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林业科学 ›› 2026, Vol. 62 ›› Issue (9): 139-151.doi: 10.11707/j.1001-7488.LYKX20260250

• 研究论文 • 上一篇    

风倒扶正后毛白杨液流时滞偏向性的变化规律及其生长效应

余伟晨1,2,杨文涵1,2,王鑫3,黄青青4,李熙萌5,李少然6,李广德7,王烨8,席本野1,2,*()   

  1. 1. 北京林业大学 林木资源高效生产全国重点实验室 北京 100083
    2. 北京林业大学 森林培育与保护教育部重点实验室  北京 100083
    3. 北京林业大学园林学院 北京 100083
    4. 北京林业大学工学院 北京 100083
    5. 中央民族大学生命与环境科学学院 北京 100081
    6. 中国林业集团有限公司 北京 100036
    7. 国家开放大学农林医药教学部 北京 100039
    8. 北京市农林科学院林业果树研究所 北京 100093
  • 收稿日期:2026-04-28 修回日期:2026-06-14 出版日期:2026-09-10 发布日期:2026-09-16
  • 通讯作者: 席本野 E-mail:benyexi@bjfu.edu.cn
  • 基金资助:
    北京林业大学“5·5工程”科研创新团队项目(BLRC2023C05);内蒙古自治区高等学校青年科技人才发展项目(NJYT24041);呼和浩特市研发投入激励项目(2025?规?研?1)。

Dynamics of Sap Flow Hysteresis Bias and the Growth Effects of Populus tomentosa after Windthrow and Restoration

Weichen Yu1,2,Wenhan Yang1,2,Xin Wang3,Qingqing Huang4,Ximeng Li5,Shaoran Li6,Guangde Li7,Ye Wang8,Benye Xi1,2,*()   

  1. 1. State Key Laboratory of Efficient Production of Forest Resources Beijing Forestry University Beijing 100083
    2. Key Laboratory for Silviculture and Conservation of the Ministry of Education Beijing Forestry University Beijing 100083
    3. College of Landscape Architecture, Beijing Forestry University Beijing 100083
    4. School of Technology, Beijing Forestry University Beijing 100083
    5. College of Life and Environmental Sciences, Minzu University of China Beijing 100081
    6. China National Forestry Group Corporation Beijing 100036
    7. Faculty of Agroforestry and Medicine, The Open University of China Beijing 100039
    8. Institute of Forestry and Pomology, Beijing Academy of Agriculture and Forestry Sciences Beijing 100093
  • Received:2026-04-28 Revised:2026-06-14 Online:2026-09-10 Published:2026-09-16
  • Contact: Benye Xi E-mail:benyexi@bjfu.edu.cn

摘要:

目的: 探究风倒扶正后毛白杨茎干液流长期动态,分析环境因子对风倒木时滞偏向性的影响,验证根系损伤能否驱动时滞偏向性转变。方法: 以扶正后毛白杨风倒木为研究对象,设轻度(0°~45°)、重度(45°~ 90°)风倒组及完好木对照组(CK),连续监测液流通量密度、太阳总辐射、水汽压亏缺,计算时滞时长、时滞回环面积等参数,并构建复合指标BiasT以表征时滞偏向性。另开展验证试验,探究根系机械损伤对时滞参数的影响。结果: 1) 轻、重度风倒组完整生长季累积蒸腾量较CK下降53%~57%,液流日峰值低于CK,对环境因子的响应较CK更为迟钝。2) 月份变化对时滞时长的影响显著(P<0.05),而风倒程度对时滞时长的影响不显著(P>0.05)。辐射与液流的时滞时长、BiasT均呈生长季始末高,中期低的规律;液流与水汽压亏缺的时滞时长生长季中期高、始末低,规律相反。3) 通径分析显示,液流时滞受环境因子间固有时滞的基础控制。2种环境因子对时滞现象的调控方向相反:辐射越大,液流越趋近辐射峰值;水汽压亏缺越高,液流峰值则偏离亏缺峰值。4) 轻、重风倒组BiasT(0.54、0.45)显著高于CK(0.11;P<0.001),风倒木液流对辐射的响应延迟,水分利用模式由辐射驱动型转为蒸腾拉力驱动型。5) 验证试验中,根系受损后BiasT隔日即由0.11升至0.44,与CK差异显著(P<0.05)。6) 轻、重度风倒组耗水量无显著差异(P>0.05)。重度组第2年胸径增量较第1年下降41%,显著低于CK(P<0.05);轻度组较第1年提高71%,与CK无显著差异(P>0.05),呈耗水–生长解耦。结论: 风倒使毛白杨蒸腾耗水大幅下降,产生难以恢复的水力遗留效应;根系损伤可能是驱动时滞偏向性发生改变的重要机制之一。BiasT可反映林木水力功能受损状况。轻度风倒可保留,重度风倒则需权衡伐除或扶正。

关键词: 三倍体毛白杨, 风倒扶正, 液流通量密度, 时滞偏向性, 水力损伤

Abstract:

Objective: This study aims to investigate the dynamics of stem sap flow and time lag in Populus tomentosa after windthrow and restoration, analyze the influence of environmental factors on the hysteresis bias of windthrown trees, and verify whether root damage drives the shift in hysteresis bias. Method: The study focused on P. tomentosa that had been windthrown and restored. Trees were assigned to mild (0°–45°), severe (45°–90°) windthrow groups, and a control group (CK). Sap flux density (SFD), solar radiation (R), and vapor pressure deficit (VPD) were monitored. Hysteresis parameters, including lag time and loop area, were calculated, and a time lag bias index (BiasT) was constructed to characterize hysteresis bias. A separate validation experiment was conducted to investigate the effects of root damage on hysteresis parameters. Result: 1) Over the growing season, cumulative transpiration in the mild and severe windthrow groups decreased by 53%–57% compared with CK, their peak SFD was lower than that of CK, and their responses to environmental factors were more sluggish than that of CK. 2) Monthly variation significantly affected lag time (P<0.05), while the degree of windthrow had no significant impact on the duration of the duration of time (P>0.05). The duration of lag time between SFD and R and BiasT were greater at the beginning and end of the growth season and less in the mid-season. An opposite seasonal pattern was observed for the duration of lag time between SFD and VPD, which was longer in the mid-season and shorter at the beginning and end of the growth season. 3) Path analysis indicated that the lag process of SFD was basically controlled by the inherent lag relationship among environmental factors. The larger the R, the closer the SFD peak approached R peak, however, the larger the VPD, the more the SFD peak deviated from VPD peak. 4) BiasT values (0.54, 0.45) in the mild and severe windthrow groups were significantly higher than that in CK (0.11, P<0.001), indicating a delayed response of SFD to R and water use strategy shifted from radiation-driven to transpirational pulling-driven. 5) In the validation experiment, BiasT increased from 0.11 to 0.44 two days after root damage, and was significantly different from CK (P<0.05). 6) There was no significant difference in water consumption between the mild and severe windthrow groups (P>0.05). The severe group’s second-year DBH increment decreased by 41% (P<0.05 vs. control), while the mild group increased by 71% (P>0.05 vs. control), indicating a decoupling between growth and water consumption. Conclusion: Windthrow substantially reduces transpiration and water consumption in P. tomentosa, resulting in a lasting hydraulic carry-over effect. Root hydraulic damage may drive the shift in hysteresis bias. BiasT can assess hydraulic impairment. Mildly windthrown trees can be retained; severely windthrown trees require a trade-off: removal or restoration.

Key words: triploid Populus tomentosa, windthrow and restoration, sap flux density, hysteresis bias, hydraulic damage

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