Design and Construction of High-speed Dynamic Balance for High Load

There are high longitudinal loads and mismatched longitudinal/lateral aerodynamic characteristics of unconventional aerodynamic configurations, which present a new challenge to high-speed dynamic balance technology. The wind tunnel dimension limitation makes a new command in miniaturization design o...

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Main Authors: Sun Junli, Chen Nong, Liu Jin
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201711401001
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spelling doaj-a3799e0aa2a94f0eb69eae8b5babac852021-02-02T04:10:25ZengEDP SciencesMATEC Web of Conferences2261-236X2017-01-011140100110.1051/matecconf/201711401001matecconf_2mae2017_01001Design and Construction of High-speed Dynamic Balance for High LoadSun JunliChen NongLiu JinThere are high longitudinal loads and mismatched longitudinal/lateral aerodynamic characteristics of unconventional aerodynamic configurations, which present a new challenge to high-speed dynamic balance technology. The wind tunnel dimension limitation makes a new command in miniaturization design of dynamic balance. The article describes a solution method which is based on the electromechanical motion modulation testing principle and mechanical structure of saddle-type dynamic balance. There is an II-type structure assembled by oil film bearing and elastic pivot beam on the outer tube to achieve motion modulation and measurement. The double variable cross-section vertical beams are placed in front of inner shaft to measure the five components of high load. The double saddle-type structure is applied to connect the intermediate part of inner shaft with outer tube together. A Scotch yoke mechanism is composed of the transmission eccentric cam of sting and a mullion structure which is designed at the rear part of inner shaft. According to the redesign and alteration, the effective lateral load signal output could be obtained from the miniaturized dynamic balance, in which the maximum longitudinal load bearing capacity is extended more than twice. A great agreement is also obtained between the measurement accuracy and design requirements.https://doi.org/10.1051/matecconf/201711401001
collection DOAJ
language English
format Article
sources DOAJ
author Sun Junli
Chen Nong
Liu Jin
spellingShingle Sun Junli
Chen Nong
Liu Jin
Design and Construction of High-speed Dynamic Balance for High Load
MATEC Web of Conferences
author_facet Sun Junli
Chen Nong
Liu Jin
author_sort Sun Junli
title Design and Construction of High-speed Dynamic Balance for High Load
title_short Design and Construction of High-speed Dynamic Balance for High Load
title_full Design and Construction of High-speed Dynamic Balance for High Load
title_fullStr Design and Construction of High-speed Dynamic Balance for High Load
title_full_unstemmed Design and Construction of High-speed Dynamic Balance for High Load
title_sort design and construction of high-speed dynamic balance for high load
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2017-01-01
description There are high longitudinal loads and mismatched longitudinal/lateral aerodynamic characteristics of unconventional aerodynamic configurations, which present a new challenge to high-speed dynamic balance technology. The wind tunnel dimension limitation makes a new command in miniaturization design of dynamic balance. The article describes a solution method which is based on the electromechanical motion modulation testing principle and mechanical structure of saddle-type dynamic balance. There is an II-type structure assembled by oil film bearing and elastic pivot beam on the outer tube to achieve motion modulation and measurement. The double variable cross-section vertical beams are placed in front of inner shaft to measure the five components of high load. The double saddle-type structure is applied to connect the intermediate part of inner shaft with outer tube together. A Scotch yoke mechanism is composed of the transmission eccentric cam of sting and a mullion structure which is designed at the rear part of inner shaft. According to the redesign and alteration, the effective lateral load signal output could be obtained from the miniaturized dynamic balance, in which the maximum longitudinal load bearing capacity is extended more than twice. A great agreement is also obtained between the measurement accuracy and design requirements.
url https://doi.org/10.1051/matecconf/201711401001
work_keys_str_mv AT sunjunli designandconstructionofhighspeeddynamicbalanceforhighload
AT chennong designandconstructionofhighspeeddynamicbalanceforhighload
AT liujin designandconstructionofhighspeeddynamicbalanceforhighload
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