Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Sin, Gürkan

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Technical University of Denmark

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (9/9 displayed)

  • 2023Mechanistic modeling of industrial fermentation processes for antibiotic productioncitations
  • 2022DeepGSA: Plant Data-Driven Global Sensitivity Analysis using Deep Learning4citations
  • 2019A Simulation-Based Superstructure Optimization Approach for Process Synthesis and Design Under Uncertaintycitations
  • 2018Property Prediction of Pharmaceuticals for Designing of Downstream Separation Processes4citations
  • 2017Powder stickiness in milk drying: uncertainty and sensitivity analysis for process understanding1citations
  • 2013Applying mechanistic models in bioprocess development.31citations
  • 2013Applying mechanistic models in bioprocess development.31citations
  • 2013Efficient Information and Data Management in Synthesis and Design of Processing Netorkscitations
  • 2013Early stage design and analysis of biorefinery networkscitations

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Pajander, Jari P.
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Magnússon, Atli Freyr
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Stocks, Stuart M.
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Al, Resul
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Aouichaoui, Adem Rosenkvist Nielsen
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Gernaey, Krist V.
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Abildskov, Jens
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Ruszczynski, Lukasz
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Molla, Getachew S.
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Ferrari, Adrián
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Gutiérrez, Soledad
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Carlquist, Magnus
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Heins, Anna-Lena
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Bodla, Vijaya Krishna
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Eliasson Lantz, Anna
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Fernandes, Rita Lencastre
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Lencastre Fernandes, Rita
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Quaglia, Alberto
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Gani, Rafiqul
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Co-Authors (by relevance)

  • Pajander, Jari P.
  • Magnússon, Atli Freyr
  • Stocks, Stuart M.
  • Al, Resul
  • Aouichaoui, Adem Rosenkvist Nielsen
  • Gernaey, Krist V.
  • Abildskov, Jens
  • Ruszczynski, Lukasz
  • Molla, Getachew S.
  • Ferrari, Adrián
  • Gutiérrez, Soledad
  • Carlquist, Magnus
  • Heins, Anna-Lena
  • Bodla, Vijaya Krishna
  • Eliasson Lantz, Anna
  • Fernandes, Rita Lencastre
  • Lencastre Fernandes, Rita
  • Quaglia, Alberto
  • Gani, Rafiqul
OrganizationsLocationPeople

document

Efficient Information and Data Management in Synthesis and Design of Processing Netorks

  • Sin, Gürkan
  • Quaglia, Alberto
  • Gani, Rafiqul
Abstract

Recent developments of Process Systems Engineering (PSE) have focused on different classes of industry-relevant decision-making problems (e.g. planning, scheduling, synthesis and design), under the general framework of Enterprise-Wide Optimization (EWO)(Grossmann, 2005). In EWO, decision-making problems are formulated as superstructure optimization problems, which are solved to identify the optimal decision. In order to formulate large-scale network synthesis problems, large amounts of data are need to describe i) the superstructure (in terms of list of alternatives and connections between them), ii) each of the process alternatives (in term of mass balance, waste emissions, operational and capital cost), iii) the optimality criterion (in terms of objective function coefficients such as prices), as well as iv) engineering, commercial and regulatory insights and context related information (such as regulatory limits, and product specs, etc.) (Quaglia et al., 2012). Being those data multisource and multidisciplinary, a consolidation step is required to ensure coherence in problem formulation. The formulation of EWO problems, therefore, requires collecting, consolidating and specifying a large number (typically 1000-100,000) of data (Quaglia et. al, submitted). As a result, EWO problem formulation is a time and resource intensive task. Moreover, compilation errors results in faulty problem specifications, and may compromise the quality of the obtained solution. In order to enable industrial use of EWO, therefore, methods and tools for efficient information and data management need to be developed.In this contribution, we present a systematic data architecture, which is integrated in our framework for synthesis and design of processing networks (Quaglia et al., submitted). The data structure is designed to enable automation, systematization and consolidation of the data needed for problem formulation. Those features have been implemented in a software tool for formulation of processing network synthesis and design problems, which guides the user through the steps of problem formulation, integrating automatic data consistency checks and connection to databases of physical properties and process data. Once all data have been specified, the problem is automatically converted into a GAMS readable program, which is executed to solve the optimization problem and identify the optimal processing network, without requiring any further editing from the user. Through the data structure and the formulation software, the workflow for problem formulation is optimized, and time and resources needed to formulate large problems are reduced, while at the same time ensuring internal consistency of the specified data. In this contribution, the framework for synthesis and design of processing network and the data structure are described. The generic and flexible nature of the framework (and of the associated data structure) is demonstrated through the formulation and solution of large scale industrial case studies. The case studies are selected from different industrial segments, such as food processing (soybean processing network), water and wastewater management (refinery wastewater treatment and reuse; municipal water treatment) and biorefinery.

Topics
  • impedance spectroscopy