Unterschiede
Hier werden die Unterschiede zwischen zwei Versionen angezeigt.
| Beide Seiten der vorigen RevisionVorhergehende ÜberarbeitungNächste Überarbeitung | Vorhergehende Überarbeitung | ||
| en:berechnungen:temperaturverlauf [2024/07/29 17:40] – neelest | en:berechnungen:temperaturverlauf [2025/07/03 13:34] (aktuell) – cschall | ||
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| ======Temperature profile====== | ======Temperature profile====== | ||
| - | FIXME | + | -> [[en: |
| + | ===== Theoretical Fundamentals of Temperature Calculation ===== | ||
| - | ===== Theoretical principles | + | REX calculates the temperature in the melt pool and the melt film for each interval downstream |
| - | REX calculates | + | At the location where the melt pool forms, |
| + | ==== Temperature Calculation in PSI ==== | ||
| - | The temperature calculation is based on the gutter model. The following conditions are assumed for the temperature curve calculation: | + | Additionally, for each interval in PSI, a proportionate |
| - | + | ||
| - | * The screw channel is considered a flat channel, i.e. $b \gg h$. The influence of the webs can therefore be neglected | + | |
| - | * 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 | + | |
| - | + | ||
| - | The resulting differential equation can now be applied | + | |
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| - | ==== Temperature calculation | + | |
| - | + | ||
| - | In addition, a proportional | + | |
| - | + | ||
| - | 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 ===== | ||
| Zeile 30: | Zeile 18: | ||
| ==== Influence of disperse melting on the temperature ==== | ==== Influence of disperse melting on the temperature ==== | ||
| - | If [[en: | + | If [[en: |
| {{ : | {{ : | ||
| Zeile 50: | Zeile 38: | ||
| The temperature reduction and the simultaneously higher shear rate counteract each other, so that different behaviour can occur depending on the process. As a rule, however, the cooling of the melt predominates, | The temperature reduction and the simultaneously higher shear rate counteract each other, so that different behaviour can occur depending on the process. As a rule, however, the cooling of the melt predominates, | ||
| - | details>< | + | <details>< |
| - | * Pape, Jens: Fundamentals of process simulation of single-screw concepts for high-performance plasticising, dissertation, University of Paderborn, 2006 | + | * Pape, Jens: Grundlagen der Prozesssimulation von Einschneckenkonzepten zur Hochleistungsplastifizierung, Dissertation, Universität |
| - | * Dörner, Marius: Wave screws in single-screw extrusion, dissertation, University of Paderborn, 2022 | + | * Dörner, Marius: Wave-Schnecken in der Einschneckenextrusion, Dissertation, Universität |
| </ | </ | ||
| Zeile 58: | Zeile 46: | ||
| The internal temperature control is calculated iteratively. \\ | The internal temperature control is calculated iteratively. \\ | ||
| - | First, the temperature | + | First, the 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 |
| 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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