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Marco Campestrini

Marco Campestrini

Researcher Scientist

Center · CEEP

Awards & distinctions

  • 2012 Second-Best Poster at the CRYOGENICS Conference

Team

TP - Thermodynamique des Procédés

Biography

Marco Campestrini is a researcher specializing in the thermodynamics of complex mixtures and phase equilibria, with particular expertise in the study of cryogenic systems and liquefaction processes. His work focuses on the modeling and experimental determination of the solubility limits of heavy compounds (such as aromatics, CO₂, or neopentane) in mixtures rich in methane or liquefied natural gas (LNG), which are essential for assessing the risks of crystallization in industrial processes. He has contributed to the development of equations of state (such as the Peng-Robinson equation or models based on Gibbs energy) to describe solid-fluid equilibria at low temperatures, as well as to the analysis of multicomponent phase diagrams, including binary and ternary systems. His research also extends to applications in planetology, such as the study of phase equilibria in extraterrestrial environments (e.g., Titan), and in detector physics, with work on the scintillation properties of liquefied noble gases.

Publication(s)

Teaching

General Engineering Professions (MIG)

Lecturer

A MIG is a personalized, project-based learning program that brings together a group of 12 or 14 students, guided by the School’s faculty members, to explore a complex problem in its various dimensions—including, of course, scientific and technical aspects, but also cross-disciplinary aspects (socioeconomics, management, law, the environment, etc., depending on the field being studied). Ten different topics are offered. They all reflect current research themes being developed by the School’s centers and industry. The challenges students will tackle through these 10 projects address major issues facing the industry of the future and society: From Energy Resource Transformation to Management, Data Science and Innovative Applications, Raw Material Extraction and Environmental Impact, Design and Materials for Aeronautics and the Automotive Industry, and Medical and Hospital Care Engineering Each MIG topic is addressed through complementary and interrelated activities during an intensive three-week period: - company visits, lectures, and classes - a period of experimentation and/or modeling at a research center or in a company, in the form of mini-projects carried out in small groups. In addition, each group of students collectively summarizes the work completed in the form of a written report and an oral presentation before a panel of industry professionals. This presentation will allow you to better understand all aspects of the topic and to deepen your teamwork skills.

Energy Engineering

Lecturer

In-person instruction is structured around plenary sessions in the lecture hall and small-group tutorials (PC) with smaller class sizes. The 14-hour independent study component includes the following activities: Self-assessment multiple-choice quiz to be completed before class (30 min). If students have difficulty answering the questions, they are directed to online course review materials. 1 mini project in energy engineering to be completed in pairs (performance analysis of cycles using COOLPROP software or sizing an energy system) (7.5 hours) Review of course material before the exam (6 hours)

Process Design

Course Director

Convective transport: characterization based on residence time distribution. Analogy and coupling of mass and heat transfer. Drying. Absorption of air pollutants and catalytic reactors. Precipitation of pigment powders. Polymerization. Lab exercise on the drying of a food product. Visit to a production facility. Case studies in mini-projects.

PhD supervision

  • 2026 Experimental measurement and thermodynamic modeling of phase equilibria for reactive working fluids based on carboxylic acids intended for high-temperature heat pumps MAOULI Soukaina
  • 2024 Study of phase equilibria of a ternary mixture and three-phase flow (liquid, solid, gas) at low temperatures. MAKKI Hussein
  • 2022 The development of experimental and computational thermodynamics to describe phase equilibria of cryogenic mixtures in the context of the energy transition SIAH Wen Hwa
  • 2021 Molecular self-assembly in van der Waals solids, applications to planetology and energy transport and storage GASSIES Nicolas
  • 2018 Modeling of small tanks for the storage of cryogenic liquids BAIGUINI Nicolò
  • 2018 Investigation of phase equilibria at low temperatures including molecular solids: application to LNG production HOCEINI Salem
  • 2017 Influence of a magnetic field on the separability of a mixture of paramagnetic and diamagnetic molecules PLAYS Thibault