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en:berechnungen:temperaturverlauf [2025/02/27 20:45] – [Temperature profile] neelesten:berechnungen:temperaturverlauf [2025/07/03 13:34] (aktuell) cschall
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 -> [[en:grafische_darstellung_der_ergebnisse:temperaturverlauf|For a graphical representation of the temperature curve]] -> [[en:grafische_darstellung_der_ergebnisse:temperaturverlauf|For a graphical representation of the temperature curve]]
-===== Theoretical principles of temperature calculation =====+===== Theoretical Fundamentals of Temperature Calculation =====
  
-REX calculates the temperature in the melt vortex and in the melt film for each interval after the [[en:berechnungen:aufschmelzverlauf|location of the melt vortex formation (OSW)]]. As melting progresses, the constantly growing melt film becomes thicker and at the same time is scraped off by the screw flights. This not only makes the melt vortex warmer due to barrel tempering and shear dissipation, but also takes into account the mixing with the generally cooler melt film. As a result, the temperature increase per unit length of the screw during melting can be lower than after melting.+REX calculates the temperature in the melt pool and the melt film for each interval downstream of the [[en:berechnungen:aufschmelzverlauf|location of melt pool formation (OSW)]]. Due to the progressive melting process, the continuously growing melt film becomes thicker and is simultaneously scraped off by the screw flights. As a result, not only does the melt pool become warmer due to barrel heating and shear dissipation, but the mixing with the usually cooler melt film is also taken into accountTherefore, the temperature increase per unit length of the screw during melting can be lower than after the melting process is complete. The consideration of the melt film is based on the first law of thermodynamics.
  
-The temperature calculation is based on the gutter modelThe following conditions are assumed for the temperature curve calculation:+At the location where the melt pool forms, the initial temperature of the melt pool is calculated. This initial temperature lies between the melting temperature of the polymer and the barrel temperature. Based on this initial temperature, the subsequent temperature development is calculatedOptionally, the starting temperature of the melt pool can also be specified as an [[en:eingabe_der_verfahrensparameter:eingabe_der_verfahrensparameter|optional process parameter]]. 
 +==== Temperature Calculation in PSI ====
  
-  * The screw channel is considered a flat channeli.e. $b \gg h$. The influence of the webs can therefore be neglected +Additionally, for each interval in PSI, a proportionate downtime time is taken into account. The approach is very similar to the consideration of downtimes during [[en:berechnungen:aufschmelzverlauf|melting]].
-  * The melt adheres to the wall +
-  * The temperature of the melt at the cylinder corresponds to the cylinder temperature +
-  * The flow is laminar creeping and incompressible +
-  * The flow behaviour of the melt should follow the power law $\tau = K * \dot \gamma^n$ +
-  * All material values with the exception of viscosity are considered (interval-wise) to be temperature-independent. Provided the temperature range is not too large, this assumption is permissible for plastic melts to a reasonable approximation. This applies in particular to thermal conductivity and thermal diffusivity +
- +
-The resulting differential equation can now be applied interval by interval and the temperature of the plastic melt in the melt vortex can be calculated [[en:grafische_darstellung_der_ergebnisse:temperaturverlauf|over the channel height]]. The melt film is taken into account using the first law of thermodynamics. +
- +
-==== Temperature calculation in PSI ==== +
- +
-In addition, a proportional downtime is taken into account for each interval in PSI. The procedure is very similar to the consideration of downtimes during [[en:berechnungen:aufschmelzverlauf|melting]]+
- +
-For the calculated downtime weighted per interval, heating is calculated purely by heat conduction through the cylinder temperature control. The more downtime the plastic experiences between entering the injection moulding machine and injection, the closer the temperature curve comes to the heating zone profile.+
  
 +For the residence-time-weighted calculated downtime time per interval, heating or cooling purely due to heat conduction from the barrel is calculated. The more residence time the polymer experiences from entering the injection molding machine until injection, the closer the temperature profile approaches the heating zone temperature profile.
 ===== Special features in the temperature calculation ===== ===== Special features in the temperature calculation =====
  
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 ==== Influence of disperse melting on the temperature ==== ==== Influence of disperse melting on the temperature ====
  
-If [[en:berechnungen:aufschmelzverlauf|dispersed melting]] occurs (e.g. due to user specifications or a shearing or mixing element), this is also reflected in the temperature curve. During dispersed melting, the unmelted plastic is distributed in the plastic melt and is heated by heat conduction from the surrounding melt and also melted.+If [[en:berechnungen:aufschmelzverlauf|dispersed melting]] occurs (e.g. due to user specifications or a shearing or mixing element), this is also reflected in the temperature profile. During dispersive melting, the unmelted polymer particles are distributed within the polymer melt and are heated and melted by heat conduction from the surrounding melt.
  
 {{ :berechnungen:aufschmelzverlauf:abb_disperses_aufschmelzen_de_en.svg?nolink&400 |}} {{ :berechnungen:aufschmelzverlauf:abb_disperses_aufschmelzen_de_en.svg?nolink&400 |}}
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 The internal temperature control is calculated iteratively. \\ The internal temperature control is calculated iteratively. \\
-First, the temperature curve without internal temperature control is always calculated. The steady-state heat flows for the constant screw base temperature profile can be calculated from the known volume flow of the temperature control medium, the geometry and thermal conductivity of the screw and the inner tube as well as the known screw base temperature. \\ +First, the temperature profile without internal temperature control is always calculated. The steady-state heat flows for the constant screw ground temperature profile can be calculated from the known volume flow of the temperature control medium, the geometry and thermal conductivity of the screw and the inner tube as well as the known screw ground temperature. \\ 
-The temperature calculation is then carried out again, taking into account the heat flow into the tempered screw core. The resulting temperature reduction only occurs at the base of the screw and leads to an inhomogeneous temperature profile over the channel height. As a result, a cooler screw base temperature is calculated, which in turn is used to calculate the heat flows in the tempering medium and within the screw. \\+The temperature calculation is then carried out again, taking into account the heat flow into the tempered screw core. The resulting temperature reduction only occurs at the ground of the screw and leads to an inhomogeneous temperature profile over the channel height. As a result, a cooler screw ground temperature is calculated, which in turn is used to calculate the heat flows in the tempering medium and within the screw. \\
 With the heat flow into the screw core now reduced, the temperature calculation is started again. The process is carried out iteratively until a stationary process is reached. With the heat flow into the screw core now reduced, the temperature calculation is started again. The process is carried out iteratively until a stationary process is reached.
  
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 ===Further topics=== ===Further topics===
   * [[en:berechnungen:einfache_berechnung|]]   * [[en:berechnungen:einfache_berechnung|]]
 +  * [[en:berechnungen:prozess_iterieren]]
   * [[en:berechnungen:durchsatz|]]   * [[en:berechnungen:durchsatz|]]
   * [[en:berechnungen:druckverlauf|]]   * [[en:berechnungen:druckverlauf|]]
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   * [[en:berechnungen:temperaturverlauf|]]   * [[en:berechnungen:temperaturverlauf|]]
   * [[en:berechnungen:leistung_und_schubspannungen|]]   * [[en:berechnungen:leistung_und_schubspannungen|]]
 +  * [[en:berechnungen:schergeschwindigkeit]]
   * [[en:berechnungen:verweilzeit|]]   * [[en:berechnungen:verweilzeit|]]
   * [[en:berechnungen:verweilzeitverteilung|]]   * [[en:berechnungen:verweilzeitverteilung|]]