| Literature DB >> 31146397 |
Dawei Li1,2,3, Liwei Zhou4,5, Xuan Wang6,7, Lijuan He8,9, Xiong Yang10.
Abstract
In order to study the effects of the crystallinity of polyethylene with different densities on breakdown strength and conductance properties, this paper mainly tests the X-ray diffraction (XRD), different scanning calorimeter (DSC), direct current (DC) breakdown and conductance properties of low-density polyethylene (LDPE), linear low density polyethylene (LLDPE), medium density polyethylene (MDPE), and high-density polyethylene (HDPE), and further analyzes the experimental results separately. The results show that an increase in the density of polyethylene leads to the continuous improvement of crystallinity, and an increase in crystallinity causes a significant decrease in the conduction current at the same field strength. The field strength corresponding to the two turning points in the conductance characteristic curve increases simultaneously.Entities:
Keywords: SCLC; breakdown strength; conduction current; crystallinity; polyethylene
Year: 2019 PMID: 31146397 PMCID: PMC6600689 DOI: 10.3390/ma12111746
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Conductivity test schematic.
Figure 2DSC curves of four kinds of polyethylene. (Low-density polyethylene, LLDPE; low-density polyethylene, LDPE; medium density polyethylene, MDPE; high-density polyethylene, HDPE).
Crystallization and melting process parameters of four kinds of polyethylene.
| Sample | Tm/(°C) | Tc/(°C) | ||
|---|---|---|---|---|
| LDPE | 108 | 94 | 113.5 | 38.73 |
| LLDPE | 121 | 107 | 115.6 | 39.45 |
| MDPE | 124 | 113 | 141.7 | 48.36 |
| HDPE | 125 | 113 | 149.9 | 51.17 |
Figure 3XRD images of four kinds of polyethylene.
Figure 4The Weibull plots of the direct current breakdown strength of four kinds of polyethylene.
Shape Parameter and Breakdown Strength of Polyethylene.
| Material | Shape Parameter | Characteristic Breakdown Strength (kV/mm) |
|---|---|---|
| LDPE | 7.791 | 328 |
| LLDPE | 5.277 | 377 |
| MDPE | 6.654 | 422 |
| HDPE | 9.577 | 453 |
Figure 5Relationship between space charge limited current in dielectrics and the applied voltage. (a region—Linear region is Ohmic conduction current region; b region—Calder’s law region of space charge limited current when trapped; c region—Calder’s Law region with trap filling or without traps).
Figure 6Conduction current characteristic curve of polyethylene with different densities. (a) LDPE; (b) LLDPE; (c) MDPE; (d) HDPE.
Figure 7Logarithmic form fitting diagram of electrical conductivity flow of four different density polyethylenes. The logarithmic form of the conductance characteristic curve of (a) LDPE, (b) LLDPE, (c) MDPE, (d) HDPE.
The slope of the line in different areas of different materials.
| Different Areas | T1 | T2 | T3 |
|---|---|---|---|
| LDPE | 1.16 | 3.94 | 2.13 |
| LLDPE | 1.42 | 2.93 | 1.23 |
| MDPE | 1.36 | 2.89 | 0.89 |
| HDPE | 1.15 | 2.83 | 1.12 |
The corresponding field strength at different turning points of different materials.
| The Turning Point | LDPE | LLDPE | MDPE | HDPE |
|---|---|---|---|---|
| A | 12.76 kV/mm | 13.33 kV/mm | 15.68 kV/mm | 18.37 kV/mm |
| B | 50.88 kV/mm | 53.61 kV/mm | 65.34 kV/mm | 71.89 kV/mm |