This paper presents a development in design, mathematical modeling, and experimental study of a vibro-impact moling device, which was invented by the author before. A vibratory unit deploying electromechanical interactions of a conductor with oscillating magnetic field has been realized and developed. The combination of resonance in an RLC circuit including a solenoid is found to create a relative oscillatory motion between the metal bar and the solenoid. This results in impacts of the solenoid on an obstacle block, which causes the forward motion of the system. Compared to the former model which employs impact from the metal bar, the improved rig can offer a higher progression rate of six times when using the same power supply. The novel geometrical arrangement allows for future optimization in terms of system parametric selection and adaptive control. This implies a very promising deployment of the mechanism in ground moling machines as well as other self-propelled mobile systems. In this paper, insight to the design development based on physical and mathematical models of the rig is presented. The coupled electromechanical equations of motion then are solved numerically, and a comparison between experimental results and numerical predictions is presented.
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November 2017
Research-Article
A New Design of Horizontal Electro-Vibro-Impact Devices
Van-Du Nguyen,
Van-Du Nguyen
Mechanical Engineering Faculty,
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: vandu@tnut.edu.vn
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: vandu@tnut.edu.vn
Search for other works by this author on:
Huu-Cong Nguyen,
Huu-Cong Nguyen
Electronic Engineering Faculty,
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: conghn@tnu.edu.vn
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: conghn@tnu.edu.vn
Search for other works by this author on:
Nhu-Khoa Ngo,
Nhu-Khoa Ngo
Mechanical Engineering Faculty,
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: khoann@tnut.edu.vn
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: khoann@tnut.edu.vn
Search for other works by this author on:
Ngoc-Tuan La
Ngoc-Tuan La
Manufacturing Faculty,
Vinh University of Technology Education,
No. 117,
Nguyen Viet Xuan Street,
Vinh City 460000, Nghe An, Vietnam
e-mail: langoctuan.ktv@gmail.com
Vinh University of Technology Education,
No. 117,
Nguyen Viet Xuan Street,
Vinh City 460000, Nghe An, Vietnam
e-mail: langoctuan.ktv@gmail.com
Search for other works by this author on:
Van-Du Nguyen
Mechanical Engineering Faculty,
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: vandu@tnut.edu.vn
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: vandu@tnut.edu.vn
Huu-Cong Nguyen
Electronic Engineering Faculty,
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: conghn@tnu.edu.vn
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: conghn@tnu.edu.vn
Nhu-Khoa Ngo
Mechanical Engineering Faculty,
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: khoann@tnut.edu.vn
Thai Nguyen University of Technology,
3/2 Street,
Thai Nguyen City 250000, Vietnam
e-mail: khoann@tnut.edu.vn
Ngoc-Tuan La
Manufacturing Faculty,
Vinh University of Technology Education,
No. 117,
Nguyen Viet Xuan Street,
Vinh City 460000, Nghe An, Vietnam
e-mail: langoctuan.ktv@gmail.com
Vinh University of Technology Education,
No. 117,
Nguyen Viet Xuan Street,
Vinh City 460000, Nghe An, Vietnam
e-mail: langoctuan.ktv@gmail.com
1Corresponding author.
Contributed by the Design Engineering Division of ASME for publication in the JOURNAL OF COMPUTATIONAL AND NONLINEAR DYNAMICS. Manuscript received August 15, 2016; final manuscript received January 28, 2017; published online September 7, 2017. Assoc. Editor: Przemyslaw Perlikowski.
J. Comput. Nonlinear Dynam. Nov 2017, 12(6): 061002 (11 pages)
Published Online: September 7, 2017
Article history
Received:
August 15, 2016
Revised:
January 28, 2017
Citation
Nguyen, V., Nguyen, H., Ngo, N., and La, N. (September 7, 2017). "A New Design of Horizontal Electro-Vibro-Impact Devices." ASME. J. Comput. Nonlinear Dynam. November 2017; 12(6): 061002. https://doi.org/10.1115/1.4035933
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