60 | | [=#<insert_parameter_name> '''<insert_parameter_name>'''] |
61 | | }}} |
62 | | {{{#!td style="vertical-align:top" |
63 | | <insert type> |
64 | | }}} |
65 | | {{{#!td style="vertical-align:top" |
66 | | <insert value> |
67 | | }}} |
68 | | {{{#!td |
69 | | <insert explanation> |
| 60 | [=#cloud_physics '''cloud_physics'''] |
| 61 | }}} |
| 62 | {{{#!td style="vertical-align:top" |
| 63 | L |
| 64 | }}} |
| 65 | {{{#!td style="vertical-align:top" |
| 66 | .F. |
| 67 | }}} |
| 68 | {{{#!td |
| 69 | Parameter to switch on the condensation scheme.\\\\ |
| 70 | For '''cloud_physics''' = ''.T.'', equations for the liquid water content and the liquid water potential temperature are solved instead of those for specific humidity and potential temperature. Note that a grid volume is assumed to be either completely saturated or completely unsaturated (0%-or-100%-scheme). A simple precipitation scheme can additionally be switched on with parameter [#precipitation precipitation]. Also cloud-top cooling by longwave radiation can be utilized (see [#radiation radiation]).\\\\ |
| 71 | '''cloud_physics''' = ''.T.'' requires [#humidity humidity] = ''.T.''.\\\\ |
| 72 | Detailed information about the condensation scheme is given in the description of the [[cloud physics module]] (pdf-file, only in German).\\\\ |
| 73 | This condensation scheme is not allowed if cloud droplets are simulated explicitly (see [#cloud_droplets cloud_droplets]). |