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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Materials Map under construction

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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Hidayat, Taufiq

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (24/24 displayed)

  • 2023Development of experimental techniques for the phase equilibrium study in the Pb-Fe-O-S-Si system involving gas, slag, matte, lead metal and tridymite phases3citations
  • 2022Experimental study, thermodynamic calculations and industrial implications of slag/matte/metal equilibria in the Cu–Pb–Fe–O–S–Si system7citations
  • 2020Experimental measurement and thermodynamic model predictions of the distributions of Cu, As, Sb and Sn between liquid lead and PbO–FeO–Fe2O3–SiO2 slag13citations
  • 2020Thermodynamic assessment of the CaO–Cu2O–FeO–Fe2O3 system11citations
  • 2020The influence of temperature and matte grade on gas-slag-matte-tridymite equilibria in the Cu-Fe-O-S-Si system at p (SO2) = 0.25 atm2citations
  • 2019Experimental investigation and thermodynamic modeling of the distributions of Ag and Au between slag, matte, and metal in the Cu–Fe–O–S–Si system26citations
  • 2019Distributions of Ag, Bi, and Sb as minor elements between iron-silicate slag and copper in equilibrium with tridymite in the Cu-Fe-O-Si system at T = 1250 °C and 1300 °C (1523 K and 1573 K)24citations
  • 2019Combined experimental and thermodynamic modelling investigation of the distribution of antimony and tin between phases in the Cu-Fe-O-S-Si system18citations
  • 2019Characterisation of the Effect of Al2O3 on the Liquidus Temperatures of Copper Cleaning Furnace Slags Using Experimental and Modelling Approach4citations
  • 2019Experimental Study and Thermodynamic Calculations of the Distribution of Ag, Au, Bi, and Zn Between Pb Metal and Pb–Fe–O–Si slag17citations
  • 2019Integrated experimental study and thermodynamic modelling of the distribution of arsenic between phases in the Cu-Fe-O-S-Si system25citations
  • 2019Integrated experimental and thermodynamic modelling research for primary and recycling pyrometallurgycitations
  • 2019Experimental and thermodynamic modelling study of the effects of Al2O3, CaO AND MgO impurities on gas/slag/matte/spinel equilibria in the “Cu2O”-“FeO”-SiO2-S-Al2O3-CaO-MgO systemcitations
  • 2018Microanalysis and experimental techniques for the determination of multicomponent phase equilibria for non-ferrous smelting and recycling systems4citations
  • 2017Experimental investigation of gas/slag/matte/tridymite equilibria in the Cu-Fe-O-S-Si System in controlled gas atmospheres: Experimental results at 1473 K (1200 A degrees C) and P(SO2)=0.25 atm38citations
  • 2017High-temperature experimental and thermodynamic modelling research on the pyrometallurgical processing of copper2citations
  • 2017The integration of plant sample analysis, laboratory studies, and thermodynamic modeling to predict slag-matte equilibria in nickel sulfide converting4citations
  • 2017Experimental and modelling research in support of energy savings and improved productivity in non-ferrous metal production and recyclingcitations
  • 2017Experimental investigation of gas/slag/matte/tridymite equilibria in the Cu-Fe-O-S-Si system in controlled atmospheres: Development of technique59citations
  • 2016Determination of thermodynamic properties of Ca4Fe9O17 by solid state EMF method5citations
  • 2015Recent advances in research for non-ferrous smelting and recyclingcitations
  • 2013Critical assessment and thermodynamic modeling of the Cu-Fe-O system65citations
  • 2012Experimental study of ferrous calcium silicate slags: Phase equilibria at P(O(2)) between 10(-5) atm and 10(-7) atm23citations
  • 2012Phase equilibria studies of Cu-O-Si systems in equilibrium with air and metallic copper and Cu-Me-O-Si systems (Me = Ca, Mg, Al, and Fe) in equilibrium with metallic copper40citations

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Chart of shared publication
Fallah-Mehrjardi, Ata
4 / 13 shared
Shevchenko, Maxim
6 / 48 shared
Jak, Evgueni
24 / 156 shared
Hayes, Peter
18 / 115 shared
Mehrjardi, Ata Fallah
2 / 5 shared
Chen, Jiang
5 / 18 shared
Prostakova, Viktoria
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Decterov, Sergei A.
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Grimsey, David
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Taskinen, Pekka
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Aspiala, Markus
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Henao, Hector M.
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Co-Authors (by relevance)

  • Fallah-Mehrjardi, Ata
  • Shevchenko, Maxim
  • Jak, Evgueni
  • Hayes, Peter
  • Mehrjardi, Ata Fallah
  • Chen, Jiang
  • Prostakova, Viktoria
  • Decterov, Sergei A.
  • Grimsey, David
  • Taskinen, Pekka
  • Aspiala, Markus
  • Henao, Hector M.
OrganizationsLocationPeople

article

Integrated experimental study and thermodynamic modelling of the distribution of arsenic between phases in the Cu-Fe-O-S-Si system

  • Jak, Evgueni
  • Hidayat, Taufiq
  • Hayes, Peter
  • Chen, Jiang
Abstract

An integrated experimental study and thermodynamic modelling approach has been used in the investigation of the distribution of As between slag and matte in equilibrium with tridymite in the Cu-Fe-O-S-Si system. The experimental technique involves high-temperature equilibration in sealed quartz ampoule, rapid quenching, and direct measurements of phase compositions using microanalysis techniques. Electron Probe X-ray Microanalysis (EPMA) was used to measure major and minor element concentrations in the matte, slag, and solid phases. The experimentally-determined distribution coefficient of As between slag and matte was found to decrease with decreasing P(SO ) from log L = 0.5 at P(SO ) = 25 kPa to approximately log L = −4.0 at lowest P(SO ), corresponding to metal saturation. Thermodynamic model parameters describing As distribution have been derived based on the present and previous data on the slag/matte, slag/metal, and slag/matte/metal equilibria. The thermodynamic model can be used for the evaluation of distribution of As between phases in the high-temperature pyrometallurgical production and refining of copper.

Topics
  • phase
  • copper
  • quenching
  • Arsenic
  • electron probe micro analysis