Principles of Simulation of Invasion Stages with Allowance for Solar Cycles

IF 0.8 4区 物理与天体物理 Q4 PHYSICS, APPLIED Technical Physics Letters Pub Date : 2023-12-20 DOI:10.1134/s1063785023700049
V. V. Mikhailov, A. Yu. Perevaryukha, I. V. Trofimova
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Abstract

A method for constructing models of the scenario simulation of special situations in biophysical systems with allowance for the effect of changes in the physics of the Sun is proposed. Tools for representing hybrid computational structures for computer models of scenarios of invasion of species with a high reproductive potential into a new habitat by analogy with physical phase transitions are being intentionally developed. Our analysis shows that the dynamics of population insect invasions has much in common with the development of the modern pandemic: many series of repeated activity outbreaks are observed in both forest pests and new strains of coronavirus. After a long, but false and deceptive, damping, local peaks reappear, as has been observed for the invasive North American Lymantria dispar moth pest. Physical models of oscillators need to be significantly improved, since biosystems are self-regulating. We have formed a calculation scheme from variants of the right-hand sides of differential equations with predicates for their situational switching at the event transformation points. We have simulated the extreme development and analyzed options in the sequence of stages of crisis processes. The developed invasion modeling principle is based on the description of stages and phase changes during the evolution of processes occurring under the dispersal of alien species. We have developed switching schemes for a set of forms for the right-hand sides of the equations correlated with the invasion stages. The modeled process is divided into stages: introduction of a small group of individuals, hidden existence, adaptive takeover of a habitat, population explosion, crisis, and new oscillating equilibrium. There is a hypothesis that changes in the pest population are influenced by the physical effect of cyclic solar activity. Computer-simulation experiments in scenarios for situations of pulsating pest invasions include the factor of periodic changes in the solar constant, for example, in the Hale cycle. The factor of cyclicity of the solar constant, according to the Schatten’s model, has been included in the auxiliary equation of our hybrid system. Using the method for organizing hybrid structures, we have studied the phase variants of the invasive phenomena leading to pulsating outbreaks of the Lymantria dispar pest. Analysis of the hybrid model with a lag argument does not allow us to say that the periodic solar activity is the most important physical factor in triggering pulsating outbreaks. The rates of biota recovery and adaptation of natural enemies are more important factors of triggering the outbreak activity.

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考虑太阳周期的入侵阶段模拟原理
摘要 提出了一种构建生物物理系统特殊情况情景模拟模型的方法,其中考虑到了太阳物理变化的影响。通过与物理相变的类比,正在有意识地开发用于表示具有高繁殖潜力的物种入侵新栖息地情景计算机模型的混合计算结构的工具。我们的分析表明,昆虫种群入侵的动态与现代大流行病的发展有许多共同之处:在森林害虫和冠状病毒新菌株中都观察到许多系列的重复活动爆发。在经过漫长但虚假和欺骗性的阻尼之后,局部峰值再次出现,北美入侵的莱曼特里亚飞蛾害虫就是如此。由于生物系统具有自我调节功能,振荡器的物理模型需要大幅改进。我们从微分方程右边的变体中形成了一个计算方案,并为其在事件转换点的情景切换预设了条件。我们模拟了极端发展情况,并分析了危机过程各阶段顺序中的各种选择。所开发的入侵建模原理以描述外来物种扩散过程演变过程中的阶段和阶段变化为基础。我们开发了一套与入侵阶段相关的方程右侧形式的切换方案。建模过程分为几个阶段:引入一小群个体、隐性存在、适应性接管栖息地、种群爆炸、危机和新的振荡平衡。假设害虫数量的变化受到太阳活动周期性物理效应的影响。计算机模拟实验在预测害虫入侵的情况时,包括了太阳常数周期性变化的因素,例如在黑尔周期中。根据沙腾模型,太阳常数的周期性因素已被纳入我们混合系统的辅助方程中。利用组织混合结构的方法,我们研究了导致莱曼特氏虫脉动爆发的入侵现象的相位变体。用滞后论据对混合模型进行分析后,我们不能说周期性太阳活动是引发脉冲式爆发的最重要物理因素。生物群的恢复速度和天敌的适应能力是触发爆发活动的更重要因素。
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
Technical Physics Letters
Technical Physics Letters 物理-物理:应用
CiteScore
1.50
自引率
0.00%
发文量
44
审稿时长
2-4 weeks
期刊介绍: Technical Physics Letters is a companion journal to Technical Physics and offers rapid publication of developments in theoretical and experimental physics with potential technological applications. Recent emphasis has included many papers on gas lasers and on lasing in semiconductors, as well as many reports on high Tc superconductivity. The excellent coverage of plasma physics seen in the parent journal, Technical Physics, is also present here with quick communication of developments in theoretical and experimental work in all fields with probable technical applications. Topics covered are basic and applied physics; plasma physics; solid state physics; physical electronics; accelerators; microwave electron devices; holography.
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