Xinjiang Agricultural Sciences ›› 2022, Vol. 59 ›› Issue (8): 2041-2050.DOI: 10.6048/j.issn.1001-4330.2022.08.026
• Prataculture·Animal Husbandry Veterinarian • Previous Articles Next Articles
Cairenjiapu 1(), CAO Biao1, BAI Yungang1(
), LIU Xuhui1,2, YU Qiying3, LIU Minjie1
Received:
2021-08-12
Online:
2022-08-20
Published:
2022-10-01
Correspondence author:
BAI Yungang
Supported by:
才仁加甫1(), 曹彪1, 白云岗1(
), 刘旭辉1,2, 余其鹰3, 刘敏杰1
通讯作者:
白云岗
作者简介:
才仁加甫(1972-),男,新疆额敏人,硕士,高级工程师,研究方向为农田水利,(E-mail) 461551850@qq.com
基金资助:
CLC Number:
Cairenjiapu , CAO Biao, BAI Yungang, LIU Xuhui, YU Qiying, LIU Minjie. Remote Sensing Evaluation of Vegetation Restoration and Analysis of Driving Factors of Vegetation Change in the Desert Section of Hotan River[J]. Xinjiang Agricultural Sciences, 2022, 59(8): 2041-2050.
才仁加甫, 曹彪, 白云岗, 刘旭辉, 余其鹰, 刘敏杰. 和田河沙漠段生态输水植被恢复遥感评价和植被变化驱动因素分析[J]. 新疆农业科学, 2022, 59(8): 2041-2050.
编号 Number | 传感器类型 Sensor type | 年份 Year | 影像获取时间(月/日) Image acquisition time(month/day) | 空间分辨率 Spatial resolution(m) |
---|---|---|---|---|
1 | Landsat 8 OLI | 1996 | 9/19、10/5、10/21 | 30 |
2 | Landsat 8 OLI | 2000 | 9/22、10/8、10/24 | 30 |
3 | Landsat 8 OLI | 2006 | 9/23、10/9、10/25 | 30 |
4 | Landsat 8 OLI | 2009 | 9/15、10/1、10/17 | 30 |
5 | Landsat 8 OLI | 2013 | 9/18、10/4、10/20 | 30 |
6 | Landsat 8 OLI | 2015 | 9/15、10/1、10/17 | 30 |
7 | Landsat 8 OLI | 2018 | 9/16、10/2、10/18 | 30 |
8 | Landsat 8 OLI | 2020 | 9/21、10/7、10/23 | 30 |
Table 1 Remote sensing image attributes
编号 Number | 传感器类型 Sensor type | 年份 Year | 影像获取时间(月/日) Image acquisition time(month/day) | 空间分辨率 Spatial resolution(m) |
---|---|---|---|---|
1 | Landsat 8 OLI | 1996 | 9/19、10/5、10/21 | 30 |
2 | Landsat 8 OLI | 2000 | 9/22、10/8、10/24 | 30 |
3 | Landsat 8 OLI | 2006 | 9/23、10/9、10/25 | 30 |
4 | Landsat 8 OLI | 2009 | 9/15、10/1、10/17 | 30 |
5 | Landsat 8 OLI | 2013 | 9/18、10/4、10/20 | 30 |
6 | Landsat 8 OLI | 2015 | 9/15、10/1、10/17 | 30 |
7 | Landsat 8 OLI | 2018 | 9/16、10/2、10/18 | 30 |
8 | Landsat 8 OLI | 2020 | 9/21、10/7、10/23 | 30 |
名称 Name | 植被调查断面 Vegetation survey section | ||||||||
---|---|---|---|---|---|---|---|---|---|
艾格利牙断面 | 吐直鲁克断面 | 阔什拉 什断面 | 阔什拉什 +15 km断面 | 阔什拉什 +65 km断面 | 阔什拉什 +115 km断面 | 阔什拉什 +165 km断面 | 阔什拉什 +220 km断面 | 阔什拉什 +260 km断面 | |
流程距离 Distance(km) | -45 | -30 | 8 | 23 | 73 | 123 | 173 | 228 | 268 |
所在河流 River | 玉龙喀什河 | 喀拉喀什河 | 和田河 | 和田河 | 和田河 | 和田河 | 和田河 | 和田河 | 和田河 |
Table 2 Remote sensing monitoring section of vegetation in Hotan River desert
名称 Name | 植被调查断面 Vegetation survey section | ||||||||
---|---|---|---|---|---|---|---|---|---|
艾格利牙断面 | 吐直鲁克断面 | 阔什拉 什断面 | 阔什拉什 +15 km断面 | 阔什拉什 +65 km断面 | 阔什拉什 +115 km断面 | 阔什拉什 +165 km断面 | 阔什拉什 +220 km断面 | 阔什拉什 +260 km断面 | |
流程距离 Distance(km) | -45 | -30 | 8 | 23 | 73 | 123 | 173 | 228 | 268 |
所在河流 River | 玉龙喀什河 | 喀拉喀什河 | 和田河 | 和田河 | 和田河 | 和田河 | 和田河 | 和田河 | 和田河 |
级别 Level | NDVI 范围 NDVI scope | 类型 Type | 植被分布特点 Vegetation distribution characteristics |
---|---|---|---|
一级 | 0~0.056 | 沙漠 | 植被极稀疏甚至没有 |
二级 | 0.056~0.078 | 低植被覆盖 | 域内零星分布乔木或灌木 |
三级 | 0.078~0.106 | 中植被覆盖 | 域内较多分布乔木或灌木,少量草本植物 |
四级 | >0.106 | 高植被覆盖 | 植被较好,乔木、灌木、草本相间分布 |
Table 3 Classification of vegetation coverage in Hotan River desert section
级别 Level | NDVI 范围 NDVI scope | 类型 Type | 植被分布特点 Vegetation distribution characteristics |
---|---|---|---|
一级 | 0~0.056 | 沙漠 | 植被极稀疏甚至没有 |
二级 | 0.056~0.078 | 低植被覆盖 | 域内零星分布乔木或灌木 |
三级 | 0.078~0.106 | 中植被覆盖 | 域内较多分布乔木或灌木,少量草本植物 |
四级 | >0.106 | 高植被覆盖 | 植被较好,乔木、灌木、草本相间分布 |
Fig. 15 Correlation analysis between NDVI value of Hotan River desert section and regional rainfall(a) and water inflow from upstream section of river section(b)
[1] | 杨丽文, 何秉宇, 黄培佑, 等. 和田河流域天然柽柳灌木林生态价值评估[J]. 中国沙漠, 2005, 25(2):268-274. |
YANG Liwen, HE Bingyu, HUANG Peiyou, et al. Evaluation on ecological value of Tamarix spp. forest in Hotan drainage basin[J]. Journal of Desert Research, 2005, 25(2): 268-274. | |
[2] | 韩路, 陈家力, 王家强, 等. 塔河源荒漠河岸林群落物种组成,结构与植物区系特征[J]. 植物科学学报, 2019, 37(3):324-336. |
HAN Lu, CHEN Jiali, WANG Jiaqiang, et al. Species composition, community structure, and floristic characteristics of desert riparian forest community along the mainstream of Tarim River[J]. Plant Science Journal, 2019, 37(3): 324-336. | |
[3] | 韩路, 王家强, 王海珍, 等. 塔里木荒漠绿洲过渡带主要种群生态位与空间格局分析[J]. 植物科学学报, 2016, 34(3):352-360 |
HAN Lu, WANG Jiaqiang, WANG Haizhen, et al. Niche and spatial distribution pattern analysis of the main populations of the Tarim desert-oasis ecotone[J]. Plant Science Journal, 2016, 34(3): 352-360. | |
[4] | 褚桂红, 史文娟, 王娟. 和田河上游径流变化特征及影响因子分析[J]. 干旱区资源与环境, 2010, 24(11):83-87. |
CHU Guihong, SHI Wenjuan, WANG Juan. Runoff variation characteristics and influencing factors in the upper reaches of Hotan River[J]. Journal of Arid Land Resources and Environment, 2010, 24(11): 83-87. | |
[5] | 黄领梅, 沈冰, 宋孝玉, 等. 和田河流域地表径流变化分析[J]. 沈阳农业大学学报, 2004, 35(5-6):513-515. |
HUANG Lingmei, SHEN Bing, SONG Xiaoyu, et al. Characteristics of surface water resources in the Hotan River Basin[J]. Journal of Shenyang Agricultural University, 2004, 35(5-6): 513-515. | |
[6] | 王昱, 冯起, 陈丽娟, 等. 基于参与性调查的生态输水和治理工程的可持续性[J]. 应用生态学报, 2014, 25(1):211-218. |
WANG Yu, FENG Qi, CHEN Lijuan, et al. Sustainability of ecological water transfer and rehabilitation project based on participatory survey.[J]. Chinese Journal of Applied Ecology, 2014, 25(1): 211-218. | |
[7] | 邓铭江. 塔里木河下游生态输水及植被恢复遥感监测评价[J]. 冰川冻土, 2007, 29(3):380-386. |
DENG Mingjiang. An appraisal of remote-sensing monitoring on vegetation restoration and ecological water-conveying in the lower reaches of Tarim River[J]. Journal of Glaciology and Geocryology, 2007, 29(3): 380-386. | |
[8] | 邓铭江. 中国塔里木河治水理论与实践[M]. 北京: 科学出版社, 2009. |
DENG Mingjiang. Water Control Theory and Practice of Tarim River in China[M]. Beijing: Science Press, 2009. | |
[9] | 王士飞. 塔里木河下游应急输水十年的植被恢复遥感研究[D]. 北京. 中国科学院研究生院, 2013. |
WANG Shifei. Vegetation recovery monitored by remote sensing after ten years of water conveyance in Tarim River[D] Beijing: Graduate School of Chinese Academy of Sciences, 2013. | |
[10] | 刘桂林, 艾里西尔·库尔班, 艾尔肯·艾白不拉, 等. 塔里木河下游生态输水后植被景观格局动态变化研究[J]. 冰川冻土, 2012, 34(1):161-168. |
LIU Guilin, Alishir KURBAN, Arkin Abaydulla, et al. Changes in landscape pattern in the lower reaches of Tarim River after an ecological water delivery[J]. Journal of Glaciology and Geocryology, 2012, 34(1): 161-168. | |
[11] |
黄粤, 包安明, 王士飞, 等. 间歇性输水影响下的2001-2011年塔里木河下游生态环境变化[J]. 地理学报, 2013, 68(9):1251-1262.
DOI |
HUANG Yue, BAO Anming, WANG Shifei, et al. Eco-environmental change in the lower Tarim River under the influence of intermittent water transport[J]. Acta Geographica Sinica, 2013, 68(9): 1251-1262.
DOI |
|
[12] | 王雅梅, 张青青, 徐海量, 等. 生态输水前后台特玛湖植物多样性变化特征[J]. 干旱区研究, 2019, 36(5):1186-1193. |
WANG Yamei, ZHANG Qingqing, XU Hailiang, et al. Characteristics of plant diversity in the Taitema Lake before and after ecological water transport[J]. Arid Zone Research, 2019, 36(5): 1186-1193. | |
[13] | 艾克热木·阿布拉, 朱俏俏, 徐海量, 等. 台特玛湖植被变化特征[J]. 新疆大学学报(自然科学版), 2019, 36(2):182-191. |
Aikeremu ABULA, ZHU Qiaoqiao, XU Hailiang, et al. Characteristics of vegetation variation in Taitema Lake[J]. Journal of Xinjiang University(Natural Science Ed.), 2019, 36(2):182-191. | |
[14] | 张一驰, 于静洁, 乔茂云, 等. 黑河流域生态输水对下游植被变化影响研究[J]. 水利学报, 2011, 42(7):757-765. |
ZHANG Yichi, YU Jingjie, QIAO Maoyun et al. Effects of eco-water transfer on changes of vegetation in the lower Heihe River basin.[J]. Journal of Hydraulic Engineering, 2011, 42(7): 757-765. | |
[15] | 余其鹰, 张江辉, 白云岗, 等. 1957—2018年和田河源流径流演变特征[J]. 干旱区研究, 2021, 38(2):494-503. |
YU Qiying, ZHANG Jianghui, BAI Yungang, et al. Evolution characteristics of the headstream of the Hotan River headstream from 1957 to 2018[J]. Arid Zone Research, 2021, 38(2): 494-503. | |
[16] |
XU Hanqiu. Modification of Normalised Difference Water Index(NDWI) to enhance open water features in remotely sensed imagery[J]. International Journal of Remote Sensing, 2006, 27(14): 3025-3033.
DOI URL |
[17] | Juanda E T, Martono D N, Saria L. Analysis vegetation change on coal mine reclamation using Normalized Difference Vegetation Index(NDVI)[J]. IOP Conference Series: Earth and Environmental Science, 2021, 716(1): 012035. |
[18] | 何金苹, 徐长春, 李晓菲, 等. 开都—孔雀河流域NDVI动态变化及其与气温和降水的联系[J]. 水土保持研究, 2018, 25(6):329-334. |
HE Jinping, XU Changchun, LI Xiaofei, et al. Change trend of NDVI and its response to temperature and precipitation in long time series in Kaidu-Kongqi River Basin[J]. Research of Soil and Water Conservation, 2018, 25(6): 329-334. | |
[19] | 陈欢, 任志远. 中国大陆植被覆盖对降水与温度变化的响应[J]. 水土保持通报, 2013, 33(2):78-82. |
CHEN Huan, REN Zhiyuan. Response of vegetation coverage to changes of precipitation and temperature in Chinese mainland[J]. Bulletin of Soil and Water Conservation, 2013, 33(2): 78-82. | |
[20] | 郭帅, 裴艳茜, 胡胜, 等. 黄河流域植被指数对气候变化的响应及其与水沙变化的关系[J]. 水土保持通报, 2020, 40(3):1-7. |
GUO Shuai, PEI Yanqian, HU Sheng, et al. Response of vegetation index to climate change and their relationship with runoff-sediment change in Yellow River Basin[J]. Bulletin of Soil and Water Conservation, 2020, 40(3): 1-7. | |
[21] | 余其鹰, 白云岗, 张江辉, 等. 和田河流域干流河道耗水过程分析[J]. 水资源与水工程学报, 2021, 32(2):73-80. |
YU Qiying, BAI Yungang, ZHANG Jianghui, et al. Analysis of water consumption process in the main stream of Hotan River Basin[J]. Journal of Water Resources and Water Engineering, 2021, 32(2): 73-80. |
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