Theoretical and numerical study of hydraulic characteristics of orifice energy dissipator

Different factors affecting the efficiency of the orifice energy dissipator were investigated based on a series of theoretical analyses and numerical simulations. The main factors investigated by dimension analysis were identified, including the Reynolds number (Re), the ratio of the orifice diamete...

Full description

Bibliographic Details
Main Authors: Ning He, Zhen-xing Zhao
Format: Article
Language:English
Published: Elsevier 2010-06-01
Series:Water Science and Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1674237015301113
_version_ 1819134242395783168
author Ning He
Zhen-xing Zhao
author_facet Ning He
Zhen-xing Zhao
author_sort Ning He
collection DOAJ
description Different factors affecting the efficiency of the orifice energy dissipator were investigated based on a series of theoretical analyses and numerical simulations. The main factors investigated by dimension analysis were identified, including the Reynolds number (Re), the ratio of the orifice diameter to the inner diameter of the pipe (d/D), and the ratio of distances between orifices to the inner diameter of the pipe (L/D). Then, numerical simulations were conducted with a k-ɛ two-equation turbulence model. The calculation results show the following: Hydraulic characteristics change dramatically as flow passes through the orifice, with abruptly increasing velocity and turbulent energy, and decreasing pressure. The turbulent energy appears to be low in the middle and high near the pipe wall. For the energy dissipation setup with only one orifice, when Re is smaller than 105, the orifice energy dissipation coefficient K increases rapidly with the increase of Re. When Re is larger than 105, K gradually stabilizes. As d/D increases, K and the length of the recirculation region L1 show similar variation patterns, which inversely vary with d/D. The function curves can be approximated as straight lines. For the energy dissipation model with two orifices, because of different incoming flows at different orifices, the energy dissipation coefficient of the second orifice (K2) is smaller than that of the first. If L/D is less than 5, the K value of the L/D model, depending on the variation of K2, increases with the spacing between two orifices L, and an orifice cannot fulfill its energy dissipation function. If L/D is greater than 5, K2 tends to be steady; thus, the K value of the L/D model gradually stabilizes. Then, the flow fully develops, and L has almost no impact on the value of K.
first_indexed 2024-12-22T10:00:05Z
format Article
id doaj.art-2c6c6d05e875484a98a8309c444edb24
institution Directory Open Access Journal
issn 1674-2370
language English
last_indexed 2024-12-22T10:00:05Z
publishDate 2010-06-01
publisher Elsevier
record_format Article
series Water Science and Engineering
spelling doaj.art-2c6c6d05e875484a98a8309c444edb242022-12-21T18:30:09ZengElsevierWater Science and Engineering1674-23702010-06-013219019910.3882/j.issn.1674-2370.2010.02.007Theoretical and numerical study of hydraulic characteristics of orifice energy dissipatorNing He0Zhen-xing Zhao1Institute of High Energy Physics, CAS, Beijing 100049, P. R. ChinaCollege of Mechanics and Materials, Hohai University, Nanjing 210098, P. R. ChinaDifferent factors affecting the efficiency of the orifice energy dissipator were investigated based on a series of theoretical analyses and numerical simulations. The main factors investigated by dimension analysis were identified, including the Reynolds number (Re), the ratio of the orifice diameter to the inner diameter of the pipe (d/D), and the ratio of distances between orifices to the inner diameter of the pipe (L/D). Then, numerical simulations were conducted with a k-ɛ two-equation turbulence model. The calculation results show the following: Hydraulic characteristics change dramatically as flow passes through the orifice, with abruptly increasing velocity and turbulent energy, and decreasing pressure. The turbulent energy appears to be low in the middle and high near the pipe wall. For the energy dissipation setup with only one orifice, when Re is smaller than 105, the orifice energy dissipation coefficient K increases rapidly with the increase of Re. When Re is larger than 105, K gradually stabilizes. As d/D increases, K and the length of the recirculation region L1 show similar variation patterns, which inversely vary with d/D. The function curves can be approximated as straight lines. For the energy dissipation model with two orifices, because of different incoming flows at different orifices, the energy dissipation coefficient of the second orifice (K2) is smaller than that of the first. If L/D is less than 5, the K value of the L/D model, depending on the variation of K2, increases with the spacing between two orifices L, and an orifice cannot fulfill its energy dissipation function. If L/D is greater than 5, K2 tends to be steady; thus, the K value of the L/D model gradually stabilizes. Then, the flow fully develops, and L has almost no impact on the value of K.http://www.sciencedirect.com/science/article/pii/S1674237015301113orifice energy dissipatortheoretical analysisnumerical simulationk-ɛ two-equation turbulent modelhydraulic characteristics
spellingShingle Ning He
Zhen-xing Zhao
Theoretical and numerical study of hydraulic characteristics of orifice energy dissipator
Water Science and Engineering
orifice energy dissipator
theoretical analysis
numerical simulation
k-ɛ two-equation turbulent model
hydraulic characteristics
title Theoretical and numerical study of hydraulic characteristics of orifice energy dissipator
title_full Theoretical and numerical study of hydraulic characteristics of orifice energy dissipator
title_fullStr Theoretical and numerical study of hydraulic characteristics of orifice energy dissipator
title_full_unstemmed Theoretical and numerical study of hydraulic characteristics of orifice energy dissipator
title_short Theoretical and numerical study of hydraulic characteristics of orifice energy dissipator
title_sort theoretical and numerical study of hydraulic characteristics of orifice energy dissipator
topic orifice energy dissipator
theoretical analysis
numerical simulation
k-ɛ two-equation turbulent model
hydraulic characteristics
url http://www.sciencedirect.com/science/article/pii/S1674237015301113
work_keys_str_mv AT ninghe theoreticalandnumericalstudyofhydrauliccharacteristicsoforificeenergydissipator
AT zhenxingzhao theoreticalandnumericalstudyofhydrauliccharacteristicsoforificeenergydissipator