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Mixing (process engineering)

technology Maturity 9-11

Mixing makes things the same.

Magnetic Stirrer.JPG
Magnetic Stirrer.JPG
You can stir pancake batter. You can stir milk into tea. This helps things work well. It makes food and things we use. Do you like to stir things?
Paddle-mixer.jpg
Paddle-mixer.jpg

37 words

Mixing makes things the same.

Magnetic Stirrer.JPG
Magnetic Stirrer.JPG

You can stir pancake batter to remove lumps. You can stir milk into tea. This helps things blend well.

Machine for incorporating liquids and finely-ground solids.JPG
Machine for incorporating liquids and finely-ground solids.JPG

Mixing can use many tools. Some tools stir liquids. Some tools blend dry powders. Big machines make things like food and medicine.

Mixing helps move heat or stuff. It can move heat from one part to another. This is how many things are made.

Sometimes things do not mix. They might stay separate instead. This is called segregation.

Paddle-mixer.jpg
Paddle-mixer.jpg

Mixing is used all over the world. It helps make things we use every day.

107 words

{ "text": "Mixing is a way to make different things blend together.

Magnetic Stirrer.JPG
Magnetic Stirrer.JPG
When things are mixed well, they become the same throughout. We call this being homogeneous. \n\nMixing happens in many ways. You might stir milk into coffee. You might stir pancake batter to break up lumps. In big factories, mixing is used to make many things. This includes food, medicine, and even plastic.
Machine for incorporating liquids and finely-ground solids.JPG
Machine for incorporating liquids and finely-ground solids.JPG
\n\nEngineers use different tools for different jobs. Some machines mix liquids. Some machines mix dry powders. For example, a dry blender can mix powders for 15 to 30 minutes.
Paddle-mixer.jpg
Paddle-mixer.jpg
\n\nSometimes, mixing needs more power. If a liquid is thick like honey, it takes more power to mix. If a powder has lumps, it needs strong forces to break them. This is called deagglomeration. \n\nMixing also helps move heat or mass. Mass is the \"stuff" that makes up matter. Moving mass helps things like fuel or medicine work well. Sometimes, things do not mix. They stay separate instead. This is called segregation. One example is the Brazil nut effect.", "media": [ "File:Magnetic Stirrer.JPG", "File:Machine for incorporating liquids and finely-ground solids.JPG", "File:Paddle-mixer.jpg" ] }

196 words

Mixing is a very important job in many factories. Engineers use it to make different materials blend together. When things are blended perfectly, they become homogeneous. This means the mixture is the same everywhere you look.

Magnetic Stirrer.JPG
Magnetic Stirrer.JPG
Mixing helps move heat or mass between different parts. Mass is the physical stuff that makes up everything. Without mixing, many things we use every day would not work.
Machine for incorporating liquids and finely-ground solids.JPG
Machine for incorporating liquids and finely-ground solids.JPG

There are different ways that mixing works. One way is called convective mixing. This happens when a machine moves material from one place to another. This helps spread parts around until they are randomly ordered. If the material has lumps, it needs more energy. Engineers use impact forces or shear forces to break lumps. Breaking these lumps is called deagglomeration.

High-Shear-Mixers-Granulators-Logo.gif
High-Shear-Mixers-Granulators-Logo.gif
This is like making a milkshake from milk and ice cream.

Engineers choose tools based on what they are mixing. They might mix liquids, solids, or even gases. For liquids, they use different types of impellers. These are blades that spin in the liquid. Some impellers move liquid in a circle. Others move it up and down.

Mixing - flusso assiale e radiale.jpg
Mixing - flusso assiale e radiale.jpg
If the liquid is thick like honey, it needs more power. If the liquids can dissolve in each other, they mix easily. Adding milk to coffee is a great example of this.

Mixing dry powders is also a very old job. Factories use dry blenders for things like food and medicine. These machines can be small for labs or huge for production. Some production units can hold 500 cubic feet of material.

Paddle-mixer.jpg
Paddle-mixer.jpg
Mixing these dry parts usually takes 15 to 30 minutes. The time depends on how heavy the parts are. Sometimes, mixing can go wrong. This is called segregation, where things separate instead of blending. One famous example is the Brazil nut effect.

Scientists use math to understand how mixing works. This math is part of chaos theory and ergodic theory. They use special software called computational fluid dynamics to help. This software can predict how a tank will behave.

Rsd - Copie.jpg
Rsd - Copie.jpg
They also use rules called correlations to guess stirring speeds. One famous rule was published by Zwietering in 1958. Another one was made by Mersmann in 1998. These help engineers build better machines for the world.

389 words

In the field of industrial process engineering, mixing is a fundamental unit operation. This process involves the manipulation of a heterogeneous physical system. A heterogeneous system is one where the different parts are not spread evenly. The goal of mixing is to make this system more homogeneous. A homogeneous mixture is one that is the same throughout.

Magnetic Stirrer.JPG
Magnetic Stirrer.JPG
Mixing allows for the transfer of heat or mass between different streams, components, or phases. Modern industrial processing almost always requires some form of mixing to function correctly.

The mechanism of mixing depends on the state of the materials involved. When mixing powders, engineers look at two different dimensions: convective mixing and intensive mixing. Convective mixing occurs when material is transported from one location to another within the mixer. This process distributes components over one another until they reach a randomly ordered state. For free-flowing and coarse materials, this is often sufficient. However, if materials are cohesive, they form lumps. To break these lumps, more energy is required through impact forces or shear forces. This process of breaking up lumps is known as deagglomeration.

High-Shear-Mixers-Granulators-Logo.gif
High-Shear-Mixers-Granulators-Logo.gif

Liquid-liquid mixing is another common operation. The equipment used depends on the nature of the liquids being blended. Single-phase blending involves liquids that are miscible, meaning they can dissolve in each other. An everyday example is adding milk to coffee. These liquids often have low viscosity, so the momentum of the liquid being added can cause enough turbulence to mix them. In contrast, blending in a viscous liquid like honey requires more mixing power per unit volume. Multi-phase mixing, where two liquids do not dissolve in each other, requires high-shear, low-flow mixers. These mixers create droplets of one liquid within the other.

Mixing - flusso assiale e radiale.jpg
Mixing - flusso assiale e radiale.jpg

Solid-solid mixing is one of the oldest unit operations in solids handling. Engineers use dry blenders to blend multiple dry components until they are homogeneous. These blenders can be used for pharmaceuticals, foods, chemicals, and cosmetics. They range in size from small half-cubic-foot laboratory models to massive 500-cubic-foot production units. Blending times for dry ingredients are often quite short, typically between 15 and 30 minutes. However, this time depends on the percentages of each component and their differences in bulk density. Mixing can be done in batch mixers or through more complex continuous dry-mix processes.

Paddle-mixer.jpg
Paddle-mixer.jpg

Liquid-solid mixing is used to suspend coarse solids or to break up fine lumps. For example, mixing granulated sugar into water involves suspending particles through the bulk motion of the fluid. When mixing fine powders like flour into water, the mixer must use a high shear field to disintegrate the lumps. In industry, concrete mixing is a vital liquid-solid process. It involves commingling cement, sand, gravel, and water into a homogeneous mass. Another specific goal is solid suspension, which improves mass transfer. This is often done by using axial-flow impellers to create momentum.

Rsd - Copie.jpg
Rsd - Copie.jpg

Engineers use specific measurements to track how well a solid-liquid suspension is working. They use the Relative Standard Deviation, or RSD, of the solid volume fraction. A perfect suspension would have an RSD of 0%. In many practical cases, an RSD of 20% or less is considered sufficient for homogeneity. Because measuring full-scale tanks is difficult, engineers often measure at a small scale. They then use a "scale-up" criterion to predict the results for a larger tank. They can also use computational fluid dynamics software to perform these calculations.

Machine for incorporating liquids and finely-ground solids.JPG
Machine for incorporating liquids and finely-ground solids.JPG

Understanding mixing requires complex mathematics. The math of mixing is highly abstract and is a part of ergodic theory and chaos theory. To estimate stirring speeds, engineers use correlations. One famous correlation was published by Zwietering in 1958. It provides a crude estimate for "bad" quality suspensions where particles do not stay suspended. Other researchers, such as Mersmann in 1998, have provided different correlations. More recently, machine learning has been used to build models that are even more accurate than these classical methods. This mathematical foundation allows engineers to design reliable equipment for global industries.

675 words
🖼️ Images & Media (14)
File:Agitated vessel.svg
Agitated vessel.svg
File:Machine for incorporating liquids and finely-ground solids.JPG
Machine for incorporating liquids and...
File:Rsd - Copie.jpg
Rsd - Copie.jpg
File:Fluidized Bed Reactor Graphic.svg
Fluidized Bed Reactor Graphic.svg
File:Magnetic Stirrer.JPG
Magnetic Stirrer.JPG
File:Mixing - flusso assiale e radiale.jpg
Mixing - flusso assiale e radiale.jpg
File:Paddle-mixer.jpg
Paddle-mixer.jpg
File:Paddle-Mixers-Logo.gif
Paddle-Mixers-Logo.gif
File:V-Blender-Logo.gif
V-Blender-Logo.gif
File:Ribbon-Blender-Logo.gif
Ribbon-Blender-Logo.gif
File:Double-Cone-Blender-Logo.png
Double-Cone-Blender-Logo.png
File:High-Shear-Mixers-Granulators-Logo.gif
High-Shear-Mixers-Granulators-Logo.gif

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