Study of Mechanical Properties of Hemp Fiber Composites for Electric Bicycle Frames

2020 ◽  
Vol 1000 ◽  
pp. 167-172 ◽  
Author(s):  
I Ketut Adi Atmika ◽  
I Dewa Gede Ary Subagia ◽  
I Wayan Surata ◽  
I Nyoman Sutantra ◽  
I Gusti Agung Kade Suriadi

Electric bicycles are one of the two-wheeled transportation that has been widely used. The structure of the bicycle is generally composed of several components, one of which is the frame. The frame serves to support the load on the bicycle. At present, many changes in design, geometry and bicycle-forming materials have been carried out. In general, bicycle frames are made of metal and alloy because they have good strength to support the load of the driver. Lately, the use of composites has begun to develop as a bicycle frame material, because the frame of the bicycle has become lighter but still has the strength to support the load. This paper presents a study of the structure of electric bicycles using composite material based on epoxy matrices with rami fiber reinforcement. This study used an experimental and simulation method by designing composite laminates with A(90o/90o/90o), B(90o/45o/90o), and C(45o/45o/45o) fiber webbing layout and then carried out free compressive strength (UCS), optical microscopy and simulation using ANSYS 19.0 software. The results obtained are composite laminate design with a woven fiber layout (45o/45o/45o) having the highest strength value with a compressive stress value σ=58.64 MPa in the axial compressive plane, and σ=1.539 MPa in the tangential compressive plane. Likewise, the simulation results also obtained the highest strength in the webbing design (45o/45o/45o) which is equal σs=58.72 MPa in the axial compressive plane and σs=1.531 MPa in the tangential compressive plane.

Author(s):  
Carlos Angulo ◽  
Siddhartha Brahma ◽  
Alejandra Espinosa‐Dzib ◽  
Robert Peters ◽  
Katherine M. E. Stewart ◽  
...  

Author(s):  
A. Melaibari ◽  
A. Wagih ◽  
Muhammad Basha ◽  
A.M. Kabeel ◽  
G. Lubineau ◽  
...  

1994 ◽  
Vol 7 (4) ◽  
pp. 207-218 ◽  
Author(s):  
N. Kogiso ◽  
L. T. Watson ◽  
Z. Gürdal ◽  
R. T. Haftka

2014 ◽  
Vol 989-994 ◽  
pp. 3335-3339
Author(s):  
Zhao Xu Yu ◽  
Hong Bin Yu

This paper analyzes the electric inertia simulation method deeply. By analyzing the brake torgue in the braking process, this paper makes a conclusion about the relationship between the moter’s torgue in the braking process and the simulation of inertia. The test uses the method of combining the mechanical simulation and electrical simulation. In this method, it invites the test platform of electric bicycle brake force, and realizes the inertia simulation. On the test platform, the results showed: by using the electric inertia simulation, the performance of the system is obviously better than the one on the test platform which using flywheel groups. This method improves the degree of automation on the test platform.


2008 ◽  
Vol 22 (09n11) ◽  
pp. 1461-1468
Author(s):  
HYUNGWON KIM

Predicting microcracking properties of the composite laminates in nonuniform stress conditions was the subject in this paper. The uniform stress field meant the stresses were independent of the width direction. The material was the 954-2A/IM7 laminates containing a central hole. Microcracks initiated at the edge of the hole and propagated into the laminate. Because the tensile stress concentration decreased with distance, the microcracks were arrested before the edge of the laminate. Because carbon fiber composites were opaque, a x-ray method was used to detect the length of the propagating microcracks. The microcracking at the near edge of the hole could be reasonably predicted by considering the local laminate stresses and the microcracking toughness measured in unnotched laminates. However, the data away from the hole did not agree with the predictions. The local microcrack density was always much higher than that predicted by the local laminate stress.


2009 ◽  
Vol 30 (10) ◽  
pp. 1401-1407 ◽  
Author(s):  
Eddy Twite-Kabamba ◽  
Ahmed Mechraoui ◽  
Denis Rodrigue

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