| Literature DB >> 31089210 |
Li Tian1,2, Lijuan Wang3,4, Kailei Wang1,2, Yuedan Zhang1,2, Jinsheng Liang1,2.
Abstract
In this paper, a new type of porous ceramics was prepared using the raw sepiolite mineral. The porous ceramics was shaped by the dry pressing method and sintered in the range of 700 ~ 1200 °C. The temperature-microstructure evolution and the properties of porous sepiolite ceramics were investigated by thermo gravimetric and differential thermal analyses (TG-DTA), X-ray diffraction (XRD), bending strength, compressive strength, scanning electron microscopy (SEM) and mercury intrusion porosimeter (MIP). The sintering kinetics of the porous ceramics from sepiolite was investigated by means of stepwise isothermal dilatometry (SID). The mechanical properties improved with the increasing sintering temperature, and the bending strength and compression strength reached a maximum of 52 MPa and 32 MPa respectively at 1200 °C. The porosity increased with the sintering temperature until 1100 °C attaining the value of 55.40% and then decreased to a value of 46.48% at 1200 °C. The main crystal phases of the porous ceramics were akermanite and diopside. At 1200 °C, the pores inside the ceramics basically follows a unimodal distribution, which was mainly located near 553 nm. The sintering activation energy of porous sepiolite ceramics was measured by step isothermal thermal expansion with a value of 791.42 kJ/mol in the range of 1000 °C to 1200 °C.Entities:
Year: 2019 PMID: 31089210 PMCID: PMC6517381 DOI: 10.1038/s41598-019-43918-9
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Chemical composition of Henan sepiolite.
| Oxide | SiO2 | CaO | MgO | Al2O3 | Fe2O3 | MnO | TiO2 | K2O | Na2O | Total |
|---|---|---|---|---|---|---|---|---|---|---|
| Content/wt% | 39.7 | 32.4 | 17.0 | 6.20 | 3.46 | 0.40 | 0.27 | 0.21 | 0.20 | 99.84 |
Figure 1The SEM images of sepiolite (a) Raw sepiolite (b) Airflow milled sepiolite.
Figure 2Flow chart for the processing and characterization of the porous ceramic made by raw sepiolite.
Figure 3TG and DTA curves of the raw sepiolite.
Figure 4XRD patterns of the porous sepiolite ceramic samples sintered at different temperatures (700 °C to 1200 °C).
Figure 5The mechanical performance of sepiolite porous ceramics with increasing tempeture.
Figure 6Effect of sintering temperature on the pore structure of porous sepiolite ceramics.
The results of porous ceramic mercury injection test.
| Sintering Temperature/°C | Sample Quality/g | Median Pore Diameter (Volume)/nm | Actual Mercury Volume/mL/g | Porosity/% | Bulk Density/g/mL | Apparent Density/g/mL |
|---|---|---|---|---|---|---|
| 900 | 0.8439 | 106.5 | 0.3848 | 51.93 | 1.3498 | 2.8082 |
| 1000 | 0.4091 | 122.5 | 0.4238 | 54.71 | 1.2908 | 2.8499 |
| 1100 | 0.7315 | 132.0 | 0.4416 | 55.40 | 1.2545 | 2.8128. |
| 1200 | 0.4055 | 513.0 | 0.3023 | 46.48 | 1.5375 | 2.8729 |
Figure 7The cross-section SEM images of sepiolite porous ceramics sintering at different temperature. (a) 900 °C (b) 1000 °C (c) 1100 °C (d) 1200 °C.
Figure 8Sintering kinetic (a) Stepwise isothermal diatometry shrinkage curve of porous sepiolite ceramics (b) Plots of ln{(dY/dt)[1/Y (1 − Y)]} vs ln[(1 − Y)/Y] (c) Curve of relationship between 1000/T and ln k(T).
The results of linear fitting of porous sepiolite ceramics.
| Temperature/°C | 1000/T(K−1) | ln[nk(T)] | 1/n | n | lnk(T) | R |
|---|---|---|---|---|---|---|
| 1200 | 0.679 | −1.438 | 0.561 | 1.781 | −3.219 | 0.996 |
| 1150 | 0.703 | −5.142 | 2.852 | 0.351 | −5.493 | 0.974 |
| 1100 | 0.728 | −7.542 | 3.114 | 0.321 | −7.863 | 0.958 |
| 1050 | 0.756 | −10.266 | 3.505 | 0.285 | −10.551 | 0.986 |
| 1000 | 0.786 | −24.903 | 10.646 | 0.094 | −24.997 | 0.776 |