital investment, discounted cash flows, and net present value. (RE) Prerequisite(s): 360 and Chemistry 350. (RE) Corequisite(s): 445 and 450.
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Chemical Engineering 480 - Equipment Design and Economic Methods
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Chemical Engineering 481: Green Engineering
3.00 Credits
The University of Tennessee
Principles and practical aspects of the design, commercialization, and use of processes and products for determining their feasibility and economic potential while minimizing the generation of pollution at the source and risk to human health and environment. Registration Permission: Consent of instructor.
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Chemical Engineering 481 - Green Engineering
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Chemical Engineering 483: Introduction to Reliability Engineering
3.00 Credits
The University of Tennessee
Introduction to Reliability Engineering
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Chemical Engineering 483 - Introduction to Reliability Engineering
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Chemical Engineering 484: Introduction to Maintainability Engineering
3.00 Credits
The University of Tennessee
Introduction to Maintainability Engineering
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Chemical Engineering 484 - Introduction to Maintainability Engineering
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Chemical Engineering 486: Chemical and Biological Process Safety
3.00 Credits
The University of Tennessee
Introduction to chemical process safety augmented with case studies. Topics include safety strategies and accident prevention; toxic substances in the workplace and industrial hygiene; accidental release of hazardous materials and dispersion modeling; fires and explosions - design for prevention; design of emergency pressure relief systems; and identifying potential hazards. (RE) Prerequisite(s): 201 and 240.
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Chemical Engineering 486 - Chemical and Biological Process Safety
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Chemical Engineering 488: Honors:Design Internship in Green Engineering
3.00 Credits
The University of Tennessee
Selected students work in small groups to address the prevention of industrial pollution through improved design of chemical and biochemical processes. Directed by faculty and engineers from a host company. (RE) Prerequisite(s): 480. Comment(s): May be substituted for 490 with departmental approval. Registration Permission: Consent of instructor.
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Chemical Engineering 488 - Honors:Design Internship in Green Engineering
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Chemical Engineering 490: Process Design and Economic Analysis
3.00 Credits
The University of Tennessee
Development of process information into an integrated chemical or biochemical plant design. Process specifications, capital investment, operating costs, and economic feasibility. Computer simulation of final plant design. (RE) Prerequisite(s): 480.
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Chemical Engineering 490 - Process Design and Economic Analysis
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