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The endurance time (ET) method is a dynamic structural analysis procedure for seismic assessment of structures. In this procedure, an intensifying dynamic excitation is used as the loading function. Endurance time method is a time-history based dynamic analysis procedure. An estimate of the structural response at different equivalent seismic intensity levels is obtained in a single response history analysis. This method has applications in seismic assessment of various structural types and in different areas of
earthquake engineering Earthquake engineering is an interdisciplinary branch of engineering that designs and analyzes structures, such as buildings and bridges, with earthquakes in mind. Its overall goal is to make such structures more resistant to earthquakes. An earth ...
.


The concept of endurance time method

Endurance time (ET) method is a dynamic structural analysis procedure in which intensifying dynamic excitation is used as the loading function. An estimate of structural response and/or performance at the entire seismic intensity range of interest is obtained in each response history analysis. The concept of endurance time analysis is similar to the exercise test applied in medicine. Similar concept has also been extended to applications in the analysis of offshore platforms under water waves.


Development history

The basic concepts of the endurance time method were published in 2004. Application in linear seismic analysis appeared in 2007. ET was subsequently extended to nonlinear analysis of single degree of freedom (SDOF) and multi degree of freedom systems. Procedures for multi-component seismic analysis were subsequently developed.


ET excitation functions

ET excitation functions are generated by using
numerical optimization Mathematical optimization (alternatively spelled ''optimisation'') or mathematical programming is the selection of a best element, with regard to some criterion, from some set of available alternatives. It is generally divided into two subfi ...
methods. ET excitation functions are publicly available through internet websites. ET excitation functions can be categorized into five generations as follows: # First generation of ET excitation functions (ETEFs) are essentially a filtered and profiled
white noise In signal processing, white noise is a random signal having equal intensity at different frequencies, giving it a constant power spectral density. The term is used, with this or similar meanings, in many scientific and technical disciplines, ...
. These were used for demonstrating the concept of ET and have limited practical significance. # Second-generation ETEFs incorporate
response spectrum A response spectrum is a plot of the peak or steady-state response (displacement, velocity or acceleration) of a series of oscillators of varying natural frequency, that are forced into motion by the same base vibration or shock. The resulting ...
matching. These ETEFs produce numerically significant analysis results. # Third-generation ETEFs are optimized in nonlinear range. These ETEFs deliver improved analysis performance. # Fourth-generation ETEFs are optimized to include duration consistency. # Fifth-generation ETEFs are optimized to include damage consistency.


Application areas in earthquake engineering

Endurance time method has been applied in the following areas of
earthquake engineering Earthquake engineering is an interdisciplinary branch of engineering that designs and analyzes structures, such as buildings and bridges, with earthquakes in mind. Its overall goal is to make such structures more resistant to earthquakes. An earth ...
: * Nonlinear dynamic analysis of structures * Seismic evaluation of jacket-type offshore platforms * Optimal damper placement in framed buildings * Optimal design of energy dissipation systems * Seismic assessment of structures * Performance-based seismic design method * Collapse-based seismic design method * Value-based seismic design * Structural optimization * Multi-component seismic analysis * Soil–structure interaction * soil-pile-superstructure interaction * Liquid–structure interaction * Dam engineering * Bridge engineering * Seismic rehabilitation * Collapse analysis


Structural type applications

ET method has been applied in seismic assessment of the following structural types: * Single degree of freedom systems * Moment and braced
steel frame Steel frame is a building technique with a " skeleton frame" of vertical steel columns and horizontal I-beams, constructed in a rectangular grid to support the floors, roof and walls of a building which are all attached to the frame. The devel ...
s * Concrete frames * Bridges *
Gravity dams A gravity dam is a dam constructed from concrete or stone masonry and designed to hold back water by using only the weight of the material and its resistance against the foundation to oppose the horizontal pressure of water pushing against it ...
*
Arch dam An arch dam is a concrete dam that is curved upstream in plan. The arch dam is designed so that the force of the water against it, known as hydrostatic pressure, presses against the arch, causing the arch to straighten slightly and strength ...
s * Shell structures * Steel tanks * Offshore structures


Advantages of ET method

Major advantages of the endurance time method are as follows: * ET significantly reduces the computational demand required for performing a standard response history analysis of structures for seismic assessment, especially when response at multiple levels of intensity is to be considered. * ET is applicable in a wide range of seismic assessment problems and provides a generic approach for the seismic analysis of a wide range of structural types. * ET method is reasonably simple and sensible when a realistic dynamic analysis of a complex structure is required


Limitations of ET method

Major limitations of the endurance time method are as follows: * ET is an approximate method for predicting the structural response. * The production of usable ETEFs that are applicable in a particular situation can be complicated. * The procedure is still under development and sufficient background information may not be available for specific applications.


References

{{reflist, refs= Estekanchi, H. E., A. Vafai and M. Sadeghazar (2004), ''Endurance Time method for seismic analysis and design of structures'', Scientia Iranica, v11, n4, p361-370
Link
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doi:10.1016/j.jcsr.2007.05.010
/ref> Riahi, H. T. ; Estekanchi, H. E. and Vafai, A. (2009), ''Estimates of Average Inelastic Deformation Demands for Regular Steel Frames by the Endurance Time Method'', Scientia Iranica, v16, n5, p388-402
Link
/ref> Estekanchi, H. E.; Riahi, H. T. and Vafai, A. (2009), ''Endurance Time Method: Exercise Test as Applied to Structures'', Asian Journal of Civil Engineering, v10, n5, p559-577
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/ref> Madarshahian, R., Estekanchi, H. E. and Mahvashmohammadi, A. (2011), "Estimating seismic demand parameters with Endurance Time method", Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), v12, n8, p616-626
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/ref> Nozari, A and Estekanchi, H. E. (2011) "Optimization of Endurance Time acceleration functions for seismic assessment of structures, International Journal of Optimization in Civil Engineering, v1, n2, 257–277
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/ref> Estekanchi, H. E. and Alembagheri, , M. (2012), "Seismic analysis of steel liquid storage tanks by Endurance Time method", Thin-Walled Structures, v50, n1, p14-23
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/ref> Mashayekhi, M. and Estekanchi, H.E. (2012), "Significance of effective number of cycles in Endurance Time analysis", Asian Journal of Civil Engineering, v13, n5, p647-657
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The Structural Design of Tall and Special Buildings, e2100. https://doi.org/10.1002/tal.2100 Application of Endurance Time (ET) method in optimal design of energy dissipation systems nline https://sites.google.com/view/ascivil/endurance-time/ Earthquake engineering Structural engineering Civil engineering