The cashew kernel you snack on looks simple enough – pale ivory, lightly curved, ready to eat. But getting it to that point involves a precise, multi-step processing chain where each stage directly determines the quality and commercial value of the final product. From managing moisture in freshly harvested nuts to vacuum-sealing the finished kernels, cashew processing is both a science and a craft. Here is a close look at how it works, step by step.

Table of Contents

Drying the raw cashew nuts

Processing starts before the nuts even enter a factory. At the time of harvest, raw cashew nuts carry 12 to 16% moisture – far too high for safe storage or quality processing. Drying brings this moisture level down to a maximum of 9%, which slows or completely prevents kernel deterioration during warehousing.

Sun drying is the most common and cost-effective approach. Nuts are spread on concrete drying floors or bamboo mats in layers no thicker than 10 cm, allowing roughly 60 kg of nuts per square metre, and are turned regularly to ensure even drying. In humid regions or large-scale facilities, mechanical dryers with controlled temperature and airflow are used to achieve uniform moisture reduction faster. After drying, nuts are stored in dry conditions with relative humidity below 65% and temperatures below 10ยฐC until they are ready for processing – which can be up to 12 months after harvest, since the cashew season lasts only three to four months per year.

Calibration before heat treatment

Before roasting, the dried nuts go through calibration – a sorting step that groups them by diameter. Common size categories are 18 mm, 20 mm, 22 mm, 24 mm, and above 24 mm. Uniformly sized nuts are critical for consistent heat penetration during the next stage, and they also reduce mechanical shelling errors downstream.

Heat treatment: the three roasting methods

The central purpose of heat treatment is to soften or make brittle the hard outer shell so that it can be removed without damaging the kernel inside. The shell contains cashew nut shell liquid (CNSL), a caustic substance composed of anacardic acid and cardol that is a skin irritant and must be neutralised before the nut can be handled safely. There are three established methods for achieving this: drum roasting, oil bath roasting, and steam cooking.

Drum roasting

This is the oldest of the three methods. The nuts are placed in a tilted, rotating drum that is heated externally. The drum rotates for 3 to 5 minutes, causing the CNSL to ignite and burn off. The roasted nuts are then collected and covered with wood ash to absorb residual surface oil.

About 6 to 7 bags of cashew nuts (each weighing approximately 80 kg) can be roasted per hour using this method. Drum roasting is valued for its simplicity and low capital investment, and it typically produces a high rate of whole kernels. However, it generates significant heat and acrid fumes in the working area, causes the loss of most of the CNSL (which has considerable commercial value as an industrial raw material), and can result in uneven heating across batches. This method is largely being phased out in India in favour of steam cooking.

Oil bath roasting

In oil bath roasting, nuts held in wire trays are passed through a bath of cashew shell oil maintained at 200-202ยฐC for approximately three minutes, extracting the CNSL from the shells in the process. The vessel is embedded in brickwork and heated by a furnace that uses spent shells as fuel.

This method can recover 85-90% of the available CNSL from the nuts, making it commercially attractive where CNSL extraction is a priority. However, CNSL that leaches into the processing oil contaminates it over time, requiring frequent oil changes or filtration systems, and an extra degreasing step is needed after roasting. Oil bath roasting is described as an outdated process in much of India but continues to be used in certain facilities where CNSL recovery is economically justified.

Steam cooking

Steam cooking has become the dominant and most widely recommended method in modern cashew processing. Raw nuts are cooked in a steel vessel for 20 to 30 minutes using steam generated by a boiler, then cooled to room temperature for 18 to 24 hours before shelling.

The boiler operates at 7.0-8.5 kg/cmยฒ and the steam is injected into the cooker until it begins escaping from the outlet, indicating that the nuts are sufficiently cooked. This typically takes 10 to 20 minutes. There are two sub-variants: the static or fixed cooking vessel, which is more common in India, and the rotating drum steamer popular in Vietnam, where rotary steam cookers can handle batches of 640 kg or more, supporting higher throughput and greater mechanisation.

Steam cooking is preferred over the other two methods for several important reasons. It eliminates the open flame and the acrid CNSL fumes that characterise drum roasting, greatly improving worker safety. It preserves the natural colour and nutritional quality of the kernels better than direct heat methods. It also minimises the risk of kernel browning and reduces acrylamide formation compared with conventional dry heat roasting. Additionally, it allows for CNSL collection during the process, turning a hazardous by-product into a revenue stream used in resins, brake linings, and waterproof coatings.

Shelling: extracting the kernel

After heat treatment, the softened nuts are allowed to cool and harden slightly before shelling – the step where the outer shell is physically removed to expose the kernel. The objective is to obtain the highest percentage of whole, undamaged kernels, since this is the most critical factor determining processing output value.

Manual shelling remains widespread, especially in countries like India where skilled labour is available. Workers use leg-operated cutters: the nut is placed between contoured blades; pressing the pedal pierces the shell, and the handle splits it open so the kernel can be separated by hand. Mechanical shelling machines use calibrated cutting blades that make two precise cuts in the shell. Automated machinery achieves whole kernel recovery rates of 85-90%, significantly higher than the 65-75% typical of manual methods. The shells removed at this stage are used as fuel within the processing plant or for CNSL extraction.

Drying the shelled kernels

Freshly shelled kernels carry high moisture – typically 8 to 12% – which causes the testa (the inner skin) to adhere tightly to the kernel surface, making it very difficult to peel. The kernels must therefore be dried before peeling can proceed. Borma dryers are most commonly used for this purpose: air is heated indirectly from a furnace – fuelled by cashew shells – and forced through a mesh at temperatures of 70-100ยฐC.

Kernel moisture is reduced from around 7% down to approximately 3% during this drying stage. Kernels meeting the 3-4% moisture level satisfy export standards and are easier to shell cleanly. After Borma drying, the kernels are cooled for 24 to 48 hours before peeling begins.

Testa removal (peeling)

The testa is the thin, brown skin that surrounds the dried kernel. It must be completely removed before the cashew can be graded or sold, as any residual testa causes kernel grade downgrades and can lead to rejection by export buyers.

To make peeling easier, the dried kernels undergo a brief humidification step. Kernels are exposed to steam or a fine water spray for 30 to 90 seconds, raising surface moisture to 5-6% while the kernel core remains at 3-4%. This moisture gradient softens the testa without making the kernel itself wet or sticky. The window for peeling after humidification is 2 to 4 hours – too short and the moisture hasn’t penetrated enough; too long and it redistributes through the kernel, reducing peelability.

Peeling can be done manually or mechanically. In manual peeling, workers gently rub the kernel between their fingers or use a small knife to lift off the testa. In mechanical peeling, the humidified kernel passes through a rotating cylinder fitted with brushes, which strip the testa away. Well-configured peeling machines can achieve 80-85% whole kernel recovery with complete testa removal. For premium export orders, machine peeling is followed by a manual finishing pass to bring residual testa below 3%.

Grading: classifying by size, colour, and quality

Once peeled, kernels are sorted into commercial grades. The internationally recognised classification scheme developed by the Association of Food Industries (AFI) grades kernels by colour into white (W), scorched (S), and desert (D) categories, and by form into whole kernels and broken kernels. Broken kernels are further subdivided into splits, butts, pieces, and baby bits.

Within whole kernels, size is expressed as the number of kernels per pound. W-180 denotes approximately 180 kernels per pound – the largest and most valuable grade – while higher numbers like W-450 indicate smaller kernels commanding lower prices. Grading is performed using calibrated vibratory sieves for size separation, optical or colour-sorting machines for colour uniformity, and trained inspectors for defect identification. Automated colour sorters achieve sorting accuracy above 99%, compared with 85-90% for manual grading alone.

Final moisture content of graded kernels should be 3-5% for optimal storage life and prevention of rancidity. Kernels failing this threshold or showing scorching, blemishes, shrivelling, or insect damage are downgraded or rejected according to AFI defect specifications.

Packaging: preserving quality to market

Cashew kernels are hygroscopic – they absorb atmospheric moisture readily – and are susceptible to oxidative rancidity and mould if packaging is inadequate. Kernels are vacuum-packed in foil pouches with air extracted, followed by nitrogen gas injection and automatic sealing to prevent oxidation and extend shelf life.

The AFI standards require cashews to be packed in new, clean, dry, leakproof, lead-free containers with an airtight hermetic seal. Only food-grade COโ‚‚ is permitted in modified atmosphere packaging, at a minimum mix of 60% COโ‚‚ with the balance as nitrogen. Storage under temperature-controlled conditions of 10-15ยฐC and relative humidity below 65% can maintain cashew quality for 12 to 18 months. For bulk export shipments, kernels are packed in moisture-proof containers with labelling indicating grade, weight, and processing date.

Why each step matters

Cashew processing is a tightly linked chain. A poorly dried raw nut leads to mould in storage. Insufficient heat treatment makes shelling dangerous and difficult. An over-roasted nut discolours the kernel and reduces its grade. Inadequate humidification before peeling drives up breakage rates and lowers the proportion of high-value whole kernels. And poor packaging erases all the quality gains made in earlier stages. The Global Cashew Council emphasises that every stage must be conducted under clean, hygienic conditions with regular equipment and surface sanitation to prevent biological, chemical, and physical contamination. The choice between processing methods – particularly the shift from drum and oil bath roasting to steam cooking – also has direct implications for worker safety, environmental compliance, and CNSL by-product recovery.

What do you think? Given that steam cooking is now the dominant method for its efficiency and quality advantages, do you think small-scale processors in developing countries can feasibly transition away from drum roasting without significant financial support? And with over 26 internationally recognised cashew kernel grades, how do you think grading technology – manual versus automated sorting – shapes market access for processors in different countries?

How useful was this post?

Click on a star to rate it!

Average rating 4 / 5. Vote count: 1

No votes so far! Be the first to rate this post.

We are sorry that this post was not useful for you!

Let us improve this post!

Tell us how we can improve this post?

References
  1. https://cashewcoast.com/en/resources/the-5-steps-of-processing-raw-cashew-nuts
  2. https://crunchycashews.com/documents/Guide-Book-on-Crunchy-Cashew-Processing-Process.pdf
  3. https://openknowledge.fao.org/server/api/core/bitstreams/617adfe0-05b6-4bbc-beec-0e310c074b21/content
  4. https://www.cashews.org/cashew-industry/processing/
  5. https://www.foodinfotech.com/steps-involved-in-cashew-processing-an-overview/
  6. https://cec.nic.in/webpath/curriculum/Module/FDTECH/Paper08/17/downloads/script.pdf
  7. https://indiancashew.co.in/Process.html
  8. http://celkau.in/Agrienterprises/enerprise/32.%20Value%20add%20Cashew/2.%20Cashew%20processing.pdf
  9. https://repo.ijiert.org/index.php/ijiert/article/download/192/180/357
  10. https://www.honglemachine.com/blog/how-a-cashew-processing-plant-works-from-raw-nuts-to-packed-kernels852
  11. https://cashewplus.com/cashew-processing-flow-chart/
  12. https://www.aeicashewmachinery.com/cashew-nut-processing-overview.html
  13. https://unido.org/sites/default/files/2013-07/Cashew_nuts_final_presentation_PP_0.pdf
  14. https://rajadarshnuts.com/cashew-nut-processing/
  15. https://cashewmachinepro.com/cashew-processing-machinery/cashew-peeling-machine/
  16. https://afius.org/wp-content/uploads/2024/05/cashews.pdf

Comments

Leave a Reply

Your email address will not be published. Required fields are marked *

Post Harvest Management and Value Addition

1 Harvesting

  1. Crop Growth and Development
  2. Harvest Maturity
  3. Harvesting Techniques
  4. Yield of Spice Crops
  5. Good Agricultural Practices (GAP) on Quality of Spices
  6. Post Harvest Handling of Spices
  7. Packaging

2 Primary Processing and Grading

  1. Importance of Primary Processing in Spices
  2. Good Manufacturing Practices in Spices
  3. Quality Regulations in Primary Processed Spices
  4. Primary Processing Techniques
  5. Grading of Spices
  6. Packaging of Primary Processed Spices
  7. End Uses of Primary Processed Spice Products

3 Secondary Processing and Value Addition

  1. Value Addition in Spices – An Overview
  2. Secondary Processing Methods
  3. Value Added Spice Products
  4. Spices as Neutraceuticals
  5. Uses of Value Added Products

4 Quality Maintenance and Storage

  1. Definition and Significance of Quality in Spices
  2. Technologies for Improvement and Maintenance of Quality in Spices
  3. Preservation of Spices and Spice Products
  4. Contaminants in Spices and their Harmful Effects
  5. Quality Control Management and Promotional Schemes
  6. Principles of Scientific Storage of Spices

5 CTC Tea Manufacture

  1. Raw Material for Tea
  2. Withering
  3. Rolling
  4. Fermentation
  5. Drying
  6. Grading, Storage, and Packing
  7. Quality Evaluation of Black Tea

6 Orthodox Tea Manufacture

  1. Raw Material and Withering
  2. Rolling
  3. Fermentation
  4. Drying
  5. Grading and Packing
  6. Factory Hygiene
  7. Tea Taster’s Terms

7 Green Tea Manufacture

  1. Green Tea
  2. Green Tea Manufacture – Japanese Style
  3. Green Tea Manufacture – Chinese Style
  4. Specialty Tea Manufacture (Silver Tips Tea)
  5. Product Diversification and Value Addition in Tea
  6. Natural Products from Tea

8 Crop Harvesting

  1. Tapping
  2. Rainguarding
  3. Yield Stimulation

9 Primary Processing and Grading

  1. Crop Collection
  2. Marketable Forms of Natural Rubber
  3. Latex Concentrate
  4. Ribbed Smoked Sheet (RSS)
  5. Crepe Rubbers
  6. Technically Specified Rubber (TSR)
  7. Other Types of Rubber
  8. Pollution Management

10 Storage and Marketing

  1. Impact of Storage
  2. Optimum Conditions for Storage
  3. Rubber Marketing
  4. Government Policy

11 Primary Processing

  1. Methods of Primary (On-farm) Processing of Coffee
  2. Wet Method of Processing (Parchment Coffee)
  3. Dry Method of Processing (Cherry Coffee)
  4. Packing and On-farm Storage of Coffee
  5. Good Practices for Production of Quality Coffee at Estate Level

12 Secondary Processing

  1. Requirements for an Ideal Coffee Mill (Curing Works)
  2. Machinery for Secondary Processing
  3. Redrying of Raw Coffee
  4. Pre-cleaning and De-stoning
  5. Milling (Hulling)
  6. Winnowing and Grading
  7. Sorting (Garbling), Bulking, and Packing
  8. Storage
  9. Internal Quality Check and Maintenance of Hygienic Conditions
  10. Aspiration and Disposal of Waste Products
  11. In-mill Conveying

13 Specialty Coffees

  1. Definition of Specialty Coffees
  2. World Specialty Coffee Market
  3. Types and Characteristics of Specialty Coffees
  4. Indian Specialty Coffees
  5. Production Requirements of Specialty Coffees

14 Grading and Packaging

  1. Grading
  2. Garbling (Sorting)
  3. Grading and Garbling Standards for Indian Green Coffees
  4. Packaging for Raw (unhulled) Coffee and Clean Coffee

15 Harvesting and Processing of Coconut

  1. Characteristic Features of Coconut Palm
  2. Nature of Flowering and Fruiting
  3. Fruit (Nut) Development
  4. Harvesting of Coconut
  5. Storage and Trading of Coconut
  6. Traditional Coconut Products and their Utilisation

16 Product Diversification and Value Addition in Coconut

  1. Technology Developments for Product Diversification and Value Addition
  2. Sanitary and Phyto-sanitary (SPS) Requirements for Coconut
  3. Byproducts from Coconut Tree

17 Harvesting and Processing of Cashew

  1. Harvest in Cashew
  2. Post Collection Practices
  3. Cashewnut Processing
  4. Methods of Processing
  5. Quality Maintenance of Raw Nuts

18 Byproduct Utilization and Quality of Cashew

  1. Nutritive Value of Cashew Kernels
  2. Physical Properties (Grades) of Kernels
  3. Quality Deterioration of Kernels
  4. Packaging and Quality Maintenance
  5. Value Addition in Cashew Kernels
  6. Byproducts of Cashew and their Utilization