Development of IoT applications in civil engineering classrooms using mobile devices

被引:16
作者
Chacon, Rolando [1 ]
Posada, Hector [1 ]
Toledo, Alvaro [1 ]
Gouveia, Maria [1 ]
机构
[1] Escola Camins, Sch Civil Engn, Barcelona, Spain
关键词
app development; Appinventor; Arduino; automation in construction; Internet of Things; EDUCATION; SCRATCH; SCHOOL;
D O I
10.1002/cae.21985
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
This paper presents academic efforts aimed at integrating methodologies associated with the use of mobile devices, the potential of the Internet of Things (IoT), and the role of experimental education in civil engineering. This integration is developed by encompassing the use of sensors, microcontrollers, civil engineering problems, app development, and fabrication. The proposal provides an explorative way of approaching the numerous possibilities that arise in civil engineering when it comes to IoT, automation, monitoring, and control of civil engineering processes. The used tools represent accessible and affordable ways for application in classrooms and in educational laboratories for beginners. The initial explorative approach implies the fusion of three realms: (i) the phenomenology and mathematics of varied civil engineering problems; (ii) the systematic use of digital fabrication technologies and electronic prototyping platforms; and (iii) the creative and visual way of developing codes provided by block-based development platforms. This integration of perspectives is an attempt of approaching civil engineering mathematics to technology and arts with a rigorous scientific approach. A set of different examples is presented with the corresponding findings in educational terms. These examples are developed in a constructive, scaffolding-based way and may contribute as a potential alternative in the development of open-source teaching labs in civil engineering schools.
引用
收藏
页码:1769 / 1781
页数:13
相关论文
共 35 条
[1]  
[Anonymous], 2014, INFORM CONSTRUCCION
[2]   Big Data and virtualization for manufacturing cyber-physical systems: A survey of the current status and future outlook [J].
Babiceanu, Radu F. ;
Seker, Remzi .
COMPUTERS IN INDUSTRY, 2016, 81 :128-137
[3]   Virtual Laboratories in Engineering Education: The Simulation Lab and Remote Lab [J].
Balamuralithara, B. ;
Woods, P. C. .
COMPUTER APPLICATIONS IN ENGINEERING EDUCATION, 2009, 17 (01) :108-118
[4]   The promise and the promises of Making in science education [J].
Bevan, Bronwyn .
STUDIES IN SCIENCE EDUCATION, 2017, 53 (01) :75-103
[5]   The IoT for smart sustainable cities of the future: An analytical framework for sensor-based big data applications for environmental sustainability [J].
Bibri, Simon Elias .
SUSTAINABLE CITIES AND SOCIETY, 2018, 38 :230-253
[6]  
Chacon R., 2016, J PROF ISS ENG ED PR, V143, P1
[7]   From physical to digital in structural engineering classrooms using digital fabrication [J].
Chacon, Rolando ;
Codony, David ;
Toledo, Alvaro .
COMPUTER APPLICATIONS IN ENGINEERING EDUCATION, 2017, 25 (06) :927-937
[8]   Enhancing students' motivation in the undergraduate teaching of hydraulic engineering: Role of field works [J].
Chanson, H .
JOURNAL OF PROFESSIONAL ISSUES IN ENGINEERING EDUCATION AND PRACTICE, 2004, 130 (04) :259-268
[9]   The use of mobile learning in PK-12 education: A systematic review [J].
Crompton, Helen ;
Burke, Diane ;
Gregory, Kristen H. .
COMPUTERS & EDUCATION, 2017, 110 :51-63
[10]   Opportunities for enhanced lean construction management using Internet of Things standards [J].
Dave, Bhargav ;
Kubler, Sylvain ;
Framling, Kary ;
Koskela, Lauri .
AUTOMATION IN CONSTRUCTION, 2016, 61 :86-97