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用于全膝关节置换术中长期负荷监测的摩擦电-压电混合纳米发电机

Hybrid triboelectric-piezoelectric nanogenerator for long-term load monitoring in total knee replacements.

作者信息

Chahari Mahmood, Salman Emre, Stanacevic Milutin, Willing Ryan, Towfighian Shahrzad

机构信息

State University of New York at Binghamton, Binghamton, NY, United States of America.

Stony Brook University, Stony Brook, NY, United States of America.

出版信息

Smart Mater Struct. 2024 May 1;33(5):055034. doi: 10.1088/1361-665X/ad3bfd. Epub 2024 Apr 18.

Abstract

A self-powered and durable pressure sensor for large-scale pressure detection on the knee implant would be highly advantageous for designing long-lasting and reliable knee implants as well as obtaining information about knee function after the operation. The purpose of this study is to develop a robust energy harvester that can convert wide ranges of pressure to electricity to power a load sensor inside the knee implant. To efficiently convert loads to electricity, we design a cuboid-array-structured tribo-pizoelectric nanogenerator (TPENG) in vertical contact mode inside a knee implant package. The proposed TPENG is fabricated with aluminum and cuboid-patterned silicone rubber layers. Using the cuboid-patterned silicone rubber as a dielectric and aluminum as electrodes improves performance compared with previously reported self-powered sensors. The combination of 10 dopamine-modified BaTiO piezoelectric nanoparticles in the silicone rubber enhanced electrical stability and mechanical durability of the silicone rubber. To examine the output, the package-harvester assemblies are loaded into an MTS machine under different periodic loading. Under different cyclic loading, frequencies, and resistance loads, the harvester's output performance is also theoretically studied and experimentally verified. The proposed cuboid-array-structured TPENG integrated into the knee implant package can generate approximately 15W of apparent power under dynamic compressive loading of 2200 N magnitude. In addition, as a result of the TPENG's materials being effectively optimized, it possesses remarkable mechanical durability and signal stability, functioning after more than 30 000 cycles under 2200 N load and producing about 300 V peak to peak. We have also presented a mathematical model and numerical results that closely capture experimental results. We have reported how the TPENG charge density varies with force. This study represents a significant advancement in a better understanding of harvesting mechanical energy for instrumented knee implants to detect a load imbalance or abnormal gait patterns.

摘要

一种用于膝关节植入物大规模压力检测的自供电且耐用的压力传感器,对于设计持久可靠的膝关节植入物以及获取术后膝关节功能信息将具有极大优势。本研究的目的是开发一种强大的能量收集器,它能够将大范围的压力转换为电能,为膝关节植入物内部的负载传感器供电。为了有效地将负载转换为电能,我们在膝关节植入物封装内以垂直接触模式设计了一种长方体阵列结构的摩擦压电纳米发电机(TPENG)。所提出的TPENG由铝和长方体图案的硅橡胶层制成。与先前报道的自供电传感器相比,使用长方体图案的硅橡胶作为电介质且铝作为电极可提高性能。硅橡胶中10种多巴胺修饰的钛酸钡压电纳米颗粒的组合增强了硅橡胶的电稳定性和机械耐久性。为了检测输出,将封装 - 收集器组件在不同的周期性负载下加载到材料试验系统(MTS)机器中。在不同的循环负载、频率和电阻负载下,还对收集器的输出性能进行了理论研究和实验验证。集成到膝关节植入物封装中的所提出的长方体阵列结构的TPENG在2200 N大小的动态压缩负载下可产生约15W的视在功率。此外,由于TPENG的材料得到了有效优化,它具有出色的机械耐久性和信号稳定性,在2200 N负载下经过超过30000次循环后仍能正常工作,并产生约300 V的峰峰值。我们还提出了一个数学模型和数值结果,它们与实验结果紧密吻合。我们报告了TPENG电荷密度如何随力变化。这项研究代表了在更好地理解为植入仪器的膝关节收集机械能以检测负载不平衡或异常步态模式方面的一项重大进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d022/11025032/805a2e453879/smsad3bfdf1_lr.jpg

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