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蜂窝夹芯板中特定界面缺陷的无损检测与量化

Nondestructive Inspection and Quantification of Select Interface Defects in Honeycomb Sandwich Panels.

作者信息

Khademi Mahsa, Pulipati Daniel P, Jack David A

机构信息

Department of Mechanical Engineering, Baylor University, Waco, TX 76798, USA.

出版信息

Materials (Basel). 2024 Jun 6;17(11):2772. doi: 10.3390/ma17112772.

DOI:10.3390/ma17112772
PMID:38894035
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11173902/
Abstract

Honeycomb sandwich panels are utilized in many industrial applications due to their high bending resistance relative to their weight. Defects between the core and the facesheet compromise their integrity and efficiency due to the inability to transfer loads. The material system studied in the present paper is a unidirectional carbon fiber composite facesheet with a honeycomb core with a variety of defects at the interface between the two material systems. Current nondestructive techniques focus on defect detectability, whereas the presented method uses high-frequency ultrasound testing (UT) to detect and quantify the defect geometry and defect type. Testing is performed using two approaches, a laboratory scale immersion tank and a novel portable UT system, both of which utilize only single-side access to the part. Coupons are presented with defects spanning from 5 to 40 mm in diameter, whereas defects in the range of 15-25 mm and smaller are considered below the detectability limits of existing inspection methods. Defect types studied include missing adhesive, unintentional foreign objects that occur during the manufacturing process, damaged core, and removed core sections. An algorithm is presented to quantify the defect perimeter. The provided results demonstrate successful defect detection, with an average defect diameter error of 0.6 mm across all coupons studied in the immersion system and 1.1 mm for the portable system. The best accuracy comes from the missing adhesive coupons, with an average error of 0.3 mm. Conversely, the worst results come from the missing or damaged honeycomb coupons, with an error average of 0.7 mm, well below the standard detectability levels of 15-25 mm.

摘要

蜂窝夹芯板由于其相对于重量具有较高的抗弯性,在许多工业应用中得到了广泛应用。芯材与面板之间的缺陷会影响其完整性和效率,因为无法传递载荷。本文研究的材料系统是一种单向碳纤维复合材料面板与蜂窝芯材,在这两种材料系统的界面处存在各种缺陷。目前的无损检测技术侧重于缺陷的可检测性,而本文提出的方法使用高频超声检测(UT)来检测和量化缺陷的几何形状和缺陷类型。检测采用两种方法进行,一种是实验室规模的浸没槽,另一种是新型便携式UT系统,这两种方法都只需要从单面接触部件。试样上呈现的缺陷直径范围为5至40毫米,而直径在15 - 25毫米及更小范围内的缺陷被认为低于现有检测方法的可检测极限。研究的缺陷类型包括缺少粘合剂、制造过程中出现的意外异物、芯材损坏以及芯材部分缺失。提出了一种算法来量化缺陷周长。所提供的结果表明成功实现了缺陷检测,在浸没系统中研究的所有试样上,平均缺陷直径误差为0.6毫米,便携式系统为1.1毫米。最佳精度来自缺少粘合剂的试样,平均误差为0.3毫米。相反,最差的结果来自蜂窝芯材缺失或损坏的试样,平均误差为0.7毫米,远低于15 - 25毫米的标准可检测水平。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfbe/11173902/2c8db88bf5ec/materials-17-02772-g013.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfbe/11173902/8c659caffa2f/materials-17-02772-g008.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfbe/11173902/2c8db88bf5ec/materials-17-02772-g013.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfbe/11173902/12ae996b1b71/materials-17-02772-g001.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfbe/11173902/8c659caffa2f/materials-17-02772-g008.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfbe/11173902/f7f70ac53056/materials-17-02772-g009.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfbe/11173902/2c8db88bf5ec/materials-17-02772-g013.jpg

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本文引用的文献

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Improvement in the Quantification of Foreign Object Defects in Carbon Fiber Laminates Using Immersion Pulse-Echo Ultrasound.使用浸入式脉冲回波超声技术改进碳纤维层压板中异物缺陷的量化
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2
Impact damage visualization in a honeycomb composite panel through laser inspection using zero-lag cross-correlation imaging condition.通过使用零延迟互相关成像条件的激光检测对蜂窝复合板中的冲击损伤进行可视化。
Ultrasonics. 2018 Jul;87:152-165. doi: 10.1016/j.ultras.2018.02.014. Epub 2018 Feb 16.
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Guided wave propagation in a honeycomb composite sandwich structure in presence of a high density core.
在存在高密度芯材的蜂窝复合夹层结构中的导波传播
Ultrasonics. 2016 Sep;71:86-97. doi: 10.1016/j.ultras.2016.05.025. Epub 2016 May 31.
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Nondestructive testing using air-borne ultrasound.使用空气传播超声的无损检测。
Ultrasonics. 2006 Dec 22;44 Suppl 1:e1019-24. doi: 10.1016/j.ultras.2006.05.091. Epub 2006 Jun 5.