Coagulation is a process of colloid particles merging into bigger ones. By removing the charge form a colloid ion, by increasing the temperature or by increasing electrolyte concentration, colloid particles will gather into bigger groups precipitate will emerge. Precipitate that is formed in this way (coagulate) is amorphic and considerably polluted with adsorbed pollutants.
Calomel electrode is a type of half cell in which the electrode is mercury coated with calomel (Hg2Cl2) and the electrolyte is a solution of potassium chloride and saturated calomel. In the calomel half cell the overall reaction is
Table: Dependence of potential of calomel electrode upon temperature and concentration of KCl according to standard hydrogen electrode
Potential vs. SHE / V | |||
---|---|---|---|
t / °C | 0.1 mol dm-3 | 3.5 mol dm-3 | sat. solution |
15 | 0.3362 | 0.254 | 0.2511 |
20 | 0.3359 | 0.252 | 0.2479 |
25 | 0.3356 | 0.250 | 0.2444 |
30 | 0.3351 | 0.248 | 0.2411 |
35 | 0.3344 | 0.246 | 0.2376 |
Carnot cycle is the most efficient cycle of operations for a reversible heat engine. Published in 1824 by French physicist Nicolas Léonard Sadi Carnot (1796-1832), it consists of four operations on the working substance in the engine:
1-2: Isothermal expansion at thermodynamic temperature T1 with heat QH taken in.
2-3: Adiabatic expansion with a fall of temperature to T2.
3-4: Isothermal compression at temperature T2 with heat QC given out.
4-1: Adiabatic compression at temperature back to T1.
According to the Carnot principle, the efficiency of any reversible heat engine depends only on the temperature range through which it works, rather than the properties of the working substances.
Critical volume is the volume of a fixed mass of a fluid at critical temperature and pressure.
Digestion or precipitate ageing happens when freshly formed precipitate are left, usually at a higher temperature, in a solution from which it is precipitated. It results in cleaner and bigger particles.
Endothermic reactions are the ones in which heat is absorbed and are facilitated by an increase in temperature (ΔH° > 0).
If the reaction is endothermal in one direction, in the opposite direction the reaction is exothermal.
Equation of state is an equation relating the pressure, volume, and temperature of a substance or system. Equation of state for ideal gas
where p is pressure, V molar volume, T temperature, and R the molar gas constant (8.314 JK-1mol-1).
The volume of a fixed mass of gas at a constant pressure expand by the constant fraction of its volume at 0 °C. For each Celsius or kelvin degree its temperature is raised. For any ideal gas fraction it is approximately 1/273. This can be expressed by the equation
were V° is the volume at 0°C and V is its volume at t°C.
This is equivalent to the statement that the volume of a fixed mass of gas at a constant pressure is proportional to its thermodynamic temperature
This law also know as Gay-Lussac’s law.
An equation similar to the one given above applies to pressures for ideal gases:
For a mixture of substances, the chemical potential of constituent B (μB) is defined as the partial derivative of the Gibbs energy G with respect to the amount (number of moles) of B, with temperature, pressure, and amounts of all other constituents held constant.
Also called partial molar Gibbs energy. Components are in equilibrium if their chemical potentials are equal.
Generalic, Eni. "Kritična temperatura." Croatian-English Chemistry Dictionary & Glossary. 29 June 2022. KTF-Split. {Date of access}. <https://glossary.periodni.com>.
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