635-3049/01 – Numerical simulations in energetics (NSE)

Gurantor departmentDepartment of Thermal EngineeringCredits5
Subject guarantorIng. Mario Machů, Ph.D.Subject version guarantorIng. Mario Machů, Ph.D.
Study levelundergraduate or graduateRequirementCompulsory
Year2Semesterwinter
Study languageCzech
Year of introduction2020/2021Year of cancellation
Intended for the facultiesFMTIntended for study typesFollow-up Master
Instruction secured by
LoginNameTuitorTeacher giving lectures
MAC589 Ing. Mario Machů, Ph.D.
RIG005 Ing. et Ing. David Rigo
Extent of instruction for forms of study
Form of studyWay of compl.Extent
Full-time Graded credit 0+4
Part-time Graded credit 0+12

Subject aims expressed by acquired skills and competences

student will be able to: - focus on modelling and simulation of real processes in energetics. - use the theoretical knowledge from field of energetics and complementary branches in synergy with numerical simulations. - apply the theoretical knowledge from technical branches in commercial software environment.

Teaching methods

Seminars
Individual consultations
Tutorials

Summary

The course is focused on theoretical knowledge which is essential in numerical simulation environment in relation to energetics and related branches. Historical insight into the problematics, principles of simulation design, the purposes and utilization the modelling and simulation selected problems, data mining and acquisition, simulation results and their application in praxis. Factors influencing the accuracy of predicted results and its compensation.

Compulsory literature:

1. DRISS, Zied, NECIB, Brahim and Hao-Chun ZHANG (eds). CFD Techniques and Energy Applications. Cham: Springer Nature, 2018. ISBN 9783319709505. 2. MOUKALLED, F., MANGANI, L., DARWISH, M. The Finite Volume Method in Computational Fluid Dynamics. New York: Springer, 2015. 791 s. ISBN 978-3319168746. 3. CHEN, Xiaolin a Yijun LIU. Finite element modeling and simulation with ANSYS Workbench. Boca Raton: CRC Press, c2015. ISBN 978-1-4398-7384-7.

Recommended literature:

1. GLICKSMAN, L. R., LIENHARD V, J. H. Modeling and Approximation in Heat Transfer. 1. vydání. New York: Cambridge University Press, 2016. 240 s. ISBN 978-1107012172. 2. DHAR, P.L. Thermal System Design and Simulation. 1. vydání. Cambridge: Academic Press, 2016. 620 s. ISBN 978-0128094495. 3. KRISHNA, S. An Introduction to Modelling of Power System Components. New Delhi: Springer Science & Business Media, 2014. 134 s. ISBN 978-8132218470.

Way of continuous check of knowledge in the course of semester

Závěrečné ověření studijních výsledků: prezenční i kombinovaná forma studia - prezentace vlastní seminární práce na vybrané téma s diskusí (kolokvium).

E-learning

Other requirements

1. Making the Final semester work on selected topics. Student chooses the topic from list of topics from beginning of lesson. The formal requirements for Final semester work will be reported to students from beginning of lesson. 2. Prerequisite for this course is undergraduate university knowledge of transport phenomena, heat transfer, mass (fluid) flow and computer skills – MS Excel and MS Word programs.

Prerequisities

Subject has no prerequisities.

Co-requisities

Subject has no co-requisities.

Subject syllabus:

The course is running through the several units. 1.Unit. Introduction to numerical simulation problematics. Physical modelling, abstract modelling. Similarity and modelling of processes. 2.Unit. Historical insight into modelling and simulation. Demonstration of problems without using the computers and commercial software. 3.Unit. Analytical and numerical methods. Finite differences, finite element method, finite volume method, CFD methods – theoretical fundamentals. 4.Unit. Commercial software, CAD systems. In addition, the invited lecture of guest coming from company with practical demonstration of simulation in real condition. 5.Unit. Basic principles for commercial software utilization – definition, subject, goal of simulated problem. Advantages and disadvantages of simulation, troubles. Principles and basics setting of problem. Boundary conditions. Case studies. 6.Unit. Working with commercial software handbooks, comparison the software environment together with theoretical interdisciplinary knowledge – limits and possibilities of simulation process. The conditions of right simulated problems. Case studies. 7.Unit. Excursion. 8.Unit. Utilization the simulations in technical-commercial branches: simulated reality, virtual reality, augmented reality. 9.Unit. Presentation given by students on selected topics - discussing the topics. Critical conclusions.

Conditions for subject completion

Part-time form (validity from: 2020/2021 Winter semester)
Task nameType of taskMax. number of points
(act. for subtasks)
Min. number of pointsMax. počet pokusů
Graded credit Graded credit 100  51 3
Mandatory attendence participation: 60% active attendance on Seminars. Drawing up and submission of an individual seminar paper on given topic. Deadline and drawing conditions of Seminar paper are given by teacher at the begining of course. Attendance on final colloquim including presentation of one's Seminar paper.

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Conditions for subject completion and attendance at the exercises within ISP: Completion of all mandatory tasks within individually agreed deadlines.

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Occurrence in study plans

Academic yearProgrammeBranch/spec.Spec.ZaměřeníFormStudy language Tut. centreYearWSType of duty
2024/2025 (N0719A270004) Materials and technologies for energy industry P Czech Ostrava 2 Compulsory study plan
2024/2025 (N0719A270004) Materials and technologies for energy industry K Czech Ostrava 2 Compulsory study plan
2023/2024 (N0719A270004) Materials and technologies for energy industry K Czech Ostrava 2 Compulsory study plan
2023/2024 (N0719A270004) Materials and technologies for energy industry P Czech Ostrava 2 Compulsory study plan
2022/2023 (N0719A270004) Materials and technologies for energy industry P Czech Ostrava 2 Compulsory study plan
2022/2023 (N0719A270004) Materials and technologies for energy industry K Czech Ostrava 2 Compulsory study plan
2021/2022 (N0719A270004) Materials and technologies for energy industry P Czech Ostrava 2 Compulsory study plan
2021/2022 (N0719A270004) Materials and technologies for energy industry K Czech Ostrava 2 Compulsory study plan
2020/2021 (N0719A270004) Materials and technologies for energy industry K Czech Ostrava 2 Compulsory study plan
2020/2021 (N0719A270004) Materials and technologies for energy industry P Czech Ostrava 2 Compulsory study plan

Occurrence in special blocks

Block nameAcademic yearForm of studyStudy language YearWSType of blockBlock owner

Assessment of instruction



2023/2024 Winter
2022/2023 Winter