4 minute read

Wiegand energy harvester enables new IoT technologies

UBITO, part of the FRABA family, has announced a development of Wiegand technology as an energy source for smart sensors. After more than two years of e ort at FRABA’s R&D center in Aachen, Germany, a research team has demonstrated a prototype of a wireless sensor powered by Wiegand technology that could support Internet of Things networks. The project involved the development of a new Wiegand Harvester capable of capturing enough energy to power the sensor’s electronics package, including a highe ciency ultra-wide-band radio transmitter. This achievement (a world first) helps to position Wiegand technology (which collects energy from movements of an external magnetic field) beside established energy harvesting techniques such as solar, piezo, or thermo-electrics as an energy source for sensor nodes in the emerging industrial IoT.

“Wiegand sensors have been a core component of our encoder products for over 15 years,” said Tobias Best, global head of the UBITO startup. “While this technology has provided a highly reliable way of detecting and recording rotations in flow meters and multiturn encoders, we have always been looking forward to its wider potential, especially for energy harvesting.”

With this goal in mind, FRABA undertook a development project aimed at improving the energy output from Wiegand devices and demonstrating the possibility of selfpowered sensors that could detect events and transmit data wirelessly to an IoT network. The R&D project was conducted with Aachen’s University for Applied Science, with financial support from the German Ministry of Education and Technology. The project team succeeded in producing a new Wiegand Harvester — a device that could generate more than 50 times the energy of commercial Wiegand sensors.

“This level of output makes it possible to dream of energy selfsu cient sensors that can communicate data wirelessly over a significant distance,” said Best.

The team chose a window sensor system for a practical demonstration of an IoT sensor node powered by Wiegand-harvested energy.

Two Wiegand harvesters and their associated electronics were mounted on the window, with bar magnets mounted on the frame. The harvesters, made up of a 21 mm long pieces of Wiegand wire surrounded by a copper coil, are the size of an AAA battery. Whenever the window is opened or closed, the harvesters pass the magnets, triggering abrupt magnetic polarity changes in the Wiegand wires.

The amount of energy delivered is largely independent of how quickly or slowly the window is moved — a key benefit of Wiegand technology.

The current pulses induced by these polarity reversals generate about 10 microjoules of energy. A key goal had been achieved: the amount of energy captured was su cient to activate a microcontroller and collect a reading from a temperature sensor built into the system. The team added an ultra-wide-band transmitter module that could transmit 134 bytes of data to a receiving station 60 meters away.

“This is a lab demonstration, not a commercial product,” said Best. “However, by showing the capabilities of a system made up of Wiegand devices and o -the-shelf electronic components , we hope to spark interest in the wonderful potential for this technology. With the Industrial IoT projected to grow by a factor of three over the next decade, the future is very exciting.” DW

UBITO www.ubito.com

WHAT DO YOU THINK?

Connect and discuss this and other engineering design issues with thousands of professionals online

42 Linear Motion

High-precision motion stage has the right stu

In-house designed and built motion control components are used to design and build a high-precision motion stage.

50 Motion Control

Part one: Scalar and vector VFD control methods

AC motors pair with variable frequency drives to satisfy process as well as motion-control applications. Here we compare how the operation of these drives diverge.

56 Electronics

Sustainability challenge: lithium-ion versus sodium-ion batteries

As electrification increases, rechargeable batteries will contribute significantly to sustainability goals. But determining which battery type is best remains a challenge.

62 TEST & MEASUREMENT

What is a Smith chart and why do I need one?

A Smith chart provides insight into RF/microwave designs. Even if you work primarily with lowspeed analog and mixed-signal designs, you could benefit from familiarity with the Smith chart as wireless products proliferate and as high-speedserial data signals exhibit microwave-like e ects.

66 Connectors

Rotary slip ring connectors — what are they used for?

Rotary slip ring connectors are important components in various applications like multi-axis robots in industry 4.0, wind turbines for sustainable green energy, machine tools, medical systems, and more.

Follow the whole team on twitter @DesignWorld

EDITORIAL

VP, Editorial Director

Paul J. Heney pheney@wtwhmedia.com @wtwh_paulheney

Managing Editor

Mike Santora msantora@wtwhmedia.com @dw_mikesantora

Executive Editor Lisa Eitel leitel@wtwhmedia.com @dw_lisaeitel

Senior Editor Miles Budimir mbudimir@wtwhmedia.com @dw_motion

Senior Editor Mary Gannon mgannon@wtwhmedia.com @dw_marygannon

Senior Editor

Rachael Pasini rpasini@wtwhmedia.com @WTWH_Rachael

Associate Editor Heather Hall hhall@wtwhmedia.com @wtwh_heathhall

CREATIVE SERVICES

VP, Creative Services Mark Rook mrook@wtwhmedia.com @wtwh_graphics

Senior Art Director Matthew Claney mclaney@wtwhmedia.com @wtwh_designer

Senior Graphic Designer Allison Washko awashko@wtwhmedia.com @wtwh_allison

Graphic Designer Mariel Evans mevans@wtwhmedia.com @wtwh_mariel

Director,

Bruce bsprague@wtwhmedia.com

WEB DEV / DIGITAL OPERATIONS

Web Development Manager

B. David Miyares dmiyares@wtwhmedia.com @wtwh_webdave

Senior Digital Media Manager Patrick Curran pcurran@wtwhmedia.com @wtwhseopatrick

Front End Developer Melissa Annand mannand@wtwhmedia.com

Software Engineer David Bozentka dbozentka@wtwhmedia.com

DIGITAL MARKETING

VP, Digital Marketing Virginia Goulding vgoulding@wtwhmedia.com @wtwh_virginia

Digital Marketing Manager

Taylor Meade tmeade@wtwhmedia.com @WTWH_Taylor

Webinar Coordinator Halle Sibly hkirsh@wtwhmedia.com

Webinar Coordinator Kim Dorsey kdorsey@wtwhmedia.com

EVENTS

Events Manager Jen Osborne josborne@wtwhmedia.com @wtwh_jen

Events Manager Brittany Belko bbelko@wtwhmedia.com

Event Marketing Specialist Olivia Zemanek ozemanek@wtwhmedia.com

VIDEO SERVICES

Videographer

Garrett McCafferty gmccafferty@wtwhmedia.com

Videographer

Kara Singleton ksingleton@wtwhmedia.com

PRODUCTION SERVICES

Customer Service Manager

Stephanie Hulett shulett@wtwhmedia.com

Customer Service Representative

Tracy Powers tpowers@wtwhmedia.com

Customer Service Representative

JoAnn Martin jmartin@wtwhmedia.com

Customer Service Representative

Renee Massey-Linston renee@wtwhmedia.com

Customer Service Representative

Trinidy Longgood tlonggood@wtwhmedia.com

Digital Production Manager

Reggie Hall rhall@wtwhmedia.com

Digital Production Specialist

Nicole Johnson njohnson@wtwhmedia.com

Digital Design Manager Samantha King sking@wtwhmedia.com

Marketing Graphic Designer

Hannah Bragg hbragg@wtwhmedia.com

Digital Production Specialist

Elise Ondak eondak@wtwhmedia.com

FINANCE

Controller

Brian Korsberg bkorsberg@wtwhmedia.com

Accounts Receivable Specialist

Jamila Milton jmilton@wtwhmedia.com

This article is from: