Yellowness Index: Complete Guide to YI Measurement
What Is Yellowness Index and Why Is It Important?
Color is an important quality parameter in many industries. Plastics, polymers, chemicals, textiles, coatings, pharmaceuticals, paper, transparent materials, resins, powders, and other manufactured products can undergo subtle color changes during production, processing, storage, or exposure to environmental conditions.
One of the most common appearance changes in white, near-white, colorless, or transparent materials is yellowing.
A product that initially appears clear or white may gradually develop a yellow tint due to heat, ultraviolet exposure, oxidation, aging, chemical reactions, processing conditions, contamination, or material degradation.
Visual inspection can identify severe yellowing, but small changes are often difficult to evaluate consistently with the human eye.
This is where Yellowness Index (YI) becomes valuable.
Yellowness Index provides a numerical method for evaluating the degree to which a material’s color shifts toward yellow relative to specified measurement conditions.
It is widely used in quality control, R&D, material evaluation, weathering studies, process optimization, and product-development applications.
What Is Yellowness Index?
Yellowness Index, commonly abbreviated as YI, is a calculated colorimetric value used to describe the degree of yellow coloration of a material under specified measurement conditions.
Rather than describing a sample as:
“slightly yellow”
“more yellow than the previous batch”
or
“almost white”
instrumental color measurement provides numerical information that can be recorded and compared.
This makes Yellowness Index particularly useful when small color changes matter.
The concept is straightforward:
Reference material → Measurement → Exposure or processing → New measurement → Compare Yellowness Index
If the YI changes significantly, the material has undergone a measurable appearance change according to the selected method.
Why Do Materials Become Yellow?
Yellowing can occur for many reasons.
The mechanism depends on the material, environment, manufacturing process, and application.
Common contributors can include:
- UV exposure
- Thermal aging
- Oxidation
- Polymer degradation
- Processing temperature
- Chemical reactions
- Raw-material variation
- Additive changes
- Contamination
- Long-term storage
- Environmental exposure
- Weathering
- Repeated heat cycles
For example, a transparent polymer component may initially be nearly colorless.
After extended UV exposure, its molecular structure or additives may undergo changes that cause visible yellowing.
Similarly, a white plastic processed at excessive temperature may develop a yellow tint.
A Yellowness Index measurement can help quantify these changes.
Why Visual Inspection Is Not Enough
Human vision is excellent at recognizing color, but it is not an ideal measurement system.
Perceived color can change depending on:
Lighting
Background
Viewing angle
Observer
Surrounding colors
Sample thickness
Surface condition
Time of day
Two quality inspectors may look at the same sample and disagree about whether it is noticeably yellow.
Instrumental color measurement helps reduce this subjectivity.
A properly configured color-measurement instrument evaluates the sample under defined conditions and reports numerical results.
This enables manufacturers to establish tolerances and monitor trends.
What Does a Higher Yellowness Index Mean?
In general, a higher Yellowness Index indicates a stronger yellow coloration according to the selected YI calculation and measurement conditions.
However, YI values should not be interpreted without context.
The exact numerical result depends on factors including:
The YI equation or standard used
Illuminant
Standard observer
Instrument geometry
Sample presentation
Transmission or reflectance measurement
Sample thickness
Material characteristics
For this reason, Yellowness Index values should only be compared when measurements are performed under equivalent and properly documented conditions.
Yellowness Index ASTM E313
One commonly referenced standard in searches related to Yellowness Index is ASTM E313.
ASTM E313 addresses the calculation of whiteness and yellowness indices from instrumentally measured color coordinates.
When a company specifies an ASTM-based Yellowness Index, the measurement procedure, sample conditions, instrument settings, and current applicable standard requirements should be followed.
It is important not to assume that every Yellowness Index value generated by every instrument is directly interchangeable.
When reporting YI, the laboratory should document the method used.
Yellowness Index and CIELAB b*
Another common question is:
Is Yellowness Index the same as b?*
No.
In the CIELAB color space:
L* represents lightness.
a* represents the red-green direction.
b* represents the yellow-blue direction.
A positive b* value indicates movement toward yellow, while a negative b* value indicates movement toward blue.
Therefore, b* can provide useful information about yellow-blue color changes.
However, b* and Yellowness Index are not the same parameter.
Yellowness Index is calculated according to a specified formula or method, while b* is a coordinate in the CIELAB color space.
Both can be useful, but they should not be treated as interchangeable.
Why Measure Yellowness Index?
Manufacturers measure YI for several reasons.
Quality Control
Production batches can be compared against approved specifications.
Aging Studies
Materials can be measured before and after environmental or accelerated aging.
UV Testing
YI can help quantify yellowing after ultraviolet exposure.
Heat Stability Testing
Materials can be measured before and after thermal exposure.
Raw-Material Comparison
Different suppliers or material grades can be compared.
Product Development
R&D teams can evaluate how formulations influence resistance to yellowing.
Process Optimization
Processing conditions can be adjusted while monitoring changes in YI.
Supplier Quality
Incoming materials can be tested against established acceptance criteria.
Yellowness Index as a Quality-Control Parameter
Consider a manufacturer producing transparent polymer components.
An approved reference material is measured before production.
The company then measures each production batch under identical conditions.
If YI begins increasing over several batches, this trend can prompt an investigation into:
Raw materials
Processing temperature
Residence time
Additives
Storage
Contamination
Equipment conditions
YI therefore provides more than a pass/fail result.
It can act as a process-monitoring indicator.
How to Measure Yellowness Index
Accurate Yellowness Index measurement requires appropriate instrumentation, controlled sample preparation, standardized settings, and consistent procedures.
Which Instrument Measures Yellowness Index?
Depending on the application and method, Yellowness Index can be calculated from colorimetric measurements obtained using suitable color-measurement instrumentation such as a spectrophotometer.
The instrument measures the optical properties of the sample and software calculates YI according to the selected method.
Depending on the material, measurements may be performed in:
Reflectance mode
or
Transmission mode
Reflectance is commonly relevant for opaque samples.
Transmission may be relevant for transparent or translucent samples when the instrument and test method support it.
The appropriate measurement mode depends on the material and application.
Step 1: Determine the Applicable YI Method
Before measurement, determine which standard or calculation should be used.
Do not simply select a YI function because it appears in the instrument software.
The selected method should match:
Customer specifications
Industry requirements
Internal QC procedures
Applicable standards
Historical data
Product-development requirements
Using the same method consistently is essential for meaningful comparison.
Step 2: Prepare the Sample
Sample preparation can significantly influence color measurements.
For solid materials, important variables may include:
Surface condition
Thickness
Texture
Opacity
Orientation
Cleanliness
For powders, additional factors can include:
Sample depth
Packing density
Particle distribution
Surface leveling
Sample container
For liquids, the optical path length and sample cell can influence results.
The preparation procedure should therefore be standardized.
Step 3: Calibrate the Instrument
The instrument should be calibrated according to the manufacturer’s procedure before routine measurements.
Calibration helps establish reliable reference conditions for subsequent measurements.
Laboratories should also maintain appropriate verification and maintenance practices.
Step 4: Select Measurement Conditions
Important settings can include:
Illuminant
Observer
Measurement geometry
Aperture
Color scale
Yellowness Index calculation
Specular settings where applicable
Transmission or reflectance mode
These settings should be documented and kept consistent when comparing samples.
Step 5: Measure the Reference
A reference sample provides a baseline.
For example, a polymer manufacturer may measure a newly produced, approved material and store its YI value.
The sample can then be compared with material after:
100 hours of exposure
500 hours
1,000 hours
or another defined test period.
This provides quantitative information about yellowing over time.
Step 6: Measure the Test Sample
The test sample should be positioned consistently.
Multiple measurements may be appropriate when:
The sample is heterogeneous.
The surface is textured.
Color varies across the sample.
A laboratory procedure requires averaging.
If several measurements are taken, the measurement locations and averaging procedure should be standardized.
Step 7: Record Yellowness Index
The instrument software can calculate the Yellowness Index according to the selected method.
For example, a hypothetical aging study might produce:
Initial sample: YI = 2.1
After exposure: YI = 3.4
After extended exposure: YI = 6.2
These values indicate increasing yellow coloration according to the selected measurement conditions and YI calculation.
Delta YI – Change in Yellowness Index
In many applications, the change in Yellowness Index is more useful than an isolated YI value.
This can be expressed conceptually as:
ΔYI = YI after test – YI before test
For example:
Initial YI = 2.0
Final YI = 5.5
ΔYI = +3.5
This indicates an increase in measured yellowness.
Delta YI can be particularly useful for:
Accelerated aging tests
UV exposure studies
Weathering studies
Thermal stability tests
Material comparisons
Formulation development
Measuring Transparent Materials
Transparent plastics, films, sheets, resins, and similar materials may require transmission-based color measurement depending on the method.
Sample thickness becomes especially important.
A 1 mm sheet and a 10 mm sample may not produce directly comparable results.
Therefore, transparent-material YI testing should carefully control:
Sample thickness
Optical path
Surface condition
Measurement mode
Instrument settings
Measuring Opaque Materials
Opaque plastics, powders, coatings, paper, and other non-transparent materials may be evaluated using reflected light when appropriate.
Surface characteristics can influence the measurement.
Gloss, texture, orientation, and sample presentation should therefore be controlled.
Measuring Powder Yellowness Index
Powders require special attention because their physical presentation can affect optical measurements.
A repeatable procedure should define:
Sample cup
Sample quantity
Sample depth
Packing
Surface leveling
Measurement area
Number of readings
Powder samples should be prepared consistently when comparing production batches.
Importance of Measurement Geometry
Color-measurement instruments can use different optical geometries.
Different geometries may interact differently with surface appearance.
Therefore, measurements obtained from different instrument configurations should not automatically be assumed to be interchangeable.
For long-term quality control, maintaining consistent instrumentation and measurement conditions helps improve comparability.
Yellowness Index vs Color Difference
YI specifically focuses on yellow coloration according to the selected calculation.
Color difference metrics such as ΔE describe broader differences between two measured colors.
A material can potentially undergo changes in lightness or another color direction without those changes being fully represented by YI alone.
Therefore, manufacturers may monitor:
YI
L*
a*
b*
ΔE
depending on the application.
Applications of Yellowness Index Across Industries
Yellowness Index testing is relevant wherever yellowing can affect appearance, quality, performance expectations, or product acceptance.
Yellowness Index of Plastics
Plastic and polymer industries are among the major users of YI measurement.
Plastic materials may yellow due to:
Heat
UV radiation
Oxidation
Processing
Aging
Additive degradation
Recycled material content
Environmental exposure
YI measurement allows manufacturers to quantify these changes.
Applications include:
Transparent plastics
White plastics
Plastic sheets
Films
Molded components
Engineering polymers
Packaging materials
Yellowness Index of Polymers
Polymer development often involves studying resistance to degradation.
Researchers may prepare several formulations containing different stabilizers or additives.
Each formulation can be subjected to controlled aging.
YI is measured before and after exposure.
The results provide quantitative information that can be used alongside other performance tests when comparing formulations.
Yellowness Index of Polycarbonate
Polycarbonate is widely used where transparency, strength, and appearance can be important.
Yellowing may become a concern following extended heat or UV exposure depending on formulation and environment.
YI testing can support:
Material qualification
Accelerated aging
UV resistance studies
Supplier comparison
Process optimization
Quality control
Yellowness Index of PET
PET and related materials can also be evaluated for color consistency and yellowing.
Applications can include packaging, films, sheets, resins, and molded products.
Manufacturers can monitor YI to identify color shifts associated with raw materials or processing.
Yellowness Index of Resin
Resins used in coatings, adhesives, composites, polymers, and other applications may need consistent appearance.
YI measurement can help evaluate whether resin has undergone yellowing during:
Production
Storage
Heating
Curing
UV exposure
Aging
Yellowness Index of Transparent Materials
Transparent materials can be particularly sensitive to visible yellowing.
Even a small tint may be noticeable because consumers expect clarity.
Applications can include:
Transparent polymer sheets
Protective covers
Optical components where the method is suitable
Packaging
Films
Clear resins
Transparent molded parts
A transmission-capable measurement configuration may be appropriate depending on the sample and standard.
Yellowness Index of White Materials
White products can also develop yellow tones.
A white product does not need to become strongly yellow before the change becomes important.
Small shifts may affect:
Visual consistency
Customer perception
Batch matching
Brand appearance
Product acceptance
For these materials, manufacturers may evaluate YI together with Lab* values and other relevant indices.
Yellowness Index of Powder
Powders are used in numerous industries, including:
Chemicals
Pharmaceuticals
Food ingredients
Minerals
Pigments
Polymers
Cosmetics
Powder coatings
YI can provide an objective method for monitoring yellow tint when an appropriate measurement method is established.
Yellowness Index of Paper
Paper and paper-related products may be evaluated for changes in appearance associated with aging, storage, light exposure, or material composition.
Whiteness, brightness, color coordinates, and yellowness may all be relevant depending on the product specification.
Yellowness Index in Textiles
White and light-colored textiles can yellow due to heat, chemical treatments, storage, aging, or environmental exposure.
Instrumental measurement can help compare samples before and after treatment.
Yellowness Index of Coatings
Clear and white coatings may undergo yellowing because of curing, aging, heat, UV exposure, or formulation changes.
YI can help coating manufacturers compare:
Resin systems
Additives
Curing conditions
Weathering performance
Production batches
Pharmaceutical Applications
Where color is a relevant quality attribute, pharmaceutical and related materials may be evaluated instrumentally according to appropriate procedures.
Powders, packaging materials, and other products may require objective appearance measurements.
YI should be used only where appropriate to the validated quality method and product specification.
Chemical Industry
Chemical manufacturers often produce clear, white, or near-white products.
Color changes can sometimes indicate differences associated with processing, storage, raw materials, or degradation.
YI measurement provides a numerical way to track such appearance changes.
Automotive Applications
Automotive materials experience demanding environmental conditions.
Interior and exterior polymers, coatings, transparent materials, and other components may be exposed to:
Sunlight
Heat
Humidity
Weathering
Chemical contact
Accelerated aging studies can include YI measurements to quantify changes in yellow coloration.
Building Materials
Polymer panels, coatings, sealants, adhesives, laminates, and other building materials may need long-term appearance stability.
YI testing can contribute to weathering and aging evaluations.
Why Yellowness Index Is Important in R&D
R&D teams often need to compare several formulations.
Suppose five polymer formulations are being developed.
Each is subjected to the same accelerated aging test.
The laboratory measures initial and final YI.
Rather than relying on photographs alone, researchers obtain numerical data showing how much yellowing occurred under the defined test conditions.
This makes formulation comparison more objective.
Yellowness Index for Quality Control, Best Practices and FAQs
Reliable Yellowness Index testing requires consistency.
The numerical result is only useful when the measurement method is controlled.
Best Practices for Yellowness Index Measurement
1. Use the Correct Standard
Identify the appropriate YI calculation or standard before testing.
ASTM E313 is commonly associated with Yellowness Index calculations, but laboratories should verify the appropriate current method for their material and application.
2. Keep Sample Preparation Consistent
Changes in thickness, surface texture, powder packing, orientation, or sample holder can influence measurements.
3. Calibrate the Instrument
Follow the manufacturer’s recommended calibration procedure.
4. Maintain Consistent Measurement Settings
Do not compare results generated using different illuminants, observers, geometries, or YI calculations without understanding the differences.
5. Control Sample Thickness
This can be especially important for transparent and translucent materials.
6. Keep Samples Clean
Dust, fingerprints, residues, scratches, or contamination can affect optical measurements.
7. Use Multiple Measurements Where Appropriate
If the sample is heterogeneous, measurements at multiple locations can provide a better representation.
8. Record Measurement Conditions
A QC report should ideally include enough information to reproduce the test.
Yellowness Index for Batch-to-Batch Quality Control
One of the most practical applications of YI is production monitoring.
A company can establish an approved reference range based on product requirements.
Each new batch is then measured under the same conditions.
This enables:
Fast batch comparison
Trend monitoring
Supplier evaluation
Process troubleshooting
Quality documentation
Out-of-trend investigation
Instead of waiting until yellowing becomes obvious visually, manufacturers can identify smaller numerical changes.
Yellowness Index for UV Aging
UV radiation can contribute to color changes in many polymeric and organic materials.
A typical study may involve:
Measure initial YI.
Expose the sample under specified UV/weathering conditions.
Measure YI after defined intervals.
Calculate the change.
Plot YI against exposure time.
This provides a quantitative representation of yellowing behavior under the test conditions.
Yellowness Index for Thermal Aging
Heat can also cause yellowing in some materials.
Samples can be measured before and after controlled thermal exposure.
This is useful for evaluating:
Processing stability
Long-term heat aging
Material formulations
Stabilizer performance
Curing effects
The results should always be interpreted alongside the actual thermal exposure conditions.
Yellowness Index and Weathering Tests
Outdoor products experience combinations of UV radiation, temperature, moisture, and other environmental factors.
Accelerated weathering tests attempt to evaluate material changes under controlled conditions.
YI can be one of the measured appearance parameters.
For example:
Initial measurement → Weathering exposure → Intermediate YI → Additional exposure → Final YI
This produces a measurable yellowing trend.
Yellowness Index vs Whiteness Index
Yellowness Index and Whiteness Index serve different purposes.
Yellowness Index (YI) evaluates yellow coloration according to a defined calculation.
Whiteness Index (WI) describes whiteness according to a specified calculation.
A material may be evaluated using one or both indices depending on its intended appearance and applicable test method.
For white materials, laboratories may also monitor L*, a*, and b* values.
Yellowness Index vs b*
This distinction is important for anyone searching for how to measure yellowness.
b* represents the yellow-blue coordinate within CIELAB.
Positive b* indicates the yellow direction.
Negative b* indicates the blue direction.
YI is a separately calculated index.
Therefore:
b = color-space coordinate*
YI = calculated yellowness index
Both can indicate useful information about yellowing, but they should not be substituted for each other without technical justification.
Yellowness Index vs ΔE
ΔE describes overall color difference between two measured colors according to the selected color-difference formula.
YI focuses specifically on yellowness.
Suppose a sample becomes darker without becoming significantly more yellow.
The overall ΔE could increase while YI changes differently.
For comprehensive color quality control, laboratories may therefore evaluate multiple parameters.
How to Choose an Instrument for Yellowness Index Measurement
When selecting a color measurement system for YI testing, consider:
Measurement Mode
Does the application require reflectance, transmission, or both?
Sample Type
Will you measure:
Solids?
Powders?
Films?
Liquids?
Transparent plastics?
Opaque components?
Measurement Geometry
Select a geometry appropriate for the material and required standard.
Supported YI Calculations
Confirm that the system supports the required Yellowness Index method.
Repeatability
Small changes in YI may require a system capable of consistent measurements.
Sample Accessories
Powders, liquids, films, and small samples may require suitable holders or accessories.
Software
Quality-control software can help store:
Standards
Tolerances
Measurements
Batch data
Color differences
YI results
Historical trends
Frequently Asked Questions About Yellowness Index
What is Yellowness Index?
Yellowness Index is a numerical colorimetric parameter used to describe the degree of yellow coloration of a material according to specified measurement conditions and a defined calculation.
What is YI in color measurement?
YI is the abbreviation for Yellowness Index.
What does a high Yellowness Index mean?
Generally, a higher YI indicates stronger yellow coloration according to the selected YI calculation. Results should always be interpreted using consistent measurement conditions.
Which instrument measures Yellowness Index?
Suitable color-measurement instrumentation, commonly including spectrophotometric systems, can measure the required optical/color data and calculate YI when the appropriate method is supported.
Is Yellowness Index the same as b*?
No. b* is the yellow-blue coordinate of CIELAB, while Yellowness Index is a separately calculated parameter.
What is ASTM E313 Yellowness Index?
ASTM E313 is a commonly referenced standard concerning the calculation of whiteness and yellowness indices from instrumentally measured color coordinates. Laboratories should follow the applicable current edition and specified measurement conditions.
Can Yellowness Index be measured in plastic?
Yes. YI measurement is widely applicable to suitable plastic and polymer materials when the correct measurement method is used.
Can YI be measured in transparent samples?
Yes, when the instrument, measurement mode, sample preparation, and applicable method are suitable for transparent materials.
Can Yellowness Index be measured in powder?
Powder yellowness can be evaluated instrumentally when a repeatable sample-presentation method and appropriate YI calculation are used.
What causes yellowing in polymers?
Depending on the polymer system, factors can include UV exposure, oxidation, heat, aging, processing conditions, chemical reactions, additives, and environmental exposure.
What is ΔYI?
ΔYI represents the change in Yellowness Index between two defined measurements, such as before and after aging.
Conclusion
Yellowness Index (YI) is an important numerical tool for evaluating yellow coloration and monitoring yellowing in materials.
It is particularly valuable for plastics, polymers, transparent materials, white products, powders, resins, coatings, chemicals, paper, textiles, packaging, automotive materials, and other industrial products where appearance stability matters.
Instead of relying only on subjective visual descriptions, instrumental Yellowness Index measurement enables manufacturers and laboratories to quantify changes and create traceable quality data.
YI can be especially useful for:
Batch-to-batch quality control
UV aging studies
Thermal aging studies
Weathering tests
Raw-material inspection
Supplier comparison
Process optimization
Product development
Material stability testing
Research and development
For reliable results, Yellowness Index measurements should always be performed using a defined method with controlled sample preparation and consistent measurement conditions.
Parameters such as measurement geometry, illuminant, observer, reflectance or transmission mode, sample thickness, surface condition, sample presentation, and YI calculation can influence results.
It is also important to distinguish Yellowness Index from other color parameters.
CIELAB b* provides information about the yellow-blue color direction, while YI is a calculated yellowness parameter. ΔE provides information about overall color difference, while Whiteness Index evaluates whiteness according to its specified calculation.
Used together where appropriate, these measurements provide manufacturers with a much more complete understanding of material appearance.
Ultimately, Yellowness Index transforms a subjective observation—“this material looks more yellow”—into numerical information that can be measured, compared, documented, and monitored.
For industries where product appearance and color stability are important, Yellowness Index testing can therefore become an essential component of modern color quality control.
