Data for: Effective Thermal Conductivity of Packed Bed of Porous Biochar Particles
https://doi.org/10.5878/pgq2-ga70
Densified biochar particles emerge as a promising carbon-negative insulation solution for building constructions. Their effective thermal conductivity (ETC) is a critical parameter, but has not been systematically investigated in dependence of particle size, shape and packed bed porosity.
The provided data sets allows the computation of a fully experiment-based ETC, using the approach from the article "Effective thermal conductivity of packed beds made of cubical particles" (10.1016/j.ijheatmasstransfer.2022.122994), as well as model-based ETC using the Zehner-Bauer-Schlünder approach.
Biochar particles of dried spruce bark chips were pyrolyzed in a pilot-scale rotary kiln reactor at around 350-400 °C with a residence time of ca. 45 min. Biochar particles were subsequently mixed with a binder and densified with a vacuum extruding process to a cylindrical shape before being crushed into smaller particles to eliminate the anisotropic pore structure and thermal conductivity inside individual particles.
The data includes measured data of particle thermal conductivity and heat capacity, using LFA 467HT from NETZSCH GmbH, Germany, and coin-shaped samples with diameters of 12.5±0.2 mm and thicknesses of 2.5±0.5 mm for the measurement. The particle size distributions were obtained from Camsizer from Microtrac Retsch GmbH, Germany.
The particle shape, i.e. sphericity, was obtained from X-ray microtomography (XMT) using a Zeiss Xradia 510 Versa tomograpy and cylindrical packed beds with an inner diameter of 23 mm and a height of 18 mm. The tube voltage was 40 kV and a tube power of 3 W to reduce beam hardening artifacts. Each scan collected 1601 projections over a full 360° rotation. Image resolutions were adjusted based on the particle sizes, with voxel sizes of 5 μm for packed beds containing smaller particles of around 0.315 mm and 23 μm for all other samples. The number of particles in the samples ranged from about 70 to 200,000. The X-ray microtomography (XMT) raw data can be viewed using the open-source software Fiji (https://imagej.net/software/fiji).
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Data files
Data files
- Thermal conductivity and specific heat.xlsx24.08 KiB
Documentation files
Documentation files
Citation and access
Citation and access
Data access level:
Creator/Principal investigator(s):
- Zahra Ghasemi Monfared – Luleå University of Technology - Department of Engineering Sciences and Mathematics
Research principal:
Data contains personal data:
No
Citation:
Language:
Method and outcome
Method and outcome
Data format/data structure:
Data collection - Laboratory experiment
Data collection - Laboratory experiment
Mode of collection:
Laboratory experiment
Description of the mode of collection:
The data includes measured data of particle thermal conductivity and heat capacity, using LFA 467HT from NETZSCH GmbH, Germany, and coin-shaped samples with diameters of 12.5±0.2 mm and thicknesses of 2.5±0.5 mm for the measurement.
The particle shape, i.e. sphericity, was obtained from X-ray microtomography (XMT) using a Zeiss Xradia 510 Versa tomograpy and cylindrical packed beds with an inner diameter of 23 mm and a height of 18 mm. The tube voltage was 40 kV and a tube power of 3 W to reduce beam hardening artifacts. Each scan collected 1601 projections over a full 360° rotation. Image resolutions were adjusted based on the particle sizes, with voxel sizes of 5 μm for packed beds containing smaller particles of around 0.315 mm and 23 μm for all other samples. The number of particles in the samples ranged from about 70 to 200,000.
Data collector:
- Luleå University of Technology
Opens a new window at ror.org.
ROR
Sample
Sample
Name:
Biochar
Description of sample:
Biochar particles of dried spruce bark chips were pyrolyzed in a pilot-scale rotary kiln reactor at around 350-400 °C with a residence time of ca. 45 min. Biochar particles were subseqnetly mixed with a binder and densified with a vacuum extruding process to a cylindrical shape before beeing crushed into smaller particles to eliminate the anisotropic pore structure and thermal conductivity inside individual particles.
Data collection - Laboratory experiment
Data collection - Laboratory experiment
Mode of collection:
Laboratory experiment
Description of the mode of collection:
The provided data sets allows the computation of a fully experiment-based ETC, using the approach from the article "Effective thermal conductivity of packed beds made of cubical particles" (10.1016/j.ijheatmasstransfer.2022.122994), as well as model-based ETC using the Zehner-Bauer-Schlünder approach.
The particle size distributions were obtained from Camsizer from Microtrac Retsch GmbH, Germany.
Data collector:
- Otto von Guericke University Magdeburg
Opens a new window at ror.org.
ROR
Administrative information
Administrative information
Responsible department/unit:
Department of Engineering Sciences and Mathematics
Contributor(s):
- Henrik Lycksam – Luleå University of Technology - Department of Engineering Sciences and Mathematics
Funding
Funding
Funding agency:
- Swedish Research Council
Opens a new window at ror.org.
ROR
Award number:
2023-04185_VR
Award title:
Heat and mass transfer of reacting porous particles
Funding information:
The purpose of this project is to contribute to the development of a high-fidelity simulation model for the thermochemical conversion of biomass. Particularly, we focus on heat and mass transfer inside reacting fuel particles and their surroundings. The main aims are to build a better understanding of how (1) different types of chemical reactions affect intra-particle transport phenomena, (2) different pore size distribution affects the transport phenomena, and (3) internal and external transport phenomena interact under various conditions of surrounding flows. With the new insight, we will also aim to develop simple closure models describing the above effects.The majority of this project will be carried out by a particle-resolve direct numerical simulation (PR-DNS), which has been developed by the applicants in the previous project funded by Swedish Research Council. For each research question, we will modify the PR-DNS code to describe specific effects, e.g. chemical reactions, pore-size effects, and so on. The project will be mainly carried out by a new PhD student under the supervision of the applicants with relevant competence.The project will fill the knowledge gap that is important to build a reliable and efficient simulation tool mainly for pulverised biomass combustion and gasification, but also applicable for metal combustion in part. It has a positive impact on the development of low-carbon technologies, such as biofuel production and thermochemical energy storage.
Funding agency:
- Swedish Energy Agency
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ROR
Award number:
P46974-1
Funding agency:
- The German Research Foundation (DFG)
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ROR
Award number:
422037413
Award title:
TRR 287 Bulk Reaction
Topic and keywords
Topic and keywords
Swedish Standard Classification of Research Subjects 2025:
Publications
Publications
Citation:
Vorhauer-Huget, Ghasemi Monfared, et al., Effective thermal conductivity of packed bed of porous biochar particles, Particuology 116 (2026), 437-447
Metadata
Metadata
Version 1

Luleå University of Technology