637-3010/03 – Noble and Precious Metals (UVK)

Gurantor departmentDepartment of Non-ferrous Metals, Refining and RecyclingCredits6
Subject guarantordoc. Ing. Ivo Szurman, Ph.D.Subject version guarantordoc. Ing. Ivo Szurman, Ph.D.
Study levelundergraduate or graduateRequirementCompulsory
Year1Semestersummer
Study languageCzech
Year of introduction2019/2020Year of cancellation2022/2023
Intended for the facultiesFMTIntended for study typesFollow-up Master
Instruction secured by
LoginNameTuitorTeacher giving lectures
KUR30 prof. Ing. Miroslav Kursa, CSc.
SZU02 doc. Ing. Ivo Szurman, Ph.D.
Extent of instruction for forms of study
Form of studyWay of compl.Extent
Full-time Credit and Examination 3+2
Part-time Credit and Examination 18+0

Subject aims expressed by acquired skills and competences

Student will be able to: - formulate basic characteristic properties of this group of metals and their alloys - select an optimum material for various areas of application from the viewpoint of their mechanical properties and interaction with the environment - evaluate and propose optimum technologies for production of individual metals and their alloys - evaluate or predict influence of individual technological parameters on production process, its efficiency and impacts on environment - evaluate influence of possible impurities on service properties of metals and their alloys - propose efficient refining processes for metals of this group

Teaching methods

Lectures
Individual consultations
Tutorials
Experimental work in labs
Project work

Summary

Noble metals, or so called „precious metals“, comprise silver, gold and metals from the platinum group, which find extensive use in electrical engineering and micro- electronics. This concerns primarily electrical conductivity and constant quality of metal surface (Au). Refractory metals, such as W, Mo, Ta, Nb and others, are interesting for the area of vacuum technology. In the group of functional materials (magnetic materials, luminescent materials, etc.). some rare metals find their use. Students will acquire information on production of these metals, influence of admixtures on their properties, possibilities of their modifications and application in practice.

Compulsory literature:

GUPTA, CH. K. Chemical metallurgy: principles and practice. Hoboken: Wiley, 2004. ISBN 3-527-60200-3. KURSA, M. a I. SZURMAN. Noble and precious metals. Ostrava: VŠB-TU Ostrava, 2013. http://katedry.fmmi.vsb.cz/Opory_FMMI_ENG/AEM/Noble%20and%20Precious%20Metals.pdf DONACHIE, M.J. Titanium: a technical guide. 2nd ed. Materials Park: ASM International, 2000. ISBN 0-87170-686-5.

Recommended literature:

CHANDLER, H. Metallurgy for the non-metallurgist. Materials Park: ASM International, 1998. ISBN 0-87170-652-0.

Way of continuous check of knowledge in the course of semester

Continuous verification of learning outcomes: • full-time study form - 1 written test, 1 semestral project; • combined study form - 1 semestral project. Final verification of study results: • oral exam.

E-learning

not evalaible

Other requirements

• Full-time study form: participation in the lab works, test, elaboration of the semestral project on a given topic. • Combined study form: elaboration of the extened semestral project on a given topic

Prerequisities

Subject has no prerequisities.

Co-requisities

Subject has no co-requisities.

Subject syllabus:

1. Characteristics of noble metals. 2.-3. Gold, silver and metals of platinum group. 4.-5. Overview of methods of production of these metals as by-products at production of copper, lead and nickel. 6.-8. Individual procedures for processing of raw materials for production of noble metals, amalgamation, cyanide leaching, new processing procedures, refining of noble metals. 9.-10. High-melting metals, characteristic features, influence on production technology, refining and processing of W, Mo, V, Ta, Nb, Ti, Zr and Hf. 11.-12. Metals of rare occurrence and lanthanides, properties, principles of their production and their application in practice. 13.-14. Naturally radioactive metals (U, Th) – characteristics. Properties, occurrence, processing methods, use in nuclear power engineering.

Conditions for subject completion

Part-time form (validity from: 2019/2020 Summer semester, validity until: 2022/2023 Summer semester)
Task nameType of taskMax. number of points
(act. for subtasks)
Min. number of pointsMax. počet pokusů
Credit and Examination Credit and Examination 100 (100) 51
        Credit Credit 40  20
        Examination Examination 60  21 3
Mandatory attendence participation: Preparation of a semester project on the given topic.

Show history

Conditions for subject completion and attendance at the exercises within ISP:

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Occurrence in study plans

Academic yearProgrammeBranch/spec.Spec.ZaměřeníFormStudy language Tut. centreYearWSType of duty
2021/2022 (N0715A270002) Materials Engineering (S02) Materials technologies and recycling MTI P Czech Ostrava 1 Compulsory study plan
2021/2022 (N0715A270002) Materials Engineering (S02) Materials technologies and recycling MTI K Czech Ostrava 1 Compulsory study plan
2020/2021 (N0715A270002) Materials Engineering (S02) Materials technologies and recycling MTI K Czech Ostrava 1 Compulsory study plan
2020/2021 (N0715A270002) Materials Engineering (S02) Materials technologies and recycling MTI P Czech Ostrava 1 Compulsory study plan
2019/2020 (N0715A270002) Materials Engineering (S02) Materials technologies and recycling MTI P Czech Ostrava 1 Compulsory study plan
2019/2020 (N0715A270002) Materials Engineering (S02) Materials technologies and recycling MTI K Czech Ostrava 1 Compulsory study plan

Occurrence in special blocks

Block nameAcademic yearForm of studyStudy language YearWSType of blockBlock owner

Assessment of instruction



2020/2021 Summer