Unterschiede

Hier werden die Unterschiede zwischen zwei Versionen angezeigt.

Link zu dieser Vergleichsansicht

Beide Seiten der vorigen RevisionVorhergehende Überarbeitung
Nächste Überarbeitung
Vorhergehende Überarbeitung
en:simulation:berechnung [2025/12/06 12:48] – [Calculation] deppe2en:simulation:berechnung [2026/06/26 18:38] (aktuell) – [Calculation Settings] neelest
Zeile 1: Zeile 1:
 ====== Calculation ====== ====== Calculation ======
- 
-===== Calculation ===== 
  
 **Path:** Main menu: Simulation > Calculation settings..\\ **Path:** Main menu: Simulation > Calculation settings..\\
Zeile 11: Zeile 9:
  
 {{ :en:simulation:en_sigma150_dlg_simulation_009.png?nolink |}} {{ :en:simulation:en_sigma150_dlg_simulation_009.png?nolink |}}
- 
-**Figure:** Dialog box Calculation settings 
- 
- 
- 
  
 Calculations are chosen by marking the belonging check boxes. Some of the options are related to another one. Due to that some check boxes are marked by setting another option. Moreover the pressure profile is marked automatically, because of that it is the basis for all further calculations. Calculations are chosen by marking the belonging check boxes. Some of the options are related to another one. Due to that some check boxes are marked by setting another option. Moreover the pressure profile is marked automatically, because of that it is the basis for all further calculations.
Zeile 23: Zeile 16:
 It is not possible to perform a calculation as long as the machine data, configuration data, material data and process parameters are not defined completely. In case of incompleteness or in case that these data are not reasonable the matching settings can not be marked. It is not possible to perform a calculation as long as the machine data, configuration data, material data and process parameters are not defined completely. In case of incompleteness or in case that these data are not reasonable the matching settings can not be marked.
  
-A calculation is started by clicking on the button **Calculate**. After that the results can be viewed in a diagram or as result list. Both options are placed in the menu at the item **Diagrams**. There are placed all diagrams, for instance** temperature profile** and **melting profile**. The other way to activate one of the diagrams is to activate it with help of the belonging icons (see figure). +A calculation is started by clicking on the button //Calculate//. After that the results can be viewed in a diagram or as result list. Both options are placed in the menu at the item //Diagrams//. There are placed all diagrams, for instance temperature profile and melting profile. The other way to activate one of the diagrams is to activate it with help of the belonging icons.
  
 {{ :en:simulation:en_sigma150_dlg_simulation_010.png?nolink |}} {{ :en:simulation:en_sigma150_dlg_simulation_010.png?nolink |}}
-**Figure:** Toolbar Simulation, View results 
  
 | 1. Melting Process | 2. Dispersion Quality and Energy Density | 3. Pressure and Fill Level | | 1. Melting Process | 2. Dispersion Quality and Energy Density | 3. Pressure and Fill Level |
Zeile 36: Zeile 27:
 | 16. Open Calculation Results Table | 17. Open New Multigraph | | | 16. Open Calculation Results Table | 17. Open New Multigraph | |
  
-The result lists are placed in the menu at the item Simulation, View results.+The result lists are placed in the menu at
  
 **Path:** Main menu: Simulation > View results.\\ **Path:** Main menu: Simulation > View results.\\
Zeile 43: Zeile 34:
 \\ \\
 \\ \\
-Additionally, there are placed the commands for **saving** and **exporting** these lists.+Additionally, there are placed the commands for //saving// and //exporting// these lists.
  
 **Path:** Main menu: Simulation > Save results as...\\ **Path:** Main menu: Simulation > Save results as...\\
Zeile 50: Zeile 41:
 \\ \\
 \\ \\
-**Path:**Main menu: Simulation > Export results..\\+**Path:** Main menu: Simulation > Export results..\\
 {{:simulation:iconergebnissesave-simulation.ico?nolink&60x60 |}} {{:simulation:iconergebnissesave-simulation.ico?nolink&60x60 |}}
 \\ \\
Zeile 58: Zeile 49:
  
 The following calculations can be chosen in SIGMA: The following calculations can be chosen in SIGMA:
-  * Pressure profile+  * Pressure profile (s. [[en:grundlagenhandbuch:schmelzefoerderung]])
   * Filling degree   * Filling degree
-  * Melting profile +  * Melting profile (s. [[en:grundlagenhandbuch:aufschmelzberechnung]]) 
-  * Power profile +  * Power profile (s. [[en:grundlagenhandbuch:drehmoment_und_antriebsleistung]]) 
-  * Temperature profile+  * Temperature profile (s. [[en:grundlagenhandbuch:massetemperatur]])
   * Consider an optional heat flow   * Consider an optional heat flow
-  * Residence time distribution +  * Residence time distribution (s. [[en:grundlagenhandbuch:verweilzeitberechnung]]) 
-  * Degree of dispersion+  * Degree of dispersion (s. [[en:grundlagenhandbuch:berechnung_der_dispergierguete]]) 
 + 
  
-All settings for the calculation are defined in the dialog Calculation Settings (see figure).+All settings for the calculation are defined in the dialog Calculation Settings.
  
-  * **Pressure profile:** Within this calculation it can be chosen between the polynomialthe linear and a regression calculation model. The linear one bases on an analytical approach based on the theory of single screw extruders. Against this the polynomial calculation and the regression model base on an approximation of numerical results. By selecting the modified option the treatment of the nip region in the calculation can be chosen. From our experience the regression model that was newly implemented in SIGMA 4.5 gives the most reliable results+  * **Pressure profile:** Within this calculation it can be chosen between the polynomial (s. [[en:grundlagenhandbuch:schmelzefoerderung#linear_pressure_model_and_polynomial_pressure_model | Linear Pressure Model]]) the linear (s. [[en:grundlagenhandbuch:schmelzefoerderung#linear_pressure_model_and_polynomial_pressure_model | Polynomial Pressure Model]]) and a regression calculation model (s. [[en:grundlagenhandbuch:schmelzefoerderung#regression_model | Regression Model]]). The linear one bases on an analytical approach based on the theory of single screw extruders. Against this the polynomial calculation and the regression model base on an approximation of numerical results. By selecting the modified option the treatment of the nip region in the calculation can be chosen. From our experience the regression model that was newly implemented in SIGMA 4.5 gives the most reliable results.
-  * **Melting profile:** Within this calculation it can be chosen between four different models: Compacted, Disperse, Binary and Modified Disperse. The compacted calculation model is a modified Tadmor model as it is known in the theory of single screws. The disperse model presumes that the granulate melts isolated. The binary model takes the melting of binary systems (blends and compounds) into account. The modified dispersed melting model is based on the dispersed model. However, the finite influence duct dimension, the influence of the convection as well as the influence of the particles on the stream will be included additionally within this model. +
-  * **Temperature profile:** Within this calculation it can be chosen between a traditional rectangular model and a new twin screw model. If a heat flow is considered for the temperature calculation, SIGMA adapts the barrel temperature. +
-  * **Power profile:** Within this calculation it can be chosen between a traditional rectangular model and a new twin screw model. +
-  * **Degree of dispersion:** For the calculation of the degree of dispersion it can be chosen between a model for the degree of dispersion and an energy model.+
  
-  
  
- +  * **Melting profile:** Within this calculation it can be chosen between five different models: Compacted, Disperse, Binary, Modified Disperse and 2D Disperse. The compacted calculation model is a modified Tadmor model as it is known in the theory of single screws (s. [[en:grundlagenhandbuch:aufschmelzberechnung#aufschmelzmodell_fuer_kompaktierte_feststoffe | Compacted Model]]). The disperse model presumes that the granulate melts isolated (s. [[en:grundlagenhandbuch:aufschmelzberechnung#aufschmelzmodell_fuer_dispers_verteilte_fuellstoffe|Disperse Model]]). The binary model takes the melting of binary systems (blends and compounds) into account. The modified dispersed melting model is based on the dispersed model. However, the finite influence duct dimension, the influence of the convection as well as the influence of the particles on the stream will be included additionally within this model (s. [[en:grundlagenhandbuch:aufschmelzberechnung#modifiziertes_disperses_aufschmelzen|Modified Disperse Model]]). The 2D disperse melting model is a further expansion of the modified disperse melting model and is recommended for the calculation of the melting of particles bigger than 2 mm (s. [[en:grundlagenhandbuch:aufschmelzberechnung#d_disperses_aufschmelzen|2D Disperse Model]]). 
 + 
 + 
 +  * **Temperature profile:** Within this calculation it can be chosen between a traditional rectangular model (s. [[en:grundlagenhandbuch:massetemperatur#urspruenglicher_ansatz | Traditional Rectangular Model]]), a new twin screw model (s. [[en:grundlagenhandbuch:massetemperatur#modifizierter_ansatz | Modified Twin Screw Model]]) and a 2D temperature model (s. [[en:grundlagenhandbuch:massetemperatur#d_modell | 2D Temperature Model]]). If a heat flow (s. [[en:grundlagenhandbuch:zylinderwaermestroeme | Heat Flow]]) is considered for the temperature calculation, SIGMA adapts the barrel temperature. 
 + 
 + 
 +  * **Power profile:** Within this calculation it can be chosen between a traditional rectangular model (s. [[en:grundlagenhandbuch:drehmoment_und_antriebsleistung#urspruenglicher_ansatz | Rectangular Model]]), a new twin screw model (s. [[en:grundlagenhandbuch:drehmoment_und_antriebsleistung#modifizierter_ansatz | Modified Twin Screw Model]]), an enthalpy based model (s. [[en:grundlagenhandbuch:drehmoment_und_antriebsleistung#enthalphiemodell | Enthalpy Based Model]]) and an enthalpy based model with heat flow (s. [[en:grundlagenhandbuch:drehmoment_und_antriebsleistung#enthalpy_model_with_heat_flow | Enthalpy model with heat flow]]).