Unterschiede

Hier werden die Unterschiede zwischen zwei Versionen angezeigt.

Link zu dieser Vergleichsansicht

Beide Seiten der vorigen RevisionVorhergehende Überarbeitung
Nächste Überarbeitung
Vorhergehende Überarbeitung
en:berechnungen:wandgleitende_materialien [2024/07/23 19:30] neelesten:berechnungen:wandgleitende_materialien [2026/07/14 09:55] (aktuell) cschall
Zeile 1: Zeile 1:
-======Wall-slipping materials======+======Wall-slipping Materials ======
  
-FIXME+When considering flow processes in rheometers, but also in practical components such as dies, plasticizing units, and between roll gaps, it is usually assumed that the flowing melt adheres to the wall. In the case of polymer melts, experience shows that this applies to the majority of materials. However, there are some materials, including high-viscosity polyethylenes or polyvinyl chloride (PVC, often provided with external lubricants for gentler processing), which tend to exhibit wall-slip effects at high shear stresses or high shear rates.
  
-===== Wall-slipping materials =====+When the transition from wall adhesion to wall slip occurs, most equations used to calculate a flow are no longer valid. Since this is a very complex phenomenon that depends on viscosity, shear rate, shear stress, temperature, and pressure, a simple and stable empirical model is used.
  
-When considering the flow processes in rheometers but also in practical modules +Due to the complex relationships involved, the influence on the pressure-throughput behavior is neglected; insteadonly the reduction in shear dissipation is taken into account in the temperature calculation.
-such as dies, plasticating units and between gaps, the flowing melt is presumed to be +
-wall adhering. In polymer melting this is true for the majority of the materials. +
-However, there are some materialsamong which the ultrahigh molecular +
-polyethylene of high density (HDPE) and the economically important polyvinylchloride +
-(PVC, frequently provided with outward lubricants for a gentle processing), which are +
-wall slipping under certain conditions.+
  
-In order to calculate the plastisicating process with the simulation programs **REX** and +In REX/PSI, wall slip occurs above a critical shear stress. [[..:materialdaten:rheologische_materialdaten|This can be specified as a linear equation as a function of temperature]]. REX/PSI therefore requires the input of two pairs of values for the critical shear stress and the corresponding temperature.
-**PSI**the option “wall slipping” has been added in the software. For this, critical shear stress values must be entered in the rheological material data as explained in the +
-Chapter Rheological Material Data.+
  
-When choosing the menu item Wall slipping**REX/PSI** considers that wall slipping +For the dissipation calculation, the following applies:
-occurs above the critical wall shear stress. For this, the shear stresses at the barrel +
-wall and the root surface are evaluated and limited to a value whose maximum is +
-equal to the critical shear stress at the wall. +
  
-$$τ_ {WH,S} > τ_{krit⇒ τ_S τ_{krit}$$+$$ \tau_0 = \eta_0 \cdot \dot{\gamma$$ 
 +$$ if $$ 
 +$$ \tau_0 \tau_{crit}(T) $$ 
 +$$ then $$ 
 +$$ \Delta \tau \tau_0 - \tau_{crit}(T) $$ 
 +$$ \tau_{target} = \tau_{crit}(T) + \Delta \tau \cdot k_{mat} $$ 
 +$$ with $$ 
 +$$ 0 < k_{mat} \leq 1 $$ 
 +$$ it~follows~that $$ 
 +$$ \eta_{wall~slipping} = \frac{\tau_{target}}{\dot{\gamma}} $$
  
-This limitation affects the flow profile in the screw channel and decreases the local +If the local shear stress is greater than the critical shear stress, the shear stress is reduced by means of the factor $k_{mat}$​. A value of $0$ corresponds to a hard limit at $\tau_{krit}$​, while a value of $1$ would mean no wall slip. Due to the reduced shear stress, a reduced representative viscosity can in turn be calculated, which is used for calculating dissipation. Wall slip therefore leads to a reduction in temperature.
-pressure gradient. Thus, the pressure build-up capacity decreases but also the +
-pressure consumption of overridden screw sections+
  
-**Platzhalter Abb9.36Druckverlauf mit und ohne Wandgleiten**+**Important:** 
 + 
 +If wall slip is checked in the material data, the values entered there are usedIf wall slip is unchecked there, wall slip is still calculated using predefined values, since experience has shown that, especially for high-viscosity polymers with correspondingly high shear stresses, an excessively high temperature would otherwise be calculatedThe default values used in this case are a critical shear stress of $\tau_{krit}=100 kPa$ and $k_{mat}=0,25$ 
 + 
 + 
 +===Further topics=== 
 +  * [[en:berechnungen:einfache_berechnung|]] 
 +  [[en:berechnungen:durchsatz|]] 
 +  [[en:berechnungen:druckverlauf|]] 
 +  * [[en:berechnungen:aufschmelzverlauf|]] 
 +  * [[en:berechnungen:temperaturverlauf|]] 
 +  * [[en:berechnungen:leistung_und_schubspannungen|]] 
 +  * [[en:berechnungen:verweilzeit|]] 
 +  * [[en:berechnungen:verweilzeitverteilung|]] 
 +  * [[en:berechnungen:materialabbau|]] 
 +  * [[en:berechnungen:faserlaengenabbau|]] 
 +  * [[en:berechnungen:entgasungskennzahlen|]] 
 +  * [[en:berechnungen:festigkeitsberechnung|]] 
 +  * [[en:berechnungen:schlepp-druckstroemung|]] 
 +  * [[en:berechnungen:feststofffoerderung|]] 
 +  * [[en:berechnungen:verarbeitung_von_mischungen|]] 
 +  * [[en:berechnungen:wandgleitende_materialien|]] 
 +  * [[en:berechnungen:nutbuchsenberechnung|]] 
 +  * [[en:berechnungen:kompressionsverhaeltnisse|]]