Unterschiede
Hier werden die Unterschiede zwischen zwei Versionen angezeigt.
| Beide Seiten der vorigen RevisionVorhergehende ÜberarbeitungNächste Überarbeitung | Vorhergehende Überarbeitung | ||
| en:materialdaten:thermodynamische_daten [2025/05/15 13:53] – cschall | en:materialdaten:thermodynamische_daten [2025/05/27 16:13] (aktuell) – neelest | ||
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| Zeile 4: | Zeile 4: | ||
| The rheological data of the material are entered in the ‘Thermodynamics’ tab: | The rheological data of the material are entered in the ‘Thermodynamics’ tab: | ||
| - | * **Crystallite | + | * **Crystalline |
| * **Thermal conductivity**: | * **Thermal conductivity**: | ||
| - | * **Molecular structure**: | + | * **Molecular structure**: |
| - | * **Specific heat capacity**: This is only required for the melting range. It is modelled as a straight line with a constant gradient with a value extrapolated to 0 °C ($c_{p,0}$) and a gradient of $c_m$ per 1 °C. | + | * **Specific heat capacity**: This is only required for the melt. It is modelled as a straight line with a constant gradient with a value extrapolated to 0 °C ($c_{p,0}$) and a gradient of $c_{p,m}$ per 1 °C. |
| * **Melting enthalpy**: The enthalpy for melting the crystalline areas (only partially crystalline plastics) | * **Melting enthalpy**: The enthalpy for melting the crystalline areas (only partially crystalline plastics) | ||
| - | * **Solid enthalpy**: The enthalpy up to the crystallite | + | * **Solids |
| {{ : | {{ : | ||
| Zeile 19: | Zeile 19: | ||
| \[λ(T) = λ_0 + λ_m \cdot T\] | \[λ(T) = λ_0 + λ_m \cdot T\] | ||
| - | $λ_0$ represents the thermal conductivity resulting from the straight line describing the melting | + | $λ_0$ represents the thermal conductivity resulting from the straight line describing the melt range at 0 °C. The gradient of the thermal conductivity $λ_m$ can also be negative and must then be entered with a negative sign. The effective thermal |
| {{ : | {{ : | ||
| Zeile 26: | Zeile 26: | ||
| \[c_p(T) = c_{p,0} + c_{p, | \[c_p(T) = c_{p,0} + c_{p, | ||
| - | |||
| - | can be described. | ||
| The peak in the curve for semi-crystalline thermoplastics describes the temperature $T_K$ and thus the melting temperature. | The peak in the curve for semi-crystalline thermoplastics describes the temperature $T_K$ and thus the melting temperature. | ||
| Zeile 42: | Zeile 40: | ||
| This gives the amount of heat related to the unit mass that is required to increase the temperature of the polymer from $T_1$ to $T_2$. | This gives the amount of heat related to the unit mass that is required to increase the temperature of the polymer from $T_1$ to $T_2$. | ||
| - | Semi-crystalline materials, on the other hand, exhibit a gradual | + | In contrast, semi-crystalline materials exhibit a step-like |
| {{ : | {{ : | ||
| - | With indicating | + | When specifying an **amorphous |
| - | editable. | + | |
| - | formed by an enthalpy increase of the solid material | + | |
| - | $∆h_A$ : | + | |
| - | Amorphous thermoplastics: | + | Amorphous thermoplastics: |
| - | Semi-crystalline thermoplastics: | + | Semi-crystalline thermoplastics: |
| Plus the enthalpy increase in the melting range: $$∆h_{melt}=\frac{1}{2} c_{p,m} \cdot (T^2-{T_{K, | Plus the enthalpy increase in the melting range: $$∆h_{melt}=\frac{1}{2} c_{p,m} \cdot (T^2-{T_{K, | ||