superheated steam drying
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2021 ◽  
Vol 0 (0) ◽  
Author(s):  
Jingcheng Wang ◽  
Qing Xu ◽  
Jianbo Liu ◽  
Shuaishuai Zheng ◽  
Ruifang Wang ◽  
...  

Abstract A method of combining low-pressure superheated steam drying (LPSSD) and vacuum drying (VD) was proposed to improve the dried pineapple quality and increase the drying rate. It was found that the inversion temperature in low-pressure superheated steam drying of pineapple was 85.75 °C in terms of the first falling rate period. The combining drying (LPSSD–VD) reduced the maximum material temperature by 9.5 °C and 0.35 °C, and shortened the drying time by 50 min and 90 min compared with LPSSD and VD at the same drying temperature of 90 °C. The vitamin C retention rate of dried pineapple by LPSSD–VD was 29.33% and 15.94% higher than that of LPSSD and VD, respectively. The color of dried pineapple was also improved. Moreover, the sugar content of dried pineapple can be well controlled to meet the health demand of low sugar and ensure the taste of dried pineapple during LPSSD–VD process.


2021 ◽  
Vol 0 (0) ◽  
Author(s):  
Jianbo Liu ◽  
Xinran Li ◽  
Li Wang ◽  
Ruifang Wang ◽  
Qing Xu ◽  
...  

Abstract Low pressure superheated steam drying (LPSSD) is an attractive drying method, which can retain nutrients in fruits and vegetables well. To obtain high quality drying products, it is necessary to understand the main factors affecting the quality attribute of drying sample. Therefore, green turnip was selected as the drying sample and sensitivity analysis method was used to identify the main influencing factors of product quality, such as color, re-hydration performance and Vitamin C during LPSSD. The results showed that the drying temperature had the greatest influence on the color change and vitamin C retention of green turnip. The total color difference ΔE* increased with the elevated drying temperature. The drying pressure had the greatest influence on re-hydration performance and the re-hydration ratio decreased with the elevated drying pressure.


Energies ◽  
2021 ◽  
Vol 14 (18) ◽  
pp. 5927
Author(s):  
Robert Adamski ◽  
Dorota Siuta ◽  
Bożena Kukfisz ◽  
Michał Frydrysiak ◽  
Mirosława Prochoń

Knowledge of the drying properties of tobacco in high temperatures above 100 °C and its dust are crucial in the design of dryers, both in the optimization of the superheated-steam-drying process and in the correct selection of innovative explosion protection and mitigation systems. In this study, tobacco properties were determined and incorporated into the proposed model of an expanding superheated steam flash dryer. The results obtained from the proposed model were validated by using experimental data yielded during test runs of an industrial scale of a closed-loop expansion dryer on lamina cut tobacco. Moreover, the explosion and fire properties of tobacco dust before and after the superheated steam-drying process at 160, 170, 180, and 190 °C were experimentally investigated, using a 20 L spherical explosion chamber, a hot plate apparatus, a Hartmann tube apparatus, and a Godbert–Greenwald furnace apparatus. The results indicate that the higher the drying temperature, the more likely the ignition of the dust tobacco cloud, the faster the explosion flame propagation, and the greater the explosion severity. Tobacco dust is of weak explosion class. Dust obtained by drying with superheated steam at 190 °C is characterized by the highest value of explosion index amounting to 109 ± 14 m·bar·s−1, the highest explosion pressure rate (405 ± 32 bar/s), and the maximum explosion pressure (6.7 ± 0.3 bar). The prevention of tobacco-dust accumulation and its removal from the outer surfaces of machinery and equipment used in the superheated steam-drying process are highly desirable.


2021 ◽  
Vol 211 ◽  
pp. 106597
Author(s):  
Robert Adamski ◽  
Dorota Siuta ◽  
Bożena Kukfisz ◽  
Piotr Tomasz Mitkowski ◽  
Waldemar Szaferski

2020 ◽  
Vol 44 (1) ◽  
pp. 114-123
Author(s):  
Kieu Hiep Le ◽  
Thi Thu Hang Tran ◽  
Evangelos Tsotsas ◽  
Abdolreza Kharaghani

2020 ◽  
Vol 43 (5) ◽  
pp. 913-922
Author(s):  
Kieu Hiep Le ◽  
Thi Thu Hang Tran ◽  
Nguyen An Nguyen ◽  
Abdolreza Kharaghani

2020 ◽  
Vol 243 ◽  
pp. 118635 ◽  
Author(s):  
Marek Jaszczur ◽  
Michal Dudek ◽  
Marc A. Rosen ◽  
Zygmunt Kolenda

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