Siedepunktserhöhung
ΔT_b = K_b · m · i, kolligative Eigenschaft.
Tilgungsplan
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Wachstum über die Zeit
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Einführung
Boiling Point Elevation — ΔT_b = K_b · m · i colligative property. Enter Kb (°C·kg/mol), Molality (mol/kg), Van't Hoff factor (i) to get an instant, accurate result.
Formel
Boiling point elevation: ΔT = Kb × m × i, where Kb is the ebullioscopic constant, m is molality, and i is the van't Hoff factor.
Schritt für Schritt
- Enter the Kb (°C·kg/mol).
- Enter the Molality (mol/kg).
- Enter the Van't Hoff factor (i).
- Click Calculate to see your result instantly.
Praxisbeispiel
Example: With Kb (°C·kg/mol) = 0.512, Molality (mol/kg) = 1, Van't Hoff factor (i) = 1, the Boiling Point Elevation gives Delta T: 0.512.
Häufig Gestellte Fragen
What is the van't Hoff factor?
Why does adding solute raise the boiling point?
What inputs does the Boiling Point Elevation need?
How accurate is the Boiling Point Elevation?
Is the Boiling Point Elevation free to use?
Über Siedepunktserhöhung
The Boiling Point Elevation uses a real, verifiable formula — Boiling point elevation: ΔT = Kb × m × i, where Kb is the ebullioscopic constant, m is molality, and i is the van't Hoff factor. — so results are accurate every time, not an approximation.