Evaluation of the effects of tableting speed on the relationships between compaction pressure, tablet tensile strength, and tablet solid fraction

2005 ◽  
Vol 94 (3) ◽  
pp. 465-472 ◽  
Author(s):  
Ching Kim Tye ◽  
Changquan (Calvin) Sun ◽  
Gregory E. Amidon
2017 ◽  
Vol 106 (8) ◽  
pp. 2060-2067 ◽  
Author(s):  
Shubhajit Paul ◽  
Kunlin Wang ◽  
Lisa J. Taylor ◽  
Brendan Murphy ◽  
Joseph Krzyzaniak ◽  
...  

2015 ◽  
Vol 713-715 ◽  
pp. 2876-2879
Author(s):  
Xiao Ping Zheng ◽  
Ze Sheng Ji ◽  
Wei Wen Zhang ◽  
Ming Shao

The semi-solid rheoforming process of AZ91D alloy with 9 % plastic deformation was investigated. The effect of holding time on the rheoforming formability of AZ91D alloy was analyzed. The relationship between holding time and microstructure, mechanical property was also researched. The results show that with increasing of holding time from 0 to 60 min at 575 °C, the filling distance increases firstly and then decreases, the solid fraction decreases firstly and then increases, the tensile strength and elongation are also increase firstly and then decrease. However, the increasing of holding time would lead to shape factor decreasing but particle coarsening. When holding time is 30 min, the solid fraction is lowest and the filling distance increases greatly. Compared to the conventional casting sample, the tensile strength and elongation of the rheoforming parts increase 43.9 % and 187.5 %, respectively.


2019 ◽  
Vol 9 (24) ◽  
pp. 5288 ◽  
Author(s):  
Elsayed Mousa ◽  
Mania Kazemi ◽  
Mikael Larsson ◽  
Gert Karlsson ◽  
Erik Persson

The foundry industry is currently facing challenges to reduce the environmental impacts from application of fossil fuels. Replacing foundry coke with alternative renewable carbon sources can lead to significant decrease in fossil fuel consumption and fossil CO2 emission. The low bulk density, low energy density, low mechanical strength and the high reactivity of biocarbon materials are the main factors limiting their efficient implementation in a cupola furnace. The current study aimed at designing, optimizing and developing briquettes containing biocarbon, namely, biocarbon briquettes for an efficient use in cupola furnace. Laboratory hydraulic press with compaction pressure of about 160 MPa and stainless-steel moulds (Ø = 40 mm and 70 mm) were used for compaction. The density, heating value, energy density, mechanical strength and reactivity of biocarbon briquettes were measured and evaluated. The compressive strength and splitting tensile strength of biocarbon briquettes were measured by a compression device. The reactivity of biocarbon briquettes was measured under controlled conditions of temperature and gas atmosphere using the thermogravimetric analysis technique (TGA). Different types of binders were tested for the compaction of commercial charcoal fines with/without contribution of coke breeze. The effect of charcoal ratio, particle size, binder type, binder ratio, moisture content and compaction pressure on the quality of the biocarbon briquettes was investigated. Molasses with hydrated lime and cement were superior in enhancing the biocarbon briquettes strength and energy density among other tested binders and additives. The briquettes’ strength decreased as the biocarbon content increased. The optimum recipes consisted of 62% charcoal fines, 20% molasses, 10% hydrated lime and 8% cement. Cement is necessary to develop the tensile strength and hot mechanical strength of the briquettes. The charcoal with high ash content showed higher strength of briquettes but lower heating value compared to that with low ash content. Dispersion of silica suspension on charcoal particles during the mixing process was able to reduce the reactivity of biochar in the developed biocarbon briquettes. The biocarbon briquettes density and strength were increased by increasing the compaction pressure. Commercial powder hydrated lime was more effective in enhancing the briquettes’ strength compared to slaked burnt lime. Upscaling of biocarbon briquettes (Ø = 70 mm) and testing of hot mechanical strength under load indicated development of cracks which significantly reduced the strength of briquettes. Further development of biocarbon briquettes is needed to fulfil the requirements of a cupola furnace.


2014 ◽  
Vol 15 (3) ◽  
pp. 781-791 ◽  
Author(s):  
Anna Halenius ◽  
Satu Lakio ◽  
Osmo Antikainen ◽  
Juha Hatara ◽  
Jouko Yliruusi

2011 ◽  
Vol 25 (4-5) ◽  
pp. 501-519 ◽  
Author(s):  
Frank M. Etzler ◽  
Tommasina Bramante ◽  
Richard Deanne ◽  
Svetlana Sienkiewicz ◽  
F. J. Chen

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