Course Details

Utility Networks (S)

Academic Year 2026/27

BPB001 course is part of 1 study plan

BPC-SI / S Summer Semester 4th year

The course focuses on utility networks, particularly underground utility infrastructure. The general part covers basic terminology, classification and categories of utility networks and their historical development. Attention is paid to relevant standards and regulations, spatial coordination of utility networks, and the design of shared utility corridors. The course also covers the basic principles of designing pipeline networks, including water supply, sewerage, district heating, steam and gas networks, as well as electrical power, telecommunication and data networks. From the construction perspective, students are introduced to pipe materials and basic methods of construction and rehabilitation of utility networks, particularly those installed underground.

Credits

4 credits

Language of instruction

Czech

Semester

summer

Course Guarantor

Institute

Forms and criteria of assessment

course-unit credit and examination

Entry Knowledge

Basic knowledge of physics and the principles of hydraulics and thermodynamics.

Aims

Upon successful completion of the course, students will have acquired the knowledge, skills and competences required to understand utility networks, their spatial arrangement, design principles, construction and rehabilitation.

Knowledge

Upon successful completion of the course, students will:

  • know the basic terminology, classification, functions and characteristics of individual types of utility networks,
  • know the basic principles of the arrangement and design of water supply, sewerage, gas, district heating and other pipeline networks,
  • know the basic principles of the arrangement of electrical power, telecommunication and data networks,
  • understand the principles of spatial arrangement and coordination of utility networks,
  • know the principles of shared utility corridors,
  • be familiar with the basic technical, regulatory and legislative requirements related to the design and installation of utility networks,
  • know the basic materials and structural solutions used for utility networks and their characteristic properties,
  • know the basic technologies used for the construction, reconstruction and rehabilitation of utility networks.

Skills

Upon successful completion of the course, students will be able to:

  • distinguish between individual types of utility networks and identify their basic components,
  • read and interpret basic technical documentation for utility networks,
  • propose a basic spatial arrangement of utility networks and assess their mutual spatial relationships,
  • identify potential conflicts between utility networks and propose basic solutions,
  • apply basic technical and regulatory requirements when addressing the spatial arrangement of utility networks,
  • assess the suitability of basic material and structural solutions with regard to the type and installation method of a utility network,
  • select and justify an appropriate method of construction, reconstruction or rehabilitation of a utility network with regard to specific conditions,
  • solve basic technical tasks related to the design and coordination of utility networks.

Competences

Upon successful completion of the course, students will be able to:

  • work independently with relevant technical sources and navigate the basic technical issues related to utility networks,
  • assess technical and spatial relationships between different types of utility networks,
  • propose and professionally justify solutions to basic tasks related to the spatial arrangement, construction and rehabilitation of utility networks,
  • apply acquired knowledge and skills when solving technical tasks and preparing technical documentation,
  • communicate professionally about utility networks using appropriate technical terminology,
  • independently develop their knowledge using technical regulations, standards and professional sources.

Basic Literature

KUDA, F. a kol. Městské inženýrství nejen pro městské inženýry. 1. vyd. Praha: Informační centrum ČKAIT, 2022. ISBN 978-80-88265-39-9. (cs)
VYORALOVÁ, Z.; HRDLIČKA, P. Technická infrastruktura měst a sídel. Praha: České vysoké učení technické v Praze, 2013. ISBN 978-80-01-05202-0. (cs)
BROŽ, K. Zásobování teplem. 2. vyd. Praha: České vysoké učení technické v Praze, 2002. ISBN 978-80-01-02521-5. (cs)
KLEPSATEL, F.; RACLAVSKÝ, J. Bezvýkopová výstavba a obnova podzemních vedení. Bratislava: JAGA, 2007. ISBN 978-80-8076-053-3. (cs)
ČSN 73 6005 – Prostorové uspořádání vedení technického vybavení (cs)
ČSN P 73 7505 – Kolektory a ostatní sdružené trasy vedení inženýrských sítí. (cs)

Recommended Reading

STEIN, D. Grabenloser Leitungsbau. Berlin: Ernst & Sohn, 2003. ISBN 978-3-433-01778-4. (de)
ANSPACH, J. H.; SCOTT, C. P., eds. Subsurface Utility Engineering for Municipalities. Reston, VA: American Society of Civil Engineers, 2019. ISBN 978-0-7844-1536-8. (en)

Prerequisites

Basic knowledge of physics and the principles of hydraulics and thermodynamics.

Offered to foreign students

Not to offer

Course on BUT site

Lecture

13 weeks, 2 hours/week, elective

Syllabus

  • 1. Introduction to utility networks (conduit of technical equipment), history development.
  • 2. Spatial coordination of utility.
  • 3. Space arrangement of conduit of technical eguipment.
  • 4. Water supply.
  • 5. Sewerage networks.
  • 6. Regularities of gas flow, basic theory of pipe networks.
  • 7. Heat networks.
  • 8. Supply of gas pipeline networks.
  • 9. Gas pipeline networks.
  • 10. Energy and communication networks.
  • 11. Construction and rehabilitation of pipe networks.

Exercise

13 weeks, 2 hours/week, compulsory

Syllabus

  • 1. Coorditation of conduit of technical eguipment I., enter of seminary work.
  • 2. Coorditation of conduit of technical eguipment II.
  • 3. Design of cross section of the collector.
  • 4. Highrise scheme of water supply / water connection.
  • 5. Design of sewer connections I.
  • 6. Design of sewer connections II.
  • 7. Design of sewer connections III.
  • 8. Lenght optimization of water/gas pipelines.
  • 9. Seminar work - presentation.
  • 10. Seminar work - presentation.
  • 11. Credit.