HDS-SPAC,a new soil-plant-atmosphere continuum(SPAC) model,is developed for simulating water and heat transfer in SPAC.The model adopts a recently proposed hybrid dual source approach for soil evaporation and plant tr...HDS-SPAC,a new soil-plant-atmosphere continuum(SPAC) model,is developed for simulating water and heat transfer in SPAC.The model adopts a recently proposed hybrid dual source approach for soil evaporation and plant transpiration partitioning.For the above-ground part,a layer approach is used to partition available energy and calculate aerodynamic resistances,while a patch approach is used to derive sensible heat and latent heat fluxes from the two sources(soil and vegetation).For the below-ground part,soil water and heat dynamics are described by the mixed form of Richards equation,and the soil heat conductivity equation,respectively.These two parts are coupled through ground heat flux for energy transfer,root-zone water potential-dependent stomatal resistance,and surface soil water potential-dependent evaporation for water transfer.Evaporation is calculated from the water potential gradient at soil-atmosphere interface and aerodynamic resistance,and transpiration is determined using a Jarvis-type function linking soil water availability and atmospheric conditions.Some other processes,such as canopy interception and deep percolation,are also considered in the HDS-SPAC model.The hybrid dual-source approach allows HDS-SPAC to simulate heat and water transfer in an ecosystem with a large range of vegetation cover change temporally or spatially.The model was tested with observations at a wheat field in North China Plain over a time of three months covering both wet and dry conditions.The fractional crop covers change from 30% to over 90%.The results indicated that the HDS-SPAC model can estimate actual evaporation and transpiration partitioning and soil water content and temperature over the whole range of tested vegetation coverage.展开更多
定量描述农田生态系统中土壤水分动态、碳氮循环过程和作物生长发育规律,对水氮资源高效利用、作物生产决策和环境保护具有十分重要的意义。该文在总结前人研究成果的基础上,引用了联合国粮食及农业组织的气象模块、荷兰的PS123作物模...定量描述农田生态系统中土壤水分动态、碳氮循环过程和作物生长发育规律,对水氮资源高效利用、作物生产决策和环境保护具有十分重要的意义。该文在总结前人研究成果的基础上,引用了联合国粮食及农业组织的气象模块、荷兰的PS123作物模型和丹麦的Daisy模型的碳氮循环模块;借鉴了RZWQM和Hydrus-1D的水分溶质运移模块的相关理论,并在其基础上进行了修改与完善,构建了土壤-作物-大气系统水热碳氮耦合模拟模型WHCNS(soil water heat carbon and nitrogen simulation)。该模型以天为步长,考虑了气象条件、作物生物学特性和田间管理驱动。土壤水分入渗和再分布过程分别采用Green-Ampt模型和Richards方程来描述。土壤氮素运移使用对流-弥散方程来描述,源汇项中考虑碳氮循环的各个过程(有机质矿化、生物固持、尿素水解、氨挥发、硝化、反硝化和作物吸收等),在根系吸水吸氮源汇项中引入了补偿性吸收机制。有机质模块完全来自Daisy模型,将有机质库划分为3个快库和3个慢库。利用改进的荷兰PS123模型实现了作物生长发育进程、干物质生产、干物质分配及作物产量的模拟,通过水氮胁迫校准因子来实现水氮限制下作物产量的模拟。最后应用华北地区(山东泰安)冬小麦-夏玉米轮作体系2 a的田间观测数据对该模型进行了校验。结果表明,剖面土壤水分和硝态氮浓度、叶面积指数、作物产量与实测值均吻合良好,模拟误差均在合理范围之内,特别是对产量的模拟较好,均方根误差为206-319 kg/hm^2,相关系数为0.90,模型效率值均大于0.75,一致性指数值均大于0.9。WHCNS模型能够较好地模拟土壤水分动态、氮素运移及去向、作物生长发育等过程,表明该模型适用于中国华北地区高度集约化的农田生产系统。展开更多
基金supported by the National Natural Science Foundation of China (Grant Nos. 50879041 and 50939004)the National Hi-Tech Research and Development Program of China (Grant No.2011BAD25B05)
文摘HDS-SPAC,a new soil-plant-atmosphere continuum(SPAC) model,is developed for simulating water and heat transfer in SPAC.The model adopts a recently proposed hybrid dual source approach for soil evaporation and plant transpiration partitioning.For the above-ground part,a layer approach is used to partition available energy and calculate aerodynamic resistances,while a patch approach is used to derive sensible heat and latent heat fluxes from the two sources(soil and vegetation).For the below-ground part,soil water and heat dynamics are described by the mixed form of Richards equation,and the soil heat conductivity equation,respectively.These two parts are coupled through ground heat flux for energy transfer,root-zone water potential-dependent stomatal resistance,and surface soil water potential-dependent evaporation for water transfer.Evaporation is calculated from the water potential gradient at soil-atmosphere interface and aerodynamic resistance,and transpiration is determined using a Jarvis-type function linking soil water availability and atmospheric conditions.Some other processes,such as canopy interception and deep percolation,are also considered in the HDS-SPAC model.The hybrid dual-source approach allows HDS-SPAC to simulate heat and water transfer in an ecosystem with a large range of vegetation cover change temporally or spatially.The model was tested with observations at a wheat field in North China Plain over a time of three months covering both wet and dry conditions.The fractional crop covers change from 30% to over 90%.The results indicated that the HDS-SPAC model can estimate actual evaporation and transpiration partitioning and soil water content and temperature over the whole range of tested vegetation coverage.
文摘定量描述农田生态系统中土壤水分动态、碳氮循环过程和作物生长发育规律,对水氮资源高效利用、作物生产决策和环境保护具有十分重要的意义。该文在总结前人研究成果的基础上,引用了联合国粮食及农业组织的气象模块、荷兰的PS123作物模型和丹麦的Daisy模型的碳氮循环模块;借鉴了RZWQM和Hydrus-1D的水分溶质运移模块的相关理论,并在其基础上进行了修改与完善,构建了土壤-作物-大气系统水热碳氮耦合模拟模型WHCNS(soil water heat carbon and nitrogen simulation)。该模型以天为步长,考虑了气象条件、作物生物学特性和田间管理驱动。土壤水分入渗和再分布过程分别采用Green-Ampt模型和Richards方程来描述。土壤氮素运移使用对流-弥散方程来描述,源汇项中考虑碳氮循环的各个过程(有机质矿化、生物固持、尿素水解、氨挥发、硝化、反硝化和作物吸收等),在根系吸水吸氮源汇项中引入了补偿性吸收机制。有机质模块完全来自Daisy模型,将有机质库划分为3个快库和3个慢库。利用改进的荷兰PS123模型实现了作物生长发育进程、干物质生产、干物质分配及作物产量的模拟,通过水氮胁迫校准因子来实现水氮限制下作物产量的模拟。最后应用华北地区(山东泰安)冬小麦-夏玉米轮作体系2 a的田间观测数据对该模型进行了校验。结果表明,剖面土壤水分和硝态氮浓度、叶面积指数、作物产量与实测值均吻合良好,模拟误差均在合理范围之内,特别是对产量的模拟较好,均方根误差为206-319 kg/hm^2,相关系数为0.90,模型效率值均大于0.75,一致性指数值均大于0.9。WHCNS模型能够较好地模拟土壤水分动态、氮素运移及去向、作物生长发育等过程,表明该模型适用于中国华北地区高度集约化的农田生产系统。