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January 17, 2026Forests0 citationsOpen Access

Influence of Density, Temperature, and Moisture Content on the Dielectric Properties of Pedunculate Oak (Quercus robur L.)

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DPDario PervanSPStjepan PervanMKMiljenko Klarić

Key Points

  • The aim is to determine how temperature, moisture content, and density influence the dielectric properties of oak wood.
  • Conditioned oak lamellas at 20 °C using saturated salt solutions.
  • Measured dielectric properties with an Agilent 4285A LCR meter.
  • Conducted analyses according to ASTM D150-22.
  • Applied multiple linear regression to identify significant influences on electrical properties.
  • Dielectric properties increased with higher density and moisture content.
  • Temperature had a statistically significant but smaller impact on properties.
  • Changes in dielectric properties were most noticeable at frequencies below 1 MHz.

Abstract

This study examines the effects of temperature, relative humidity, moisture content, and density on the dielectric constant (ε′) and dielectric loss tangent (tan δ) of oak wood lamellae within a frequency range of 0.079 MHz to 25.1 MHz. The hypothesis tested was that increased temperature and moisture content enhance both dielectric polarization and loss, while density acts as a dominant structural determinant of dielectric behaviour. Oak lamellas were conditioned above saturated salt solutions at 20 °C and measured using an Agilent 4285A LCR meter according to ASTM D150-22. Multiple linear regression was used to demonstrate the statistically significant influence of temperature, relative humidity, moisture content, and density on the tested electrical properties of the lamellas. The results showed that the dielectric properties increase with higher sample density and higher air humidity. Temperature also had an influence, but it was significantly smaller, though still statistically significant (p < 0.05). Changes in dielectric properties were most pronounced at frequencies below 1 MHz, suggesting that dipolar and interfacial polarization are greater at lower frequencies. The findings in this paper provide a basis for optimizing the high frequency/dielectric heating process for heating before bending of oak and other similar hardwoods.

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Cite This Study

Pervan et al. (2026) studied this question.

synapsesocial.com/papers/696b25f3d2a12237a9349302https://doi.org/10.3390/f17010120
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