A concept for ubiquitous robotics in industrial environment

被引:0
|
作者
Sallinen, Mikko [1 ]
Heilala, Juhani [2 ]
Kivikunnas, Sauli [1 ]
机构
[1] VTT, POB 1100, Oulu 90571, Finland
[2] VTT, Espoo 02044, Finland
关键词
human-robot co-operation; short series production; wireless communication;
D O I
10.1117/12.735403
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
In this paper a concept for industrial ubiquitous robotics is presented. The concept combines two different approaches to manage agile, adaptable production: firstly the human operator is strongly in the production loop and secondly, the robot workcell will be more autonomous and smarter to manage production. This kind of autonomous robot cell can be called production island. Communication to the human operator working in this kind of smart industrial environment can be divided into two levels: body area communication and operator-infrastructure communication including devices, machines and infra. Body area communication can be supportive in two directions: data is recorded by means of measuring physical actions, such as hand movements, body gestures or supportive when it will provide information to user such as guides or manuals for operation. Body area communication can be carried out using short range communication technologies such as NFC (Near Field communication) which is RFID type of communication. In the operator-infrastructure communication, WLAN or Bluetooth -communication can be used. Beyond the current Human Machine interaction HMI systems, the presented system concept is designed to fulfill the requirements for hybrid, knowledge intensive manufacturing in the future, where humans and robots operate in close co-operation.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Concept for an industrial ubiquitous assembly robot
    Heilala, Juhani
    Sallinen, Mikko
    MICRO-ASSEMBLY TECHNOLOGIES AND APPLICATIONS, 2008, 260 : 405 - +
  • [2] MZ: An Ubiquitous Communication Protocol in Industrial Environment
    Zheng, Yuhuang
    2009 INTERNATIONAL CONFERENCE ON E-BUSINESS AND INFORMATION SYSTEM SECURITY, VOLS 1 AND 2, 2009, : 1122 - 1125
  • [3] MPCS: A Wireless Communication Protocol for Ubiquitous Industrial Environment
    Zheng, Yuhuang
    ADVANCED RESEARCH ON COMPUTER EDUCATION, SIMULATION AND MODELING, PT I, 2011, 175 : 405 - 410
  • [4] VIRTUAL EXPERIMENTAL INVESTIGATION FOR INDUSTRIAL ROBOTICS IN GAZEBO ENVIRONMENT
    Aksu, Murat
    Michaloski, John L.
    Proctor, Frederick M.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2018, VOL 2, 2019,
  • [5] Toward ubiquitous intelligent robotics
    Kogure, K
    Hagita, N
    Sumi, Y
    Kuwahara, N
    Ishiguro, H
    IROS 2003: PROCEEDINGS OF THE 2003 IEEE/RSJ INTERNATIONAL CONFERENCE ON INTELLIGENT ROBOTS AND SYSTEMS, VOLS 1-4, 2003, : 1826 - 1831
  • [6] A Ubiquitous Learning Approach on Robotics
    Mota, Fernanda P.
    Kalbermatter, Rebeca B.
    Oliveira, Lizandro de S.
    Lima, Jose
    2023 LATIN AMERICAN ROBOTICS SYMPOSIUM, LARS, 2023 BRAZILIAN SYMPOSIUM ON ROBOTICS, SBR, AND 2023 WORKSHOP ON ROBOTICS IN EDUCATION, WRE, 2023, : 615 - 619
  • [7] Testbeds for ubiquitous robotics: A survey
    Jimenez-Gonzalez, Adrian
    Ramiro Martinez-de Dios, Jose
    Ollero, Anibal
    ROBOTICS AND AUTONOMOUS SYSTEMS, 2013, 61 (12) : 1487 - 1501
  • [8] Ubiquitous Control of a CNC Machine: Proof of Concept for Industrial IoT Applications
    Aebersold, Stefan A.
    Akinsolu, Mobayode O.
    Monir, Shafiul
    Jones, Martyn L.
    INFORMATION, 2021, 12 (12)
  • [9] Virtual Environment for Teaching and Learning Robotics Applied to Industrial Processes
    Andaluz, Victor H.
    Perez, Jose A.
    Carvajal, Christian P.
    Ortiz, Jessica S.
    AUGMENTED REALITY, VIRTUAL REALITY, AND COMPUTER GRAPHICS (AVR 2019), PT II, 2019, 11614 : 442 - 455
  • [10] Estimation of the absolute camera pose for environment recognition of industrial robotics
    Schmitt R.
    Cai Y.
    Jatzkowski P.
    Production Engineering, 2013, 7 (1) : 91 - 100