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http://dx.doi.org/10.6109/jicce.2015.13.1.021

Design and Implementation of Wireless Sensor Network for Freeze Dryer  

Cho, Young Seek (Center for Advanced Electric Applications, Wonkwang University)
Kwon, Jaerock (Department of Electrical and Computer Engineering, Kettering University)
Choi, Seyeong (Department of Information and Communication Engineering, Wonkwang University)
Abstract
A wireless sensor network (WSN) is designed and implemented for a freeze dryer. Freeze-drying technology is widely used in the fields of pharmacy and biotechnology as well as the food and agriculture industries. Taking into account the demand for high-resolution pressure and temperature measurements in a freeze dryer, the proposed WSN has a significant advantage of creating a monitoring environment in a freeze dryer. The proposed WSN uses a ZigBee/IEEE 802.15.4 network with an altimeter module that contains a high-resolution pressure and temperature sensor with a serial digital data interface. The ZigBee network is suitable for low-energy and low-data-rate applications in the field of wireless communication. The altimeter module is capable of sensing pressure in the range of 7.5-975 Torr (10-1300 mbar) and temperature in the range of $-40^{\circ}C$ to $125^{\circ}C$ with a DC power consumption of $3{\mu}W$. The implemented WSN is installed in a commercial laboratory freeze dryer in order to demonstrate its functionality and efficiency. A comparison with the temperature profile measured by a thermocouple installed in the freeze dryer reveals that the resolution of the temperature profile measured by WSN is superior to that measured by the thermocouple.
Keywords
Microcontroller; Pressure sensor; Temperature sensor; Wireless sensor network; ZigBee;
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