Evaluating the Snow Cover Service Value on the Qinghai–Tibet Plateau
Abstract
:1. Introduction
2. Study Area
3. Data and Methods
3.1. Data Sources
3.2. Evaluation System of Snow Cover Service Value
3.3. Assessment Methods Snow Cover Service Value
4. Results
4.1. Temporal Variation of the Snow Cover Service Value
4.2. Spatial Variation of the Snow Cover Service Value
4.3. Monthly Variation in Snow Cover Service Value
4.4. Comparison of Different Ecosystem Services Value
4.5. Influencing Factors of Snow Cover Service Value
5. Discussion
5.1. Recommendations for Protection and Development
5.2. Limitations and Outlook
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Name | Definition and Function |
---|---|
SCSV (Snow Cover Service Value) | This refers to the benefits that humans derive directly or indirectly from snow cover. In the article, SCSV is used to assess the overall economic value of snow cover on the Qinghai–Tibet Plateau, including aspects such as climate regulation and water supply. |
RRV (Runoff Regulation Value) | This represents the value of snow cover in regulating runoff. In the article, RRV is estimated using the shadow price method, calculating how snow cover supports water resource management by regulating surface water flows. |
FSV (Freshwater Supply Value) | This reflects the economic contribution of snow cover through providing meltwater resources to human water systems. In the article, FSV is calculated using the market value method. |
CRV (Climate Regulation Value) | This involves the economic impact of snow cover in regulating the regional climate by reflecting solar radiation. The article assesses CRV using the equivalent factor method, highlighting the importance of snow cover in climate regulation. |
TRV (Tourism and Recreation Value) | This reflects the economic value of snow cover as a tourism and recreation resource. In the article, TRV is estimated using the travel cost method, indicating the contribution of snowscapes and related activities to the tourism industry. |
SRV (Scientific Research Value) | This denotes the economic value provided by snow cover for scientific research. In the article, SRV is estimated by linking snow cover to research funding, emphasizing the importance of snow cover research to the scientific community. |
Shadow price method | Used to evaluate the economic value of environmental resources or public goods, typically employed when market prices are unavailable. This method is used in the article to estimate RRV [52]. |
Market value method | Directly uses market prices to assess the value of goods or services. In the article, this method is used to calculate FSV, evaluating the supply value of snow water through market water prices [52]. |
Travel cost method | Used to assess the value of natural or leisure resources based on the travel costs required to access these resources. This method is used in the article to estimate TRV [27]. |
Equivalent factor method | Converts non-market values (such as environmental services) into economic values, often relying on utility or efficiency factors. This method is used in the article to calculate CRV, showing the cooling costs saved by changing the surface albedo [28,29,30,31,32,33,34,35,36,37,38,39,40,41,42,43,44,45,46,47,48,49,50,51,52,53,54]. |
Engel’s coefficient | Measures the proportion of household expenditure on food to total expenditure, commonly used to assess economic development levels and living standards. In the article, this coefficient is used to measure tourists’ willingness to pay for snow tourism [27]. |
Peel’s growth curve | A model that describes the stages of technological or economic development. In the article, this model is used to predict growth trends in snow tourism [27]. |
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Name | Type | Resolution | Data Source |
---|---|---|---|
Snow water equivalent | Raster | 25 km | Snow water equivalent 25 km daily product in China from 1980 to 2020 [37,38] |
Snowmelt | Raster | 1 km | Monthly snowmelt dataset in China during 1951–2020 [39] |
Snow albedo | Raster | 1 km | China cloud-removal snow albedo product data set (2000–2020) [40,41,42,43] |
Net solar radiation | Raster | 1 km | China’s net solar radiation data set based on era5 from 1982 to 2020 [44] |
Snow cover days | Raster | 1 km | A dataset of snow phenology in China based on MODIS from 2000 to 2020 [45] |
Tourism income | Statistical data | 1 year | Qinghai Province National Economic and Social Development Statistical Bulletin (2001–2020) [46] Statistical Bulletin on National Economic and Social Development of Tibet Autonomous Region (2001–2020) [47] |
Engel coefficient | Statistical data | 1 year | Statistical Bulletin of the People’s Republic of China on National Economic and Social Development (2001–2020) [48] |
research funding | Statistical data | 1 year | National Natural Science Foundation of China [49] |
temperature | Raster | 1 km | 1-km monthly mean temperature dataset for China (1901–2022) [50] |
precipitation | Raster | 1 km | 1-km monthly precipitation dataset for China (1901–2022) [51] |
Type | Formula | Parameters | Calculation Basis |
---|---|---|---|
RRV | Shadow price method [52] | Where is the RRV of the average annual snow cover (yuan), is the daily snow cover area (km2), is the daily snow water equivalent (mm), and is the unit reservoir cost (yuan/m3), which was 8.39 yuan/m3 in 2018 [53]. Calculated according to the fixed asset price index, the unit reservoir cost in 2020 is 8.4 yuan/m3. | Convert snowmelt water into mountain reservoir capacity, then calculate the runoff regulation value by combining it with the unit cost of reservoir storage. |
FSV | Market value method [52] | Where is the FSV of snow cover in a certain year (yuan), is the snow cover area of a certain month (km2), is the equivalent of snow melting water in a certain month (mm), and is the average water supply price on the QTP, which is 1.87 yuan/m3. | Calculate the total amount of snow water by using the total snow area and snowmelt equivalent, and then determine the freshwater supply value by combining it with the market water price. |
CRV | Equivalent factor method [54] | Where is the CRV of snow cover (yuan), is the air-conditioning refrigeration efficiency ratio, which is taken as 0.3, and is the average price of electricity on the QTP, which is taken as 0.52 yuan/kw·h; is the contribution rate of solar radiation reflected by snow cover in a year (kw·h), is the land surface albedo caused by snow cover, is the net surface radiation flux caused by albedo changes (W/m2), is the proportion of snow cover accumulation time in a certain place in the year, and is the annual average solar radiation time, which is 3000 h/year. | Calculate the climate regulation value by equating the solar radiation reflected by the snow surface to the equivalent amount of heat reduction during air conditioning cooling. |
TRV | Travel cost method [27] | Where is the willingness to pay for tourism, is the Engel coefficient, is the TRV of snow cover (yuan), and is the total tourism income (yuan). | Determine the tourism and recreation value by calculating people’s willingness to pay for tourism and combining it with snow tourism income. |
SRV | Equivalent factor method [28] | Where is the SRV of snow cover (yuan), and is the sum of relevant scientific research funds (yuan). | Estimate the scientific research value based on the total amount of snow-related projects in the QTP funded by the National Natural Science Foundation of China, although this might somewhat overestimate the value. |
Basin Name | RRV (×109 yuan) | FSV (×109 yuan) | CRV (×109 yuan) | TRV (×106 yuan) | SRV (×106 yuan) | |||||
---|---|---|---|---|---|---|---|---|---|---|
Values | Variation | Values | Variation | Values | Variation | Values | Variation | Values | Variation | |
Brahmaputra | 137.76 | −0.01 | 44.66 | −0.35 | 836.74 | −0.01 | 498.14 | 0.01 | 22.65 | 0.25 |
Ganges | 16.26 | 0.25 | 4.35 | 0.06 | 146.86 | 0.04 | 51.88 | 0.10 | 2.40 | 1.97 |
Hexi Corridor | 17.38 | 0.04 | 6.79 | 0.26 | 174.96 | 0.02 | 105.16 | 0.05 | 4.74 | 1.20 |
Indus | 37.49 | −0.05 | 6.46 | 0.50 | 553.72 | 0.002 | 184.16 | 0.03 | 8.75 | 0.54 |
Inner Plateau | 349.25 | −0.01 | 24.25 | −0.57 | 1272.56 | 0.001 | 594.41 | 0.01 | 27.86 | 0.19 |
Mekong | 24.08 | 0.15 | 11.11 | −0.25 | 204.17 | 0.01 | 127.88 | 0.04 | 5.80 | 0.92 |
Qaidam | 79.85 | −0.01 | 10.03 | 0.05 | 389.34 | 0.01 | 239.81 | 0.02 | 10.28 | 0.65 |
Salween | 38.52 | 0.004 | 20.11 | −0.55 | 436.20 | −0.01 | 228.55 | 0.02 | 10.44 | 0.56 |
Tarim | 65.69 | −0.05 | 2.05 | −2.46 | 866.48 | −0.003 | 442.31 | 0.01 | 20.03 | 0.28 |
Yangtze | 135.47 | −0.02 | 56.02 | −0.12 | 626.78 | 0.01 | 518.04 | 0.01 | 23.18 | 0.25 |
Yellow | 69.47 | −0.02 | 27.22 | 0.28 | 298.44 | 0.02 | 246.78 | 0.02 | 10.26 | 0.54 |
Total | 971.22 | −0.002 | 213.04 | −0.05 | 5806.25 | 0.001 | 3237.12 | 0.002 | 146.39 | 0.04 |
Service Types | The Proportion of Each Ecosystem Service Value (%) | |||||
---|---|---|---|---|---|---|
Snow Cover a | Glacier b | Forest c | Grassland d | Wetland e | Urban Area f | |
Freshwater supply/Product supply | 3.01 | 5.22 | - | 19.85 | 2.46 | 5.97 |
Runoff regulation/Water conservation | 13.96 | 33.14 | 14.03 | 1.99 | 54.12 | 27.31 |
Climate regulation | 82.98 | 60.7 | 12.69 | 48.69 | 24.12 | 14.26 |
Soil conservation | - | - | 46.59 | 9.93 | 0.12 | 11.23 |
Habitat Support/Biodiversity | - | 0.05 | 26.68 | 19.37 | 18.29 | 34.87 |
Travel and recreation/Aesthetics | 0.047 | 0.85 | 0.01 | 0.18 | 0.77 | 6.36 |
Scientific research | 0.003 | 0.04 | - | - | 0.12 | - |
Target Area | Feature | Suggestions and Measures |
---|---|---|
Brahmaputra | SCSV accounts for 14.58% | Long-term monitoring and early warning, pay attention to changes in water source areas. |
Ganges | Unit SCSV is 1.76 times the average value, and sensitive to temperature | Establish a snow nature reserve and pay attention to temperature changes in snow-covered areas. |
Hexi Corridor | Unit humanistic property value is 1.44 times the average value | Promote eco-tourism and strengthen scientific research. |
Indus | Unit SCSV is 2.21 times the average value, snow melt water is concentrated, and the SCSV is sensitive to temperature | Establish a snow nature reserve, pay attention to seasonal snow melt water disasters, and pay attention to temperature changes. |
Inner Plateau | SCSV is accounts for 23.54% | Long-term monitoring and early warning, and pay attention to changes in snow water source areas. |
Mekong | Unit SCSV is 1.13 times the average value | Establish a snow nature reserve. |
Qaidam | Snow melt period is shorter | Prevent drought disaster. |
Salween | Unit SCSV is 1.7 times the average value | Establish a snow nature reserve. |
Tarim | Unit SCSV is 1.74 times the average value, snow melt water is concentrated | Establish a snow nature reserve and pay attention to seasonal snow melt water disasters. |
Yangtze | SCSV accounts for 11.71%, while the unit SCSV is 0.69 times the average value | Long-term monitoring and early warning, manage and restore snow cover resources. |
Yellow | Unit SCSV is 0.58 times the average value, the SCSV is sensitive to precipitation | Manage and restore snow cover resources, pay special attention to monitoring precipitation changes in snow-covered areas. |
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Gao, X.; Feng, Q.; Liu, W.; Deng, X.; Zhu, M.; Zhang, B.; Xue, J. Evaluating the Snow Cover Service Value on the Qinghai–Tibet Plateau. Remote Sens. 2024, 16, 2600. https://doi.org/10.3390/rs16142600
Gao X, Feng Q, Liu W, Deng X, Zhu M, Zhang B, Xue J. Evaluating the Snow Cover Service Value on the Qinghai–Tibet Plateau. Remote Sensing. 2024; 16(14):2600. https://doi.org/10.3390/rs16142600
Chicago/Turabian StyleGao, Xianglong, Qi Feng, Wen Liu, Xiaohong Deng, Meng Zhu, Baiting Zhang, and Jian Xue. 2024. "Evaluating the Snow Cover Service Value on the Qinghai–Tibet Plateau" Remote Sensing 16, no. 14: 2600. https://doi.org/10.3390/rs16142600