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Is Wool Sustainable?
Rethinking Livestock-Based Textiles For A Greener Future

Published March 26, 2025

Reading time: 7 minutes
By Lesia Tello & Jordy Munarriz

Water Consumption in Wool Production: A Critical Issue for World Water Day

Wool production is highly water-intensive, especially during the scouring and dyeing stages. Wool is washed with large quantities of heated water to remove grease and dirt, producing wastewater loaded with organic matter and chemicals [3]. Without proper treatment, this wastewater contributes to eutrophication and water pollution.

A study in 2022 conducted a water footprint assessment of six wool textile companies in China. Their results were alarming: up to 120 m³ of water is used to dye just one ton of wool. The most significant pollutants found in the wastewater included total nitrogen, ammonia, COD, and phosphates [4].

They introduced two key indicators:

  • Water Scarcity Footprint (WSF): how much pressure a product places on local water availability.
  • Water Eutrophication Footprint (WFeu): the potential for a product to cause water pollution.

Only one of the six companies studied reached "platinum" status in both low water use and low pollution, showing how widely performance varies across the wool industry. These findings reinforce the need for transparency, regulation, and better water treatment technology in the animal fiber supply chain.

Energy Use and the Myth of Low Impact Fibers

Post-farm processing accounts for 75–85% of the total energy used in producing a Merino wool garment. Scouring, spinning, weaving, and finishing are all energy-intensive steps that depend on fossil fuels and electricity, much of which is not renewable [5].

Producing 1 kg of finished wool clothing consumes around 230–330 MJ of energy, compared to about 40 MJ/kg for raw fleece. This massive jump challenges the assumption that wool is inherently low-impact [5]. Most of the environmental load comes from energy consumed after shearing, meaning brands and consumers often underestimate the impact of what happens "downstream" [5].

Green growth and technological solutions cannot offset environmental degradation if consumption patterns remain unchanged [2].

At Arms of Andes we make our gear from 100% Royal Alpaca Wool of 18-18.5 microns.

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Men's Alpaca Wool Tank Top 160 Ultralight

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Women's Alpaca Wool Hiking T-Shirt 160 Ultralight Relaxed Fit

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Women's Alpaca Wool Leggings 300 Lightweight

Water Consumption in Wool Production: A Critical Issue for World Water Day

Wool production is highly water-intensive, especially during the scouring and dyeing stages. Wool is washed with large quantities of heated water to remove grease and dirt, producing wastewater loaded with organic matter and chemicals [3]. Without proper treatment, this wastewater contributes to eutrophication and water pollution.

A study in 2022 conducted a water footprint assessment of six wool textile companies in China. Their results were alarming: up to 120 m³ of water is used to dye just one ton of wool. The most significant pollutants found in the wastewater included total nitrogen, ammonia, COD, and phosphates [4].

They introduced two key indicators:

  • Water Scarcity Footprint (WSF): how much pressure a product places on local water availability.
  • Water Eutrophication Footprint (WFeu): the potential for a product to cause water pollution.

Only one of the six companies studied reached "platinum" status in both low water use and low pollution, showing how widely performance varies across the wool industry. These findings reinforce the need for transparency, regulation, and better water treatment technology in the animal fiber supply chain.

Energy Use and the Myth of Low Impact Fibers

Post-farm processing accounts for 75–85% of the total energy used in producing a Merino wool garment. Scouring, spinning, weaving, and finishing are all energy-intensive steps that depend on fossil fuels and electricity, much of which is not renewable [5].

Producing 1 kg of finished wool clothing consumes around 230–330 MJ of energy, compared to about 40 MJ/kg for raw fleece. This massive jump challenges the assumption that wool is inherently low-impact [5]. Most of the environmental load comes from energy consumed after shearing, meaning brands and consumers often underestimate the impact of what happens "downstream" [5].

Green growth and technological solutions cannot offset environmental degradation if consumption patterns remain unchanged [2].

Environmental Impacts of Wool Production

Wool may be natural, but its production brings with it a set of hidden ecological costs. First, the process of scouring raw wool—washing it to remove grease and impurities—requires large quantities of heated water. This generates wastewater rich in organic matter, detergents, and pollutants, which can harm aquatic ecosystems if not properly treated [3].

Another issue lies in the use of pesticides. To prevent parasites and insects, sheep are routinely sprayed or dipped in chemical treatments. These substances, if mismanaged, can leach into surrounding soils and waterways, posing risks to both the environment and human health [3].

Then there’s the climate cost. Sheep, like other ruminants, emit methane—a greenhouse gas many times more potent than carbon dioxide. As a result, wool carries a higher greenhouse gas footprint per kilogram than many plant-based or synthetic fibers [3].

Taken together, these impacts challenge the assumption that wool is automatically sustainable. While it's biodegradable and renewable, the environmental footprint of wool becomes far more complex—and concerning—when examined through the lens of industrial-scale production. Still, there are signs of hope: innovative approaches like methane capture for biogas are emerging, offering potential to reduce emissions. A recent study highlights how livestock manure can be broken down in special systems to produce biogas—renewable energy that could meet up to 5% of China’s energy needs [6]. It’s a promising clean energy pathway that turns animal waste into something useful. In smaller, regenerative systems—such as Andean alpaca herding—livestock can be part of ecological cycles that enrich rather than deplete the land [7].

left image

Rethinking Sustainability: Durability, Care, and Cultural Regeneration

The sustainability of wool depends not only on the material, but on how it is produced, processed, used, and discarded. Garments made with care and worn for longer periods can dramatically reduce their environmental footprint. Extending the life of a garment from 109 wears to 400 can reduce its impact by up to 68% [2].

In addition, wool systems rooted in local knowledge, such as Andean alpaca herding, offer a regenerative alternative to industrial livestock models. These practices are aligned with seasonal cycles, biodiversity protection, and small-scale economies—but remain under-supported and vulnerable to market pressures.

left image

Sustainability Is a System, Not a Buzzword

While wool and other animal-based textiles can offer sustainability advantages such as biodegradability, insulation, and durability, they are far from inherently eco-friendly. When scaled within fast-fashion dynamics, these fibers carry significant environmental costs—particularly in water consumption, energy use, and waste generation.

For wool to be truly sustainable, we must:

  • Improve transparency and certification around water and energy usage.
  • Support regenerative animal fiber systems like alpaca herding.
  • Push for garment longevity, reuse, and responsible care.
  • Move from extractive industrial models toward living economies rooted in place and community.

Sustainability is not just about what we wear, it’s about how we live, what we value, and what we choose to protect.

Glossarykeywords

Alpaca Herding:
A traditional Andean practice of raising alpacas for their wool, often aligned with seasonal cycles and small-scale, regenerative agriculture systems that support biodiversity and community livelihoods.

Biodegradable:
A material capable of breaking down naturally over time by microorganisms, reducing its long-term impact on landfills and ecosystems.

Biogas:
A type of renewable energy produced when organic matter, such as livestock manure, is broken down in special systems. It can be used to generate electricity or heat, offering a cleaner alternative to fossil fuels.

Circular Materials:
Materials designed to be reused, recycled, or repurposed instead of being discarded after a single use—helping reduce waste and environmental impact.

Downstream (Processing):
The stages of garment production that occur after raw materials are collected—such as washing, spinning, weaving, and finishing. These processes often consume more energy and water than the initial harvesting of fibers.

Eutrophication:
The excessive enrichment of water bodies with nutrients (like nitrogen and phosphates), often caused by untreated wastewater, leading to algae blooms and oxygen depletion.

Greenhouse Gas (GHG):
Gases such as methane (CH₄) and carbon dioxide (CO₂) that trap heat in the atmosphere, contributing to global warming and climate change.

Keratin-Based Films:
Materials made from keratin proteins found in wool waste, used in advanced technologies such as biodegradable films or wearable electronics.

Methane:
A powerful greenhouse gas produced by ruminant animals like sheep during digestion. It is over 25 times more potent than CO₂ at trapping heat in the atmosphere over a 100-year period.

Regenerative Systems:
Farming or land-use methods that restore soil health, increase biodiversity, and support ecological balance. In the context of wool, regenerative systems—such as traditional alpaca herding—aim to give back to the land rather than deplete it.

Scouring:
The industrial washing of raw wool to remove grease, dirt, and impurities before further processing. This stage is water- and energy-intensive and produces heavily polluted wastewater.

Slow Fashion:
A movement that promotes mindful consumption, emphasizing quality, durability, ethical production, and environmental responsibility over speed and volume.

Textile Waste:
Discarded garments and fabrics. Although many are recyclable, most end up in landfills or are incinerated, contributing to pollution and resource loss.

Water Scarcity Footprint (WSF):
An indicator used to measure the pressure a product places on local freshwater resources during its lifecycle.

Water Eutrophication Footprint (WFeu):
An indicator of a product’s potential to pollute water bodies by contributing nutrients that lead to eutrophication.

Environmental Impacts of Wool Production

Wool may be natural, but its production brings with it a set of hidden ecological costs. First, the process of scouring raw wool—washing it to remove grease and impurities—requires large quantities of heated water. This generates wastewater rich in organic matter, detergents, and pollutants, which can harm aquatic ecosystems if not properly treated [3].

Another issue lies in the use of pesticides. To prevent parasites and insects, sheep are routinely sprayed or dipped in chemical treatments. These substances, if mismanaged, can leach into surrounding soils and waterways, posing risks to both the environment and human health [3].

Then there’s the climate cost. Sheep, like other ruminants, emit methane—a greenhouse gas many times more potent than carbon dioxide. As a result, wool carries a higher greenhouse gas footprint per kilogram than many plant-based or synthetic fibers [3].

Taken together, these impacts challenge the assumption that wool is automatically sustainable. While it's biodegradable and renewable, the environmental footprint of wool becomes far more complex—and concerning—when examined through the lens of industrial-scale production. Still, there are signs of hope: innovative approaches like methane capture for biogas are emerging, offering potential to reduce emissions. A recent study highlights how livestock manure can be broken down in special systems to produce biogas—renewable energy that could meet up to 5% of China’s energy needs [6]. It’s a promising clean energy pathway that turns animal waste into something useful. In smaller, regenerative systems—such as Andean alpaca herding—livestock can be part of ecological cycles that enrich rather than deplete the land [7].

left image

Rethinking Sustainability: Durability, Care, and Cultural Regeneration

The sustainability of wool depends not only on the material, but on how it is produced, processed, used, and discarded. Garments made with care and worn for longer periods can dramatically reduce their environmental footprint. Extending the life of a garment from 109 wears to 400 can reduce its impact by up to 68% [2].

In addition, wool systems rooted in local knowledge, such as Andean alpaca herding, offer a regenerative alternative to industrial livestock models. These practices are aligned with seasonal cycles, biodiversity protection, and small-scale economies—but remain under-supported and vulnerable to market pressures.

left image

Sustainability Is a System, Not a Buzzword

While wool and other animal-based textiles can offer sustainability advantages such as biodegradability, insulation, and durability, they are far from inherently eco-friendly. When scaled within fast-fashion dynamics, these fibers carry significant environmental costs—particularly in water consumption, energy use, and waste generation.

For wool to be truly sustainable, we must:

  • Improve transparency and certification around water and energy usage.
  • Support regenerative animal fiber systems like alpaca herding.
  • Push for garment longevity, reuse, and responsible care.
  • Move from extractive industrial models toward living economies rooted in place and community.

Sustainability is not just about what we wear, it’s about how we live, what we value, and what we choose to protect.

Authors & Researchers

WhatsApp Image 2025-02-18 at 11.57.35.jpeg__PID:4cda6b01-351d-4869-9977-a6831638e3d4

Lesia tello

Biologist and hiking enthusiast with a deep admiration for nature and the intricate mechanisms of life. With a background in biochemistry and a master’s degree in education, she blends science with adventure, exploring how we interact with the natural world and sharing insights on outdoor experiences.

WhatsApp Image 2025-02-18 at 11.57.35.jpeg__PID:0d95c7a3-d608-4340-8891-c0dabfb161c0

Lesia tello

Biologist and hiking enthusiast with a deep admiration for nature and the intricate mechanisms of life. With a background in biochemistry and a master’s degree in education, she blends science with adventure, exploring how we interact with the natural world and sharing insights on outdoor experiences.

WhatsApp Image 2025-02-18 at 11.57.35.jpeg__PID:0d95c7a3-d608-4340-8891-c0dabfb161c0
Profile_AOA.jpeg__PID:fc90e08b-0512-4cb6-83ea-c655df8af703

Jordy Munarriz

Environmental Engineer with a master’s degree in renewable energy and a specialization in sustainability. A passionate traveler and advocate for responsible tourism, he captures the essence of exploration through storytelling, inspiring others to connect with nature in a conscious and meaningful way.

Profile_AOA.jpeg__PID:fc90e08b-0512-4cb6-83ea-c655df8af703

Glossarykeywords

Alpaca Herding:
A traditional Andean practice of raising alpacas for their wool, often aligned with seasonal cycles and small-scale, regenerative agriculture systems that support biodiversity and community livelihoods.

Biodegradable:
A material capable of breaking down naturally over time by microorganisms, reducing its long-term impact on landfills and ecosystems.

Biogas:
A type of renewable energy produced when organic matter, such as livestock manure, is broken down in special systems. It can be used to generate electricity or heat, offering a cleaner alternative to fossil fuels.

Circular Materials:
Materials designed to be reused, recycled, or repurposed instead of being discarded after a single use—helping reduce waste and environmental impact.

Downstream (Processing):
The stages of garment production that occur after raw materials are collected—such as washing, spinning, weaving, and finishing. These processes often consume more energy and water than the initial harvesting of fibers.

Eutrophication:
The excessive enrichment of water bodies with nutrients (like nitrogen and phosphates), often caused by untreated wastewater, leading to algae blooms and oxygen depletion.

Greenhouse Gas (GHG):
Gases such as methane (CH₄) and carbon dioxide (CO₂) that trap heat in the atmosphere, contributing to global warming and climate change.

Keratin-Based Films:
Materials made from keratin proteins found in wool waste, used in advanced technologies such as biodegradable films or wearable electronics.

Methane:
A powerful greenhouse gas produced by ruminant animals like sheep during digestion. It is over 25 times more potent than CO₂ at trapping heat in the atmosphere over a 100-year period.

Regenerative Systems:
Farming or land-use methods that restore soil health, increase biodiversity, and support ecological balance. In the context of wool, regenerative systems—such as traditional alpaca herding—aim to give back to the land rather than deplete it.

Scouring:
The industrial washing of raw wool to remove grease, dirt, and impurities before further processing. This stage is water- and energy-intensive and produces heavily polluted wastewater.

Slow Fashion:
A movement that promotes mindful consumption, emphasizing quality, durability, ethical production, and environmental responsibility over speed and volume.

Textile Waste:
Discarded garments and fabrics. Although many are recyclable, most end up in landfills or are incinerated, contributing to pollution and resource loss.

Water Scarcity Footprint (WSF):
An indicator used to measure the pressure a product places on local freshwater resources during its lifecycle.

Water Eutrophication Footprint (WFeu):
An indicator of a product’s potential to pollute water bodies by contributing nutrients that lead to eutrophication.

References:

[1] Sun, Y., Li, B., Zhang, Y., Dou, H., Fan, W., & Wang, S. (2023). The progress and prospect for sustainable development of waste wool resources. Textile Research Journal, 93(1-2), 468-485.

[2] Smith, T., Ehrnström-Fuentes, M., Hagolani-Albov, S. E., Klepp, I. G., & Tobiasson, T. S. (2022). Rethinking the (wool) economy. In Local, slow and sustainable fashion: Wool as a fabric for change (pp. 133-170). Cham: Springer International Publishing.

[3] Russell, I. M. (2009). Sustainable wool production and processing. Sustainable textiles, 63-87.v.

[4] Li, X., Zhu, L., Dong, Y., Chen, B., Li, Q., Wang, X., ... & Wang, L. (2022). Water footprint assessment of wool products with a low-water footprint baseline. Sustainable Production and Consumption, 34, 310-317.

[5] Barber, A., & Pellow, G. (2006, November). LCA: New Zealand merino wool total energy use. In 5th Australian Life Cycle Assessment Society (ALCAS) conference, Melbourne (pp. 22-24).

[6] Wang, Y., Zhang, Y., Li, J., Lin, J. G., Zhang, N., & Cao, W. (2021). Biogas energy generated from livestock manure in China: Current situation and future trends. Journal of Environmental Management, 297, 113324.

[7] Teague, W. R., Apfelbaum, S., Lal, R., Kreuter, U. P., Rowntree, J., Davies, C. A., ... & Byck, P. (2016). The role of ruminants in reducing agriculture's carbon footprint in North America. Journal of Soil and Water Conservation, 71(2), 156-164.