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建筑与工程 5 分钟阅读 1091 字

摩天大楼和地震:工程奇迹

Skyscrapers use advanced engineering to withstand earthquakes. Learn how tall buildings resist seismic forces with dampers and flexible design.

The Unique Challenges of Tall Buildings

Skyscrapers represent some of the most sophisticated engineering achievements in the built environment, and their seismic design pushes structural engineering to its limits. The challenges of earthquake-resistant skyscraper design differ fundamentally from low- and mid-rise design: natural periods of vibration extending to 5-10 seconds intersect with long-period ground motion that travels far from large earthquake sources; gravity loads at high axial forces combine with large overturning moments from lateral forces; and the absolute scale of forces, displacements, and inertial masses demands analysis methods and construction precision far beyond standard practice.

The relationship between building height and seismic behavior is governed by 结构共振当地震波频率与建筑物固有频率相匹配时发生的建筑物运动放大现象。低层建筑易与高频波产生共振,高层建筑则易与低频波产生共振。 physics. A 50-story building might have fundamental periods of 5-7 seconds in two directions and 1-3 seconds in torsion. Ground motion from a distant large earthquake — a Cascadia Subduction Zone event felt in Seattle, a Mexico subduction earthquake felt in Mexico City — can have significant energy at these long periods, creating resonance conditions that impose enormous demands on tall structures far from the fault source.

High-Rise Structural Systems

Modern skyscrapers use structural systems optimized for the simultaneous demands of gravity loads, wind, and seismic forces. Outrigger frame systems combine a stiff concrete core with perimeter mega-columns connected by outrigger trusses or walls at mechanical floors. The outriggers mobilize the perimeter columns to resist core overturning, dramatically reducing foundation overturning moments and core wall demands compared to a pure core wall system.

Bundled tube systems — used in the Sears (Willis) Tower in Chicago — create multiple interconnected tubes that work together, reducing shear lag effects that reduce efficiency in single-tube systems. Mega-frame systems use a small number of very stiff and strong super-columns and mega-beams to create an overarching frame that carries both gravity and lateral loads efficiently. Each system has optimal height ranges, with complexity increasing as buildings grow taller and as seismic demands increase.

The integration of 隔震一种通过在基础处设置柔性支座,使建筑物与地面运动相分离的地震工程技术,可将传递至结构的作用力降低75%至90%。 with tall buildings is technically challenging but increasingly explored. Conventional horizontal isolation systems lengthen the fundamental period, but for already-flexible tall buildings, the starting period is already long, providing less isolation benefit. Three-dimensional isolation systems that also control vertical motion are being developed for tall building applications in extreme near-fault seismic environments.

The Taipei 101 Case Study

Taipei 101, completed in 2004 and standing 508 meters tall, illustrates the engineering ingenuity applied to tall building seismic design. Located in Taiwan — one of the most seismically active places in the world — and subject to typhoon winds exceeding 60 m/s, the building required both wind and seismic performance at extreme levels.

The structural system uses eight mega-columns arranged in groups at the building's corners, connected by outrigger trusses at mechanical floors. The columns support a series of exterior "virendeel frames" that provide substantial lateral resistance while creating the building's distinctive stepped architectural form. The entire system provides stiffness and strength to limit drift under both wind and seismic loading.

The building's most famous seismic feature is its 660-ton 消能减震装置安装于建筑物中、用于吸收和耗散地震能量以减小结构运动的装置,包括黏滞阻尼器、摩擦阻尼器和调谐质量阻尼器等类型。 — a tuned mass damper consisting of a steel sphere 5.5 meters in diameter, suspended from cables near the 92nd floor. The sphere oscillates as a pendulum with a period tuned to match the building's fundamental wind-induced vibration period, exerting forces on the structure that counteract the primary oscillation. For wind, the TMD reduces acceleration by approximately 40%, dramatically improving occupant comfort. For earthquakes, the benefits are smaller but measurable.

Active and Semi-Active Control Systems

The most advanced approach to tall building seismic protection is active structural control — systems that use sensors, computers, and actuators to apply counterforces to the building in real time during an earthquake. Active tuned mass dampers (ATMDs) add actuators to conventional TMDs, allowing the control system to optimize energy dissipation for each ground motion, not just the design-basis motion. Semi-active systems use variable-damping devices controlled by real-time feedback to achieve near-active performance with passive device reliability.

Active control systems have been installed in dozens of tall buildings in Japan, where the combination of typhoon winds and earthquake hazard creates compelling design demands. The Kajima headquarters building in Tokyo uses an active mass driver system that dramatically reduces both wind and seismic response. The challenge of active control in earthquakes — where the system must respond in milliseconds, operate when the building's normal power supply may be disrupted, and perform correctly for a loading it has never previously experienced — drives conservative design approaches and extensive backup provisions.

Performance in Major Earthquakes

Major earthquakes provide the ultimate test of tall building seismic design. The 2011 Tohoku earthquake — magnitude 9.0 — was felt strongly in Tokyo, some 370 km from the epicenter. Tall buildings in Tokyo swayed visibly for 3-6 minutes, causing nonstructural damage including toppled furniture, broken water lines, and elevator disruption — but no structural failures. The long-duration, long-period ground motion from the subduction zone activated the long-period modes of Tokyo's high-rise buildings in ways not fully anticipated by design.

Post-Tohoku analysis revealed that several Tokyo high-rises experienced response somewhat above design expectations due to very long-period (4-10 second period) ground motion that was stronger than assumed in the seismic hazard model used for design. This finding drove updates to Japanese seismic hazard models and design requirements for super-tall buildings, demonstrating that even the most sophisticated 抗震设计旨在使结构物能够承受地震作用力的设计实践。现代抗震设计致力于防止倒塌、保护生命,同时在大地震中允许出现一定程度的结构损伤。 practices continue to learn from earthquakes.

The 1994 Northridge earthquake provided limited data on high-rise performance in a moderate near-fault earthquake. Most high-rises in the Los Angeles Basin performed without visible structural damage, though nonstructural damage was significant. The few pre-1970s high-rises with non-ductile concrete frames experienced observable cracking but not collapse — partly because the relatively stiff old high-rises had shorter periods less susceptible to Northridge's high-frequency near-fault ground motion.

Design Process for Tall Buildings

The seismic design of buildings taller than 160 feet (about 12 stories) typically requires 性能化抗震设计一种针对不同地震强度设定具体性能目标(正常使用、生命安全、防止倒塌)的先进设计方法,区别于笼统的规范性规定。 beyond standard code prescriptive methods. California's Tall Buildings Initiative (TBI) guidelines and the Los Angeles Tall Buildings Structural Design Council (LATBSDC) provide frameworks for advanced nonlinear dynamic analysis of tall buildings. The design team typically includes structural engineers, geotechnical engineers, wind tunnel engineers, and independent peer reviewers who evaluate the analysis and conclusions.

Nonlinear time-history analysis using multiple ground motion records scaled to the appropriate hazard level allows engineers to explicitly model the yielding behavior, energy dissipation, and deformation demands in the structural system for extreme earthquake loading. This level of analysis, impossible without modern computational tools, enables genuinely optimized tall building design that cannot be achieved through prescriptive code methods.

常见问题解答

地震准备的关键步骤:将重型家具和热水器固定在墙上;准备含有水、食物、手电筒、收音机和急救用品的应急包,至少够用3天以上;确定每个房间的安全位置(坚固桌子下方、远离窗户);练习“蹲下、掩护、抓紧”演练;了解如何关闭燃气和水阀。

如果在室内:蹲下、掩护、抓紧——双膝跪地,躲在坚固的桌子下面,紧紧抓住直到震动停止。不要跑到室外或站在门口。如果在室外:移到远离建筑物、电线和树木的开阔地带。如果在开车:靠边停车,留在车内。

地震预警(EEW)系统检测最先到达、破坏性较小的P波,并在更强的S波到达之前发送警报。ShakeAlert(美国)、J-Alert(日本)和SASMEX(墨西哥)等系统可以提供数秒到数十秒的预警——足够人们躲避、停止列车和关闭工业流程。

地震保险承保地震对建筑物和财物造成的损害,而标准的房屋保险通常不包含此项。是否需要取决于所在地区的地震风险、建筑结构类型以及承受地震损失的经济能力。在加利福尼亚和日本等高风险地区,强烈建议购买地震保险。

抗震建筑采用多种策略:吸收地震能量的柔性结构体系、将建筑与地面运动分离的基础隔震、钢筋混凝土和钢框架结构、抗侧力的剪力墙以及阻尼装置。现代建筑规范(IBC、欧洲规范8)根据当地地震危险性规定设计要求。

液化是指在地震震动过程中,饱和的松散土壤失去强度并表现得像液体一样的现象。这可能导致建筑物下沉、倾斜或倒塌,地下管道和储罐等结构物浮出地面。靠近水体、地下水位较高的砂质土壤最易发生液化。