Abstract: Magnetically controlled microelectromechanical system (MCMEMS) switches is one of the directions in the field of micropower switching technology. MCMEMS switches are a promising alternative to Hall sensors and reed switches. The most important parameter for MCMEMS is the contact resistance, which should have a minimum value and is to be stable for the entire duration of service life. The value and stability of the contact resistance is mainly determined by the contact coating material. This paper presents the research results of a contact coating based on nanoscale ruthenium films obtained by electrolytic deposition. As a result of the performed investigations, the deposition modes of ruthenium films are chosen, the regularities of the contact resistance change depending on the number of contact switching, and the coating roughness are established. It is shown that changing the coating roughness makes it possible to minimize the contact resistance.
Abstract: In the present study, a design of the suspended polymeric microfluidic platform is introduced that is fabricated with three polymeric layers. Changing the microchannel plane to be perpendicular to microcantilever plane, drastically decreases moment of inertia in that direction. In addition, the platform is made of polymer (around five orders of magnitude less compared to silicon). It causes significant increase in the sensitivity of the cantilever deflection. Next, although the dimensions of this platform are constant, by misaligning the embedded microchannels laterally in the suspended microfluidic platform, the sensitivity can be highly increased. The investigation is studied on four fluids including water, seawater, milk, and blood for flow ranges from low rate of 5 to 70 µl/min to obtain the best design with the highest sensitivity. The best design in this study shows the sensitivity increases around 50% for water, seawater, milk, and blood at the flow rate of 70 µl/min by just misaligning the embedded microchannels in the suspended polymeric microfluidic platform.
Abstract: This paper describes a design of earphone style
wearable device that may provide an automatic guidance service for
visitors. With both position information and orientation information
obtained from NFC and terrestrial magnetism sensor, a high level
automatic guide service may be realized. To realize the service, a
algorithm for position detection using the packet from NFC tags, and
developed an algorithm to calculate the device orientation based on
the data from acceleration and terrestrial magnetism sensors called as
MEMS. If visitors want to know some explanation about an exhibit
in front of him, what he has to do is only move to the object and
stands for a moment. The identification program will automatically
recognize the status based on the information from NFC and MEMS,
and start playing explanation content about the exhibit. This service
should be useful for improving the understanding of the exhibition
items and bring more satisfactory visiting experience without less
burden.
Abstract: In this paper, we present an autonomous guidance service by combinating the position information
from NFC and the orientation information from 6 a 6 axis acceleration and
terrestrial magnetism sensor. We developed an algorithm to calculate the device orientation
based on the data from acceleration and terrestrial magnetism sensor.With this function,
a autonomous guidance service can be provided, according the visitors's position and orientation.
This service may be convient for old people or disables or children.