农业工程学报
農業工程學報
농업공정학보
2013年
z1期
197-202
,共6页
温室%模型%试验%番茄%种植密度%坐果率
溫室%模型%試驗%番茄%種植密度%坐果率
온실%모형%시험%번가%충식밀도%좌과솔
greenhouses%models%experiments%tomato%plant density%fruit set rate
为深入研究果实坐果机理,在现有模型基础上,以温室番茄为研究对象开展温室试验,结合温室环境的可控性和计算机软件设计,观察不同密度植株的动态坐果率,通过模型分析动态坐果率与植株内部动态同化物供给与需求比率(Q/D)之间的关系,建立反映果实从坐果到发育与全局生物量动态反馈的生长模型,并用独立数据进行了生长模拟,生物量和几何尺寸的模拟值与试验数据接近,验证了模型的有效性.模型的建立完善了GreenLab模型在果实方面的处理功能,实现了植株坐果的定量化研究.
為深入研究果實坐果機理,在現有模型基礎上,以溫室番茄為研究對象開展溫室試驗,結閤溫室環境的可控性和計算機軟件設計,觀察不同密度植株的動態坐果率,通過模型分析動態坐果率與植株內部動態同化物供給與需求比率(Q/D)之間的關繫,建立反映果實從坐果到髮育與全跼生物量動態反饋的生長模型,併用獨立數據進行瞭生長模擬,生物量和幾何呎吋的模擬值與試驗數據接近,驗證瞭模型的有效性.模型的建立完善瞭GreenLab模型在果實方麵的處理功能,實現瞭植株坐果的定量化研究.
위심입연구과실좌과궤리,재현유모형기출상,이온실번가위연구대상개전온실시험,결합온실배경적가공성화계산궤연건설계,관찰불동밀도식주적동태좌과솔,통과모형분석동태좌과솔여식주내부동태동화물공급여수구비솔(Q/D)지간적관계,건립반영과실종좌과도발육여전국생물량동태반궤적생장모형,병용독립수거진행료생장모의,생물량화궤하척촌적모의치여시험수거접근,험증료모형적유효성.모형적건립완선료GreenLab모형재과실방면적처리공능,실현료식주좌과적정양화연구.
Fruit set is the key factor to crop yield and it has been a study focus so far. How to find an indicator that can reflect fruit set mechanism become more and more important. In this paper, utilized greenhouse tomato as a case to study the fruit set mechanism. Tomatoes were planted in solar greenhouse with four densities, environmental data and experiment data were recorded in detailed. Combined with math model, controlled environmental conditions of greenhouse and computer software design technology, the analysis were made to find the related factors which influence the fruit yield and dynamic fruit set rate for different plant density data. GreenLab model had particular advantage to simulate plant growth at organ level. With the help of GreenLab, the dynamic ratios of source to demand (i.e. Q/D) of biomass assimilation were output one growth cycle by one growth cycle. The relationship between the dynamic rate of fruit sets and the dynamic ratio of source to demand (i.e. Q/D) of biomass assimilation was built through the correlation analysis between observed data of dynamic fruit set and calculated Q/D value of model output. In order to computer programming and simulate, tomato topology structure was observed and plant topology generating rhythm was described as List data structure of Scilib language. This data structure can describe main stem and lateral axis alternative growth and syngenesis relationship between organs, so a plant topology structure in time sequence was produced. From the seeds, organs creation, biomass acquisition and partitioning were processed during the same growth cycle to insure feedback between organogenesis and photosynthesis. A global feedback dynamic fruit growth model was successfully built up. Following, independent data was used to validate the model. Both simulation data and measurement data of biomass and geometry size were close. The work provided a new research approach for crop yield. Introducing fruit set into mechanistic models can make growth and development prediction more precisely, especially for fruit. Meanwhile, structure and function variations integration was the highlight of work. This work improved the current GreenLab model as far as fruit growth simulation, and would provide a quantitative tool for the research on fruit sets. Tomato fruit growth model in this research called as GreenLab_Tomato_Fruit model which simulated fruit yield variation with plant density more precisely. The results also demonstrated that season may affect the model parameter, difference densities in seasons needed to further explore in GreenLab_Tomato_Fruit model. Combining with optimization method, the model would provide useful tools to optimize planting density and horticultural practice such as pruning and environmental control for more crops in special constrained environment in the future.