Coconut tree modeling based on abiotic factors and modified cosserat rod theory.

IF 4.7 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Sakthiprasad Kuttankulangara Manoharan, Rajesh Kannan Megalingam
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引用次数: 0

Abstract

The biomechanics of growing trees, particularly coconut trees, are intricate due to various abiotic factors such as sunlight, wind, gravitropism, and cultivation practices. Existing structural growth models fail to capture the unique characteristics of coconut trees, which lack branches and have large crown leaves. This research introduces a novel coconut tree modeling approach, integrating abiotic factors and modified Cosserat rod theory. Factors like sunlight availability, wind speed, cultivation practices, and gravitropism influence coconut tree growth rates. The model encompasses both primary and secondary growth processes. Primary growth is influenced by gravitropism, sunlight availability, and wind effects, while secondary growth is determined by variations in trunk diameter. Additionally, the model incorporates the diameter at breast height to accommodate cultivation practice variations. Comparisons between the proposed model, classical rod theory, and biomechanics growth models reveal that the proposed model aligns more closely with real-time data on spatial and temporal growth characteristics. This research marks the first attempt to model coconut tree growth considering abiotic factors comprehensively. In summary, this study presents a pioneering coconut tree growth model that integrates abiotic factors and modified Cosserat rod theory. By considering unique features of coconut trees and environmental influences, the model offers more accurate predictions compared to existing approaches, enhancing our understanding of coconut tree biomechanics and growth patterns. Coconut tree modeling has diverse applications in precision agriculture, automated harvesting, tree health monitoring, climate change analysis, urban planning, and the biomass industry, helping optimize yield, resource management, and sustainability. It also plays a crucial role in genetic research, disaster preparedness, and risk assessment, enabling advancements in robotics, environmental conservation, and industrial applications for improved productivity and resilience.

基于非生物因子和修正的coserat杆理论的椰子树建模。
树木生长的生物力学,特别是椰子树,由于各种非生物因素,如阳光、风、向地性和栽培方法,是复杂的。现有的结构生长模型未能捕捉到椰子树的独特特征,椰子树没有树枝,有大的冠叶。本文介绍了一种新的椰子树建模方法,该方法结合了非生物因素和修正的coserat杆理论。日照、风速、栽培方法和向地性等因素都会影响椰子树的生长率。该模型包括初级和次级生长过程。初生生长受向重力、日照利用率和风的影响,次生生长受树干直径变化的影响。此外,该模型纳入了胸围高度的直径,以适应栽培实践的变化。将该模型与经典杆理论和生物力学生长模型进行比较,发现该模型更符合时空生长特征的实时数据。本研究首次尝试综合考虑非生物因素的椰子树生长模型。综上所述,本研究提出了一种结合非生物因素和修正coserat杆理论的椰子树生长模型。通过考虑椰子树的独特特征和环境影响,该模型提供了比现有方法更准确的预测,增强了我们对椰子树生物力学和生长模式的理解。椰子树建模在精准农业、自动化收获、树木健康监测、气候变化分析、城市规划和生物质产业中具有多种应用,有助于优化产量、资源管理和可持续性。它还在基因研究、备灾和风险评估方面发挥着至关重要的作用,促进了机器人技术、环境保护和工业应用的进步,以提高生产率和恢复力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plant Methods
Plant Methods 生物-植物科学
CiteScore
9.20
自引率
3.90%
发文量
121
审稿时长
2 months
期刊介绍: Plant Methods is an open access, peer-reviewed, online journal for the plant research community that encompasses all aspects of technological innovation in the plant sciences. There is no doubt that we have entered an exciting new era in plant biology. The completion of the Arabidopsis genome sequence, and the rapid progress being made in other plant genomics projects are providing unparalleled opportunities for progress in all areas of plant science. Nevertheless, enormous challenges lie ahead if we are to understand the function of every gene in the genome, and how the individual parts work together to make the whole organism. Achieving these goals will require an unprecedented collaborative effort, combining high-throughput, system-wide technologies with more focused approaches that integrate traditional disciplines such as cell biology, biochemistry and molecular genetics. Technological innovation is probably the most important catalyst for progress in any scientific discipline. Plant Methods’ goal is to stimulate the development and adoption of new and improved techniques and research tools and, where appropriate, to promote consistency of methodologies for better integration of data from different laboratories.
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