Influence of fuel on foam degradation for fluorinated and fluorine-free foams

被引:67
作者
Hinnant, Katherine M. [1 ]
Conroy, Michael W. [1 ]
Ananth, Ramagopal [1 ]
机构
[1] US Naval Res Lab, Div Chem, Washington, DC 20375 USA
关键词
Firefighting foams; Foam degradation; Bubble; Interface; OIL INTERACTIONS; DRAINAGE; BUBBLE; HYDROCARBONS; STABILITY; SULFONATE; DYNAMICS;
D O I
10.1016/j.colsurfa.2017.02.082
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We performed experiments to quantify fuel-induced foam degradation by applying foams onto liquid fuels and water (for comparison) and measuring foam thickness over time. Our investigation included two firefighting foams, one fluorine-free (RF6-ICAO) and the other fluorinated (AFFF), and a foam made with a common surfactant, SDS. We applied a roughly 2 cm thick foam layer onto three liquid fuels (n-heptane, methylcyclohexane, and isooctane) at room and elevated temperatures. Foam lifetime was reduced by 50 and 75% for AFFF and RF6 respectively for foams on fuels compared to foams on water at room temperature. For all experiments, the fluorine-free foams (RF6 and SDS) degraded much faster than AFFF. Further, the effect of fuel temperature was significant when the foams were placed over hot fuel: the lifetime of the firefighting foams decreased by 1-2 orders of magnitude between experiments conducted with fuel at room temperature and 50 degrees C. Prior to the onset of foam degradation over fuels, the firefighting foams experienced a preliminary expansion (by up to 50% in volume). Video recordings of degradation show that expansion results primarily from bubbles near the interface increasing in size with accelerated coarsening by coalescence. We propose and discuss a mechanism for fuel-induced foam degradation based on our observations. Our results show that fluorine-free RF6 degrades faster than AFFF (by a factor of 3 at room temperature and 12 at elevated temperatures over fuel), which may contribute to differences in their firefighting performance. Published by Elsevier B.V.
引用
收藏
页码:1 / 17
页数:17
相关论文
共 42 条
[1]  
Battino R, 1983, J PHYS CHEM, V12
[2]   The behavior of a fire-protection foam exposed to radiant heating [J].
Boyd, CF ;
Di Marzo, M .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1998, 41 (12) :1719-1728
[3]  
Conroy M., 2017, COMBUST SCI TECHNOL
[4]   Fuel Surface Cooling by Aqueous Foam: A Pool Fire Suppression Mechanism [J].
Conroy, M. W. ;
Ananth, R. .
FIRE TECHNOLOGY, 2015, 51 (03) :667-689
[5]   Mechanisms of action of mixed solid-liquid antifoams. 1. Dynamics of foam film rupture [J].
Denkov, ND ;
Cooper, P ;
Martin, JY .
LANGMUIR, 1999, 15 (24) :8514-8529
[6]  
Dlugogorski B. Z., 2005, P 8 INT S FIR SAF SC, P719
[7]   Numerical modeling and experiments of coarsening foam [J].
Do, Hyunsun ;
Brady, Michael ;
Telionis, Demetri P. ;
Vlachos, Pavlos P. ;
Yoon, Roe-Hoan .
INTERNATIONAL JOURNAL OF MINERAL PROCESSING, 2011, 98 (1-2) :66-73
[8]  
Garrett P.R., 2013, SCI DEFOAMING THEORY
[9]  
HILGENFELDT S, 2001, PHYS REV LETT, V86
[10]   A NEW METHOD TO ESTIMATE THE STABILITY OF SHORT-LIFE FOAMS [J].
IGLESIAS, E ;
ANDEREZ, J ;
FORGIARINI, A ;
SALAGER, JL .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 1995, 98 (1-2) :167-174