| 1 | yunx | 1.1 | %%  $Header: | 
| 2 |  |  | %%  $Name:  $ | 
| 3 |  |  |  | 
| 4 |  |  | This is an example 3D configuration for a glacier fjord using icefornt pkg. | 
| 5 |  |  |  | 
| 6 |  |  | This example simulates a glacier fjord of 500 m deep, 500 m long along the fjord, and 150 m | 
| 7 |  |  | wide across the fjord. A tidewater glacier is terminated at the edge of the fjord, with a | 
| 8 |  |  | vertical calving face of 150 m wide and 500 m high, in contact with sea water. A channel of | 
| 9 |  |  | 1-m high and 2-m wide exists at the bottom of the glacier, where freshwater at freezing point | 
| 10 |  |  | flows to the ocean at the speed of 0.5 m/s. The channel is created using shelfice pkg, and | 
| 11 |  |  | water T/S/V in the channel is prescribed using obcs pkg. Melt rate at the vertical ice face | 
| 12 |  |  | is calculated using icefront pkg. | 
| 13 |  |  |  | 
| 14 |  |  | More details of this experiment are described in the paper: | 
| 15 |  |  | (Xu et al.(2013), Subaqueous melting of Store Glacier, west Greenland from three-dimensional, | 
| 16 |  |  | high-resolution numerical modeling and ocean observations. Geophys. Res. Lett., 40, | 
| 17 |  |  | doi:10.1002/grl.50825.) | 
| 18 | yunx | 1.2 |  | 
| 19 |  |  | NOTE: Set dumpFreq in data or set negative frequency in data.diagnostic to get turbulence | 
| 20 |  |  | snapshots in Fig.2a-f of Xu et al., (2013). |