标题: 半导体厂自动化仓储系统之防震控制 - 客制化液流阻尼器之应用与测试
Seismic Control of Automated Stocker System for Semiconductor Industry – Application and Test of Customized Viscous Fluid Dampers
作者: 陈思雯
王彦博
Chen, Ssu-Wen
Wang, Yen-Po
土木工程系所
关键字: 高科技产业;自动化仓储系统;结构控制;消能减震;黏滞液流阻尼器;防震连杆;Hi-Tech Industries;Automated Stocker System;Structural Control;Seismic Energy Dissipation;Viscous Fluid Damper;Aseismic Link
公开日期: 2017
摘要: 206地震重创南部科学园区科技产业,造成上千亿的损失。半导体厂的震损主要源于自动化仓储系统(棚架)大量晶圆盒的震落与产品损毁,基于风险控管的策略考量,自动化仓储系统的防震能力提升无疑是当前半导体厂最为优先的计画。根据结构控制的观念,交通大学研究团队(以下称本团队)提出消能减震策略,考虑安装小型线性液流阻尼器于棚架与天花板之间,利用厂房结构(天花板)与棚架间的相对运动驱动阻尼器以控制棚架之动态反应,可大幅降低棚架之加速度与侧向位移反应,减少自动化仓储系统的震害风险。
为协助国内两家半导体厂(M厂及S厂)进行自动化仓储系统的震害防制工作,对象包括跨楼层及楼层内仓储系统等不同型式,本研究进行一系列之数值模拟分析,考量在不同设计条件–包括地震输入方向之组合与设计强度下,完成减震效益评估。S厂之部分棚架现况系于其顶部以防震连杆与天花板连结,本文亦一并评估其可行性与潜在问题。经由参数研究,找出液流阻尼器之合理配置与数量,以及对应之最佳阻尼系数与需求规格。分析结果显示,若选择适当的阻尼器性能参数,本团队提出之消能减震控制模式可以同时减缓棚架之位移与加速度反应,大幅降低晶圆盒之震落风险,无论何种型式之自动化仓储系统。另一方面,防震连杆虽能降低棚架之位移反应,却可能造成加速度的大幅放大,得不偿失,且防震连杆因受力过大,有导致固定螺栓破坏以及天花板塌陷之虞。相较之下,采用液流阻尼器的控制模式,不仅可达到期望之减震控制目标,所需控制力也不大,具实际应用之可行性。
目前本团队提出之自动化仓储系统减震控制技术已获M厂采用实施。为确保阻尼器制造商能提供符合本案所需之产品,本团队制定相关测试规范,辅导两家国内阻尼器厂商开发适用之产品,并已完成液流阻尼器之元件测试,确认其性能符合规格要求。这项技术目前亦获两家面板厂同意采用,先行之示范计画正在规划设计中。深信未来若能大量推广应用,当有助于减缓国内科技产业之震害风险。
The hi-tech industries in the Science Park at Southern Taiwan were heavily damaged and suffered from substantial financial loss estimated to be over ten billion NT dollars in 206 Earthquake. Statistics shows that the loss of the semiconductor factories attributes mainly to the automated stocker system (STK in brief) from which massive foups were shaken off with products damaged. In view of strategic concerns on risk minimization, enhancing earthquake-resisting capability of the STKs has become the highest priority among others for semiconductor industry. Based on the concept of structural control, NCTU research team proposes to mitigate the seismic response of stockers by introducing small size linear viscous fluid dampers on top of the stockers against ceiling. With the dampers activated by the relative motion between them, the stocker is controlled in a way to reduce both its acceleration response and lateral displacement, and the seismic risk of the automated stocker system can be minimized as a result.
As an effort to assist two domestic semiconductor companies (referred to as M fab and S fab) with seismic damage control of automation storage systems, including inter-story and intra-story STK of various types, this study has conducted a series of numerical simulations. Effectiveness of the seismic control strategy is assessed under various design considerations, such as combinations of the earthquake excitations from different imparting directions and of different intensities. Some of the stockers in S fab are implemented with aseismic links between the ceiling and the top of the STK. The feasibility and potential problems of using the links for earthquake protective design have also been assessed in this study. The optimum damping coefficient and desired specification of the fluid dampers corresponding to a reasonable configuration and number of dampers have been determined via parametric studies. The results indicate that, if the parameters of the viscous fluid dampers are properly determined, the proposed energy-dissipative scheme could significantly mitigate the displacement and acceleration responses of the stocker simultaneously, and therefore minimize the risk of the foups from being shaken off, regardless of the types of STKs. On the other hand, despite of that the displacement responses of the STK could be reduced by the aseismic links, the acceleration responses might be in many circumstances amplified to a large extent and therefore not worthwhile. Moreover, the forces generated in the links are excessive that the bolts could be damaged and the ceiling collapsed. On the contrary, the strategy by using the viscous fluid dampers in the proposed manner not only could achieve the expected seismic performance but also minimize the control force demand. Therefore, it is feasible for practical application.
The proposed scheme by the NCTU research team for seismic control of the automated stocker systems has been adopted by M fab. To ensure that the products provided by the damper manufacturer meet the requirements, the specification for component testing of the viscous fluid dampers has been devised. The team has managed to help two domestic damper manufacturers successfully developing the desired products. Component tests of the viscous fluid dampers have been completed and justified in accordance with the specification. Meanwhile, two companies of the display industry have also agreed to use the proposed scheme. Planning and design of preliminary demonstrative projects are currently underway. It is believed that if the scheme could be extensively adopted, the seismic risk of domestic hi-tech industries would be appreciably reduced.
URI: http://etd.lib.nctu.edu.tw/cdrfb3/record/nctu/#GT070451204
http://hdl.handle.net/11536/141878
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