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Duco: Autonomous Large-Scale Direct-Circuit-Writing (DCW) on Vertical Everyday Surfaces Using A Scalable Hanging Plotter

Published: 14 September 2021 Publication History

Abstract

Human environments are filled with large open spaces that are separated by structures like walls, facades, glass windows, etc. Most often, these structures are largely passive offering little to no interactivity. In this paper, we present Duco, a large-scale electronics fabrication robot that enables room-scale & building-scale circuitry to add interactivity to vertical everyday surfaces. Duco negates the need for any human intervention by leveraging a hanging robotic system that automatically sketches multi-layered circuity to enable novel large-scale interfaces. The key idea behind Duco is that it achieves single-layer or multi-layer circuit fabrication on 2D surfaces as well as 2D cutouts that can be assembled into 3D objects by loading various functional inks (e.g., conductive, dielectric, or cleaning) to the wall-hanging drawing robot, as well as employing an optional laser cutting head as a cutting tool. Our technical evaluation shows that Duco's mechanical system works reliably on various surface materials with a wide range of roughness and surface morphologies. The system achieves superior mechanical tolerances (0.1mm XY axis resolution and 1mm smallest feature size). We demonstrate our system with five application examples, including an interactive piano, an IoT coffee maker controller, an FM energy-harvester printed on a large glass window, a human-scale touch sensor and a 3D interactive lamp.

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Supplemental movie, appendix, image and software files for, Duco: Autonomous Large-Scale Direct-Circuit-Writing (DCW) on Vertical Everyday Surfaces Using A Scalable Hanging Plotter

References

[1]
NEJE 450nm 20W Continuous Laser Module. 2018. Retrieved June 1, 2020 from http://nejetool.com/module_20w.html
[2]
Arduino. 2011. Retrieved April 17, 2021 from https://store.arduino.cc/usa/mega-2560-r3
[3]
Bare Conductive Touch Board. 2018. Retrieved May 14, 2020 from https://www.bareconductive.com/shop/touch-board/
[4]
BOTSY. 2007. BOTSY- THE WALL DRAWING ROBOT. Retrieved December 24, 2020 from https://www.botsy.com/
[5]
Yaguo Cai, Xianqing Piao, Wei Gao, Zhejuan Zhang, Er Nie, and Zhuo Sun. 2017. Large-scale and facile synthesis of silver nanoparticles via a microwave method for a conductive pen. RSC advances 7, 54 (2017), 34041--34048.
[6]
Tingyu Cheng, Koya Narumi, Youngwook Do, Yang Zhang, Tung D Ta, Takuya Sasatani, Eric Markvicka, Yoshihiro Kawahara, Lining Yao, Gregory D Abowd, et al. 2020. Silver tape: Inkjet-printed circuits peeled-and-transferred on versatile substrates. Proceedings of the ACM on Interactive, Mobile, Wearable and Ubiquitous Technologies 4, 1 (2020), 1--17.
[7]
Scribit Design. 2018. Retrieved August 25, 2020 from https://scribit.design/
[8]
Alexandre Echasseriau. 2016. Retrieved March 2, 2021 from http://www.prixemilehermes.com/en/#!interactive-wallpaper
[9]
Silver Conductive Epoxy. 1928. Retrieved August 25, 2020 from https://www.alliedelec.com/product/mg-chemicals/8331-14g/70125874/
[10]
FischerAppelt. 2021. Retrieved March 17, 2021 from https://www.bareconductive.com/blogs/community/an-interactive-sound-wall
[11]
Nan-Wei Gong, Jürgen Steimle, Simon Olberding, Steve Hodges, Nicholas Edward Gillian, Yoshihiro Kawahara, and Joseph A Paradiso. 2014. PrintSense: a versatile sensing technique to support multimodal flexible surface interaction. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems. 1407--1410.
[12]
Daniel Groeger and Jürgen Steimle. 2018. ObjectSkin: augmenting everyday objects with hydroprinted touch sensors and displays. Proceedings of the ACM on Interactive, Mobile, Wearable and Ubiquitous Technologies 1, 4 (2018), 1--23.
[13]
Daniel Groeger and Jürgen Steimle. 2019. LASEC: Instant Fabrication of Stretchable Circuits Using a Laser Cutter. In Proceedings of the 2019 CHI Conference on Human Factors in Computing Systems. 1--14.
[14]
Felix Heibeck, Basheer Tome, Clark Della Silva, and Hiroshi Ishii. 2015. uniMorph: Fabricating thin film composites for shape-changing interfaces. In Proceedings of the 28th Annual ACM Symposium on User Interface Software & Technology. 233--242.
[15]
IFTTT. 2011. IFTTT. Retrieved May 10, 2021 from https://ifttt.com/home
[16]
Mural Design Technology (JEDAR). 2015. Retrieved August 25, 2020 from www.jedar.me
[17]
E. M. Jung, Y. Cui, T. Lin, X. He, A. Eid, J. G. D. Hester, G. D. Abowd, T. E. Starner, W. Lee, and M. M. Tentzeris. 2020. A Wideband, Quasi-Isotropic, Kilometer-Range FM Energy Harvester for Perpetual IoT. IEEE Microwave and Wireless Components Letters 30, 2 (2020), 201--204.
[18]
L. P. Kalra, J. Gu, and M. Meng. 2006. A Wall Climbing Robot for Oil Tank Inspection. In 2006 IEEE International Conference on Robotics and Biomimetics. 1523--1528. https://doi.org/10.1109/ROBIO.2006.340155
[19]
Hsin-Liu Kao, Christian Holz, Asta Roseway, Andres Calvo, and Chris Schmandt. 2016. DuoSkin: rapidly prototyping on-skin user interfaces using skin-friendly materials. In Proceedings of the 2016 ACM International Symposium on Wearable Computers. 16--23.
[20]
Kateeva. 2017. Retrieved August 25, 2020 from http://kateeva.com/
[21]
Kunihiro Kato and Homei Miyashita. 2015. ExtensionSticker: A Proposal for a Striped Pattern Sticker to Extend Touch Interfaces and Its Assessment. In Proceedings of the 33rd Annual ACM Conference on Human Factors in Computing Systems (Seoul, Republic of Korea) (CHI '15). Association for Computing Machinery, New York, NY, USA, 1851--1854. https://doi.org/10.1145/2702123.2702500
[22]
Yoshihiro Kawahara, Steve Hodges, Benjamin S Cook, Cheng Zhang, and Gregory D Abowd. 2013. Instant inkjet circuits: lab-based inkjet printing to support rapid prototyping of UbiComp devices. In Proceedings of the 2013 ACM international joint conference on Pervasive and ubiquitous computing. 363--372.
[23]
Yoshihiro Kawahara, Hoseon Lee, and Manos M Tentzeris. 2012. Sensprout: Inkjet-printed soil moisture and leaf wetness sensor. In Proceedings of the 2012 ACM Conference on Ubiquitous Computing. 545--545.
[24]
Arshad Khan, Joan Sol Roo, Tobias Kraus, and Jürgen Steimle. 2019. Soft Inkjet Circuits: Rapid Multi-Material Fabrication of Soft Circuits Using a Commodity Inkjet Printer. In Proceedings of the 32nd Annual ACM Symposium on User Interface Software and Technology. 341--354.
[25]
Hwang Kim, Dongmok Kim, Hojoon Yang, Kyouhee Lee, Kunchan Seo, Doyoung Chang, and Jongwon Kim. 2008. Development of a wall-climbing robot using a tracked wheel mechanism. Journal of mechanical science and technology 22, 8 (2008), 1490--1498.
[26]
LaserPecker. 2019. LaserPecker. Retrieved January 14, 2021 from https://www.laserpecker.net/
[27]
Hanchuan Li, Eric Brockmeyer, Elizabeth J Carter, Josh Fromm, Scott E Hudson, Shwetak N Patel, and Alanson Sample. 2016. Paperid: A technique for drawing functional battery-free wireless interfaces on paper. In Proceedings of the 2016 CHI Conference on Human Factors in Computing Systems. 5885--5896.
[28]
Joanne Lo, Doris Jung Lin Lee, Nathan Wong, David Bui, and Eric Paulos. 2016. Skintillates: Designing and creating epidermal interactions. In Proceedings of the 2016 ACM Conference on Designing Interactive Systems. 853--864.
[29]
Eric Markvicka, Guanyun Wang, Yi-Chin Lee, Gierad Laput, Carmel Majidi, and Lining Yao. 2019. ElectroDermis: Fully Untethered, Stretchable, and Highly-Customizable Electronic Bandages. In Proceedings of the 2019 CHI Conference on Human Factors in Computing Systems. 1--10.
[30]
DYCOTEC MATERIALS. 2018. Retrieved August 25, 2020 from https://www.dycotecmaterials.com/product/dm-sij-3200/
[31]
MOLOTOW. 1959. Retrieved August 25, 2020 from https://www.molotow.com/en/
[32]
A. Nagakubo and S. Hirose. 1994. Walking and running of the quadruped wall-climbing robot. In Proceedings of the 1994 IEEE International Conference on Robotics and Automation. 1005-1012 vol.2. https://doi.org/10.1109/ROBOT.1994.351225
[33]
Steven Nagels, Raf Ramakers, Kris Luyten, and Wim Deferme. 2018. Silicone devices: A scalable DIY approach for fabricating self-contained multi-layered soft circuits using microfluidics. In Proceedings of the 2018 CHI Conference on Human Factors in Computing Systems. 1--13.
[34]
Koya Narumi, Xinyang Shi, Steve Hodges, Yoshihiro Kawahara, Shinya Shimizu, and Tohru Asami. 2015. Circuit eraser: A tool for iterative design with conductive ink. In Proceedings of the 33rd Annual ACM Conference Extended Abstracts on Human Factors in Computing Systems. 2307--2312.
[35]
Martin Nisser, Christina Liao, Yuchen Chai, Aradhana Adhikari, Steve Hodges, and Stefanie Mueller. 2021. A Laser Cutter-based Electromechanical Assembly and Fabrication Platform to Make Functional Devices Robots. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems.
[36]
Aditya Shekhar Nittala, Anusha Withana, Narjes Pourjafarian, and Jürgen Steimle. 2018. Multi-touch skin: A thin and flexible multi-touch sensor for on-skin input. In Proceedings of the 2018 CHI Conference on Human Factors in Computing Systems. 1--12.
[37]
Simon Olberding, Nan-Wei Gong, John Tiab, Joseph A Paradiso, and Jürgen Steimle. 2013. A cuttable multi-touch sensor. In Proceedings of the 26th annual ACM symposium on User interface software and technology. 245--254.
[38]
Simon Olberding, Sergio Soto Ortega, Klaus Hildebrandt, and Jürgen Steimle. 2015. Foldio: Digital fabrication of interactive and shape-changing objects with foldable printed electronics. In Proceedings of the 28th Annual ACM Symposium on User Interface Software & Technology. 223--232.
[39]
Simon Olberding, Michael Wessely, and Jürgen Steimle. 2014. PrintScreen: fabricating highly customizable thin-film touch-displays. In Proceedings of the 27th annual ACM symposium on User interface software and technology. 281--290.
[40]
Bare Conductive Electric Paint Pen. 2009. Retrieved August 25, 2020 from https://www.bareconductive.com/shop/electric-paint-10ml/
[41]
Polargraph. 2019. Retrieved September 1, 2020 from http://www.polargraph.co.uk/
[42]
Norland Products. 1960. Retrieved August 25, 2020 from https://www.norlandprod.com/adhesives/NEA%20121.html
[43]
W. R. Provancher, S. I. Jensen-Segal, and M. A. Fehlberg. 2011. ROCR: An Energy-Efficient Dynamic Wall-Climbing Robot. IEEE/ASME Transactions on Mechatronics 16, 5 (2011), 897--906. https://doi.org/10.1109/TMECH.2010.2053379
[44]
Jie Qi and Leah Buechley. 2010. Electronic popables: exploring paper-based computing through an interactive pop-up book. In Proceedings of the fourth international conference on Tangible, embedded, and embodied interaction. 121--128.
[45]
Jun Rekimoto. 2002. SmartSkin: an infrastructure for freehand manipulation on interactive surfaces. In Proceedings of the SIGCHI conference on Human factors in computing systems. 113--120.
[46]
Analisa Russo, Bok Yeop Ahn, Jacob J Adams, Eric B Duoss, Jennifer T Bernhard, and Jennifer A Lewis. 2011. Pen-on-paper flexible electronics. Advanced materials 23, 30 (2011), 3426--3430.
[47]
Martin Schmitz, Mohammadreza Khalilbeigi, Matthias Balwierz, Roman Lissermann, Max Mühlhäuser, and Jürgen Steimle. 2015. Capricate: A fabrication pipeline to design and 3D print capacitive touch sensors for interactive objects. In Proceedings of the 28th Annual ACM Symposium on User Interface Software & Technology. 253--258.
[48]
Smarter. 2013. Smarter Coffee Maker. Retrieved May 12, 2021 from https://smarter.am/products/smarter-coffee
[49]
SparkFun. 2003. Retrieved April 17, 2021 from https://www.sparkfun.com/products/9056
[50]
Saiganesh Swaminathan, Jonathon Fagert, Michael Rivera, Andrew Cao, Gierad Laput, Hae Young Noh, and Scott E Hudson. 2020. OptiStructures: Fabrication of Room-Scale Interactive Structures with Embedded Fiber Bragg Grating Optical Sensors and Displays. Proceedings of the ACM on Interactive, Mobile, Wearable and Ubiquitous Technologies 4, 2 (2020), 1--21.
[51]
Saiganesh Swaminathan, Kadri Bugra Ozutemiz, Carmel Majidi, and Scott E Hudson. 2019. FiberWire: Embedding Electronic Function into 3D Printed Mechanically Strong, Lightweight Carbon Fiber Composite Objects. In Proceedings of the 2019 CHI Conference on Human Factors in Computing Systems. 1--11.
[52]
Yan-Long Tai and Zhen-Guo Yang. 2011. Fabrication of paper-based conductive patterns for flexible electronics by direct-writing. Journal of Materials Chemistry 21, 16 (2011), 5938--5943.
[53]
Justin Wagher Urban Conga, Sebastian Coolidge. 2018. Retrieved February 13, 2021 from http://www.theurbanconga.com/#home-1-section
[54]
Nirzaree Vadgama and Jürgen Steimle. 2017. Flexy: Shape-customizable, single-layer, inkjet printable patterns for 1d and 2d flex sensing. In Proceedings of the Eleventh International Conference on Tangible, Embedded, and Embodied Interaction. 153--162.
[55]
Joshua Vasquez, Hannah Twigg-Smith, Jasper Tran O'Leary, and Nadya Peek. 2020. Jubilee: An Extensible Machine for Multi-tool Fabrication. In Proceedings of the 2020 CHI Conference on Human Factors in Computing Systems. 1--13.
[56]
WallPen. 2017. Retrieved August 25, 2020 from https://wallpen.com
[57]
Guanyun Wang, Tingyu Cheng, Youngwook Do, Humphrey Yang, Ye Tao, Jianzhe Gu, Byoungkwon An, and Lining Yao. 2018. Printed paper actuator: A low-cost reversible actuation and sensing method for shape changing interfaces. In Proceedings of the 2018 CHI Conference on Human Factors in Computing Systems. 1--12.
[58]
Guanyun Wang, Lining Yao, Wen Wang, Jifei Ou, Chin-Yi Cheng, and Hiroshi Ishii. 2016. xprint: A modularized liquid printer for smart materials deposition. In Proceedings of the 2016 CHI Conference on Human Factors in Computing Systems. 5743--5752.
[59]
Yuntao Wang, Jianyu Zhou, Hanchuan Li, Tengxiang Zhang, Minxuan Gao, Zhuolin Cheng, Chun Yu, Shwetak Patel, and Yuanchun Shi. 2019. Flextouch: Enabling large-scale interaction sensing beyond touchscreens using flexible and conductive materials. Proceedings of the ACM on Interactive, Mobile, Wearable and Ubiquitous Technologies 3, 3 (2019), 1--20.
[60]
Martin Weigel, Tong Lu, Gilles Bailly, Antti Oulasvirta, Carmel Majidi, and Jürgen Steimle. 2015. Iskin: flexible, stretchable and visually customizable on-body touch sensors for mobile computing. In Proceedings of the 33rd Annual ACM Conference on Human Factors in Computing Systems. 2991--3000.
[61]
Martin Weigel, Aditya Shekhar Nittala, Alex Olwal, and Jürgen Steimle. 2017. Skinmarks: Enabling interactions on body landmarks using conformal skin electronics. In Proceedings of the 2017 CHI Conference on Human Factors in Computing Systems. 3095--3105.
[62]
Michael Wessely, Ticha Sethapakdi, Carlos Castillo, Jackson C Snowden, Ollie Hanton, Isabel PS Qamar, Mike Fraser, Anne Roudaut, and Stefanie Mueller. 2020. Sprayable User Interfaces: Prototyping Large-Scale Interactive Surfaces with Sensors and Displays. In Proceedings of the 2020 CHI Conference on Human Factors in Computing Systems. 1--12.
[63]
Michael Wessely, Theophanis Tsandilas, and Wendy E Mackay. 2016. Stretchis: Fabricating highly stretchable user interfaces. In Proceedings of the 29th Annual Symposium on User Interface Software and Technology. 697--704.
[64]
Anusha Withana, Daniel Groeger, and Jürgen Steimle. 2018. Tacttoo: A thin and feel-through tattoo for on-skin tactile output. In Proceedings of the 31st Annual ACM Symposium on User Interface Software and Technology. 365--378.
[65]
Junichi Yamaoka, Mustafa Doga Dogan, Katarina Bulovic, Kazuya Saito, Yoshihiro Kawahara, Yasuaki Kakehi, and Stefanie Mueller. 2019. FoldTronics: Creating 3D Objects with Integrated Electronics Using Foldable Honeycomb Structures. In Proceedings of the 2019 CHI Conference on Human Factors in Computing Systems. 1--14.
[66]
Yang Zhang and Chris Harrison. 2018. Pulp nonfiction: Low-cost touch tracking for paper. In Proceedings of the 2018 CHI Conference on Human Factors in Computing Systems. 1--11.
[67]
Yang Zhang, Chouchang (Jack) Yang, Scott E. Hudson, Chris Harrison, and Alanson Sample. 2018. Wall++: Room-Scale Interactive and Context-Aware Sensing. In Proceedings of the 2018 CHI Conference on Human Factors in Computing Systems (Montreal QC, Canada) (CHI '18). Association for Computing Machinery, New York, NY, USA, 1--15. https://doi.org/10.1145/3173574.3173847
[68]
Kening Zhu and Shengdong Zhao. 2013. AutoGami: a low-cost rapid prototyping toolkit for automated movable paper craft. In Proceedings of the SIGCHI conference on human factors in computing systems. 661--670.

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  1. Duco: Autonomous Large-Scale Direct-Circuit-Writing (DCW) on Vertical Everyday Surfaces Using A Scalable Hanging Plotter

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    cover image Proceedings of the ACM on Interactive, Mobile, Wearable and Ubiquitous Technologies
    Proceedings of the ACM on Interactive, Mobile, Wearable and Ubiquitous Technologies  Volume 5, Issue 3
    Sept 2021
    1443 pages
    EISSN:2474-9567
    DOI:10.1145/3486621
    Issue’s Table of Contents
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    Published: 14 September 2021
    Published in IMWUT Volume 5, Issue 3

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    Author Tags

    1. digital fabrication
    2. large-scale circuit
    3. printed electronics
    4. smart environments
    5. ubiquitous computing

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