Scientia Silvae Sinicae ›› 2025, Vol. 61 ›› Issue (12): 135-145.doi: 10.11707/j.1001-7488.LYKX20240806
• Research papers • Previous Articles
Kaida Yan1,Nuanyang Zhou1,Liqing Si1,Fengjun Zhao1,*(
),Jianhua Zhang2,Quancheng Zou3,Zhijie Peng2,Dong Han2,Jiannan Xu3,Xiaoxiao Li1,Shiyuan Zhang1
Received:2024-12-31
Revised:2025-03-21
Online:2025-12-25
Published:2026-01-08
Contact:
Fengjun Zhao
E-mail:zhaofj@caf.ac.cn
CLC Number:
Kaida Yan,Nuanyang Zhou,Liqing Si,Fengjun Zhao,Jianhua Zhang,Quancheng Zou,Zhijie Peng,Dong Han,Jiannan Xu,Xiaoxiao Li,Shiyuan Zhang. Evaluation of the Effectiveness of Mechanical Clearance of Combustible Materials on Both Sides of Forest Roads on Reducing Wildfire Risk: a Case Study in Saihanba Mechanical Forest Farm[J]. Scientia Silvae Sinicae, 2025, 61(12): 135-145.
Table 1
Distribution of fuel height before and after mechanical removal %"
| 项目Item | 可燃物高度Fuel height /m | ||||||||
| (0, 0.2] | (0.2, 0.3] | (0.3, 0.4] | (0.4, 0.5] | (0.5, 0.6] | (0.6, 0.7] | (0.7, 0.8] | (0.8, 0.9] | (0.9, 1.0] | |
| 机械清除前 Before machanical removal | 0 | 0 | 0 | 20.37 | 18.52 | 25.93 | 16.67 | 12.96 | 5.57 |
| 机械清除后 After mechanical removal | 11.11 | 53.70 | 29.63 | 3.70 | 1.85 | 0 | 0 | 0 | 0 |
Table 5
Fire behavior differences of fuel on both sides of the road before and after mechanical removal"
项目Item | 可燃物高度 Height/ m | 可燃物载量 Fuel load/ (t·hm?2) | 蔓延速度 Fire spread rate/ (m·min?1) | 单位面积热量 Heat per unit aera/ (kJ·m?2) | 火线强度 Fireline intensity/ (kW·m?1) | 火焰长度 Flame length/ m |
| 机械清除前 Before mechanical removal | 0.65 | 4.48 | 134.32 | 3 453.27 | 7 730.97 | 4.76 |
| 机械清除后 After mechanical removal | 0.18 | 2.26 | 36.27 | 1 942.39 | 1 174.07 | 2.00 |
Table 6
Fire behavior characteristics of fuels at different heights before mechanical removal"
| 可燃物高度 Height/ m | 可燃物载量 Fuel load/ (t·hm?2) | 蔓延速度 Fire spread rate/ (m·min?1) | 单位面积热量 Heat per unit aera/ (kJ·m?2) | 火线强度 Fireline intensity/ (kW·m?1) | 火焰长度 Flame length/ m |
| 0.4 | 2.81 | 82.61 | 2 174.50 | 2 993.75 | 3.08 |
| 0.5 | 3.82 | 102.94 | 3 006.58 | 5 158.31 | 3.95 |
| 0.6 | 4.84 | 123.27 | 3 850.35 | 7 910.80 | 4.81 |
| 0.7 | 5.85 | 143.62 | 4 685.77 | 11 216.32 | 5.65 |
| 0.8 | 6.87 | 163.96 | 5 531.40 | 15 115.73 | 6.48 |
| 0.9 | 7.88 | 184.31 | 6 367.88 | 19 531.55 | 7.30 |
| 1.0 | 8.89 | 204.67 | 7 204.62 | 24 575.85 | 8.10 |
| 丁永全, 舒立福, 吴 松, 等. 塞罕坝林场不同林型地表枯落物特性及对应火险特征研究. 西南林业大学学报, 2021, 41 (4): 111- 118. | |
| Ding Y Q, Shu L F, Wu S, et al. Characteristics of litter and corresponding fire risk of different forest types in Saihanba Forestry Center. Journal of Southwest Forestry University, 2021, 41 (4): 111- 118. | |
| 李笑笑, 赵凤君, 舒立福, 等. 2002—2023年中国森林火灾火源特征分析. 陆地生态系统与保护学报, 2024, 4 (6): 47- 55. | |
| Li X X, Zhao F J, Fu L F, et al. Analysis of ignition sources characteristics of forest fire in China from 2002 to 2023. Terrestrial Ecosystem and Conservation, 2024, 4 (6): 47- 55. | |
| 王小雪, 王 恒, 张俊飞, 等. 塞罕坝林区华北落叶松径向生长对气候变化的响应. 林业与生态科学, 2022, 37 (2): 192- 197. | |
| Wang X X, Wang H, Zhang J F, et al. Response of the radial growth of Larix principis-rupprechtii to climate change in Saihanba Forestry Farm. Forestry and Ecological Science, 2022, 37 (2): 192- 197. | |
| 闫凯达, 赵凤君, 司莉青, 等. 林火阻隔带和阻隔体系研究进展. 林业科学, 2025, 61 (1): 197- 208. | |
| Yan K D, Zhao F J, Si L Q, et al. Research progress on forest firebreaks and firebreak systems. Scientia Silvae Sinicae, 2025, 61 (1): 197- 208. | |
| 袁 业, 孙国龙, 苑美燕, 等. 2017. 塞罕坝植物物种丰富度海拔分布格局. 安徽农业大学学报, 44(3): 496–501. | |
| Yuan Y, Song G L, Yuan M Y, 2017. Distributional patterns of plant species richness along an elevational gradient in Saihanba. Journal of Anhui Agricultural University, 44(3): 496–501. [in Chinese] | |
|
Andrews P L. Current status and future needs of the BehavePlus fire modeling system. International Journal of Wildland Fire, 2014, 23 (1): 21- 33.
doi: 10.1071/WF12167 |
|
|
Banerjee T. Impacts of forest thinning on wildland fire behavior. Forests, 2020, 11 (9): 918.
doi: 10.3390/f11090918 |
|
| Benali A, Sá A C L, Pinho J, et al. 2021. Understanding the impact of different landscape-level fuel management strategies on wildfire hazard in central Portugal. Forests. 12(5): 522. | |
| Carratt S A, Flayer C H, Kossack M E. Pesticides, wildfire suppression chemicals, and California wildfires: A human health perspective. Current Topics in Toxicology, 2017, 13, 1- 12. | |
|
Chen X, Wang M, Li B, et al. Effects of fuel removal on the flammability of surface fuels in Betula platyphylla in the wildland–urban interface. Fire, 2024, 7, 261.
doi: 10.3390/fire7070261 |
|
|
Cruz M G, Alexander M E, Fernandes P M. Evidence for lack of a fuel effect on forest and shrubland fire rates of spread under elevated fire danger conditions: implications for modelling and management. International Journal of Wildland Fire, 2022, 31 (5): 471- 479.
doi: 10.1071/WF21171 |
|
|
Davim D A, Rossa C G, Pereira J M, et al. Evaluating the effect of prescribed burning on the reduction of wildfire extent in Portugal. Forest Ecology and Management, 2022, 519, 120302.
doi: 10.1016/j.foreco.2022.120302 |
|
| Gabriels D, Horn R, Villagra M M, et al. 2020. Methods for assessment of soil degradation. Boca Raton: CRC Press. | |
|
Huang H, Ooka R, Liu N A, et al. Experimental study of fire growth in a reduced-scale compartment under different approaching external wind conditions. Fire Safety Journal, 2009, 44 (3): 311- 321.
doi: 10.1016/j.firesaf.2008.07.005 |
|
|
Johnston J D, Olszewski J H, Miller B A, et al. Mechanical thinning without prescribed fire moderates wildfire behavior in an Eastern Oregon, USA ponderosa pine forest. Forest Ecology and Management, 2021, 501, 119674.
doi: 10.1016/j.foreco.2021.119674 |
|
|
Kane J M, Varner J M, Knapp E E. Novel fuelbed characteristics associated with mechanical mastication treatments in northern California and south-western Oregon, USA. International Journal of Wildland Fire, 2009, 18 (6): 686- 697.
doi: 10.1071/WF08072 |
|
|
Keeley J E. Fire intensity, fire severity and burn severity: a brief review and suggested usage. International Journal of Wildland Fire, 2009, 18 (1): 116- 126.
doi: 10.1071/WF07049 |
|
|
Mansoor S, Farooq I, Kachroo M M. Elevation in wildfire frequencies with respect to the climate change. Journal of Environmental Management, 2022, 301, 113769.
doi: 10.1016/j.jenvman.2021.113769 |
|
|
North M, Brough A, Long J, et al. Constraints on mechanized treatment significantly limit mechanical fuels reduction extent in the Sierra Nevada. Journal of Forestry, 2015, 113 (1): 40- 48.
doi: 10.5849/jof.14-058 |
|
|
Ritter S M, Hoffman C M, Battaglia M A, et al. Vertical and horizontal crown fuel continuity influences group-scale ignition and fuel consumption. Fire, 2023, 6 (8): 321.
doi: 10.3390/fire6080321 |
|
| Rose M T, Cavagnaro T R, Scanlan C A, et al. Impact of herbicides on soil biology and function. Advances in Agronomy, 2016, 136, 133- 220. | |
|
Santín C, Doerr S H. Fire effects on soils: the human dimension. Philosophical Transactions of the Royal Society B: Biological Sciences, 2016, 371 (1696): 20150171.
doi: 10.1098/rstb.2015.0171 |
|
|
Slade E M, Mann D J, Lewis O T. Biodiversity and ecosystem function of tropical forest dung beetles under contrasting logging regimes. Biological Conservation, 2011, 144 (1): 166- 174.
doi: 10.1016/j.biocon.2010.08.011 |
|
|
Stephens S L, Jason J M. Experimental fuel treatment impacts on forest structure, potential fire behavior, and predicted tree mortality in a California mixed conifer forest. Forest Ecology and Management, 2005, 215 (1/3): 21- 36.
doi: 10.1016/j.foreco.2005.03.070 |
|
|
Stephens S L, McIver J D, Boerner R E, et al. The effects of forest fuel-reduction treatments in the United States. BioScience, 2012, 62 (6): 549- 560.
doi: 10.1525/bio.2012.62.6.6 |
|
| Thomas P A, McAlpineR S. 2010. Fire in the forest. New York: Cambridge University Press. | |
|
Vaillant N M, Fites-Kaufman J, Reiner A L, et al. Effect of fuel treatments on fuels and potential fire behavior in california, USA, National Forests. Fire Ecology, 2009, 5 (2): 14- 29.
doi: 10.4996/fireecology.0502014 |
|
| Wang H H, Finney M A., Song Z L, et al. 2021. Ecological techniques for wildfire mitigation: two distinct fuelbreak approaches and their fusion. Forest Ecology and Management, 495: 119376. | |
|
Zong X Z, TianX R, Wang X L. The role of fuel treatments in mitigating wildfire risk. Landscape and Urban Planning, 2024, 242, 104957.
doi: 10.1016/j.landurbplan.2023.104957 |
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