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Primary water stress corrosion cracking (PWSCC) mechanism based on ordering reaction in Alloy 600

机译:基于合金600有序反应的一次水应力腐蚀开裂(PWSCC)机理

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摘要

A PWSCC mechanism based on an ordering reaction in Alloy 600 is proposed. An activation energy for the ordering reaction in Alloy 600, Q = ∼46 kcal/mole (∼190 kJ/mole), are determined by a differential scanning calorimeter (DSC). The ordering reaction in Alloy 600 is an indispensable process during reactor operating conditions. The ordering reaction in Alloy 600 causes an anisotropic lattice contraction. This anisotropic contraction produces an additional stress. The stress level would be the maximum value about 70 and 300 MPa according to the lattice planes in Alloy 600 and Weld 182, respectively. In addition, the anisotropic contraction forms the micro cracks in the high angle grain boundary where the difference in lattice contraction is large. The formation of crack induces stress intensification at the crack tip, and this causes crack growth. The initiation and propagation of PWSCC is controlled by the formation, growth, and coalescence of micro cracks due to anisotropic lattice contraction by ordering. These whole processes are governed by the kinetics of the ordering reaction. This is the reason why the activation energy for PWSCC, Q pwscc = 40–50 kcal/mol, is consistent with that for the ordering reaction, Q ordering = 46 kcal/mol. This mechanism can be proved by the comparison of the initiation behavior in the ordered and the disordered specimens.
机译:提出了基于合金600中有序反应的PWSCC机理。 Q 600合金中有序反应的活化能Q =〜46 kcal / mol(〜190 kJ / mol),是通过差示扫描量热仪(DSC)确定的。 600号合金中的有序反应是反应堆运行条件下必不可少的过程。合金600中的有序反应引起各向异性晶格收缩。这种各向异性的收缩会产生额外的应力。根据合金600和焊缝182的晶格平面,应力水平分别为约70和300 MPa的最大值。另外,各向异性收缩在晶格收缩差异大的高角度晶界中形成微裂纹。裂纹的形成会引起裂纹尖端的应力增强,从而导致裂纹扩展。 PWSCC的引发和扩散受各向异性晶格收缩有序收缩引起的微裂纹的形成,生长和聚结控制。这些整个过程由有序反应的动力学决定。这就是为什么PWSCC的活化能Q pwscc = 40–50 kcal / mol与有序反应的活化能(Q有序= 46 kcal / mol)一致的原因。通过比较有序和无序样本中的起始行为,可以证明这种机制。

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  • 来源
    《Metals and Materials International》 |2013年第5期|969-974|共6页
  • 作者单位

    Nuclear Materials Technology Development Korea Atomic Energy Research Institute">(1);

    Nuclear Materials Technology Development Korea Atomic Energy Research Institute">(1);

    Nuclear Materials Technology Development Korea Atomic Energy Research Institute">(1);

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