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nestData.m from Nectar, humidity, honey bees (Apis mellifera) and varroa in summer: a theoretical thermofluid analysis of the fate of water vapour from honey ripening and its implications on the control of Varroa destructor

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Mendeley Data2024-06-27 更新2024-06-27 收录
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This theoretical thermofluid analysis investigates the relationships between honey production rate, nectar concentration and the parameters of entrance size, nest thermal conductance, brood nest humidity and the temperatures needed for nectar to honey conversion. It quantifies and shows that nest humidity is positively related to the amount, and water content of the nectar being desiccated into honey and negatively with respect to nest thermal conductance and entrance size. It is highly likely that honeybees, in temperate climates and in their natural home, with much smaller thermal conductance and entrance, can achieve higher humidities more easily and more frequently than in man-made hives. As a consequence, it is possible that Varroa destructor, a parasite implicated in the spread of pathogenic viruses and colony collapse, which loses fecundity at absolute humidities of 4.3 kPa (approx. 30 gm−3) and above, is impacted by the more frequent occurrence of higher humidities in these low conductance, small entrance nests. This study provides the theoretical basis for new avenues of research into the control of varroa, via the modification of beekeeping practices to help maintain higher hive humidities.

本理论热流体分析探究了蜂蜜产量、花蜜浓度,与蜂箱入口尺寸、蜂巢热传导率、育幼巢湿度,以及花蜜转化为蜂蜜所需温度之间的关联。该研究通过量化分析证实,巢内湿度与待干燥为蜂蜜的花蜜总量及其含水量呈正相关,而与蜂巢热传导率及入口尺寸呈负相关。在温带气候的自然蜂巢中,由于热传导率更低、入口尺寸更小,蜜蜂相较于人工蜂箱,能够更轻松且更频繁地实现更高的巢内湿度,此类情况极有可能发生。因此,狄斯瓦螨(Varroa destructor)——一种与致病性病毒传播及蜂群崩溃相关的寄生虫,当其所处环境绝对湿度达到4.3 kPa(约30 gm⁻³)及以上时会丧失繁殖能力——很可能会受到这类低传导率、小入口蜂巢中更频繁出现的高湿度环境的影响。本研究为通过调整养蜂操作以维持更高蜂箱湿度、进而防控瓦螨的新研究方向提供了理论基础。

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2023-06-28
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