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en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente [2025/12/22 15:32] – [Blister Elements] neelesten:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente [2026/04/07 14:22] (aktuell) – [Kneading Elements] pka
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 ====== Screw Elements ====== ====== Screw Elements ======
- 
- 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Schnecken-Elemente ]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Gewindeelmente]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Knetelemente]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Exzentrische Knetblöcke]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Schubkantenelement]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Schneckenmischelemente (fördernd- und rückfördernd)]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:MP-Elemte]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Zahnmischelemente]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Blisterelemente]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Distanzhülsen]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Übergangsknetelemente]] 
-  *[[en:eingabe_der_maschinenparameter_und_konfiguration:Schneckenelemente:Übergangsgewindeelemente]] 
- 
  
 The following screw elements are implemented in SIGMA: The following screw elements are implemented in SIGMA:
-Threaded elements +  * Threaded elements 
-Pushing flight elements +  Pushing flight elements 
-Threaded mixing elements (conveying/ reconveying) +  Threaded mixing elements (conveying / reconveying) 
-V-Mixing elements +  V-Mixing elements 
-Kneading blocks +  Kneading blocks 
-- Shouldered kneading blocks +  Eccentrical kneading blocks 
-Eccentrical kneading blocks +  Distance elements 
-Distance elements +  Blister elements 
-Blister elements +  Tooth mixing elements 
-Tooth mixing elements+  * Transition Elements 
 +  * Transition Conveying Elements
  
 To define a new screw element, choose the //New element// button in the //Machine configuration// and select the kind of element you would like to define. Then the dialog box for entering the values will open up. To define a new screw element, choose the //New element// button in the //Machine configuration// and select the kind of element you would like to define. Then the dialog box for entering the values will open up.
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 As with barrel elements, already created screw elements can be modified by opening the corresponding dialog through double-clicking the element to be edited, by selecting the icon //Edit properties of the selected element//, or by making the desired changes directly in the //Element Properties// list. As with barrel elements, already created screw elements can be modified by opening the corresponding dialog through double-clicking the element to be edited, by selecting the icon //Edit properties of the selected element//, or by making the desired changes directly in the //Element Properties// list.
  
-For seven of the ten available elements, the dialogs provide the option to define the geometry precisely through additional inputs. As an alternative to specifying the volume correction factor, the actual screw diameter and either the pitch angle or the root angle of the screw profile are entered, with the other angle being calculated automatically.+For seven of the ten available elements, the dialogs provide the option to define the geometry precisely through additional inputs. As an alternative to specifying the volume correction factor, the actual screw diameter and either the pitch angle or the root angle of the screw profile are entered, with the other angle being calculated automatically. Further details about the geometry of tightly intermeshing screw elements can be found in the reference manual (s. [[en:grundlagenhandbuch:geometriegroessen_des_gleichdrall-doppelschneckenextruders#tightly_intermeshing_screw_elements | Tightly Intermesching Screw Elements]]).
  
 ===== Threaded Elements ===== ===== Threaded Elements =====
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   * The **length** of the screw element and the **pitch** can be entered either in absolute values ([mm]) or in multiples of the grid dimension.   * The **length** of the screw element and the **pitch** can be entered either in absolute values ([mm]) or in multiples of the grid dimension.
   * The **volume correction factor** is a measure of the deviation of the theoretically close-fitting geometry used in SIGMA from the actual geometry.   * The **volume correction factor** is a measure of the deviation of the theoretically close-fitting geometry used in SIGMA from the actual geometry.
-  * (As an alternative to the volume correction factor, **additional inputs** can be specified to define the geometry exactly. In this case, the **actual screw diameter** and either the **cutting angle** or the **base angle** of the screw profile must be entered. The other angle is calculated.+  * (As an alternative to the volume correction factor, **additional inputs** can be specified to define the geometry exactly. In this case, the **actual screw diameter** and either the **cutting angle** or the **base angle** of the screw profile must be entered. The other angle is calculated.)
  
  
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 ===== Pushing Flight Elements ===== ===== Pushing Flight Elements =====
  
-The geometry of push edge elements differs from the geometry of conveyor elements only in that it has an additional free surface. In SIGMA, this surface is characterised by two parameters, the **angle of inclination** $$\phi_s$$ and the **radius of curvature r**. Otherwise, the same specifications as for conveyor and return elements apply. +The geometry of push edge elements differs from the geometry of conveyor elements only in that it has an additional free surface. In SIGMA, this surface is characterised by two parameters, the **angle of inclination** $$\phi_s$$ and the **radius of curvature r**. Otherwise, the same specifications as for conveyor and return elements apply. Further details about the geometry of pushing flight elements can be found in the reference manual (s. [[en:grundlagenhandbuch:geometriegroessen_des_gleichdrall-doppelschneckenextruders#pushing_flight_elements | Pushing Flight Elements]]).
 {{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_009.png?nolink |}} {{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_009.png?nolink |}}
 {{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_010.png?nolink |}} {{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_010.png?nolink |}}
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 ===== Threaded Mixing Elements (Conveying and Reconveying) ===== ===== Threaded Mixing Elements (Conveying and Reconveying) =====
  
-Unlike conveyor elements, screw mixing elements have grooves cut into their flanks. In addition to the pitch and number of grooves, the geometry of the groove in the normal section must also be defined. To ensure maximum flexibility, the geometry of the groove has been simplified by using a rectangular cross-section (characterised by groove width b and groove depth h).+Unlike conveyor elements, screw mixing elements have grooves cut into their flanks. In addition to the pitch and number of grooves, the geometry of the groove in the normal section must also be defined. To ensure maximum flexibility, the geometry of the groove has been simplified by using a rectangular cross-section (characterised by groove width b and groove depth h). Further details about the geometry of threaded mixing elements can be found in the reference manual (s. [[en:grundlagenhandbuch:geometriegroessen_des_gleichdrall-doppelschneckenextruders#screw_mixing_elements | Threaded Mixing Elements]]).
  
 {{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_011.png?nolink |}} {{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_011.png?nolink |}}
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 {{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_005.png?nolink |}} {{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_005.png?nolink |}}
  
-Unlike conventional kneading blocks, **shoulder kneading block** have narrower kneading discs, which creates a larger leakage gap. In SIGMA, the width of the kneading discs of the shoulder kneading elements is assumed to be half the width of the conventional kneading blocks. It follows that the input masks for the two elements do not differ.+Unlike conventional kneading blocks, **shoulder kneading block** have narrower kneading discs, which creates a larger leakage gap. In SIGMA, the width of the kneading discs of the shoulder kneading elements is assumed to be half the width of the conventional kneading blocks. It follows that the input masks for the two elements do not differ. Further details about the geometry of shouldered kneading blocks can be found in the reference manual (s. [[en:grundlagenhandbuch:geometriegroessen_des_gleichdrall-doppelschneckenextruders#shouldered_kneading_blocks | Shouldered Kneading Blocks]]).
  
 ===== Eccentric Kneading Elements ===== ===== Eccentric Kneading Elements =====
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 $$cl = \frac{a}{D_z/2} \tag{3.41}$$ $$cl = \frac{a}{D_z/2} \tag{3.41}$$
 +
 +===== Tooth Mixing Elements =====
 +
 +The entering mask for tooth mixing elements is shown in the figure. SIGMA makes the simplifying assumption that the gap between the toothed discs is negligible.
 +
 +{{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_015.png?nolink |}}
 +{{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_016.png?nolink |}}
 +
 +===== Transition Elements =====
 +
 +While defining **Transition kneading elements** a few aspects are to be considered:
 +  * In order to define kneading blocks completely, the //Number of discs// of one kneading block is to determine in addition to //Length// and //Diameter//.
 +  * Furthermore, the //Staggering angle// has to be entered for the discs. The staggering angle is only permitted in the range of
 +
 +$$-\frac{180°}{i} \leq \text{Versatzwinkel} \leq \frac{180°}{i}$$
 +
 +with i as **Number of flights** of the element. 2-3 describes a transition element with double-flighted to triple-flighted construction, and 3-2 vice versa. A negative angle identifies a reconveying kneading block, in contrast positive angle characterizes a conveying kneading block. Neutral kneading blocks are indicated by a Staggering angle of $$\frac{180°}{i}$$. The transition angle $$\alpha'$$ describes the staggering of the last disc.
 +
 +{{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_023.png?nolink |}}
 +
 +===== Transition Conveying Elements =====
 +
 +The input mask for defining and changing threaded elements (both conveying and re-conveying elements) contains all values that are necessary for the unambiguous description of tightly intermeshing profiles.
 +
 +What is meant in detail by the variables to be defined can be seen from the drawing of an element pair in the illustration.
 +
 +Please note the following when entering the values:
 +
 +  * The centerline distance cannot be changed in this mask, as it is predetermined by the general machine data already entered.
 +  * The input of the **length** of the screw element and the **pitch** can be done either in absolute values ([mm]) or in multiples of the pitch.
 +  * The following transitions can be defined for the number of gears:
 +    * 1-2: Transition from single pitch to double pitch
 +    * 2-1: Transition from double pitch to single-pitch
 +    * 2-3: Transition from double pitch to triple pitch
 +    * 3-2: Transition from triple pitch to double pitch
 +  * The **volume correction factor** is a measure of the deviation of the theoretically tightly intermeshing geometry used in SIGMA from the real geometry.
 +  * (As an alternative to the volume correction factor, **additional inputs** for the exact definition of the geometry can be specified). In this case the **real screw diameter** and either the **flight angle** or the **base angle** of the screw profile. The other angle is calculated.)
 +
 +As soon as all necessary entries have been made, a direct preview is generated from the static preview.
 +
 +{{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_024.png?nolink |}}
 +
 +{{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_025.png?nolink |}}
 +
 +{{ :en:eingabe_der_maschinenparameter_und_konfiguration:schneckenelemente:en_sigma150_dlg_eingabe_der_maschinenparameter_und_konfiguration_schneckenelemente_026.png?nolink |}}