Largely Improved Creep Resistance and Thermal-Aging Stability of Eco-Friendly Polypropylene High-Voltage Insulation by Long-Chain Branch-Induced Interfacial Constraints

IF 5.1 Q1 POLYMER SCIENCE
Kangning Wu*, Haoran Sui, Zichao Yang, Kai Yang, Benhong Ouyang, Jin-Yong Dong, Xu Zhang, Li Ran and Jianying Li*, 
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Abstract

Polypropylene (PP)-based composites have attracted numerous attention as a replacement of prevailing cross-linked polyethylene (XLPE) for high-voltage insulation due to their ease of processing, recyclability, and excellent electrical performance. However, the poor resistances against high-temperature creep and thermal aging are obstacles to practical applications of PP-based thermoplastic high-voltage insulation. To address these problems, in this Letter, we synthesized an impact polypropylene copolymer (IPC) containing multifold long-chain branched (LCB) structures in phases, especially the interfaces between the PP matrix and the rubber phase. The results indicated that the structural stability of LCBIPC was significantly enhanced under extreme conditions. In comparison to IPC (without LCB structures), 24.1% less creep strain and 75.2% less unrecoverable deformation are achieved in LCBIPC at 90 °C. In addition, the thermal aging experiments were performed at 135 °C for 48 and 88 days for IPC and LCBIPC, respectively. The results show that the resistance against thermal aging was also enhanced in LCBIPC, which showed a 133% longer thermal aging life compared to IPC. Further results revealed that the interfacial layer between the PP matrix and the rubber phase was constructed in LCBIPC. The two phases are tightly linked by chemical bonds in LCB structures, leading to enforced constraints of the rubber phase at the micro level and better resistance performance against creep and thermal aging at the macro level. Evidently, the reported eco-friendly LCBIPC thermoplastic insulation shows great potential for applications in high-voltage cable insulation.

Abstract Image

Abstract Image

通过长链分支引发的界面约束大幅提高环保型聚丙烯高压绝缘材料的抗蠕变性和热老化稳定性
聚丙烯(PP)基复合材料因其易于加工、可回收利用和优异的电气性能,作为常用的交联聚乙烯(XLPE)高压绝缘材料的替代品而备受关注。然而,聚丙烯基热塑性高压绝缘材料抗高温蠕变和热老化的性能较差,阻碍了其实际应用。为了解决这些问题,我们在这封信中合成了一种抗冲击聚丙烯共聚物(IPC),该共聚物在各相(尤其是聚丙烯基体与橡胶相之间的界面)中含有多倍长链支化(LCB)结构。结果表明,LCBIPC 在极端条件下的结构稳定性显著增强。与 IPC(不含 LCB 结构)相比,LCBIPC 在 90 °C 时的蠕变应变减少了 24.1%,不可恢复变形减少了 75.2%。此外,IPC 和 LCBIPC 分别在 135 °C 下进行了 48 天和 88 天的热老化试验。结果表明,LCBIPC 的抗热老化能力也得到了增强,与 IPC 相比,其热老化寿命延长了 133%。进一步的结果表明,在 LCBIPC 中,聚丙烯基体和橡胶相之间形成了界面层。在 LCB 结构中,两相通过化学键紧密连接,从而在微观上加强了橡胶相的约束,在宏观上提高了抗蠕变和抗热老化性能。由此可见,所报告的环保型 LCBIPC 热塑性绝缘材料在高压电缆绝缘中的应用潜力巨大。
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来源期刊
CiteScore
10.40
自引率
3.40%
发文量
209
审稿时长
1 months
期刊介绍: ACS Macro Letters publishes research in all areas of contemporary soft matter science in which macromolecules play a key role, including nanotechnology, self-assembly, supramolecular chemistry, biomaterials, energy generation and storage, and renewable/sustainable materials. Submissions to ACS Macro Letters should justify clearly the rapid disclosure of the key elements of the study. The scope of the journal includes high-impact research of broad interest in all areas of polymer science and engineering, including cross-disciplinary research that interfaces with polymer science. With the launch of ACS Macro Letters, all Communications that were formerly published in Macromolecules and Biomacromolecules will be published as Letters in ACS Macro Letters.
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