Finn Nußbaum

M.Sc.
Wissenschaftlicher Mitarbeiter

Kontakt

Finn Nußbaum, M. Sc.
E-6 Elektrische Energietechnik
  • Elektrische Energietechnik
Sprechzeiten
nach Vereinbarung
Harburger Schloßstraße 22a,
21079 Hamburg
Gebäude HS22a, Raum 2.017
Tel: +49 40 42878 4092
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Forschungsprojekt

KoLa
Koordinierungsfunktion des Verteilnetzes und Lastmanagement für den elektrifizierten Personenverkehr

KoLa

Koordinierungsfunktion des Verteilnetzes und Lastmanagement für den elektrifizierten Personenverkehr

Bundesministerium für Wirtschaft und Klimaschutz (BMWK); Laufzeit: 2022 bis 2026

Publikationen

TUHH Open Research (TORE)

2024

2023

Lehrveranstaltungen

Stud.IP
link to course in Stud.IP Studip_icon
Industrial Processes Under High Pressure (VL)
Subtitle:
This course is part of the module: High Pressure Chemical Engineering
Semester:
SoSe 24
Course type:
Lecture
Course number:
lv116_s24
Lecturer:
Carsten Zetzl
Description:
Part I : Physical Chemistry and Thermodynamics

1.      Introduction: Overview, achieving high pressure, range of parameters.

2.       Influence of pressure on properties of fluids: P,v,T-behaviour, enthalpy, internal energy,     entropy, heat capacity, viscosity, thermal conductivity, diffusion coefficients, interfacial tension.

3.      Influence of pressure on heterogeneous equilibria: Phenomenology of phase equilibria

4.      Overview on calculation methods for (high pressure) phase equilibria).
Influence of pressure on transport processes, heat and mass transfer.

Part II : High Pressure Processes

5.      Separation processes at elevated pressures: Absorption, adsorption (pressure swing adsorption), distillation (distillation of air), condensation (liquefaction of gases)

6.      Supercritical fluids as solvents: Gas extraction, cleaning, solvents in reacting systems, dyeing, impregnation, particle formation (formulation)

7.      Reactions at elevated pressures. Influence of elevated pressure on biochemical systems: Resistance against pressure

Part III :  Industrial production

8.      Reaction : Haber-Bosch-process, methanol-synthesis, polymerizations; Hydrations, pyrolysis, hydrocracking; Wet air oxidation, supercritical water oxidation (SCWO)

9.      Separation : Linde Process, De-Caffeination, Petrol and Bio-Refinery

10.  Industrial High Pressure Applications in Biofuel and Biodiesel Production

11.  Sterilization and Enzyme Catalysis

12.  Solids handling in high pressure processes, feeding and removal of solids, transport within the reactor.

13.   Supercritical fluids for materials processing.

14.  Cost Engineering

Learning Outcomes:  

After a successful completion of this module, the student should be able to

-         understand of the influences of pressure on properties of compounds, phase equilibria, and production processes.

-         Apply high pressure approches in the complex process design tasks

-         Estimate Efficiency of high pressure alternatives with respect to investment and operational costs


Performance Record:

1.  Presence  (28 h)

2. Oral presentation of original scientific article (15 min) with written summary

3. Written examination and Case study 

    ( 2+3 : 32 h Workload)

Workload:

60 hours total

Performance accreditation:
645 - High Pressure Chemical Engineering<ul><li>645 - High Pressure Chemical Engineering: Klausur schriftlich</li></ul><br>646 - High Pressure Chemical Engineering<ul><li>645 - High Pressure Chemical Engineering: Klausur schriftlich</li><li>845 - Compulsory Course Work High Pressure Chemical Engineering - Presentation: Presentation</li></ul>
ECTS credit points:
2
Stud.IP informationen about this course:
Home institute: Institut für Thermische Verfahrenstechnik (V-8)
Registered participants in Stud.IP: 1

Betreute Abschlussarbeiten

laufende

2024

  • Ahmed, Taha (2024). Development of an iterative multi-agent coordination framework for congestion prevention in low voltage grids.

  • Busch, Marcel (2024). Entwicklung eines Netzmodells zur szenarienbasierten Untersuchung von Engpässen in heutigen und zukünftigen städtischen Verteilnetzen.

  • Lindner, Joost (2024). Entwicklung einer probabilistischen Lastprognose für die Niederspannungsebene elektrischer Verteilnetze.

  • Möller, Julius (2024). Untersuchung von Kennzahlen zur Bewertung der Diskriminierungsfreiheit von Engpassmanagementmaßnahmen.

  • Wilke, Jan Jakob (2024). Definition leistungsbasierter Netzregeln zur Engpassvermeidung in elektrischen Verteilnetzen.

beendete

2024

  • Ming, Zhao (2024). Conceptual Design for a grid demonstrator for teaching purposes and development of a suitable distribution grid simulation.

2023

  • Kock am Brink, Jonas (2023). Entwicklung einer Engpassprognose für elektrische Verteilnetze mittels probabilistischer Verfahren.