Abstract. The integration of sensors is one of the major tasks in embedded, control and
“internet of things” (IoT) applications. For the integration mainly digital
interfaces are used, starting from rather simple pulse-width modulation (PWM)
interface to more complex interfaces like CAN (Controller Area Network). Even
though these interfaces are tethered by definition, a wireless realization is
highly welcome in many applications to reduce cable and connector cost,
increase the flexibility and realize new emerging applications like wireless
control systems. Currently used wireless solutions like Bluetooth,
WirelessHART or IO-Link Wireless use dedicated communication standards and
corresponding higher protocol layers to realize the wireless communication.
Due to the complexity of the communication and the protocol handling,
additional latency and jitter are introduced to the data communication that
can meet the requirements for many applications. Even though tunnelling of
other bus data like CAN data is generally also possible the latency and
jitter prevent the tunnelling from being transparent for the bus system. Therefore a new basic technology based on dual-mode
radio is used to realize a wireless communication on the physical layer only,
enabling a reliable and real-time data transfer. As this system operates on
the physical layer it is independent of any higher layers of the OSI (open systems interconnection) model.
Hence it can be used for several different communication systems to replace
the tethered physical layer. A prototype is developed and tested for
real-time wireless PWM, SENT (single-edge nibble transmission) and CAN data
transfer with very low latency and jitter.
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