Dynamic analysis of new type elastic screen surface with multi degree of freedom and experimental validation

A feasible method was proposed to improve the vibration intensity of screen surface via application of a new type elastic screen surface with multi degree of freedom (NTESSMDF). In the NTESSMDF, the primary robs were coupled to the main screen structure with ends embedded into the elastomers, and th...

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Published inJournal of Central South University Vol. 22; no. 4; pp. 1334 - 1341
Main Authors Song, Bao-cheng, Liu, Chu-sheng, Peng, Li-ping, Li, Jun
Format Journal Article
LanguageEnglish
Published Heidelberg Central South University 01.04.2015
Subjects
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ISSN2095-2899
2227-5223
DOI10.1007/s11771-015-2650-3

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Abstract A feasible method was proposed to improve the vibration intensity of screen surface via application of a new type elastic screen surface with multi degree of freedom (NTESSMDF). In the NTESSMDF, the primary robs were coupled to the main screen structure with ends embedded into the elastomers, and the secondary robs were attached to adjacent two primary robs with elastic bands. The dynamic model of vibrating screen with NTESSMDF was established based on Lagrange’s equation and the equivalent stiffnesses of the elastomer and elastic band were calculated. According to numerical simulation using the 4th order Runge-Kutta method, the vibration intensity of screen surface can be enhanced substantially with an averaged acceleration amplitude increasing ratio of 72.36%. The primary robs and secondary robs vibrate inversely in steady state, which would result in the friability of materials and avoid stoppage. The experimental results validate the dynamic characteristics with acceleration amplitude rising by 62.93% on average, which demonstrates the feasibility of NTESSMDF.
AbstractList A feasible method was proposed to improve the vibration intensity of screen surface via application of a new type elastic screen surface with multi degree of freedom (NTESSMDF). In the NTESSMDF, the primary robs were coupled to the main screen structure with ends embedded into the elastomers, and the secondary robs were attached to adjacent two primary robs with elastic bands. The dynamic model of vibrating screen with NTESSMDF was established based on Lagrange’s equation and the equivalent stiffnesses of the elastomer and elastic band were calculated. According to numerical simulation using the 4th order Runge-Kutta method, the vibration intensity of screen surface can be enhanced substantially with an averaged acceleration amplitude increasing ratio of 72.36%. The primary robs and secondary robs vibrate inversely in steady state, which would result in the friability of materials and avoid stoppage. The experimental results validate the dynamic characteristics with acceleration amplitude rising by 62.93% on average, which demonstrates the feasibility of NTESSMDF.
Author Li, Jun
Song, Bao-cheng
Liu, Chu-sheng
Peng, Li-ping
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Cites_doi 10.1002/9780470522165
10.1007/s11771-012-1216-x
10.1002/9780470753767
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Keywords vibrating screen
mesh stoppage prevention
dynamic analysis
elastic screen surface
multi degree of freedom
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Snippet A feasible method was proposed to improve the vibration intensity of screen surface via application of a new type elastic screen surface with multi degree of...
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Metallic Materials
Title Dynamic analysis of new type elastic screen surface with multi degree of freedom and experimental validation
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