The Prague Post - What happens when fire ignites in space? 'A ball of flame'

EUR -
AED 4.183608
AFN 75.185325
ALL 93.475856
AMD 416.380642
AOA 1045.760713
ARS 1688.928865
AUD 1.62924
AWG 2.051935
AZN 1.942914
BAM 1.953841
BBD 2.294689
BDT 140.529083
BHD 0.429967
BIF 3396.17954
BMD 1.139173
BND 1.470525
BOB 12.56035
BRL 5.780619
BSD 1.139253
BTN 109.963733
BWP 15.492397
BYN 3.287703
BYR 22327.784586
BZD 2.291292
CAD 1.603431
CDF 2574.530657
CHF 0.929561
CLF 0.027128
CLP 1067.655673
CNY 7.715592
CNH 7.715622
COP 3666.199446
CRC 516.879425
CUC 1.139173
CUP 30.188076
CVE 110.154541
CZK 24.186238
DJF 202.878343
DKK 7.475678
DOP 66.214765
DZD 151.647825
EGP 58.439328
ERN 17.08759
ETB 183.887398
FJD 2.556534
FKP 0.85166
GBP 0.853236
GEL 2.996121
GGP 0.85166
GHS 13.232673
GIP 0.85166
GMD 83.734331
GNF 9995.976432
GTQ 8.691247
GYD 238.319976
HKD 8.93268
HNL 30.516935
HRK 7.533806
HTG 148.963241
HUF 364.503375
IDR 20470.19265
ILS 3.500245
IMP 0.85166
INR 110.110894
IQD 1492.529554
IRR 1566647.232079
ISK 143.410726
JEP 0.85166
JMD 180.479023
JOD 0.807646
JPY 186.237703
KES 147.534026
KGS 99.620428
KHR 4597.470555
KMF 492.122132
KRW 1677.738898
KWD 0.352905
KYD 0.949448
KZT 532.663528
LAK 25797.018549
LBP 102022.348256
LKR 382.916027
LRD 206.206888
LSL 18.701665
LTL 3.363681
LVL 0.689074
LYD 7.306673
MAD 10.678592
MDL 20.062794
MGA 4891.073958
MKD 61.508322
MMK 2391.388129
MNT 4090.960131
MOP 9.202032
MRU 45.526348
MUR 53.757852
MVR 17.611752
MWK 1975.536353
MXN 19.895263
MYR 4.657735
MZN 72.804425
NAD 18.702075
NGN 1560.028855
NIO 41.927956
NOK 10.949671
NPR 175.941573
NZD 1.969303
OMR 0.438011
PAB 1.139253
PEN 3.868021
PGK 5.100885
PHP 70.397477
PKR 316.524602
PLN 4.327563
PYG 6897.083879
QAR 4.153235
RON 5.234611
RSD 117.435047
RUB 89.310702
RWF 1676.518854
SAR 4.271472
SBD 9.202102
SCR 15.252961
SDG 684.078591
SEK 11.09426
SGD 1.471156
SLE 27.625007
SOS 651.147056
SRD 42.987252
STD 23578.574557
STN 24.47535
SVC 9.969003
SZL 18.700166
THB 38.533644
TJS 10.526721
TMT 3.998496
TND 3.372418
TRY 53.806313
TTD 7.732213
TWD 36.819883
TZS 3001.717747
UAH 51.063595
UGX 4277.691725
USD 1.139173
UYU 45.75412
UZS 13788.173768
VES 839.523846
VND 29979.037911
VUV 135.588974
WST 3.124487
XAF 655.299891
XAG 0.019494
XAU 0.000279
XCD 3.078671
XCG 2.053332
XDR 0.81309
XOF 655.299891
XPF 119.331742
YER 271.81464
ZAR 18.731872
ZMK 10253.922663
ZMW 21.105743
ZWL 366.813139
  • RBGPF

    0.4200

    67.77

    +0.62%

  • CMSC

    -0.0850

    21.91

    -0.39%

  • RELX

    0.0100

    32.74

    +0.03%

  • BP

    0.5600

    43.32

    +1.29%

  • NGG

    1.8200

    83.87

    +2.17%

  • BCC

    3.3000

    77.7

    +4.25%

  • BTI

    0.6400

    62.06

    +1.03%

  • BCE

    -0.1700

    21.48

    -0.79%

  • GSK

    -0.0200

    50.76

    -0.04%

  • RIO

    1.7300

    92.28

    +1.87%

  • JRI

    -0.0100

    12.92

    -0.08%

  • RYCEF

    -0.0800

    18.17

    -0.44%

  • CMSD

    -0.0500

    22.15

    -0.23%

  • VOD

    0.2400

    15.51

    +1.55%

  • AZN

    0.3900

    169.73

    +0.23%

What happens when fire ignites in space? 'A ball of flame'
What happens when fire ignites in space? 'A ball of flame' / Photo: HO - NASA/AFP/File

What happens when fire ignites in space? 'A ball of flame'

When fire breaks out in the low-gravity, high-stakes conditions inside spacecraft or space stations, it behaves very differently than back here on Earth.

Text size:

So, as humans aim to set foot on Mars in the coming decades, researchers are seeking to learn how flames spark and spread in space -- and how best to stamp them out.

The deadly threat fire poses in space goes all the way back to the first mission of NASA's Apollo programme, which would go on to put the first humans on the Moon.

Just days before the Apollo 1 mission was scheduled to launch in January 1967, its three crew members were killed by a fire that broke out in the spacecraft's cabin during a training exercise on the ground.

"At that time, the capsules were filled with 100 percent pure oxygen at low pressure, instead of atmospheric pressure, so the astronauts could breathe," explained Serge Bourbigot, a researcher at France's Centrale Lille institute.

"However the more oxygen you have, the more it burns," he told AFP.

Since the Apollo 1 disaster, the oxygen levels in spacecraft carrying astronauts have been set to 21 percent -- the same amount as here on Earth.

But fire still acts differently in these cramped conditions hurtling through the vastness of space.

- A spherical flame -

When you light a candle on Earth, the heat rises because hot air is less dense than cold air.

However if you lit that candle inside a spacecraft or a station orbiting our planet, the heat would stay put because of the lack of gravity.

So instead of seeing a feather-shaped plume rise from the candle's wick, "you get a ball of flame," Bourbigot said.

"This ball will create and radiate heat, sending heat into the local environment -- the fire will spread that way," expanding in every direction, he added.

To find out more, Bourbigot and three other scientists have been awarded a grant from the European Research Council.

Their work has proved particularly timely because NASA recently recommended that oxygen levels be increased to 35 percent in new spacecraft and space stations, mainly to cut costs.

"With 35 percent oxygen, less pressure is needed inside the spacecraft, so the structure can be lighter," Bourbigot explained.

Heavier spacecraft require bigger rockets to launch them into space, making them more expensive.

But when oxygen levels rise, so does the risk of fire. So the grantees are investigating different ways to track and stamp out any space blazes in the future.

- Lighting a fire on a rocket -

Guillaume Legros of France's Sorbonne University is trying to use acoustic waves to smother the flames.

Tests have already been carried out on parabolic flights, which simulate the weightless conditions of space for 22 seconds.

Bourbigot is meanwhile looking into flame retardants. While these chemicals work well here on Earth, low gravity again throws up new hurdles.

Because smoke does not rise in the same way, it is more dense and "poses an opacity problem", Bourbigot said.

Florian Meyer from Germany's University of Bremen is developing sensors to closely monitor temperatures and track how fires would spread in space.

And fire safety researcher Bart Merci from Belgium's Ghent University is planning to digitally simulate how flames behave in low gravity.

To test their theories, a rocket is planned to launch within the next four years that will provide six minutes of microgravity to investigate how fire behaves in these conditions.

European aerospace manufacturer Airbus will build the rocket, which is set to launch from northern Sweden.

For their research, which is grouped under the Firespace programme, the four scientists have received 14 million euros ($16 million) -- enough to fund their work for the next six years.

V.Nemec--TPP