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Marine system dynamical response to a changing climate in frame of power law, exponential decay, and Mittag-Leffler kernel

机译:海洋系统对电力法,指数衰减和Mittag-Leffler内核变化的气候变化的动态响应

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The increase of sea surface temperature in ocean changes the photosynthetic production rate of phytoplankton. Therefore, it is crucial to understand the relation between temperature and phytoplanktons photosynthesis to deal the extinction caused by excessive increase in temperature. It is worth observing that temperature is one of the most principal limiting factors for phytoplanktons production due to photosynthetic enzymes work at their optimum temperature levels. In this study, the fractional oxygen-phytoplankton-zooplankton model is considered by singular and nonsingular fractional operators within Caputo, Caputo-Fabrizio, and Atangana-Baleanu in Caputo sense. The rate of oxygen production is considered by a function of temperature account for the sea surface warming. At first, the temperature function is constant and then it starts to increase, after a certain time of increase, before the oxygen depletion begins, the temperature is set to a higher secure value. With this temperature function choice, detailed numerical simulations are carried out to provide details of the internal structure of the system. We observe that the species are more sustainable in Caputo model than its corresponding integer-order model.
机译:海洋表面温度的增加会改变浮游植物的光合生产率。因此,了解温度与浮游菌的关系,光合作用的关系至关重要,以造成温度过高引起的灭绝。值得注意的是,由于光合酶在最佳温度水平下工作,温度是浮游植物产生的最受限制因素之一。在这项研究中,分数氧气 - 浮游植物-Zooplankton模型被Caputo,Caputo-Fabrizio和Atangana-Balanu在Caputo Sense内的奇异和非奇妙的分数算子考虑。通过温度占海表面变暖的温度算法考虑氧气产生速率。首先,温度函数是恒定的,然后开始增加,在氧耗尽开始之前,在一定的增加时间之后,将温度设定为更高的安全值。利用这种温度功能选择,进行了详细的数控模拟,以提供系统内部结构的细节。我们观察到该物种在Caputo模型中的可持续性比其相应的整数模型更可持续。

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