LA MECCANICA DELLE MACCHINE NELL’INNOVAZIONE DEI PRODOTTI E DEI PROCESSI

Massimo Sorli
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It is evident the magnitude of the physical phenomena that arise in the operation of a machine, resulting in a broad variety of related Mechanics of Machines topics: from the contact between bodies analysis to tribological aspects, from body geometry to kinematics, from the rigid to deformable body dynamics, from the interaction between mechanical bodies to manmachine interaction, from the kinematic and dynamic behavior of a mechanical system to its interface with the actuators, sensing and control, just to name some of them. It should also be considered that the interpretation of the physical phenomenon of organs of machines has to be supported by significant experimental campaigns, specifically reproduced in laboratory, or related to data from real applications in the different application domains. The evolution of Mechanics of Machines proved in the years to be able to respond to these two interacting and converging questions: on the one hand the need to identify analytical relations, possibly not based on sole mappings of data, but rather on representative analytical relations of physical quantities, and on the other hand, the need, even at the university level, to conduct appropriate laboratory test campaigns related to the real field operation of the machine. With reference to the first objective, the need to determine algorithms, typically non-linear, and the consequent simulations setups, has resulted in the passage of the Machine Mechanics from a theoretical subject, to a subject with strong computational valences creating tools for the prediction of the behavior of devices and systems, in relation to their diagnosis and health state. The second objective has required the achievement of competence also in the field of the test rigs, of sensing and measuring / data acquisition systems. The paper deals with the identification and the presentation of the different areas related to Machine Mechanics, exposing in a matrix the enabling technologies on the one hand and the application domains to which they apply in the other hand. The enabling technologies traditionally belong to the topics of kinematics, statics, dynamics (linear and nonlinear), to the interactions with the environment (force fields, interactions with fluids) and between surfaces (lubrication), control, automation and system identification, as well as to the study and identification of vibratory phenomena, vibro-acoustic and tribological ones, mechatronics, fluid-structure interactions, monitoring, diagnostics and prognostics of mechanical systems, fluid automation and robotics, fluidics and microfluidics, to the implementation of pneumatic, hydraulic, electric and non-conventional technologies, to environmentally friendly and renewable energy systems. 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At the end of the paper sectors of Machine Mechanics that in the opinion of the writer need to be investigated further are discussed. Some technological challenges, such as prognostic models applied to servo systems in primary flight controls for aircraft applications, are outlined. The state of the art in that domain highlights the contribution to the innovation of processes and products, challenge that need to go back to the inputoutput interactions at the base-mechanics layer. Without those aspects it is impossible to be able to predict the evolution of degradation in the actuation systems, and to determine the remaining life of a mechanical device.","PeriodicalId":119535,"journal":{"name":"Istituto Lombardo - Accademia di Scienze e Lettere - Incontri di Studio","volume":"33 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2018-10-05","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Istituto Lombardo - Accademia di Scienze e Lettere - Incontri di Studio","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.4081/incontri.2018.390","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
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Abstract

The present report highlights the current and future role of techniques and methodologies of the Mechanics of Machines, both in the design of devices and systems, and in the university training courses. The underlying theme of the presentation lays in the interpretation of the physical phenomenon which oversees the operation of the machines. This is the foundation allowing to define an input-output interaction between the physical quantities operating on the machine. The cause-effect relation offers the possibility to determine a set of analytical relations for the prediction of the operation of the machine and to simulate theoretical and / or numerical trends in time or frequency domain of the significant mechanical quantities. It is evident the magnitude of the physical phenomena that arise in the operation of a machine, resulting in a broad variety of related Mechanics of Machines topics: from the contact between bodies analysis to tribological aspects, from body geometry to kinematics, from the rigid to deformable body dynamics, from the interaction between mechanical bodies to manmachine interaction, from the kinematic and dynamic behavior of a mechanical system to its interface with the actuators, sensing and control, just to name some of them. It should also be considered that the interpretation of the physical phenomenon of organs of machines has to be supported by significant experimental campaigns, specifically reproduced in laboratory, or related to data from real applications in the different application domains. The evolution of Mechanics of Machines proved in the years to be able to respond to these two interacting and converging questions: on the one hand the need to identify analytical relations, possibly not based on sole mappings of data, but rather on representative analytical relations of physical quantities, and on the other hand, the need, even at the university level, to conduct appropriate laboratory test campaigns related to the real field operation of the machine. With reference to the first objective, the need to determine algorithms, typically non-linear, and the consequent simulations setups, has resulted in the passage of the Machine Mechanics from a theoretical subject, to a subject with strong computational valences creating tools for the prediction of the behavior of devices and systems, in relation to their diagnosis and health state. The second objective has required the achievement of competence also in the field of the test rigs, of sensing and measuring / data acquisition systems. The paper deals with the identification and the presentation of the different areas related to Machine Mechanics, exposing in a matrix the enabling technologies on the one hand and the application domains to which they apply in the other hand. The enabling technologies traditionally belong to the topics of kinematics, statics, dynamics (linear and nonlinear), to the interactions with the environment (force fields, interactions with fluids) and between surfaces (lubrication), control, automation and system identification, as well as to the study and identification of vibratory phenomena, vibro-acoustic and tribological ones, mechatronics, fluid-structure interactions, monitoring, diagnostics and prognostics of mechanical systems, fluid automation and robotics, fluidics and microfluidics, to the implementation of pneumatic, hydraulic, electric and non-conventional technologies, to environmentally friendly and renewable energy systems. The application domains relate to the mechanical systems, such as driving and operating machinery, mechanical devices, mechanisms, transmissions and drives, automatic and robotic, vehicles on road, rail, fixed wing and rotorcrafts, transportation and lifting systems, systems for the production of energy, the biomechanical systems. A summary of the ongoing activities in the different research groups of the Italian Universities is then presented, from which you can also highlight the methodology of the studies addressed, strongly aimed at a unifying approach through the use of fundamental methods of theoretical applied and experimental mechanics, with attention to environmental and energy sustainability, and significantly connected on one side with the state of international research, and on the other with the industrial and manufacturing reality of the country. At the end of the paper sectors of Machine Mechanics that in the opinion of the writer need to be investigated further are discussed. Some technological challenges, such as prognostic models applied to servo systems in primary flight controls for aircraft applications, are outlined. The state of the art in that domain highlights the contribution to the innovation of processes and products, challenge that need to go back to the inputoutput interactions at the base-mechanics layer. Without those aspects it is impossible to be able to predict the evolution of degradation in the actuation systems, and to determine the remaining life of a mechanical device.
机械工程在产品和工艺创新中的应用
本报告强调了机械力学的技术和方法在装置和系统的设计以及在大学培训课程方面目前和将来的作用。这次演讲的基本主题在于对监督机器运行的物理现象的解释。这是允许定义在机器上运行的物理量之间的输入输出交互作用的基础。因果关系提供了确定一组分析关系的可能性,用于预测机器的运行,并模拟重要力学量的时间或频域的理论和/或数值趋势。很明显,在机器操作中出现的物理现象的重要性,导致了各种各样的相关机器力学主题:从物体之间的接触分析到摩擦学方面,从物体几何到运动学,从刚体到可变形体动力学,从机械物体之间的相互作用到人机相互作用,从机械系统的运动学和动力学行为到它与执行器的接口,传感和控制,只是其中的一些。还应该考虑到,对机器器官物理现象的解释必须得到重要实验活动的支持,特别是在实验室中重现,或者与不同应用领域的实际应用数据相关。多年来,机械力学的发展证明能够回答这两个相互作用和相互融合的问题:一方面需要识别分析关系,可能不是基于数据的唯一映射,而是基于物理量的代表性分析关系;另一方面,即使在大学水平上,也需要进行与机器实际现场操作相关的适当实验室测试活动。参考第一个目标,需要确定算法,通常是非线性的,以及随之而来的模拟设置,导致机器力学从一个理论学科过渡到一个具有强大计算价值的学科,为设备和系统的行为预测创造工具,与他们的诊断和健康状态有关。第二个目标要求在试验台、传感和测量/数据采集系统领域也取得能力。本文讨论了与机械力学相关的不同领域的识别和表示,一方面在矩阵中展示了使能技术,另一方面展示了它们应用的应用领域。使能技术传统上属于运动学,静力学,动力学(线性和非线性),与环境的相互作用(力场,与流体的相互作用)和表面之间的相互作用(润滑),控制,自动化和系统识别,以及振动现象的研究和识别,振动声学和摩擦学,机电一体化,流固相互作用,机械系统的监测,诊断和预测。流体自动化和机器人,流体和微流体,到气动,液压,电动和非常规技术的实施,到环保和可再生能源系统。应用领域涉及机械系统,如驱动和操作机械,机械装置,机构,传动和驱动器,自动和机器人,道路上的车辆,铁路,固定翼和旋翼飞机,运输和起重系统,能源生产系统,生物力学系统。然后介绍了意大利大学不同研究小组正在进行的活动的总结,从中您还可以突出研究的方法,强烈旨在通过使用理论应用和实验力学的基本方法统一方法,关注环境和能源可持续性,并在一方面与国际研究状况密切相关。另一方面是这个国家的工业和制造业现状。论文的最后对笔者认为还需进一步研究的机械力学领域进行了讨论。概述了一些技术挑战,例如应用于飞机主飞行控制伺服系统的预测模型。该领域的最新技术突出了对流程和产品创新的贡献,挑战需要回到基础机制层的输入输出交互。 没有这些方面,就不可能预测驱动系统退化的演变,也不可能确定机械装置的剩余寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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