Unterschiede
Hier werden die Unterschiede zwischen zwei Versionen angezeigt.
| Beide Seiten der vorigen RevisionVorhergehende ÜberarbeitungNächste Überarbeitung | Vorhergehende Überarbeitung | ||
| en:berechnungen:druckverlauf [2025/02/27 20:41] – neelest | en:berechnungen:druckverlauf [2025/07/03 13:34] (aktuell) – cschall | ||
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| - | The same conditions must be met for the calculation of the pressure profile as for the throughput | + | To calculate |
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| - | Additionally, | + | Additionally, |
| - | profile | + | The same equations as those used in the throughput calculation are applied. |
| - | The pressure | + | The pressure |
| - | The pressure | + | The pressure |
| - | The pressure curve is calculated isothermally at the melt temperature in each step and then multiplied by a correction factor. From a physical point of view, this correction factor ensures that the calculation is carried out at a temperature that allows the pressure and throughput behaviour to match. This is necessary because the flow rate must be calculated according to a mixed isothermal-non-isothermal approach, but the pressure curve must be calculated either isothermally or non-isothermally. | + | ==== Pressure Profile Calculation for Barrier |
| + | === Assumption of Equal Pressure Gradient === | ||
| + | Barrier screws can only be calculated analytically under the simplifying assumption of an equal pressure gradient in the melt and solid channels. Although this allows for rapid calculation, | ||
| - | ==== Pressure profile calculation for the barrier section ==== | + | === Network Calculation / Matrix Model === |
| - | In order to calculate a barrier as described | + | To eliminate the above-mentioned simplifying |
| - | Here, individual intervals are formed | + | This method is optionally available |
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| + | A network is generated from the screw geometry, consisting of simple geometries (rectangular channels). For each of these simple geometries, a //voltage source// (drag flow) and a resistance (pressure | ||
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| - | In order to be able to solve the resulting system of equations | + | To solve the resulting system of equations, it must be reduced by incorporating |
| + | For a closed barrier zone, the mass flow into the closed inlet or out of the closed outlet can be set to zero. For an open barrier section and for wave screws, due to the lack of separation at the beginning and end of the section, the pressure difference between the channels is set to zero. | ||
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| - | For the closed barrier zone, the mass flow pointing towards the first node or away from the last node in the channel direction can be set to zero. If, on the other hand, an open barrier zone is calculated, it is sufficient to change the boundary condition in order to be able to calculate this design. In this case, the pressure difference between the first and last nodes of the solid and melt channels is set to zero due to the lack of geometric separation. | ||
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| - | ==== Pressure curve calculation for wave screws ==== | ||
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| - | The calculation of the pressure curve in wave zones is similar to the calculation of the //node point method// in barrier zones. The //node point method// is an analogue model of network theory from electrical engineering. | ||
| - | A network is formed from the geometry of the screw, which is made up of simple geometries (rectangular channels). A //voltage source// (drag flow) and a resistance (pressure flow) are defined for each of these simple geometries. A matrix is created and solved from the network of stress sources and resistances so that, for a given pressure difference in the zone, not only the flow rate but also the pressure is obtained for each of the simple geometries, so that the pressure curve over the zone is also known. | ||
| ===Further topics=== | ===Further topics=== | ||
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