Full-scale field tests of soil-steel bridge structure in two stages of its construction

2006 ◽  
Vol 6 (2) ◽  
pp. 57-76 ◽  
Author(s):  
Z. MAŃKO ◽  
D. BĘBEN
1980 ◽  
Vol 7 (4) ◽  
pp. 614-620
Author(s):  
J. S. Kennedy ◽  
D. J. Wilson ◽  
P. F. Adams ◽  
M. Perlynn

This paper presents the results of full-scale field tests on two steel guyed latticed towers. The towers were approximately 83 m in height, were guyed at three levels, and were of bolted angle construction. The observed results consist of the natural frequencies of the first two modes of vibration as well as the damping ratio for the first mode. The observed results are compared with analytical predictions and observations made concerning the contributions of structural and cable action to the damping ratio.


2013 ◽  
pp. 461-467
Author(s):  
Alberto Clerici ◽  
Ezio Giuriani ◽  
Danilo Cambiaghi ◽  
Antonio Isceri ◽  
Giorgio Vassena ◽  
...  
Keyword(s):  

2012 ◽  
Vol 27 (2) ◽  
pp. 161-165
Author(s):  
Daniel Flum ◽  
Armin Roduner ◽  
John Kalejta
Keyword(s):  

2002 ◽  
Vol 128 (1) ◽  
pp. 9-16 ◽  
Author(s):  
Jeb S. Tingle ◽  
Rosa L. Santoni ◽  
Steve L. Webster

Author(s):  
Thorben Wintermeyer-Kallen ◽  
Sebastian Dickler ◽  
János Zierath ◽  
Thomas Konrad ◽  
Dirk Abel

AbstractModern multi-megawatt wind turbines require powerful control algorithms which consider several control objectives at the same time and respect process constraints. Model predictive control (MPC) is a promising control method and has been a research topic for years. So far, very few studies evaluated MPC algorithms in field tests. This work aims to prepare a real-time MPC system for a full-scale field test in a 3 MW wind turbine. To this end, we introduce a weight-scheduling scheme for a linear time-variant MPC in order to ensure control operation over the entire operating range from the partial to the full load range. We use a rapid control prototyping process, in particular with comprehensive software-in-the-loop (SiL) tests, in order to design and validate the MPC system for the field test.In this contribution, we present the implementation of the linear time-variant MPC with weight-scheduling to be tested in the field test. With the weight-scheduling for the optimization problem inside the MPC, we achieved good performance over the entire operating range of the wind turbine. In the SiL tests, the proposed MPC algorithm achieved loads, comparable to the baseline controller of the wind turbine and improved the reference tracking of the power output and the rotational speed. The proposed linear time-variant MPC with weight-scheduling is fully validated in the presented software-in-the-loop tests and is ready for full-scale field test in the 3 MW wind turbine. We present the experimental field test results of the introduced MPC system in a separated contribution.


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