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本文在低密度聚乙烯(LDPE)中添加成核剂酚酞, 研究半结晶聚合物的结晶行为、显微结构、陷阱参数以及真空直流沿面闪络性能之间的关联. 显微红外测试结果表明, 酚酞存在于LDPE基体中. 扫描电镜及差式扫描量热测试结果表明, 酚酞掺杂明显改变了LDPE的结晶行为及显微结构, 增加了结晶度及片晶厚度, 减小了球晶尺寸, 并使球晶分布更加均匀. 热刺激电流结果表明, 酚酞掺杂在低密度聚乙烯中引入了更多的深陷阱, 随酚酞浓度增加, α陷阱深度从0.81 eV增加到0.99 eV, γ陷阱深度从0.19 eV增加到0.65 eV. 分析LDPE结晶行为与陷阱参数之间的关系表明, LDPE的陷阱深度随球晶尺寸减小而增大, 陷阱密度随结晶度增大而减小. 酚酞改性后试样的真空沿面闪络电压整体有所提升, 最高提升了48.42%. 分析陷阱深度及陷阱密度与闪络电压之间的“U”型关系表明, 陷阱深度及陷阱密度在影响闪络性能过程中起着相互协调、配合及转化的作用.Surface flashover is the primary limitation to the development of power system and the increase of voltage level. Previous work has proved that the trap can greatly influence flashover performances, but the relationship between trap parameters and surface flashover voltage is not clear. In the paper, we study the effects of crystallization behavior, microstructure, and trap parameters on DC surface flashover performance of semi-crystallinity polymer through adding phenolphthalein which is regarded as nucleating agent in low density polyethylene (LDPE). Micro-IR spectroscopy result proves that phenolphthalein exactly exists in LDPE/phenolphthalein composite. Differential scanning calorimeter (DSC) and scanning electron microscope (SEM) are used to investigate the effect of nucleating agent (phenolphthalein) on crystallinity behavior and microstructure of LDPE, and their results indicate that the phenolphthalein modification greatly changes the crystallization behavior of LDPE. The SEM results show that the spherulite size of LDPE decreases and is distributed more uniformly with the increase of phenolphthalein concentration. The DSC results show that the crystallinity and lamella thickness increase. Thermally stimulated depolarization current (TSDC) is used to characterize the trap parameters of LDPE/phenolphthalein composites. The TSDC results indicate that the shallow trap level ( γpeak) increases from 0.19 eV to 0.65 eV and the deep trap ( αpeak) increases from 0.81 eV to 0.99 eV with the increase of phenolphthalein concentration. Relationship between microstructure and trap parameters shows that the smaller spherulite size indicates the deeper trap level (for LDPE, the trap level increases from 0.81 eV to 0.99 eV when the spherulite size decreases from 23.2 μm to 14.9 μm), and larger crystallinity means smaller trap density (for LDPE, the trap density decreases from 1404 pC to 612 pC when the crystallinity increases from 34.51% to 43.25%). The DC surface flashover performance increases with the increase of phenolphthalein concentration, and reaches a highest value: when the concentration is 1 wt%, the highest value is increased by 48.42%. Finally, it is concluded that the microstructure of semi-crystallinity polymerinfluences the trap parameters, which affects the surface flashover performance through affecting the carrier transport process in the development process of surface flashover. The trap level and trap density play complementary, cooperation and mutual transformation roles in improving the surface flashover performances as indicated by the analysis of the " U-shaped” relationship between trap parameters and flashover voltage.
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试样 LDPE LDPE-0.03 LDPE-0.1 LDPE-0.4 LDPE-1 LDPE-5 Tm/℃ 112.7 112.9 112.8 113.1 112.4 112.1 ΔH/J·g–1 111.96 117.72 115.61 124.26 113.92 99.16 Xc/% 38.97 40.97 40.24 43.25 39.65 34.51 L/nm 6.17 6.22 6.20 6.26 6.11 6.05 球晶尺寸/μm 23.2 21.6 18.0 16.6 14.9 14.0 试样 LDPE LDPE-0.03 LDPE-0.1 LDPE-0.4 LDPE-1 LDPE-5 直流闪络电压/kV 30.17 31.33 36.70 41.67 46.50 43.60 试样 α陷阱 β陷阱 γ陷阱 Q总/pC 深度/eV Qα/pC 深度/eV Qβ/pC 深度/eV Qγ/pC 纯LDPE 0.81 900 0.50 396 — — 1296 LDPE-0.03 0.79 408 0.39 492 — — 900 LDPE-0.1 0.86 768 0.51 672 0.19 21 1461 LDPE-0.4 0.92 165 0.41 396 0.22 51 612 LDPE-1 0.99 324 0.55 432 0.28 136 892 LDPE-5 0.68 348 — — 0.65 1056 1404 -
[1] [2] [3] [4] [5] [6] [7] [8] [9] [10] [11] [12] [13] [14] [15] [16] [17] [18] [19] [20] [21] [22]
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