Tornadoes · United States · Montana · 2005

F0 tornado, Ekalaka, Montana, June 6, 2005

This F0 tornado ran 30.0 miles across Carter County on June 6, 2005, touching down at 5:41 PM MDT and reaching 100 yards wide. It killed nobody.

The rating scale

Tracks are drawn in the color of the rating. The Fujita scale rates the damage rather than measuring the wind: the speeds are what that damage is taken to imply.

  1. F040 to 72 mphthis tornado

    Light damage. Surface peeled off some roofs, gutters and siding damaged, branches broken, shallow-rooted trees pushed over.

  2. F173 to 112 mph

    Moderate damage. Roofs badly stripped, mobile homes overturned or badly damaged, exterior doors lost, windows broken.

  3. F2113 to 157 mph

    Considerable damage. Roofs torn off well-built houses, frame homes shifted on their foundations, mobile homes destroyed, large trees snapped or uprooted, cars lifted off the ground.

  4. F3158 to 206 mph

    Severe damage. Whole stories of well-built houses destroyed, large buildings badly damaged, trains overturned, trees debarked, heavy cars lifted and thrown.

  5. F4207 to 260 mph

    Devastating damage. Well-built houses leveled, structures with weak foundations moved some distance, cars thrown and large missiles generated.

  6. F5261 to 318 mph

    Incredible damage. Strong frame houses swept off their foundations, car-sized missiles thrown more than 100 meters, steel-reinforced concrete badly damaged, high-rise buildings deformed.

  7. Unrated

    The survey recorded a tornado but could not put a number on it, most often because it crossed open country and damaged nothing a rating can be read from.

The record

Rating
F0
Date
June 6, 2005
Touchdown
5:41 PM MDT (23:41 UTC)
Path length
30.0 miles (48.3 km)
Path width
100 yards (91 m)
Deaths
0
Injuries
0
County
Carter County
Touchdown point
45.980, -104.700
Lift-off point
45.980, -104.700
Record number
148

What the Weather Service recorded

Four different tornado touchdowns over a 30 minute period northwest of Ekalaka. The tornadoes came from different parts of a large mesocyclone. At times...the tornadoes had multiple vortices. No damage was reported as the area was sparsely populated.

From NOAA NCEI's Storm Events Database, the narrative the local forecast office wrote for Storm Data.

The warnings

No tornado warning for this county appears in the archive as in force at the moment the tornado touched down. One was issued for the county at another hour that day.

Issued (UTC)ExpiredProductOffice
22:36 UTC23:00 UTCSevere Thunderstorm WarningBYZ
22:56 UTC00:00 UTCSevere Thunderstorm WarningBYZ
23:43 UTC00:15 UTCTornado WarningBYZ
00:15 UTC00:42 UTCTornado WarningBYZ

Every warning and watch covering the touchdown point that day, from the Iowa Environmental Mesonet's archive of National Weather Service products. Lead time is measured from the issue of the warning in force to the touchdown time in the database, both of which were recorded to the minute by different people.

The forecast that day

The Storm Prediction Center had this point in a Moderate Risk, with a 0.05 chance of a tornado within 25 miles. The outlook in force was issued at 20:12 UTC.

SPC's Day 1 convective outlook as it stood when the tornado began, read at the touchdown point. The same archive is on the radar archive.

The air that afternoon

The radiosonde launches on either side of the tornado, from the nearest station that was launching then, drawn and analyzed the way Storm Lab does: the same diagram, the same parcel and shear definitions SPC's mesoanalysis uses.

Rapid City, SD (KUNR), 12:00Z

11.7 hours before the tornado, 256 km from the path. June 6, 2005.

Skew-T log-pSkew-T log-p diagram, Rapid City, SD at 12:00Z on 2005-06-06Temperature and dew point through the depth of the atmosphere, with the mixed-layer parcel lifted from the surface. Mixed-layer CAPE 23 joules per kilogram, CIN -280, lifted condensation level 2499 meters above ground. Wind barbs in knots down the right edge.LCLLFCEL10008507005003002001001 km2 km3 km6 km9 km12 km15 km-30°-20°-10°10°20°30°40°
Temperature in red, dew point in green, the mixed-layer parcel dashed. The warm shading is its CAPE, the cool shading the inhibition it has to break through.
HodographHodograph, Rapid City, SD at 12:00Z on 2005-06-06The wind through the lowest 10 kilometers as a curve, rings every 10 meters per second labeled in knots. Zero to 1 km storm-relative helicity 33 square meters per square second, 0 to 6 km bulk shear 29 knots.193958Sfc1 km3 km6 km9 kmRMLM
The wind turning with height, colored by layer: ground to 1 km, 1 to 3 km, 3 to 6 km, 6 to 10 km. RM and LM are the right and left moving storms Bunkers' method gives; the shaded area is the 0 to 1 km storm-relative helicity.
Mixed-layer CAPE
23 J/kg
Mixed-layer CIN
-280 J/kg
Surface CAPE
0 J/kg
Mixed-layer LCL
2499 m above ground
0-6 km bulk shear
29 kt
0-1 km bulk shear
26 kt
0-1 km storm-relative helicity
33 m²/s²
0-3 km storm-relative helicity
66 m²/s²
Significant tornado parameter
0.0
Supercell composite
0.0
0-3 km lapse rate
4.1 K/km

Open this sounding in Storm Lab

Rapid City, SD (KUNR), 00:00Z

0.3 hours after it, 256 km from the path. June 7, 2005.

Skew-T log-pSkew-T log-p diagram, Rapid City, SD at 00:00Z on 2005-06-07Temperature and dew point through the depth of the atmosphere, with the mixed-layer parcel lifted from the surface. Mixed-layer CAPE 1771 joules per kilogram, CIN -63, lifted condensation level 2398 meters above ground. Wind barbs in knots down the right edge.LCLLFCEL10008507005003002001001 km2 km3 km6 km9 km12 km15 km-30°-20°-10°10°20°30°40°
Temperature in red, dew point in green, the mixed-layer parcel dashed. The warm shading is its CAPE, the cool shading the inhibition it has to break through.
HodographHodograph, Rapid City, SD at 00:00Z on 2005-06-07The wind through the lowest 10 kilometers as a curve, rings every 10 meters per second labeled in knots. Zero to 1 km storm-relative helicity 52 square meters per square second, 0 to 6 km bulk shear 30 knots.19395878Sfc1 km3 km6 km9 kmRMLM
The wind turning with height, colored by layer: ground to 1 km, 1 to 3 km, 3 to 6 km, 6 to 10 km. RM and LM are the right and left moving storms Bunkers' method gives; the shaded area is the 0 to 1 km storm-relative helicity.
Mixed-layer CAPE
1771 J/kg
Mixed-layer CIN
-63 J/kg
Surface CAPE
2715 J/kg
Mixed-layer LCL
2398 m above ground
0-6 km bulk shear
30 kt
0-1 km bulk shear
9 kt
0-1 km storm-relative helicity
52 m²/s²
0-3 km storm-relative helicity
109 m²/s²
Significant tornado parameter
0.0
Supercell composite
2.2
0-3 km lapse rate
8.5 K/km

Open this sounding in Storm Lab

This ground now

The live radar over the trackEvery 2005 tornado in MontanaEvery tornado in Montana since 1950Warnings in force in Montana nowThe forecast where you are

The other tornadoes of June 6, 2005

12 more were confirmed in the United States that day.

DateTimeRatingWherePath (mi)Width (yd)DeathsInjuriesDamage
June 611:50 AM EDTF0Tioga, PA2.0100
June 612:55 PM EDTF1Lycoming, PA1.575
June 65:00 PM CDTF1Houston, TX6.0850$280,000
June 63:30 PM PDTF0Glenn, CA0.16
June 65:01 PM MDTF0Arthur, NE0.125
June 65:15 PM MDTF1Arthur, NE2.150$10,000
June 66:15 PM CDTF0McPherson, NE0.125
June 65:37 PM MDTF0Hooker, NE0.125
June 65:52 PM MDTF0Hooker, NE0.125
June 67:04 PM MDTF0Fallon, MT1.00
June 68:30 PM MDTF1Stark, ND1.060
June 612:02 AM CDTF1Burleigh, ND1.060

What this means

Ratings are the survey's, read off the damage rather than measured; the rating scale is above. Tornado counts rise through the record as reporting improved, so a year in the 1950s is not comparable with one today except for the strongest tornadoes, which were always noticed.

Sources

NOAA Storm Prediction Center tornado database, 1950-2025, the official record kept by NOAA's Storm Prediction Center.