Thursday, February 2, 2012

How Do You Fight Fire in Space? Experiments Provide Some Answers

Prof. Williams research was featured recently in the UCSD News: LINK. Read about it below:
Research on the International Space Station also aims for a better understanding of fuel combustion here on Earth

Color image of a burning droplet
Photo: NASA/Glenn Research Center
Improving fire-fighting techniques in space and getting a better understanding of fuel combustion here on Earth are the focus of a series of experiments on the International Space Station, led by a professor at the Jacobs School of Engineering at the University of California, San Diego. A first round of experiments ran from March 2009 to December 2011. A second round kicked off in January and is set to last a year or more.
Forman Williams, a professor of mechanical and aerospace engineering, has been working on fire research and fire safety with NASA since the 1970s. You will not, however, find him on the space station. The experiments are run by remote control from NASA’s John Glenn Research Center in Cleveland. Williams and colleagues at Princeton, UC Davis, the University of Connecticut and Cornell analyze the results at their home institutions. They will present findings based on the first series of experiments this summer at a symposium in Poland.
“Research leads to a better understanding of fire behavior,” Willams said. “And better understanding ultimately leads to better safety designs.”

FLEX Chamber Insert Assembly Apparatus
Photo: NASA/Glenn Research Center
All the experiments take place in a chamber located in the Destiny module of the International Space Station. The chamber is part of a piece of equipment called the Combustion Integrated Rack, which is roughly the size of a 5.5-foot bookcase and weighs close to 560 lbs. The rack is crammed with sensors and equipped with video cameras that record experiments. The chamber is equipped with a device called the Multiuser Droplet Combustion Apparatus that can generate and ignite droplets from different fuels in different atmospheric conditions.
Fire safety on the space station
The Flame Extinguishment Experiment, known as FLEX, ran in the chamber from March 2009 to December 2011. The goal was to get a better understanding of how fire happens on a space craft, where there is no up or down and where atmosphere and pressure are tightly controlled. The ultimate goal was to improve fire-fighting techniques in space.
To help understand how flames behave and burn in space, FLEX researchers ignited a small drop of either heptane or methanol. As this little sphere of fuel burned for about 20 seconds, it was engulfed by a spherically symmetric flame. The droplet shrank until either the flame extinguished or the fuel ran out.

Test #1 - Droplet diameter of 4 mm, with no support fiber. Droplet deployment was successful with a brief burn before radiative extinction. An afterglow from condensing vapor cloud and scattered backlight occurred approximately 30 sec after extinction. This afterglow phenomena typically occurs following radiative extinction. (NASA/JSC)
Flames in space can burn at a lower temperature, at a lower rate and with less oxygen than in normal gravity. This means that materials used to extinguish fire must be present in higher concentrations. The slow flow of air from the fans mixing air in a spacecraft can make flames burn even faster.
The space station is equipped with carbon-dioxide fire extinguishers, so researchers investigated how fuel droplets burn in the presence of different amounts of CO2. Also, ambient air can become completely fire safe when there is not enough oxygen for fuels to ignite. This threshold is called the limiting oxygen index. Williams and colleagues pinpointed this index for methanol and heptane on the space station.
Fuel combustion experiments
Williams is now working on a new series of experiments, called FLEX-2, which aims to recreate conditions that are closer to what actually happens in a combustion engine. Findings could lead to new designs for cleaner fuels that have a smaller carbon footprint and emit fewer pollutants, among other applications.

Astronaut Mike Fincke pictured to the left of the Combustion Integrated Rack facility installed in the Destiny module of the ISS shortly after installation. Photo: NASA
While the original FLEX experiments looked at fuels with only one component, FLEX-2 will run tests on fuels with two components, more similar to fuels used in real-life conditions, which usually have multiple components. While FLEX examined the behavior of single fuel droplets, the new round of tests will also look at the interaction of two fuel droplets.
But Williams said he isn’t quite done with the original FLEX experiments. He and colleagues still need to explain some of what they observed. For example, when the flame around a fuel droplet extinguishes, that droplet should stop shrinking because combustion has essentially stopped. But in about a dozen instances during the FLEX experiments, heptane droplets kept shrinking at the same rate as when the flame was still burning. Williams, who has studied combustion for the past 50 years, said he has never seen anything like it.
Tests on the space shuttle
This is not Williams’ first round of tests to be run in space. His work includes several experiments that ran on Spacelab, a science module flown in the cargo bay of U.S. space shuttles. The holy grail of combustion science is a flame around a fuel droplet that looks like a perfectly symmetrical sphere. That is very hard to achieve here on Earth. It is however a common occurrence in microgravity. Spherical symmetry makes it easier to observe droplets’ behavior and to craft the calculations that explain it, Williams said.

Forman Williams is a professor of mechanical and aerospace engineering at the Jacobs School of Engineering at the University of California San Diego.
During the space shuttle missions, he and colleagues used to work around the clock at the Marshall Space Flight Center in Huntsville, Ala. Williams and colleagues also took their families to Cape Canaveral to watch space shuttle Columbia take off in July 1997, when it was carrying a microgravity combustion experiment they designed.
William’s interest in combustion dates back to his undergraduate days at Princeton. He was taking a graduate-level course. His professor wrote out on the blackboard the conservation equations of combustion. “When I realized how complicated they were, I said to myself that there is enough there to last me a lifetime,” Williams explained.  
Willams’ colleagues on the FLEX and FLEX-2 experiments are: Frederick Dryer, of Princeton; Mun Choi, of the University of Connecticut; Benjamin Shaw at UC Davis; Tom Avedisian of Cornell; Vedha Nayagam at the National Center for Space Exploration Research; Michael Hicks, Daniel Dietrich and others from NASA’s Glenn Research Center.

Wednesday, December 21, 2011

New Paper on the Burning Behavior of Vertical Matchstick Arrays Available

Our paper on the Burning Behavior of Vertical Matchstick Arrays, by Michael Gollner, Yanxuan Xie, Minkyu Lee, Yuji Nakamura and Ali Rangwala was recently accepted for publication to the journal Combustion Science and Technology. A pre-print version of the article has been posted here: http://maeresearch.ucsd.edu/~mgollner/publications/2011_matchstick_cst.pdf



Abstract 
Vertical arrays of horizontally protruding wood matchsticks, 0.25 cm in diameter and 1.91 cm long, arranged from 1 to 5 matches across were used to investigate the influence of the spacing of discrete fuel elements on rates of upward flame spread. Vertical spacing's between the matchsticks in the array (0.0, 0.6, 0.8, 1.0, 1.2 and 1.4 cm) were used to reveal the influence of separation distance on rates of upward flame spread, defined as progression of the ignition front, time to burnout and mass-loss rates. Advancement of the ignition front was found to vary linearly with time for the 0.0 cm spacing, while reaching nearly a $t^{1.7}$ advancement with time for the furthest-spaced arrays. Rates of upward flame spread were found to increase dramatically for spacings between 0 cm and 0.8 cm and experienced only a slight increase thereafter. Based on these observations, the influence of convective heating was hypothesized to dominate this spread mechanism, and predictions of ignition times were developed using convective heat-transfer correlations. Flame heights and mass-loss rates followed a similar pattern. Individual matchstick burnout times were observed to remain nearly constant for all cases at all heights except the zero-spacing case, which was nearly three times longer than in spaced arrays. This behavior in spaced cases was modeled using a droplet burning theory extended for a cylindrical geometry and solving for the time to burnout. A similar calculation was performed for the zero-spacing case relating it to vertical combustion over a wall. The average mass-loss rate for a single matchstick was also determined and used to predict the mass-loss rate of a spreading fire over matchsticks.

Wednesday, October 5, 2011

Mario and Jeanette present their research at the UCSD Summer Research Conference

Jeanette Cobian, a UCSD undergraduate in the UCSD California Louis Stokes Alliance for Minority Participation (CAMP) in Science, Engineering and Mathematics program and Mario Zuniga in the McNair Scholars Program presented their summer research on flame spread and development of a visual flame analysis program. Congratulations on a great presentation and research in the combustion laboratory at UCSD over the summer.

Friday, September 16, 2011

New Grad Students Presentation

Here is a copy of my presentation for new graduate students in the Department of Mechanical and Aerospace Engineering at UCSD. Good luck to new students this year!


The Perfect Firestorm: Interesting Audubon Magazine Feature Article

The Perfect Firestorm
Welcome to the new era of “megafires,” which rage with such intensity that no human force can put them out. Their main causes, climate change and fire suppression, are fueling a heated debate about how to stop them.



http://audubonmagazine.org/features1107/GlobalWarming.html#.TnH2RNBbMW0.facebook

Thursday, June 30, 2011

Best Poster and Best Fire Science Image Awards at the 10th International Symposium on Fire Safety Science!

The 10th International Symposium on Fire Safety Science was held at the University of Maryland, College Park this past week and brought together an impressive group of scientists and engineers working on today's fire science problems. Before I go on about the conference, a moment of sharing the exciting news that we have won both the Best Poster and Best Fire Science Image Awards! The image, "Fan of Fire" - Surface Inclination Effects on Upward Flame Spread and the poster "An Experimental Study of Upward Flame Spread over Inclined Fuels" with authors Michael J. Gollner, Xinyan Huang, Forman A. Williams, and Ali S. Rangwala won these awards! A description of the image shown is at the bottom and the poster can be viewed here.


The conference was an excellent opportunity to interact with researchers in so many different aspects of the fire problem. Prof. Carlos Fernandez-Pello delivered a plenary lecture on ignition of solid fuels, which is a topic that especially resonates with the fire community with the development of new pyrolysis models. It was also great to see a presence from the wildfire research community, culminating with the plenary lecture by Domingos Xavier Viegas. I learned a lot from presentations, but perhaps the most important facet of the conference were the comments, suggestions and ideas I received from fellow researchers. There are too many to name, but I want to thank all those who contributed. I look forward to the next conference in 2014 in New Zeland!




"Fan of Fire" – Surface Inclination Effects on Upward Flame Spread
Michael Gollner, Xinyan Huang and Forman A. Williams
University of California, San Diego
Ali S. Rangwala
Worcester Polytechnic Institute

This “fan of fire” visually displays the effect gravity has on upward flame spread over thermally-thick materials. Starting from the left “ceiling fire”, as the inclination angle or tilt of a burning surface is increased underside flames transition from blue, well-mixed laminar flames into increasingly turbulent yellow flames on the topside that “lift” from the surface dramatically increasing the flame thickness. These images were taken perpendicular to the surface of a thick sample of Polymethyl Methacrylate mounted flush into insulation board as flames spread upward. These tests have helped in finding critical inclinations with maximum flame spread rates, burning rates and heat fluxes from the flame.

Friday, June 17, 2011

Part II of Paper on Commodity Classification Published in the Fire Safety Journal


Part II of our paper, "Warehouse commodity classification from fundamental principles. Part II: Flame heights and flame spread", has recently been published in the Fire Safety Journal. The image at the right shows a research approach to the warehouse fire problem. The two smaller scales studied in this work are shown by the dashed box. You can follow a link to the article at: doi:10.1016/j.firesaf.2011.05.002.

Abstract:

In warehouse storage applications, it is important to classify the burning behavior of commodities and rank them according to their material flammability for early fire detection and suppression operations. In this study, a preliminary approach towards commodity classification is presented that models the early stage of large-scale warehouse fires by decoupling the problem into separate processes of heat and mass transfer. Two existing nondimensional parameters are used to represent the physical phenomena at the large-scale: a mass transfer number that directly incorporates the material properties of a fuel, and the soot yield of the fuel that controls the radiation observed in the large-scale. To facilitate modeling, a mass transfer number (or B-number) was experimentally obtained using mass-loss (burning rate) measurements from bench-scale tests, following from a procedure that was developed in Part I of this paper.

Two fuels are considered: corrugated cardboard and polystyrene. Corrugated cardboard provides a source of flaming combustion in a warehouse and is usually the first item to ignite and sustain flame spread. Polystyrene is typically used as the most hazardous product in large-scale fire testing. The nondimensional mass transfer number was then used to model in-rack flame heights on 6.1–9.1 m (20–30 ft) stacks of ‘C’ flute corrugated cardboard boxes on rack-storage during the initial period of flame spread (involving flame spread over the corrugated cardboard face only). Good agreement was observed between the model and large-scale experiments during the initial stages of fire growth, and a comparison to previous correlations for in-rack flame heights is included.

Part I of this paper has also been published in the Fire Safety Journal and can be found at: doi:10.1016/j.firesaf.2011.03.002