Escrito por estudiantes que aprobaron Inmediatamente disponible después del pago Leer en línea o como PDF ¿Documento equivocado? Cámbialo gratis 4,6 TrustPilot
logo-home
Resumen

Summary Food Engineering (grade: 8.5)

Puntuación
-
Vendido
8
Páginas
22
Subido en
04-11-2019
Escrito en
2018/2019

Complete summary of the course Food Engineering (FPE20306), including theory discussed in practicals. Complete samenvatting van het vak Food Engineering (FPE20306), inclusief de theorie van de practica.

Institución
Grado

Vista previa del contenido

Summary Food Process
Engineering
1. Food material properties
Food: heterogenous system

- Homogenous parts: phases (separated by clear boundaries)
o Properties are considered uniform

State of phase: dependent on

- Pressure
- Temperature
- Composition

After critical point: No distinguishment between gas and liquid

Gases
Mixture of gases  Gases have partial pressures

- Sum of all pressures is overall pressure

Vapours = Gases which tend to condense under conditions close to room temperature and pressure

- Saturated water vapour pressure is dependent on the temperature
o Air that is at equilibrium with water (saturated air)

Boiling point elevation: Product becomes more concentrated because of evaporation, results in a
higher boiling point

Liquids
Liquids have a viscosity

- Newtonian = Viscosity is constant
- At a certain concentration, dissolved components start to interact with each other
o Yield stress will form, liquid seems a solid (but can be poured)
- No long-range ordering of molecules: amorphous

Gels and rubbers: Much stronger solid behaviour, dominate above liquid properties

- Cannot be deformed without limit like liquids (breakage)

Glasses: viscosity is so high that for all practical purposes the material becomes solid

- Flows immeasurably slowly
- All fluids and solutions can become glassy if cooled down quick enough

Solids
Crystalline state

- Very ordered



1

,Freezing point depression: More concentrated solution  Lower freezing point

State diagram = Modified phase diagram that also shows kinetic
limitations (glass transition)

Phase diagram >

< State diagram



Lever rule




Chemical potential μ [J/mol]J/mol]]

- Depends on pressure, volume, temperature and composition
o Standard chemical potential is reference state
- Equilibrium, when chemical potentials are equal
- Mixture of gases: xi is partial pressure divided by total pressure p

RH = pw / pw.sat

- Aw is eual to RH of vapour that is at equilibrium with the solution

Ideal solutions = Activity is equal to the molar fraction

- γ activity coefficient is 1 for ideal solutions
o γ < 1: strong interaction, good solubility γ > 1: poor interaction
- Low concentration of component  γ is constant  Henry’s law applies
o Kh is Henry’s coefficient

Volume fraction of water φw

Parameter that expresses the interaction between water and dissolved components χ

- χ = 0, Interaction between matrix and water is the same

2

, - χ<0 Solutes have great affinity for water χ>0 Solutes do not like moisture

Sorption isotherm = Relation between RH and amount of moisture in solid

- Moisture content is not the same as the affinity

Affinity: activity, depends on:

- Temperature
- Composition

Glasses -> Not in equilibrium with its surroundings

Water vapour sorption isotherm = Relation between the amount of moisture in the product and its
water activity (S-shaped relation)

Δhem should be in J/mol, when put in equations

2. Mass transfer
Glassy state: crispy behaviour

Hysteresis = Difference in adsorption and desorption

- Caused by the different layers in a food product (in mesostructure)

Requirements mass transfer

- Driving force
o Difference in concentration, T, p
- Molecules should be mobile: Brownian motion

Diffusion = Motion of individual molecules through a stagnant layer of other molecules

- Because of gradient in concentration
- Motion is caused by thermal motion of every molecule
o The higher the temperature, the larger the motion
o Result of random motion of the diffusing component
- Rate of diffusion in gas is 3 orders of magnitude smaller than in liquid (less collisions)
o In solid: only little vibration
- Steady state: Driving force of diffusion is equal to friction

Friction

- Dependent on difference in velocity between diffusing molecule u1 and surroundings u2
o u2 is often 0 , because in most systems the environment does not move
- x2 is mole fraction of the surroundings
- ζ12 friction coefficient
o The larger the coefficient, the larger the friction, the more difficult to move through
the matrix

D12 = RT / ζ12 = Maxwell-Stefan diffusion coefficient [m2/s]

Ṅ1 Molar flux [mol/m2s]

V̇1 Volume flux [m3/m2s] = Same equation as molar flux but without C1


3

Escuela, estudio y materia

Institución
Estudio
Grado

Información del documento

Subido en
4 de noviembre de 2019
Número de páginas
22
Escrito en
2018/2019
Tipo
RESUMEN

Temas

$4.67
Accede al documento completo:

¿Documento equivocado? Cámbialo gratis Dentro de los 14 días posteriores a la compra y antes de descargarlo, puedes elegir otro documento. Puedes gastar el importe de nuevo.
Escrito por estudiantes que aprobaron
Inmediatamente disponible después del pago
Leer en línea o como PDF

Conoce al vendedor
Seller avatar
chrisberendsen

Conoce al vendedor

Seller avatar
chrisberendsen Wageningen University
Seguir Necesitas iniciar sesión para seguir a otros usuarios o asignaturas
Vendido
10
Miembro desde
7 año
Número de seguidores
9
Documentos
2
Última venta
3 año hace

0.0

0 reseñas

5
0
4
0
3
0
2
0
1
0

Por qué los estudiantes eligen Stuvia

Creado por compañeros estudiantes, verificado por reseñas

Calidad en la que puedes confiar: escrito por estudiantes que aprobaron y evaluado por otros que han usado estos resúmenes.

¿No estás satisfecho? Elige otro documento

¡No te preocupes! Puedes elegir directamente otro documento que se ajuste mejor a lo que buscas.

Paga como quieras, empieza a estudiar al instante

Sin suscripción, sin compromisos. Paga como estés acostumbrado con tarjeta de crédito y descarga tu documento PDF inmediatamente.

Student with book image

“Comprado, descargado y aprobado. Así de fácil puede ser.”

Alisha Student

Preguntas frecuentes