Unterschiede
Hier werden die Unterschiede zwischen zwei Versionen angezeigt.
| Beide Seiten der vorigen RevisionVorhergehende ÜberarbeitungNächste Überarbeitung | Vorhergehende Überarbeitung | ||
| en:eingabe_der_schneckendaten:wave-zone [2024/10/17 16:24] – [General input] neelest | en:eingabe_der_schneckendaten:wave-zone [2025/05/05 15:39] (aktuell) – [Entering the web recesses] cschall | ||
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| Zeile 10: | Zeile 10: | ||
| Inputs similar to a metering zone are required as the basic geometry. | Inputs similar to a metering zone are required as the basic geometry. | ||
| - | {{ : | + | {{ : |
| REX/PSI allows the definition of 1 to 4 channels. However, wave screws are typically a two-channel screw concept. | REX/PSI allows the definition of 1 to 4 channels. However, wave screws are typically a two-channel screw concept. | ||
| With single-flight wave screws, there is a risk of clogging in the channel and are therefore not recommended. | With single-flight wave screws, there is a risk of clogging in the channel and are therefore not recommended. | ||
| - | ==== Input of the shaft blocks | + | ==== Input of the wave blocks |
| Once the basic geometry data has been entered, the next step is to define the wave blocks. Each channel of the zone must be defined separately. The number of waves per channel is arbitrary, but the total length of the zone must not be exceeded. However, it should be noted that the waveform (sine, linear, sawtooth) must be specified and that the dimensioning can be done either in the channel direction or parallel to the axis. Each wave is defined by the distance to the previous wave (or to the start of the zone), by the length of the wave, the channel depth $h_{min}$ at the so-called wave crest and the channel depth $h_{max}$ **behind** the wave. The channel depth of the previous zone is present before the first wave. | Once the basic geometry data has been entered, the next step is to define the wave blocks. Each channel of the zone must be defined separately. The number of waves per channel is arbitrary, but the total length of the zone must not be exceeded. However, it should be noted that the waveform (sine, linear, sawtooth) must be specified and that the dimensioning can be done either in the channel direction or parallel to the axis. Each wave is defined by the distance to the previous wave (or to the start of the zone), by the length of the wave, the channel depth $h_{min}$ at the so-called wave crest and the channel depth $h_{max}$ **behind** the wave. The channel depth of the previous zone is present before the first wave. | ||
| - | **Platzhalter Dialog Wellenblock** | + | {{ : |
| - | ==== Entering the web recesses | + | ==== Entering the web slots==== |
| - | In addition to the shaft blocks, | + | In addition to the wave blocks, |
| - | + | ||
| - | **Platzhalter Dialog Stegaussparungen** | + | |
| There are typically 2 wave concepts, which are briefly introduced. | There are typically 2 wave concepts, which are briefly introduced. | ||
| Zeile 31: | Zeile 29: | ||
| === Double-Wave-Screw === | === Double-Wave-Screw === | ||
| - | A double-wave screw is a two-flight wave screw concept. The implementation in REX is relatively simple here, as the secondary flight is " | + | A double-wave screw is a two-flight wave screw concept. The implementation in REX is relatively simple here, as the secondary flight is " |
| - | {{ : | + | {{ : |
| === Energy-Transfer-Screw === | === Energy-Transfer-Screw === | ||
| - | The energy transfer screw is also a two-flight screw concept. In comparison to the double-wave screw, however, there is no division into main and secondary flights, but the flights are always | + | The energy transfer screw is also a two-flight screw concept. In comparison to the double-wave screw, however, there is no division into main and secondary flights, but the flights are always |
| - | The speed can also be increased due to the lower conveying capacity compared to the double-wave screw. This allows a high melting capacity and a high mixing effect at the same time, especially with high throughputs. | + | The screw speed can also be increased due to the lower conveying capacity compared to the double-wave screw. This allows a high melting capacity and a high mixing effect at the same time, especially with high throughputs. |
| - | {{ : | + | {{ : |
| + | |||
| + | {{ : | ||
| < | < | ||
| - | * Pape, Jens: Fundamentals of process simulation of single-screw concepts for high-performance plasticising, Dissertation, | + | * Pape, Jens: Grundlagen der Prozesssimulation von Einschneckenkonzepten zur Hochleistungsplastifizierung, Dissertation, |
| - | * Dörner, Marius: Wave screws in single-screw extrusion, dissertation, University of Paderborn, 2022 | + | * Dörner, Marius: Wave-Schnecken in der Einschneckenextrusion, Dissertation, Universität |
| - | * Schall, Christoph: | + | * Schall, Christoph: |
| </ | </ | ||
| + | ===Further topics=== | ||
| + | ==Input of the screw== | ||
| + | * [[en: | ||
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| + | ==Input of shearing and mixing parts== | ||
| + | * [[en: | ||
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| + | ==Non-return valves (PSI)== | ||
| + | * [[en: | ||
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