Comparison of Er3+ Spectroscopy in Doped Glass Fibers and in Glass Bulk Samples

Author(s):  
D. Meichenin
Keyword(s):  
1995 ◽  
Vol 1 (4) ◽  
pp. 352-358 ◽  
Author(s):  
P. Chmela ◽  
J. Petráček ◽  
A. Romolini ◽  
T. Pascucci ◽  
R. Falciai

2013 ◽  
Author(s):  
Dan T. Nguyen ◽  
Rajesh Thapa ◽  
Dan Rhonehouse ◽  
Jie Zong ◽  
Andy Miller ◽  
...  

1994 ◽  
Vol 113 (1-3) ◽  
pp. 305-314 ◽  
Author(s):  
P. Chmela ◽  
J. Petráček ◽  
A. Romolini ◽  
T. Pascucci ◽  
R. Falciai

2017 ◽  
Vol 5 (31) ◽  
pp. 7927-7934 ◽  
Author(s):  
Xiongjian Huang ◽  
Zaijin Fang ◽  
Shiliang Kang ◽  
Wencai Peng ◽  
Guoping Dong ◽  
...  

Novel all solid-state PbS quantum dot-doped glass fibers with tunable near-infrared emissions were fabricated by using the “melt-in-tube” method.


Minerals ◽  
2021 ◽  
Vol 11 (10) ◽  
pp. 1053
Author(s):  
Cunli Zhu ◽  
Nan Zhou ◽  
Yaben Guo ◽  
Meng Li ◽  
Qiangqiang Cheng

Shotcrete material has found extensive applications as a reinforcing material in the engineering sector. This study examined the effect of doped glass fibers on the mechanical performance of the modified shotcrete material composed of aeolian sand, fly ash, cement, quicklime, and doped glass fibers. Its tensile and shear strengths values were experimentally determined via a WAW-1000D computerized hydraulic universal tensile testing machine. Its microstructure was analyzed via a size analyzer, scanning electron microscope (SEM), and X-ray diffractometer (XRD). A 2D simplified mechanical model was elaborated to reflect the influence mechanism of the doped glass fibers on the mechanical performance of the modified shotcrete material. The experimental and mechanical analysis results indicated that, at the macroscopic scale, the experimental tensile and shear strengths of the shotcrete material doped with glass fibers were significantly higher than those of the undoped shotcrete material (by up to 310% and 596%, respectively). These results were in concert with the proposed model predictions, where the compound stresses in the shotcrete material were derived as the sum of the stress borne by the shotcrete material itself and the bridging stress exerted by the glass fibers. At the microscopic scale, SEM observations also revealed that the glass fibers were intertwined with each other and tightly enveloped by the shotcrete material particles within the modified shotcrete specimens, connecting the particles of different components into a whole and improving the overall mechanical strength. In addition, the relationships of the compound stress of the shotcrete material vs. embedment length, embedment angle, and cross-sectional area of the glass fibers were established. The research findings are considered instrumental in clarifying the mechanism by which the glass fibers influence the mechanical performance of shotcrete materials and optimize their solid waste (fly ash and quicklime) utilization.


2019 ◽  
Vol 102 (10) ◽  
pp. 5818-5827 ◽  
Author(s):  
Zixing Peng ◽  
Xiongjian Huang ◽  
Zhijun Ma ◽  
Guoping Dong ◽  
Jianrong Qiu

1994 ◽  
Vol 60-61 ◽  
pp. 437-440 ◽  
Author(s):  
R. Wannemacher ◽  
J.M.A. Koedijk ◽  
S. Vo¨lker

2021 ◽  
Vol 2021 ◽  
pp. 1-14
Author(s):  
Cunli Zhu ◽  
Jixiong Zhang ◽  
Zhou Nan ◽  
Meng Li ◽  
Zhiwei He

The mechanical strength of cemented paste backfill (CPB), especially the early compressive strength, is crucial for controlling the overlying rock movement. Therefore, improving the early compressive strength of CPB is a critical issue. In this study, the doped glass fibers’ effect on the macroscopic mechanical strength and microstructural features of the sand-based CPB (SCPB) with different curing ages was analyzed. The macroscopic properties and the microstructure of SCPB were characterized experimentally and analyzed via scanning electron microscopy. The results showed that slump sizes of SCPB specimens without and with doped glass fibers were 269 and 209 mm. Thus, doped glass fibers inhibited the SCPB transportability and significantly improved its early compressive strength. At curing ages of 1 d and 3 d, the compressive strength of SCPB specimens doped with glass fibers was improved by 679 and 278%, respectively, compared to the blank control group. As the curing age increased, the compressive strength improvement of the SCPB doped with glass fibers was gradually saturated. Finally, the correlation between macroscopic and microscopic properties of SCPB specimens was analyzed comparatively. Thus, the mechanism of doped glass fibers’ influencing the early compressive strength of the SCPB was revealed. The research findings provide theoretical guidance for improving the SCPB early compressive strength at the mining site with the CPB mining technique.


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