Abstract

Post Fukushima, nuclear plants are being retrofitted with severe accident mitigation measures. For attaining depressurization of the containment and mitigate the consequences of the release of the radioactivity to the environment during a severe accident condition, filtered containment venting systems (FCVS) are proposed to be installed in existing reactors and being designed for advanced reactors. The design of FCVS is particular to the reactor type. The FVCS configuration considered in this paper comprises of a manifold of venturi scrubber enclosed in a scrubber tank along with metal fiber filter and demister for an advanced Indian reactor. This study focuses on the assessment of the design of the venturi scrubber for the reactor conditions at which venting is carried out through a numerical model. The numerical model is first validated with experiments performed for prototypic conditions. The predicted pressure drop and the iodine absorption efficiency were found to be in good match with the experimental measurements. Subsequently, the model is implemented for predicting the hydrodynamics, i.e., pressure drop, droplet sizes and distribution, and iodine absorption for prototypic conditions. The hydrodynamics, i.e., pressure profile in the venturi scrubber showed a decrease in the converging section and in the throat section. The diverging section showed decrease in recovery of pressure with the decrease in gas flow because of the increased liquid loading to the scrubber. The iodine absorption efficiency showed a value of 92% for high gas velocity which decreased to 68% for the lowest gas flow rate.

References

1.
OECD/NEA/CSNI
,
2014
, “
Status Report on Filtered Containment Venting,
OECD/NEA/CSNI
,
Paris, France
,
Report No. NEA/CSNI/R(2014)7
.https://www.oecd-nea.org/nsd/docs/2014/csni-r2014-7.pdf
2.
Lindau
,
L.
,
1988
, “
FILTRA-MVSS, a System for Reactor Accidents Mitigation
,”
J. Aerosol Sci.
,
19
(
7
), pp.
1389
1392
.10.1016/0021-8502(88)90181-4
3.
Ali
,
M.
,
Changqi
,
Y.
,
Zhongning
,
S.
,
Haifeng
,
G.
,
Junlong
,
W.
, and
Mehboob
,
K.
,
2013
, “
Iodine Removal Efficiency in Non-Submerged and Submerged Self-Priming Venturi Scrubber
,”
Nucl. Eng. Technol.
,
45
(
2
), pp.
203
210
.10.5516/NET.03.2012.047
4.
Hills
,
J. H.
,
1995
, “
Behavior of Venturi Scrubbers as Chemical Reactors
,”
Ind. Eng. Chem. Res.
,
34
(
12
), pp.
4254
4259
.10.1021/ie00039a015
5.
Zhou
,
Y.
,
Sun
,
Z.
,
Gu
,
H.
, and
Miao
,
Z.
,
2016
, “
Performance of Iodide Vapour Absorption in the Venturi Scrubber Working in Self-Priming Mode
,”
Ann. Nucl. Energy
,
87
, pp.
426
434
.10.1016/j.anucene.2015.09.026
6.
Goel
,
P.
,
Moharana
,
A.
, and
Nayak
,
A. K.
,
2018
, “
Measurement of Scrubbing Behaviour of Simulated Radionuclide in a Submerged Venturi Scrubber
,”
Nucl. Eng. Des.
,
327
, pp.
92
99
.10.1016/j.nucengdes.2017.12.003
7.
Moharana
,
A.
,
Goel
,
P.
, and
Nayak
,
A. K.
,
2017
, “
Performance Estimation of a Venturi Scrubber and Its Application to Self-Priming Operation in Decontaminating Aerosol Particulates
,”
Nucl. Eng. Des.
,
320
, pp.
165
182
.10.1016/j.nucengdes.2017.05.023
8.
Steinberger
,
R. L.
, and
Treybal
,
R. E.
,
1960
, “
Mass Transfer From a Solid Soluble Sphere to a Flowing Liquid System
,”
AIChE J.
,
6
(
2
), pp.
227
232
.10.1002/aic.690060213
9.
Mariana
,
Sumida
,
K.
,
Satake
,
T.
,
Maezawa
,
A.
,
Takeshita
,
T.
, and
Uchida
,
S.
,
2004
, “
Experimental and Modeling Study on CO2 Absorption in a Cyclone Scrubber by Phenomenological Model and Neural Networks
,”
Korean J. Chem. Eng.
,
21
(
3
), pp.
589
594
.10.1007/BF02705492
10.
Goel
,
P.
,
Moharana
,
A.
, and
Nayak
,
A. K.
,
2019
, “
Experimental Investigation of Hydrodynamics Behavior of a Submerged Venturi Scrubber
,”
Multiphase Sci. Technol.
,
31
(
1
), pp.
45
59
.10.1615/MultScienTechn.2019029434
You do not currently have access to this content.