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February 19, 2026Heritage0 citationsOpen Access

Experimental Assessment of Post-Fire Residual Material Properties of Marlstone

RZRadek ZiglerEJEma JankovičováKKKateřina Kovářová

Key Points

  • This research aims to assess how fire affects the mechanical properties of marlstone, crucial for heritage conservation efforts.
  • Cylindrical marlstone specimens tested at various temperatures (620 °C, 870 °C, 1100 °C)
  • Uniaxial compression tests conducted to determine residual strength and Young’s modulus
  • XRF and petrographic analyses performed to evaluate mineralogical changes
  • CIELab color measurements taken to assess visual alterations from heating
  • Mechanical performance changes observed are temperature-dependent
  • Transformations identified in silica and calcite phases post-fire
  • Color changes correspond with heating, indicating visual impacts of temperature
  • Variability in material response attributed to marlstone's heterogeneity and anisotropy

Abstract

Marlstone, widely used in Romanesque and Gothic architecture across Central Europe, is a common component of heritage structures whose post-fire behavior is critical for preservation. This study examines fire-induced changes in marlstone to support post-fire assessment and conservation. Cylindrical specimens (35 mm diameter, 70 mm height) were heated to 620 °C, 870 °C, and 1100 °C, then subjected to uniaxial compression tests to determine residual strength, strain, and Young’s modulus compared with unheated controls. Both natural and quenched cooling regimes were evaluated. Complementary XRF and petrographic analyses identified mineralogical and microstructural changes, while CIELab color measurements quantified temperature-induced visual alterations. Results show temperature-dependent changes in mechanical performance, accompanied by transformations in silica and calcite phases, along with measurable color changes. Variability in response reflects the inherent heterogeneity and anisotropy of marlstone. These findings provide essential insight into the thermal vulnerability of historic marlstone masonry and offer practical guidance for conservation, restoration, and post-fire evaluation of heritage stone structures.

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Cite This Study

Zigler et al. (2026) studied this question.

synapsesocial.com/papers/6996a798ecb39a600b3ed686https://doi.org/10.3390/heritage9020076
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