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April 17, 2026Forests0 citationsOpen Access

Developing Biomass Growth Models for Chinese Fir Plantations Based on National Forest Inventory Data

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WZWeiSheng ZengXWXuexiang WenXSXiangnan Sun

Key Points

  • The research analyzes how site quality class, stand density index, and species composition influence biomass growth in Chinese fir plantations.
  • Analyzed 5872 observations from 2040 permanent sample plots of Chinese fir plantations.
  • Developed a dominant height growth model to assess site quality class.
  • Utilized five classical growth equations with nonlinear regression for modeling biomass growth.
  • Investigated growth differences using inflection age and optimal rotation age.
  • Korf equation was determined to be the most effective for dominant height and stand biomass models.
  • Stand density index was the primary contributor to stand biomass growth.
  • Mixed stands exhibited faster growth compared to pure stands.
  • Higher site quality class correlated with quicker growth rates and earlier optimal rotation ages.

Abstract

The study aims to analyze comprehensive effects of site quality class (SQC), stand density index (SDI), and species composition (SC) on biomass growth. Based on 5872 observations from 2040 permanent sample plots of Chinese fir (Cunninghamia lanceolata (Lamb.) Hook.) plantations from successive national forest resource inventories, five classical growth equations were employed and nonlinear regression and dummy variables were used for modeling. A dominant height (DH) growth model was first developed to determine SQC, followed by a series of stand biomass (SB) growth models incorporating SQC, SDI, and SC (pure vs. mixed stands). Growth differences among different classes or categories were analyzed using inflection age and optimal rotation age. The results show that Korf equation performed best for both DH and SB growth models; SDI contributed the most to SB growth, followed by SQC, with their interaction accounting for over half of the total contribution. Mixed stands grew faster than pure stands; higher SQC was associated with faster growth and earlier attainment of inflection age and optimal rotation age. The productivity increased with rising SDI, but the rate of increase gradually diminished. Different optimal rotation ages should be determined for pure and mixed stands across different SQCs. Reasonable adjustment of harvesting age and control of stand density represent the greatest potential for improving forest productivity.

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Cite This Study

Zeng et al. (2026) studied this question.

synapsesocial.com/papers/69e1ce605cdc762e9d857704https://doi.org/10.3390/f17040485
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