10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

10 steps to a green and more efficient production

Carbon reduction for green production - all you need to know
10 steps to green compressed air production

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Wine glasses in a row  full of red wine

How does wine filtration affect the color of the wine?

Discover how the correct filter can help maintain the desired color of the end product.

Understanding filtration and wine color dynamics

Winemaking requires process filtration to remove particles and microorganisms that could compromise the wine's clarity, stability, and quality. The filtration specifications, especially the filters' pore size, play a significant role in determining the final appearance and sensory profile of the wine.

 

The wine color is more than just a visual pleasure; it's a story of the grape's journey, the winemaker's craft, and the intricate chemistry that unfolds during the winemaking process. The color of the wine can be an indicator of its identity, age, and quality. The science of wine color revolves around phenolic compounds such as anthocyanins in red wines, which are responsible for the vibrant red, blue, and purple shades, and flavonoids in white wines, contributing to their lighter tones.

The balancing act: filtration, fining and color

While filtration is essential for removing unwanted particles, its impact on wine color is generally less pronounced than that of fining. Fining is another critical process aimed at improving the wine's clarity and sensory appeal by adding substances that bind to and precipitate out suspended particles, including proteins, tartrates, and phenolics. However, excessive fining can significantly alter a wine's character, stripping away not just color but also mouthfeel, aroma, and flavor. The art of fining lies in removing just enough of these compounds to achieve the desired clarity without diminishing the wine's vibrant color or rich flavors. Moreover, the over-removal of tannins in red wines during the fining process can adversely affect their aging potential.

Material matters: The evolution of filtration membranes

BME pleated PES membrane filter cartridge vertical view

The choice of filtration material is crucial in preserving the wine's color and character. Initially, nylon membranes were touted as the ideal solution for final wine filtration. Yet, it became evident that nylon could adversely affect the wine's color. Recognizing this, the industry has shifted towards more color-friendly alternatives: Polyether Sulfone (PES) and PVDF Membranes: These materials are now preferred for their gentler impact on wine color. Their chemical composition and structure allow for effective filtration without compromising the wine's natural hue.

Final filtration specifications

  • White Wine Filtration: A common practice is to filter white wines at a pore size of 0.45 μm. This level of filtration provides a balance, ensuring clarity while having a minimal impact on the wine's color and overall sensory attributes.

     

  • Red and Aromatic Wine Filtration: For red and important aromatic wines, a slightly larger pore size ranging from 0.65 to 0.8 μm is preferred. This consideration helps to retain the wine's robust color and aromatic complexity, which are critical to its character.

Choosing the right filter

At  Atlas Copco we stay at the forefront of liquid filtration technology, knowing that the right filter can make all the difference in preserving the wine's essence. Our liquid process filters, including those made from polyether sulfone and PVDF, are designed to meet the specific needs of winemakers who aim to maintain the color and complexity of their wines.

Selecting the appropriate filter depends on the type of wine, its stage in the production process, and the desired outcome in terms of clarity and color retention. Our team of experts is available to guide winemakers through this selection process, ensuring that the filtration system aligns with their production goals and standards. By understanding the subtle balance between filtration, wine color, and character, winemakers can make informed decisions that enhance the wine's inherent beauty and enjoyment.

Process Filters Food & Beverages