Shortwave Radiation Calculation for Forest Plots Using Airborne LiDAR Data and Computer Graphics

Author:

Xue Xinbo12ORCID,Jin Shichao3,An Feng4,Zhang Huaiqing5,Fan Jiangchuan6,Eichhorn Markus P.78,Jin Chengye1,Chen Bangqian4,Jiang Ling1,Yun Ting12ORCID

Affiliation:

1. School of Information Science and Technology, Nanjing Forestry University, Nanjing 210037, China

2. Forestry College, Nanjing Forestry University, Nanjing 210037, China

3. Plant Phenomics Research Centre, Academy for Advanced Interdisciplinary Studies, Collaborative Innovation Centre for Modern Crop Production Cosponsored by Province and Ministry, Nanjing Agricultural University, Nanjing 210095, China

4. Chinese Academy of Tropical Agricultural Sciences, Ministry of Agriculture, Rubber Research Institute, Danzhou Investigation and Experiment Station of Tropical Crops, Danzhou, China

5. Research Institute of Forestry Resource Information Techniques, Chinese Academy of Forestry, Beijing 100091, China

6. National Engineering Research Center for Information Technology in Agriculture, Beijing 100097, China

7. School of Biological, Earth and Environmental Sciences, University College Cork, Distillery Fields, North Mall, Cork T23 N73K, Ireland

8. Environmental Research Institute, University College Cork, Lee Road, Cork T23 XE10, Ireland

Abstract

Forested environments feature a highly complex radiation regime, and solar radiation is hindered from penetrating into the forest by the 3D canopy structure; hence, canopy shortwave radiation varies spatiotemporally, seasonally, and meteorologically, making the radiant flux challenging to both measure and model. Here, we developed a synergetic method using airborne LiDAR data and computer graphics to model the forest canopy and calculate the radiant fluxes of three forest plots (conifer, broadleaf, and mixed). Directional incident solar beams were emitted according to the solar altitude and azimuth angles, and the forest canopy surface was decomposed into triangular elements. A ray tracing algorithm was utilized to simulate the propagation of reflected and transmitted beams within the forest canopy. Our method accurately modeled the solar radiant fluxes and demonstrated good agreement ( R 2 0.82 ) with the plot-scale results of hemispherical photo-based HPEval software and pyranometer measurements. The maximum incident radiant flux appeared in the conifer plot at noon on June 15 due to the largest solar altitude angle (81.21°) and dense clustering of tree crowns; the conifer plot also received the maximum reflected radiant flux (10.91-324.65 kW) due to the higher reflectance of coniferous trees and the better absorption of reflected solar beams. However, the broadleaf plot received more transmitted radiant flux (37.7-226.71 kW) for the trees in the shaded area due to the larger transmittance of broadleaf species. Our method can directly simulate the detailed plot-scale distribution of canopy radiation and is valuable for researching light-dependent biophysiological processes.

Funder

Ministry of Agriculture and Rural Affairs of the People Republic of China

National Natural Science Foundation of China

National Basic Research Program of China

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Agronomy and Crop Science

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