Protochlorophyllide Reduction: Mechanisms and Evolution¶

2003 ◽  
Vol 78 (6) ◽  
pp. 543 ◽  
Author(s):  
Benoît Schoefs ◽  
Fabrice Franck
Author(s):  
Dian Li ◽  
Xiaomin Liu ◽  
Lei Wang ◽  
Fujia Hu ◽  
Guang Xi

Previous publications have summarized that three special morphological structures of owl wing could reduce aerodynamic noise under low Reynolds number flows effectively. However, the coupling noise-reduction mechanism of bionic airfoil with trailing-edge serrations is poorly understood. Furthermore, while the bionic airfoil extracted from natural owl wing shows remarkable noise-reduction characteristics, the shape of the owl-based airfoils reconstructed by different researchers has some differences, which leads to diversity in the potential noise-reduction mechanisms. In this article, three kinds of owl-based airfoils with trailing-edge serrations are investigated to reveal the potential noise-reduction mechanisms, and a clean airfoil based on barn owl is utilized as a reference to make a comparison. The instantaneous flow field and sound field around the three-dimensional serrated airfoils are simulated by using incompressible large eddy simulation coupled with the FW-H equation. The results of unsteady flow field show that the flow field of Owl B exhibits stronger and wider-scale turbulent velocity fluctuation than that of other airfoils, which may be the potential reason for the greater noise generation of Owl B. The scale and magnitude of alternating mean convective velocity distribution dominates the noise-reduction effect of trailing-edge serrations. The noise-reduction characteristic of Owl C outperforms that of Barn owl, which suggests that the trailing-edge serrations can suppress vortex shedding noise of flow field effectively. The trailing-edge serrations mainly suppress the low-frequency noise of the airfoil. The trailing-edge serration can suppress turbulent noise by weakening pressure fluctuation.


1988 ◽  
Vol 135 (5) ◽  
pp. 1045-1048 ◽  
Author(s):  
H. Yamin ◽  
A. Gorenshtein ◽  
J. Penciner ◽  
Y. Sternberg ◽  
E. Peled

Author(s):  
Vincent O. S. Olunloyo ◽  
Charles A. Osheku ◽  
Sidikat I. Kuye

Internal fluid flow parameters in conjunction with elastomechanical properties of conveyance systems have significantly modulated flow induced vibrations in pipeline and riser systems. Recent advances on the mechanics of sandwich elastic systems as effective vibration and noise reduction mechanisms have simulated the possibility of replacing traditional steel pipes with sandwich pipes in deepwater environment. The dynamic behaviour and stability of sandwich elastic pipes conveying a non-Newtonian fluid are investigated in this paper. For this problem, a set of generalised non-linear equations governing the vibration of sandwich pipes held together in pressurised environment and conveying a non-Newtonian fluid is presented. By linearizing the governing partial differential equation matching the problem physics, under slight perturbation of the internal fluid velocity and other flow variables closed form analytical results for the system dual natural frequencies and stability under external excitation are computed for field designs and applications. Results show that for a given length of pipe, beyond the critical velocity, instability increases with the velocity of conveyance.


2015 ◽  
Vol 46 (6) ◽  
pp. 2534-2552 ◽  
Author(s):  
Theresa Coetsee ◽  
Christian Reinke ◽  
Johannes Nell ◽  
Petrus Christiaan Pistorius

2012 ◽  
Vol 26 (2) ◽  
pp. 938-951 ◽  
Author(s):  
Hirotatsu Watanabe ◽  
Takashi Marumo ◽  
Ken Okazaki

2013 ◽  
Vol 79 (804) ◽  
pp. 1703-1713
Author(s):  
Hirotatsu WATANABE ◽  
Dejudom KIATPANACHART ◽  
Ken OKAZAKI

2015 ◽  
Vol 17 (25) ◽  
pp. 16476-16482 ◽  
Author(s):  
Liu Cui ◽  
Yanhui Feng ◽  
Peng Tan ◽  
Xinxin Zhang

Theoretical insights into the heat transfer performance and its reduction mechanisms in double-walled carbon nanotubes with intertube additional carbon atoms.


1996 ◽  
Vol 10 (6) ◽  
pp. 417-430 ◽  
Author(s):  
Joseph W Stucki ◽  
George W Bailey ◽  
Huamin Gan

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