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Propagating ice front induces gas bursts and ultrasonic acoustic emissions from freezing xylem

机译:繁殖冰前诱导气体爆破和超声波声发射免于冻结木耳

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摘要

Ice formation and propagation in the xylem of plants is a complex process. During freezing of xylem sap, gases dissolved in liquid sap are forced out of the ice lattice due to their low solubility in ice, and supersaturation of xylem sap as well as low water potential (Psi) are induced at the ice-liquid interface. Supersaturation of gases near the ice front may lead to bubble formation and potentially to cavitation and/or to burst of gases driven out from the branch. In this study, we investigated the origin and dynamics of freezing-related gas bursts and ultrasonic acoustic emissions (AEs), which are suggested to indicate cavitation. Picea abies (L.) H. Karst. and Salix caprea L. branch segments were exposed to frost cycles in a temperature test chamber, and CO2 efflux (indicating gas bursts) and AEs were recorded. On freezing, two-thirds of the observed gas bursts originated from the xylem and only one-third from the bark. Simultaneously with gas bursts, AEs were detected. Branch Psi affected both gas bursts and AEs, with high gas burst in saturated and dry samples but relevant AEs only in the latter. Repeated frost cycles led to decreasing gas burst volumes and AE activity. Experiments revealed that the expanding ice front in freezing xylem was responsible for observed gas bursts and AEs, and that branch Psi influenced both processes. Results also indicated that gas bursts and cavitation are independently induced by ice formation, though both may be relevant for bubble dynamics during freezing.
机译:植物的冰冻形成和繁殖是一种复杂的过程。在冻结Xylem Sap期间,由于它们在冰上的低溶解度,溶解在液体SAP中的气体,并且在冰液界面处诱导Xylem SAP的过饱和度以及低水位(PSI)。冰前面附近的气体过饱和可能导致气泡形成,并且可能是空化和/或从分支驱动的气体爆发。在这项研究中,我们调查了冻结相关气体爆发和超声波声发射(AES)的起源和动态,建议表示空化。 Picea Abies(L.)H.喀斯特。和Salix caprea1.将分支段暴露于温度试验室中的霜冻循环,并记录CO 2流出(表示气体爆发)和AES。在冷冻时,三分之二的观察气体爆发起源于木质,只有三分之一的树皮。同时与气体爆发,检测AES。分支PSI影响了气体爆发和AES,气体爆裂,高气体爆裂在饱和和干燥样品中,但仅在后者中的相关AES。反复冻结循环导致气体爆发容量和AE活动降低。实验表明,冻结木耳的扩展冰前面负责观察到的气体爆发和AES,并且该分支PSI影响了两种过程。结果还表明,气体突发和空化由冰形成独立诱导,但两者都可以在冻结期间与泡沫动力学相关。

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