Tag Archives: Franklin Bay

The Northwest Passage in 2023

Prompted by a comment by Tom in the June open thread, the time has evidently come to open the 2023 Northwest Passage passage thread. First of all let’s get our bearings with the help of this map of the area:

and another map detailing the routes through Canadian Arctic Archipelago that have previously been successfully traversed:

As our starter for ten for 2023, there is already plenty of open water in the Amundsen Gulf, together with plenty of melt ponding on the remaining fast ice in Franklin and Darnley Bays:

“False colour” image of the Lena Delta on June 3rd from the MODIS instrument on the Terra satellite
Continue reading The Northwest Passage in 2023

Facts About the Arctic in May 2017

Before we got on to the more usual Arctic metrics let’s bear in mind that the beginning of May is the time when the ice on the mighty Mackenzie River begins to break up, ultimately sending a surge of (comparatively!) warm water rushing into the Beaufort Sea. The patches of open water visible in the Beaufort Sea off the Mackenzie Delta in early April refroze, but have recently opened up once again:

NASA Worldview “true-color” image of the Beaufort Sea on May 2nd 2017, derived from the MODIS sensor on the Terra satellite
NASA Worldview “true-color” image of the Beaufort Sea on May 2nd 2017, derived from the MODIS sensor on the Terra satellite

Meanwhile Northern Hemisphere snow cover is falling fast, albeit still above last year’s levels:

multisensor_4km_nh_snow_extent_20170502

Here’s the current view of the Liard River in northern Canada, with the Mackenzie River running bottom to top on the right hand side:

NASA Worldview “true-color” image of the Liard and Mackenzie Rivers on May 2nd 2017, derived from the MODIS sensor on the Terra satellite
NASA Worldview “true-color” image of the Liard and Mackenzie Rivers on May 2nd 2017, derived from the MODIS sensor on the Terra satellite

The break-up of the Liard leads the Mackenzie, and taking a look at last year’s view of the same area it’s apparent that this year there’s somewhat more snow on the ground, and that this years Mackenzie break-up will therefore be a few days later than last year:

NASA Worldview “true-color” image of the Liard and Mackenzie Rivers on May 2nd 2016, derived from the MODIS sensor on the Aqua satellite
NASA Worldview “true-color” image of the Liard and Mackenzie Rivers on May 2nd 2016, derived from the MODIS sensor on the Aqua satellite

Whilst early melt in the Beaufort Sea is currently behind last year, the reverse is most certainly the case next door in the Chukchi Sea. The skies are rather cloudy there at the moment, but using the Suomi NPP day/night band to peer through the gloom reveals this:

NASA Worldview “day/night band” image of the Chukchi Sea on May 2nd 2017, derived from the VIIRS sensor on the Suomi satellite
NASA Worldview “day/night band” image of the Chukchi Sea on May 2nd 2017, derived from the VIIRS sensor on the Suomi satellite

Whilst sea coverage on the Pacific periphery has continued to fall, extent on the Atlantic side has not been following suit. Hence overall Arctic sea ice area is no longer lowest in the satellite record:

UH-Arctic-Area-2017-04-30

Finally, until the new PIOMAS numbers are released at least, here’s how DMI freezing degree days look at the moment:

DMI-FDD-20170502

 

[Edit – May 4th]

The April PIOMAS numbers have been published: Arctic sea ice volume is yet again by far the lowest on record:

PIOMAS-Volume-20170430

PIOMAS-thk-20170430

 

[Edit – May 5th]

Greenland ice sheet surface melt has started early this year:

greenland_melt_map_20170504

greenland_melt_plot_20170504

 

[Edit – May 12th]

The ice break-up of the Mackenzie River is now visible as increased flow at the junction with Arctic Red River just south of the delta:

Mackenzie River flow at Arctic Red River up to May 12th 2017
Mackenzie River flow at Arctic Red River up to May 12th 2017

Meanwhile the sea ice in the Lincoln Sea north the Nares Strait is coming apart at the seams:

NASA Worldview “true-color” image of the Lincoln Sea on May 12th 2017, derived from the MODIS sensor on the Terra satellite
NASA Worldview “true-color” image of the Lincoln Sea on May 12th 2017, derived from the MODIS sensor on the Terra satellite

 

[Edit – May 17th]

May seems to be shaping up as month of two halves, both spatially and temporally. Here’s an overview of the current state of play:

Arc_20170516_res3.125

On the Pacific side of the Arctic sea ice area has been declining rapidly courtesy of the expanding areas of open water visible in the Beaufort, Chukchi and East Siberian Seas. It’s currently tracking below other recent years:

UH-Pacific-Extent-2017-05-16

However over on the Atlantic side area has been flatlining, and is currently above other recent years:

UH-Atlantic-Extent-2017-05-16

Ice mass balance buoy 2017A is now located near the boundary between the Beaufort and Chukchi Seas and as the melting season in that vicinity rapidly approaches it reveals that thermodynamic thickening has thus far achieved a mere 119 cm:2017A-2017-05-15

Arctic wide sea ice area has recently started to decline at an increasing rate:

UH-Arctic-Area-2017-05-16

During the second half of the month it will be interesting to see whether the forecast high temperatures produce significant melt ponding. If so it’s conceivable that 2017 area could drop below 2016 again by the beginning of June. There already signs of surface melt at places as far apart as Franklin Bay, Chaunskaya Bay and even the Great Bear Lake!

Watch this space!

References

Muhammad, P., Duguay, C., and Kang, K.-K.: Monitoring ice break-up on the Mackenzie River using MODIS data, The Cryosphere, 10, 569-584, doi:10.5194/tc-10-569-2016, 2016.

Rood S. B., Kaluthota S., Philipsen L. J., Rood N. J., and Zanewich K. P. (2017) Increasing discharge from the Mackenzie River system to the Arctic Ocean, Hydrol. Process., 31, 150–160. doi: 10.1002/hyp.10986.

Kwok, R., L. Toudal Pedersen, P. Gudmandsen, and S. S. Pang (2010), Large sea ice outflow into the Nares Strait in 2007, Geophys. Res. Lett., 37, L03502, doi:10.1029/2009GL041872.