生态环境学报 ›› 2022, Vol. 31 ›› Issue (9): 1735-1744.DOI: 10.16258/j.cnki.1674-5906.2022.09.003
吴胜义1,2(), 王飞1,2,*(
), 徐干君1,2, 马浩1,2, 党禹杰1,2, 吴菲1,2
收稿日期:
2022-06-09
出版日期:
2022-09-18
发布日期:
2022-11-07
通讯作者:
*王飞(1988年生),男,工程师,硕士,主要从事林业调查规划工作。E-mail: 395977241@qq.com作者简介:
吴胜义(1978年生),男,高级工程师,硕士,研究方向为林草资源调查、监测和生态规划。E-mail: 183290935@qq.com
基金资助:
WU Shengyi1,2(), WANG Fei1,2,*(
), XU Ganjun1,2, MA Hao1,2, DANG Yujie1,2, WU Fei1,2
Received:
2022-06-09
Online:
2022-09-18
Published:
2022-11-07
摘要:
森林是陆地生态系统最大的碳库,森林碳汇在中国实现碳达峰碳中和目标中起着十分关键的作用。研究分析洛须自然保护区森林资源碳储量结构特征,有利于揭示川西北高山峡谷区森林碳储量、碳密度空间分布规律,对于提升区域森林生态系统保护管理水平和开展森林经营碳汇具有重要意义。洛须自然保护区内不仅分布着重要的地带性森林植被--川西云杉(Picea likiangensis var. rubescens)和高山柏(Juniperus squamata)等暗针叶林,还广泛分布着高山柳(Salix cupularis)、小叶杜鹃(Rhododendron parvifolium)等灌木林。以2019年森林资源规划设计调查成果为基础,叠加森林矢量数据与DEM数据,通过应用生物量转换和扩展方法,并结合GIS空间分析,探究森林碳储量、碳密度及其空间分布。研究表明:针叶林碳储量138067.7 t、碳密度11.8 t∙hm-2,灌木林碳储量81228.9 t、碳密度2.9 t∙hm-2,是主要的森林碳储量贡献者。乔木林中,成熟林碳储量最大,占42.2%;川西云杉林碳储量76800.3 t、碳密度33.9 t∙hm-2,高山柏林碳储量61267.4 t、碳密度6.1 t∙hm-2。针叶林碳储量集中在3701-4300 m之间,占针叶林总碳储量的95.2%;灌木林碳储量集中在4101-4700 m之间,占灌木林总碳储量的79.7%。针叶林碳储量集中在陡、急、险坡,占针叶林总碳储量的97.2%;急坡、陡坡、险坡碳储量和碳密度均位列针叶林前3位。灌木林碳储量集中在26°-45°之间,占灌木林总碳储量的80.3%。针叶林森林碳储量在阳坡、半阳坡与阴坡、半阴坡比例接近,分别为51.5%、48.5%;阴坡、半阴坡碳密度明显高于阳坡、半阳坡。灌木林碳储量以阴坡、半阴坡为主,占灌木林总碳储量的67.4%。洛须自然保护区森林碳储量和碳密度垂直分异明显,陡、急、险坡碳储量贡献大,阴坡、阳坡整体均衡。乔木中幼林比重大,森林碳密度水平较低,分类经营、科学施策是提升区域森林固碳能力的关键。
中图分类号:
吴胜义, 王飞, 徐干君, 马浩, 党禹杰, 吴菲. 川西北高山峡谷区森林碳储量及空间分布研究--以四川洛须自然保护区为例[J]. 生态环境学报, 2022, 31(9): 1735-1744.
WU Shengyi, WANG Fei, XU Ganjun, MA Hao, DANG Yujie, WU Fei. Study on Forest Carbon Storage and Spatial Distribution in the Alpine Gorge Region of Northwest Sichuan: Take Sichuan Luoxu Nature Reserve as An Example[J]. Ecology and Environment, 2022, 31(9): 1735-1744.
树种组 Tree species | 生物量扩展系数 Biomass expansion factor | 基本木材密度 Basic wood density/(t∙m-3) | 根茎比 Root-stem ratio | 含碳率 Carbon contents |
---|---|---|---|---|
川西云杉 Picea likiangensis var. rubescens | 1.2990 | 0.3728 | 0.2410 | 0.4994 |
高山柏 Juniperus squamata | 1.4580 | 0.4722 | 0.2190 | 0.5088 |
桦木 Betula spp. | 1.4210 | 0.5270 | 0.2530 | 0.4914 |
杨树 Populus spp. | 1.3940 | 0.3644 | 0.1850 | 0.4502 |
柳树 Salix spp. | 1.3940 | 0.4409 | 0.1850 | 0.4803 |
针叶混 Coniferous mixed forest | 1.3646 | 0.3902 | 0.2086 | 0.5168 |
阔叶混 Broad-leaved mixed forest | 1.2815 | 0.5222 | 0.2351 | 0.4796 |
针阔混 Mixed broadleaf-conifer forest | 1.3230 | 0.4754 | 0.2218 | 0.4893 |
表1 乔木各树种组参数
Table 1 Parameters of tree species
树种组 Tree species | 生物量扩展系数 Biomass expansion factor | 基本木材密度 Basic wood density/(t∙m-3) | 根茎比 Root-stem ratio | 含碳率 Carbon contents |
---|---|---|---|---|
川西云杉 Picea likiangensis var. rubescens | 1.2990 | 0.3728 | 0.2410 | 0.4994 |
高山柏 Juniperus squamata | 1.4580 | 0.4722 | 0.2190 | 0.5088 |
桦木 Betula spp. | 1.4210 | 0.5270 | 0.2530 | 0.4914 |
杨树 Populus spp. | 1.3940 | 0.3644 | 0.1850 | 0.4502 |
柳树 Salix spp. | 1.3940 | 0.4409 | 0.1850 | 0.4803 |
针叶混 Coniferous mixed forest | 1.3646 | 0.3902 | 0.2086 | 0.5168 |
阔叶混 Broad-leaved mixed forest | 1.2815 | 0.5222 | 0.2351 | 0.4796 |
针阔混 Mixed broadleaf-conifer forest | 1.3230 | 0.4754 | 0.2218 | 0.4893 |
森林类型 Forest type | 样本个数 Sample number | 面积 Area/hm2 | 蓄积量 Volume/m3 | 碳储量 Carbon storage/t | 碳密度 Carbon density/(t∙hm-2) |
---|---|---|---|---|---|
针叶林 Coniferous forest | 2639 | 12320.66 | 362683.8 | 138067.7 | 11.2 |
阔叶林 Broad-leaved forest | 103 | 303.97 | 13744.0 | 5944.7 | 19.6 |
针叶混交林 Coniferous mixed forest | 14 | 50.74 | 7696.0 | 2559.6 | 50.4 |
阔叶混交林 Broad-leaved mixed forest | 2 | 9.05 | 112.0 | 44.4 | 4.9 |
针阔混交林 Mixed broadleaf-conifer forest broadleaf-conifer forest | 15 | 135.26 | 11861.0 | 4459.9 | 33 |
灌木林 Shrub forest | 4626 | 28176.21 | 0 | 81228.9 | 2.9 |
合计/平均 Total/Averge | 7399 | 40995.89 | 396096.8 | 232305.2 | 5.7 |
表2 各森林类型碳储量及碳密度
Table 2 Carbon storage and carbon density of forest type
森林类型 Forest type | 样本个数 Sample number | 面积 Area/hm2 | 蓄积量 Volume/m3 | 碳储量 Carbon storage/t | 碳密度 Carbon density/(t∙hm-2) |
---|---|---|---|---|---|
针叶林 Coniferous forest | 2639 | 12320.66 | 362683.8 | 138067.7 | 11.2 |
阔叶林 Broad-leaved forest | 103 | 303.97 | 13744.0 | 5944.7 | 19.6 |
针叶混交林 Coniferous mixed forest | 14 | 50.74 | 7696.0 | 2559.6 | 50.4 |
阔叶混交林 Broad-leaved mixed forest | 2 | 9.05 | 112.0 | 44.4 | 4.9 |
针阔混交林 Mixed broadleaf-conifer forest broadleaf-conifer forest | 15 | 135.26 | 11861.0 | 4459.9 | 33 |
灌木林 Shrub forest | 4626 | 28176.21 | 0 | 81228.9 | 2.9 |
合计/平均 Total/Averge | 7399 | 40995.89 | 396096.8 | 232305.2 | 5.7 |
树种组 Tree species | 样本个数 Sample number | 面积 Area/hm2 | 蓄积量 Volume/m3 | 碳储量 Carbon storage/t | 碳密度 Carbon density/(t∙hm-2) |
---|---|---|---|---|---|
川西云杉 Picea likiangensis var. rubescens | 528 | 2266.61 | 255734.8 | 76800.3 | 33.9 |
高山柏 Juniperus squamata | 2111 | 10054.05 | 106949.0 | 61267.4 | 6.1 |
桦木 Betula spp. | 65 | 192.20 | 10942.0 | 5073.2 | 26.4 |
杨树 Populus spp. | 28 | 94.90 | 2111.0 | 623.2 | 6.6 |
柳树 Salix spp. | 10 | 16.87 | 691.0 | 248.3 | 14.7 |
针叶混 Coniferous mixed forest | 14 | 50.74 | 7696.0 | 2559.6 | 50.4 |
阔叶混 Broad-leaved mixed forest | 2 | 9.05 | 112.0 | 44.4 | 4.9 |
针阔混 Mixed broadleaf-conifer forest | 15 | 135.26 | 11861.0 | 4459.9 | 33.0 |
合计/平均 Total/Averge | 2773 | 12819.68 | 396096.8 | 151076.3 | 11.8 |
表3 乔木各树种组碳储量及碳密度
Table 3 Carbon storage and carbon density of each dominant tree species
树种组 Tree species | 样本个数 Sample number | 面积 Area/hm2 | 蓄积量 Volume/m3 | 碳储量 Carbon storage/t | 碳密度 Carbon density/(t∙hm-2) |
---|---|---|---|---|---|
川西云杉 Picea likiangensis var. rubescens | 528 | 2266.61 | 255734.8 | 76800.3 | 33.9 |
高山柏 Juniperus squamata | 2111 | 10054.05 | 106949.0 | 61267.4 | 6.1 |
桦木 Betula spp. | 65 | 192.20 | 10942.0 | 5073.2 | 26.4 |
杨树 Populus spp. | 28 | 94.90 | 2111.0 | 623.2 | 6.6 |
柳树 Salix spp. | 10 | 16.87 | 691.0 | 248.3 | 14.7 |
针叶混 Coniferous mixed forest | 14 | 50.74 | 7696.0 | 2559.6 | 50.4 |
阔叶混 Broad-leaved mixed forest | 2 | 9.05 | 112.0 | 44.4 | 4.9 |
针阔混 Mixed broadleaf-conifer forest | 15 | 135.26 | 11861.0 | 4459.9 | 33.0 |
合计/平均 Total/Averge | 2773 | 12819.68 | 396096.8 | 151076.3 | 11.8 |
龄组 Age group | 样本个数 Number of samples | 面积 Area/hm2 | 蓄积量 Volume/m3 | 碳储量 Carbon storage/t | 碳密度 Carbon density/(t∙hm-2) |
---|---|---|---|---|---|
幼龄林 Young aged forest | 1471 | 7147.40 | 43338.8 | 29024.1 | 4.1 |
中龄林 Middle aged forest | 620 | 2589.49 | 64879.0 | 26861.6 | 10.4 |
近熟林 Near-mature forest | 86 | 331.85 | 24328.0 | 8179.8 | 24.6 |
成熟林 Mature forest | 432 | 2119.85 | 199088.0 | 63823.8 | 30.1 |
过熟林 Over-mature forest | 164 | 631.09 | 64463.0 | 23187.0 | 36.7 |
合计/平均Total/Averge | 2773 | 12819.68 | 396096.8 | 151076.3 | 11.8 |
表4 乔木各龄组碳储量及碳密度
Table 4 Carbon storage and carbon density of tree age groups
龄组 Age group | 样本个数 Number of samples | 面积 Area/hm2 | 蓄积量 Volume/m3 | 碳储量 Carbon storage/t | 碳密度 Carbon density/(t∙hm-2) |
---|---|---|---|---|---|
幼龄林 Young aged forest | 1471 | 7147.40 | 43338.8 | 29024.1 | 4.1 |
中龄林 Middle aged forest | 620 | 2589.49 | 64879.0 | 26861.6 | 10.4 |
近熟林 Near-mature forest | 86 | 331.85 | 24328.0 | 8179.8 | 24.6 |
成熟林 Mature forest | 432 | 2119.85 | 199088.0 | 63823.8 | 30.1 |
过熟林 Over-mature forest | 164 | 631.09 | 64463.0 | 23187.0 | 36.7 |
合计/平均Total/Averge | 2773 | 12819.68 | 396096.8 | 151076.3 | 11.8 |
森林类型 Forest type | 碳储量和碳密度 Carbon storage and carbon density | 海拔 Altitude/m | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
3300- 3500 | 3501- 3700 | 3701- 3900 | 3901- 4100 | 4101- 4300 | 4301- 4500 | 4501- 4700 | 4701- 4900 | 4901- 5000 | ||
研究区 Area of study | 碳储量/t | 2753.5 | 7321.8 | 37494.3 | 84410.4 | 51464.5 | 32557.7 | 16013.0 | 280.9 | 9.1 |
碳密度/(t∙hm-2) | 3.3 | 4.2 | 8.7 | 10.8 | 5.3 | 3 | 2.9 | 2.9 | 2.9 | |
针叶林 Coniferous forest | 碳储量/t | 192.3 | 3741.2 | 30516.3 | 69163.4 | 31761.3 | 2654.8 | 38.4 | - | - |
碳密度/(t∙hm-2) | 2.5 | 5.2 | 10.8 | 13.7 | 10.1 | 5.0 | 16.1 | - | - | |
阔叶林 Broad-leaved forest | 碳储量/t | 607.7 | 632.7 | 2329.3 | 2359.8 | 15.2 | - | - | - | - |
碳密度/(t∙hm-2) | 6.3 | 21.4 | 21 | 35.9 | 20.8 | - | - | - | - | |
针叶混交林 Coniferous mixed forest | 碳储量/t | - | - | - | 1747.4 | 812.2 | - | - | - | - |
碳密度/(t∙hm-2) | - | - | - | 52.2 | 47 | - | - | - | - | |
阔叶混交林 Broad-leaved mixed forest | 碳储量/t | 44.4 | - | - | - | - | - | - | - | - |
碳密度/(t∙hm-2) | 4.9 | - | - | - | - | - | - | - | - | |
针阔混交林 Mixed broadleaf-conifer forest | 碳储量/t | - | 83.5 | 723.8 | 3652.6 | - | - | - | - | - |
碳密度/(t∙hm-2) | - | 14 | 17.8 | 41.2 | - | - | - | - | - | |
灌木林 Shrub forest | 碳储量/t | 1909.1 | 2864.4 | 3924.9 | 7487.2 | 18875.8 | 29902.9 | 15974.6 | 280.9 | 9.1 |
碳密度/(t∙hm-2) | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 |
表5 各海拔梯度森林碳储量和碳密度
Table 5 Forest carbon storage and carbon density at different altitudes
森林类型 Forest type | 碳储量和碳密度 Carbon storage and carbon density | 海拔 Altitude/m | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
3300- 3500 | 3501- 3700 | 3701- 3900 | 3901- 4100 | 4101- 4300 | 4301- 4500 | 4501- 4700 | 4701- 4900 | 4901- 5000 | ||
研究区 Area of study | 碳储量/t | 2753.5 | 7321.8 | 37494.3 | 84410.4 | 51464.5 | 32557.7 | 16013.0 | 280.9 | 9.1 |
碳密度/(t∙hm-2) | 3.3 | 4.2 | 8.7 | 10.8 | 5.3 | 3 | 2.9 | 2.9 | 2.9 | |
针叶林 Coniferous forest | 碳储量/t | 192.3 | 3741.2 | 30516.3 | 69163.4 | 31761.3 | 2654.8 | 38.4 | - | - |
碳密度/(t∙hm-2) | 2.5 | 5.2 | 10.8 | 13.7 | 10.1 | 5.0 | 16.1 | - | - | |
阔叶林 Broad-leaved forest | 碳储量/t | 607.7 | 632.7 | 2329.3 | 2359.8 | 15.2 | - | - | - | - |
碳密度/(t∙hm-2) | 6.3 | 21.4 | 21 | 35.9 | 20.8 | - | - | - | - | |
针叶混交林 Coniferous mixed forest | 碳储量/t | - | - | - | 1747.4 | 812.2 | - | - | - | - |
碳密度/(t∙hm-2) | - | - | - | 52.2 | 47 | - | - | - | - | |
阔叶混交林 Broad-leaved mixed forest | 碳储量/t | 44.4 | - | - | - | - | - | - | - | - |
碳密度/(t∙hm-2) | 4.9 | - | - | - | - | - | - | - | - | |
针阔混交林 Mixed broadleaf-conifer forest | 碳储量/t | - | 83.5 | 723.8 | 3652.6 | - | - | - | - | - |
碳密度/(t∙hm-2) | - | 14 | 17.8 | 41.2 | - | - | - | - | - | |
灌木林 Shrub forest | 碳储量/t | 1909.1 | 2864.4 | 3924.9 | 7487.2 | 18875.8 | 29902.9 | 15974.6 | 280.9 | 9.1 |
碳密度/(t∙hm-2) | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 |
森林类型 Forest type | 碳储量和碳密度 Carbon storage and carbon density | 坡度分级 Slope | |||||
---|---|---|---|---|---|---|---|
平坡 Flat slope | 缓坡 Gentle slope | 斜坡 Slope | 陡坡 Abrupt slope | 急坡 Steep slope | 险坡 Dangerous slope | ||
研究区 Area of study | 碳储量/t | 2367 | 2859.2 | 11232.3 | 70714.2 | 117252.0 | 27880.5 |
碳密度/(t∙hm-2) | 3.4 | 3.7 | 3.6 | 4.9 | 6.3 | 8.1 | |
针叶林 Coniferous forest | 碳储量/t | 32.9 | 605.7 | 3235.3 | 36021.2 | 77411.1 | 20761.5 |
碳密度/(t∙hm-2) | 4.1 | 13.1 | 7.7 | 10.5 | 11.7 | 11.4 | |
阔叶林 Broad-leaved forest | 碳储量/t | 644.6 | 208.5 | 189.1 | 921.7 | 3228.4 | 752.4 |
碳密度/(t∙hm-2) | 6.8 | 14.5 | 17.3 | 23.3 | 29.0 | 22.8 | |
针叶混交林 Coniferous mixed forest | 碳储量/t | - | - | - | 579.7 | 1698.9 | 281 |
碳密度/(t∙hm-2) | - | - | - | 55.3 | 48.0 | 58.3 | |
阔叶混交林 Broad-leaved mixed forest | 碳储量/t | - | 44.4 | - | - | - | - |
碳密度/(t∙hm-2) | - | 4.9 | - | - | - | - | |
针阔混交林 Mixed broadleaf-conifer forest | 碳储量/t | - | - | - | 1672 | 1206 | 1581.9 |
碳密度/(t∙hm-2) | - | - | - | 27.6 | 26.7 | 53.6 | |
灌木林 Shrub forest | 碳储量/t | 1689.5 | 2000.6 | 7807.9 | 31519.6 | 33707.6 | 4503.7 |
碳密度/(t∙hm-2) | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 |
表6 各坡度级森林碳储量和碳密度
Table 6 Forest carbon storage and carbon density of different slopes
森林类型 Forest type | 碳储量和碳密度 Carbon storage and carbon density | 坡度分级 Slope | |||||
---|---|---|---|---|---|---|---|
平坡 Flat slope | 缓坡 Gentle slope | 斜坡 Slope | 陡坡 Abrupt slope | 急坡 Steep slope | 险坡 Dangerous slope | ||
研究区 Area of study | 碳储量/t | 2367 | 2859.2 | 11232.3 | 70714.2 | 117252.0 | 27880.5 |
碳密度/(t∙hm-2) | 3.4 | 3.7 | 3.6 | 4.9 | 6.3 | 8.1 | |
针叶林 Coniferous forest | 碳储量/t | 32.9 | 605.7 | 3235.3 | 36021.2 | 77411.1 | 20761.5 |
碳密度/(t∙hm-2) | 4.1 | 13.1 | 7.7 | 10.5 | 11.7 | 11.4 | |
阔叶林 Broad-leaved forest | 碳储量/t | 644.6 | 208.5 | 189.1 | 921.7 | 3228.4 | 752.4 |
碳密度/(t∙hm-2) | 6.8 | 14.5 | 17.3 | 23.3 | 29.0 | 22.8 | |
针叶混交林 Coniferous mixed forest | 碳储量/t | - | - | - | 579.7 | 1698.9 | 281 |
碳密度/(t∙hm-2) | - | - | - | 55.3 | 48.0 | 58.3 | |
阔叶混交林 Broad-leaved mixed forest | 碳储量/t | - | 44.4 | - | - | - | - |
碳密度/(t∙hm-2) | - | 4.9 | - | - | - | - | |
针阔混交林 Mixed broadleaf-conifer forest | 碳储量/t | - | - | - | 1672 | 1206 | 1581.9 |
碳密度/(t∙hm-2) | - | - | - | 27.6 | 26.7 | 53.6 | |
灌木林 Shrub forest | 碳储量/t | 1689.5 | 2000.6 | 7807.9 | 31519.6 | 33707.6 | 4503.7 |
碳密度/(t∙hm-2) | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 |
森林类型 Forest type | 碳储量和碳密度 Carbon storage and carbon density | 坡向 Aspects | ||||
---|---|---|---|---|---|---|
无坡向 Flat | 阳坡 Sunny | 半阳坡 Semi-sunny | 阴坡 Shady | 半阴坡 Semi-shady | ||
研究区 Area of study | 碳储量/t | 2367.0 | 33341.0 | 64592.6 | 63717.4 | 68287.2 |
碳密度/(t∙hm-2) | 3.4 | 5.5 | 5.8 | 5.7 | 5.7 | |
针叶林 Coniferous forest | 碳储量/t | 32.9 | 27084.5 | 43975.5 | 29832.4 | 37142.4 |
碳密度/(t∙hm-2) | 4.1 | 6.8 | 9.7 | 22.0 | 15.5 | |
阔叶林 Broad-leaved forest | 碳储量/t | 644.6 | 176.9 | 618.6 | 1760.9 | 2743.7 |
碳密度/(t∙hm-2) | 6.8 | 12.2 | 32.3 | 24.5 | 26.5 | |
针叶混交林 Coniferous mixed forest | 碳储量/t | - | 292.4 | 910.9 | 697.5 | 658.8 |
碳密度/(t∙hm-2) | - | 36.5 | 46.6 | 57.5 | 59.6 | |
阔叶混交林 Broad-leaved mixed forest | 碳储量/t | - | 27.4 | 17 | - | - |
碳密度/(t∙hm-2) | - | 4.3 | 6.5 | - | - | |
针阔混交林 Mixed broadleaf-conifer forest | 碳储量/t | - | - | - | 3765.7 | 694.2 |
碳密度/(t∙hm-2) | - | - | - | 39.4 | 17.5 | |
灌木林 Shrub forest | 碳储量/t | 1689.5 | 5759.8 | 19070.6 | 27660.9 | 27048.1 |
碳密度/(t∙hm-2) | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 |
表7 各坡向森林碳储量和碳密度
Table 7 Forest carbon storage and carbon density of different aspects
森林类型 Forest type | 碳储量和碳密度 Carbon storage and carbon density | 坡向 Aspects | ||||
---|---|---|---|---|---|---|
无坡向 Flat | 阳坡 Sunny | 半阳坡 Semi-sunny | 阴坡 Shady | 半阴坡 Semi-shady | ||
研究区 Area of study | 碳储量/t | 2367.0 | 33341.0 | 64592.6 | 63717.4 | 68287.2 |
碳密度/(t∙hm-2) | 3.4 | 5.5 | 5.8 | 5.7 | 5.7 | |
针叶林 Coniferous forest | 碳储量/t | 32.9 | 27084.5 | 43975.5 | 29832.4 | 37142.4 |
碳密度/(t∙hm-2) | 4.1 | 6.8 | 9.7 | 22.0 | 15.5 | |
阔叶林 Broad-leaved forest | 碳储量/t | 644.6 | 176.9 | 618.6 | 1760.9 | 2743.7 |
碳密度/(t∙hm-2) | 6.8 | 12.2 | 32.3 | 24.5 | 26.5 | |
针叶混交林 Coniferous mixed forest | 碳储量/t | - | 292.4 | 910.9 | 697.5 | 658.8 |
碳密度/(t∙hm-2) | - | 36.5 | 46.6 | 57.5 | 59.6 | |
阔叶混交林 Broad-leaved mixed forest | 碳储量/t | - | 27.4 | 17 | - | - |
碳密度/(t∙hm-2) | - | 4.3 | 6.5 | - | - | |
针阔混交林 Mixed broadleaf-conifer forest | 碳储量/t | - | - | - | 3765.7 | 694.2 |
碳密度/(t∙hm-2) | - | - | - | 39.4 | 17.5 | |
灌木林 Shrub forest | 碳储量/t | 1689.5 | 5759.8 | 19070.6 | 27660.9 | 27048.1 |
碳密度/(t∙hm-2) | 2.9 | 2.9 | 2.9 | 2.9 | 2.9 |
[1] | 陈晨, 刘丹辉, 吴键军, 等, 2015. 东灵山地区辽东栎叶性状与地形因子关系[J]. 生态学杂志, 34(8): 2131-2139. |
CHEN C, LIU D H, WU J J, et al., 2015. Leaf traits of Quercus wutaishanica and their relationship with topographic factors in Mount Dongling[J]. Chinese Journal of Ecology, 34(8): 2131-2139. | |
[2] | 方精云, 陈安平, 2001. 中国森林植被碳库的动态变化及其意义[J]. 植物学报, 43(9): 967-973. |
FANG J Y, CHEN A P, 2001. Dynamic forest biomass carbon pools in China and their significance[J]. Acta Botanica Sinica, 43(9): 967-973. | |
[3] |
傅伯杰, 牛栋, 赵士洞, 2005. 全球变化与陆地生态系统研究: 回顾与展望[J]. 地球科学进展, 20(5): 556-560.
DOI |
FU B J, NIU D, ZHAO S D, 2005. Study on global change and terrestrial ecosystems: history and prospect[J]. Advances in Earth Science, 20(5): 556-560. | |
[4] | 国家林业局造林绿化管理司, 国家林业局林业碳汇计量监测中心, 2015. 土地利用、土地利用变化与林业碳汇计量监测技术指南 (V1.03)[S]. 北京: 国家林业局造林绿化管理司, 国家林业局林业碳汇计量监测中心. |
The Afforestation of the State Forestry Administration, Forestry carbon sink measurement and monitoring center of the State Forestry Administration, 2015. Technical guide for carbon sequestration measurement and monitoring of land use, land use change and Forestry (V1.03)[S]. Beijing: The Afforestation of the State Forestry Administration, Forestry carbon sink measurement and monitoring center of the State Forestry Administration. | |
[5] | 侯芳, 王克勤, 宋娅丽, 等, 2018. 滇中亚高山典型森林生态系统碳储量及其分配特征[J]. 生态环境学报, 27(10): 1825-1835. |
HOU F, WANG K Q, SONG Y L, et al., 2018. Carbon storage and distribution in typical forest ecosystems in subalpine of middle Yunnan Province[J]. Ecology and Environmental Sciences, 27(10): 1825-1835. | |
[6] | 胡会峰, 刘国华, 2006. 森林管理在全球CO2减排中的作用[J]. 应用生态学报, 17(4): 709-714. |
HU H F, LIU G H, 2006. Roles of forest management in global carbon dioxide mitigation[J]. Chinese Journal of Applied Ecology, 17(4): 709-714. | |
[7] | 赖家明, 黄从德, 胡庭兴, 等, 2013. 基于遥感信息的道孚县亚高山森林植被地上碳储量估算及其空间分布特征[J]. 应用环境生物学报, 19(4): 593-597. |
LAI J M, HUANG C D, HU T X, et al., 2013. Aboveground carbon storage and its spatial distribution in the subalpine forest of Daofu County based on remote sensing model[J]. Chinese Journal of Applied and Environmental Biology, 19(4): 593-597.
DOI URL |
|
[8] | 李海奎, 雷渊才, 2010. 中国森林植被生物量和碳储量评估[M]. 北京: 中国林业出版社. |
LI H K, LEI Y C, 2010. Assessment of forest biomass and carbon stocks in China[M]. Beijing: Chinese Forestry Press. | |
[9] | 李蔓, 杨广斌, 牟智慧, 等, 2013. 大沙河自然保护区生态系统碳储量估算与动态变化研究[J]. 林业资源管理 (4): 65-71. |
LI M, YANG G B, MOU Z H, et al., 2013. Research on carbon storage estimate and dynamic change of Dashahe Nature Reserve ecosystem[J]. Forest Resources Management (4): 65-71. | |
[10] | 李世东, 胡淑萍, 唐小明, 2013. 中国生态状况调查: 森林植被碳储量动态变化研究[M]. 北京: 科技出版社. |
LI S D, HU S P, TANG X M, 2013. Survey of ecological conditions in China: Study on dynamic change of carbon storage in forest vegetation[M]. Beijing: Science and Technology Press. | |
[11] | 李益敏, 王东驰, 袁静, 等, 2020. 基于地形梯度的高山峡谷区土地利用时空格局及功能分区[J]. 水土保持通报, 40(6): 303-312. |
LI Y M, WANG D C, YUAN J, et al., 2020. Temoral and spatial pattern and functional zoning of land use in alpine canyon region based on terrain gradien[J]. Bulletin of Soil and Water Conservation, 40(6): 303-312. | |
[12] |
刘淑琴, 夏朝宗, 冯薇, 等, 2017. 西藏森林植被乔木层碳储量与碳密度估算[J]. 应用生态学报, 28(10): 3127-3134.
DOI |
LIU S Q, XIA C Z, FENG W, et al., 2017. Estimation of vegetation carbon storage and density of forests at tree layer in Tibet, China[J]. Chinese Journal of Applied Ecology, 28(10): 3127-3134. | |
[13] | 祁建, 马克明, 张育新, 2007. 辽东栎 (Quercus liaotungensis) 叶特性沿海拔梯度的变化及其环境解释[J]. 生态学报, 27(3): 930-937. |
QI J, MA K M, ZHANG Y X, 2007. The altitudinal variation of leaf traits of Quercus liaotungensis and associated environmental explanations[J]. Acta Ecologica Sinica, 27(3): 930-937. | |
[14] | 邱书志, 薄乖民, 丁骞, 等, 2018. 白龙江林区森林植被碳储量和碳汇功能研究[J]. 中南林业科技大学学报, 38(1): 88-93. |
QIU S Z, BO G M, DING Q, et al., 2018. Study of forest vegetation carbon reserve and carbon sink function of Bailongjiang forest district[J]. Journal of Central South University of Forestry & Technology, 38(1): 88-93. | |
[15] | 任德智, 廖兴勇, 肖前刚, 2021. 成都市森林植被碳储量及空间分布格局[J]. 西部林业科学, 50(3): 74-81. |
REN D Z, LIAO X Y, XIAO Q G, 2021. Carbon Storage and Spatial Distribution Pattern of Forest Vegetation in Chengdu[J]. Journal of West China Forestry Science, 50(3): 74-81. | |
[16] | 邵波, 燕腾, 2017. 四川省森林植被碳储量及碳密度估算[J]. 西南林业大学学报, 37(2): 179-183. |
SHAO B, YAN T, 2017. Study on carbon storage and carbon density of forest in Sichuan proince[J]. Journal of Southwest Forestry University (Natural Science Edition), 37(2): 179-183. | |
[17] | 唐才富, 张莉, 罗艳, 等, 2017. 基于森林资源二类调查的青海乔木林碳储量分析[J]. 西部林业科学, 46(2): 1-7. |
TANG C F, ZHANG L, LUO Y, et al., 2017. Analysis of forest carbon storage based on forest inventory data in Qinghai province[J]. Journal of West China Forestry Science, 46(2): 1-7. | |
[18] |
田汉勤, 万师强, 马克平, 2007. 全球变化生态学: 全球变化与陆地生态系统[J]. 植物生态学报, 31(2): 173-174.
DOI |
TIAN H Q, WAN S Q, MA K P, 2007. Global ecoloty: global change and terrestrial ecosystem[J]. Journal of Plant Ecology (Chinese Version), 31(2): 173-174. | |
[19] | 王会荣, 李爱琴, 王晶晶, 等, 2019. 基于第8次森林资源清查数据的安徽森林碳储量特征研究[J]. 西北农林科技大学学报(自然科学版), 47(7): 78-86. |
WANG H R, LI A Q, WANG J J, et al., 2019. Characteristics of forest carbon storage in Anhui based on the 8th forest inventory data[J]. Journal of Northwest Agriculture & Forestry University (Natural Science Edition), 47(7): 78-86. | |
[20] | 王效科, 冯宗炜, 欧阳志云, 2001. 中国森林生态系统的植物碳储量和碳密度研究[J]. 应用生态学报, 12(1): 13-16. |
WANG X K, FENG Z W, OU YANG Z Y, 2001. Vegetation carbon storage and density of forest ecosystems in China[J]. Chinese Journal of Applied Ecology, 12(1): 13-16. | |
[21] | 王兴昌, 王传宽, 2015. 森林生态系统碳循环的基本概念和野外测定方法评述[J]. 生态学报, 35(13): 4241-4256. |
WANG X C, WANG C K, 2015. Fundamental concepts and field measurement methods of carbon cycling in forest ecosystems: A review[J]. Acta Ecologica Sinica, 35(13): 4241-4256. | |
[22] | 巫明焱, 董光, 王艺积, 等, 2020. 川西米亚罗自然保护区森林地上碳储量遥感估算研究[J]. 生态学报, 40(2): 1-8. |
WU M Y, DONG G, WANG Y J, et al., 2020. Estimation of forest aboveground carbon storage in Sichuan Miyaluo Nature Reserve based on remote sensing[J]. Acta Ecologica Sinica, 40(2): 1-8.
DOI URL |
|
[23] | 吴胜义, 张方圆, 王飞, 等, 2022. 基于DEM数据分析川西云杉林与高山柏林空间分布特征--以石渠县为例[J]. 西北林学院学报, 37(3): 133-138. |
WU S Y, ZHANG F Y, WANG F, et al., 2022. Spatial distribution characteristics of Picea likiangensis var. rubescens and Juniperus squamata forest in west Sichuan province based on DEM data: A case study of Shiqu county[J]. Journal of Northwest Forestry University, 37(3): 133-138. | |
[24] | 肖阳, 佘济云, 陆禹, 等, 2013. GIS 在天然林碳汇价值评价中的应用[J]. 中南林业科技大学学报, 33(12): 32-36. |
XIAO Y, SHE J Y, LU Y, et al., 2013. Application of GIS on evaluation of forest carbon-sink in natural forest[J]. Journal of Central South University of Forestry & Technology, 33(12): 32-36. | |
[25] | 徐少君, 曾波, 苏晓磊, 等, 2012. 基于RS/GIS的重庆缙云山自然保护区植被及碳储量密度空间分布研究[J]. 生态学报, 32(7): 2174-2184. |
XU S J, ZENG B, SU X L, et al., 2012. Spatial distribution of vegetation and carbon density in Jinyun Mountain Nature Reserve based on RS/GIS[J]. Acta Ecologica Sinica, 32(7): 2174-2184.
DOI URL |
|
[26] | 燕腾, 彭一航, 王效科, 等, 2016. 西南5省市区森林植被碳储量及碳密度估算[J]. 西北林学院学报, 31(4): 39-43. |
YAN T, PENG Y H, WANG X K, et al., 2016. Estimation on carbon reserve and carbon density of the forest vegetation in five southwestern provinces[J]. Journal of Northwest Forestry University, 31(4): 39-43. | |
[27] | 杨晓菲, 鲁绍伟, 饶良懿, 等, 2011. 中国森林生态系统碳储量及其影响因素研究进展[J]. 西北林学院学报, 26(3): 73-78. |
YANG X F, LU S W, RAO L Y, et al., 2011. Advances in the researches of carbon storage of forest ecology and related factors in China[J]. Journal of Northwest Forestry University, 26(3): 73-78. | |
[28] | 于贵瑞, 李海涛, 王绍强, 2003. 全球变化与陆地生态系统碳循环和碳蓄积[M]. 北京: 气象出版社. |
YU G R, LI H T, WANG S Q, 2003. Globle change, carbon cycle and storage in terrestrial ecosystem[M]. Beijing: Meteorology Press. | |
[29] | 余新晓, 鲁绍伟, 靳芳, 等, 2005. 中国森林生态系统服务功能价值评估[J]. 生态学报, 25(8): 2096-2102. |
YU X X, LU S W, JIN F, et al., 2005. The assessment of the forest ecosystem services evaluation in China[J]. Acta Ecologica Sinica, 25(8): 2096-2102. | |
[30] | 张静静, 赵天旭, 梁丹, 2020. 伏牛山地区森林生态系统服务空间差异分析[J]. 生态环境学报, 29(7): 1285-1291. |
ZHANG J J, ZHAO T X, LIANG D, 2020. Analysis on spatial differences of forest ecosystem services in Funiu Mountain Region[J]. Ecology and Environmental Sciences, 29(7): 1285-1291. |
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