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Aggregate Gradation Chart – ASTM C33 Sieve Analysis & Grading Limits

Aggregate Gradation Chart: ASTM C33 Sieve Analysis & Grading Limits | ConcreteCalculate.com
Aggregate Reference (ASTM C33 Grading Limits)

Aggregate Gradation Chart
ASTM C33 Sieve Analysis & Grading Limits

Aggregate gradation describes the full distribution of particle sizes in a sample, not just its nominal size. This chart provides verified ASTM C33 fine and coarse aggregate grading limits, sieve conversions, gradation types and combined-blend calculation.

ASTM C33 Fine & CoarseSieve Size ReferenceFineness ModulusCombined GradationUpdated August 2026
Muhammad Ramzan BabarReviewed by Muhammad Ramzan Babar, PhD Researcher & Calculator Developer · View Profile
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Aggregate size and aggregate gradation are not the same thing

Aggregate size describes the nominal or maximum particle size of a material. Aggregate gradation describes what percentage of the sample falls within each size range across a full series of sieves. A material can share a nominal size with another material yet have a very different gradation curve. See the Aggregate Size Chart for nominal size reference.

⭐⭐⭐⭐⭐ Aggregate Gradation Chart: Quick Reference

ASTM C33 grading limits for fine aggregate and two of the most common coarse aggregate size numbers used in concrete.

Fine Aggregate (ASTM C33)

SieveOpening (mm)Percent Passing
3/8 in9.5100
No. 44.7595 to 100
No. 82.3680 to 100
No. 161.1850 to 85
No. 300.60025 to 60
No. 500.3005 to 30
No. 1000.1500 to 10

Coarse Aggregate, ASTM C33 Size No. 57 and No. 67

SieveNo. 57 % PassingNo. 67 % Passing
1 1/2 in100
1 in95 to 100100
3/4 in90 to 100
1/2 in25 to 60
3/8 in20 to 55
No. 40 to 100 to 10
No. 80 to 50 to 5
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Standards basis

These limits come directly from ASTM C33, Standard Specification for Concrete Aggregates, Table 1 (fine aggregate) and Table 2 (coarse aggregate size numbers). Coarse aggregate has no single universal gradation; each size number has its own set of sieve requirements. Full details for additional size numbers appear in the ASTM C33 Coarse Aggregate Size Numbers section below.

Aggregate sieve analysis setup with stacked standard sieves separating coarse and fine aggregate by particle size.
Sieve analysis uses a stack of standard sieve sizes to separate aggregate particles and determine the particle size distribution used for aggregate gradation.

⭐⭐⭐⭐⭐ What Is Aggregate Gradation?

Aggregate gradation is the particle-size distribution of a sample, determined mainly through sieve analysis.

Particle-size distribution

Gradation describes what proportion of a sample’s particles fall into each size range, not just the largest or smallest particle present.

Sieve analysis

The standard test method for gradation passes a dried, weighed sample through a stack of sieves with progressively smaller openings.

Percent passing and percent retained

Results are expressed as the percentage of the sample passing each sieve, or the percentage retained on each sieve.

Gradation curve

Plotting percent passing against sieve size produces a gradation curve, the standard visual representation of a sample’s particle-size distribution.

Gradation is closely related to important engineering properties such as permeability, strength, workability, and frost susceptibility in various construction applications, which is why it receives its own set of specification limits separate from nominal aggregate size.

⭐⭐⭐⭐⭐ Aggregate Size vs Aggregate Gradation

This distinction is essential and should never be blurred together.

QuestionAnswered By
What particle size or nominal size is this aggregate?Aggregate Size Chart
What percentage of the aggregate falls within each particle-size range?Aggregate Gradation Chart (this page)
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Two aggregates can share a nominal size yet have different gradations

A material labeled with the same nominal size can still have a different distribution of particle sizes within it. Gradation is what determines void content, packing behavior, and many performance properties, not the nominal size label alone. See the Aggregate Size Chart for nominal particle size reference.

⭐⭐⭐⭐⭐ How Aggregate Gradation Is Reported

Standard test methods report gradation as percentage by dry weight passing each sieve.

Percent passing

The percentage of the total sample mass that passes through a given sieve opening.

Percent retained

The percentage of the total sample mass that remains on a specific sieve.

Cumulative percent retained

The running total of percent retained on a given sieve plus all coarser sieves above it.

Sieve opening vs particle size

Sieve opening is a standardized dimension; the particles retained on or passing a sieve can vary somewhat in actual dimension depending on particle shape.

⭐⭐⭐⭐⭐ Aggregate Sieve Size Chart

Standard U.S. sieve openings in inches and millimeters used in aggregate gradation testing.

U.S. SieveOpening (in)Opening (mm)
3 in3.00075.0
2 in2.00050.0
1 1/2 in1.50037.5
1 in1.00025.0
3/4 in0.75019.0
1/2 in0.50012.5
3/8 in0.3759.5
No. 40.1874.75
No. 80.0942.36
No. 160.0471.18
No. 300.0230.600
No. 500.0120.300
No. 1000.0060.150
No. 2000.0030.075
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Standards basis

Sieve designations and openings conform to ASTM E11, Standard Specification for Woven Wire Test Sieve Cloth and Test Sieves, the standard referenced by ASTM C33 and other aggregate gradation test methods.

⭐⭐⭐⭐⭐ Fine Aggregate Gradation Chart

ASTM C33 grading limits for fine aggregate used in concrete.

SievePercent Passing
3/8 in (9.5 mm)100
No. 4 (4.75 mm)95 to 100
No. 8 (2.36 mm)80 to 100
No. 16 (1.18 mm)50 to 85
No. 30 (600 µm)25 to 60
No. 50 (300 µm)5 to 30
No. 100 (150 µm)0 to 10
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Additional ASTM C33 fine aggregate requirements

Beyond the percent passing limits above, ASTM C33 requires that fine aggregate have not more than 45 percent passing any one sieve and retained on the next consecutive sieve, and that the fineness modulus be not less than 2.3 nor more than 3.1. Both requirements must be satisfied together with the percent passing table.

⭐⭐⭐⭐⭐ Fine Aggregate Gradation Curve

Plotting the ASTM C33 fine aggregate limits produces an upper and lower boundary, forming an acceptable envelope.

Sieve size (No.100 to 3/8 in, left to right)Percent passing Upper limit Lower limit Sample gradation curve No.100No.50No.30No.16No.8No.43/8in
A sample gradation curve should stay within the ASTM C33 upper and lower limit envelope at every sieve to be considered within the fine aggregate grading requirements.

Smooth curve

A gradation curve that rises smoothly across the sieve range generally indicates a continuous, well-distributed sample.

Missing fractions or excess fines

A curve with a sudden flat section or steep jump can indicate a missing intermediate size fraction or an excess of fine material.

Coarse sand vs fine sand

A curve running near the lower limit generally represents coarser sand, while a curve near the upper limit represents finer sand, both potentially still within specification.

⭐⭐⭐⭐⭐ Coarse Aggregate Gradation Chart

Coarse aggregate gradation is organized by ASTM size number rather than a single universal chart.

Unlike fine aggregate, which has one grading table, coarse aggregate under ASTM C33 has multiple size numbers, each with its own nominal size range and sieve requirements. Selecting the correct size number for a project depends on the intended application, maximum aggregate size permitted, and any project specification requirements.

⭐⭐⭐⭐⭐ ASTM C33 Coarse Aggregate Size Numbers

Standardized size numbers correspond to specific gradations, not a single particle diameter.

Size No.Nominal Size Range
571 in to No. 4 (25.0 to 4.75 mm)
673/4 in to No. 4 (19.0 to 4.75 mm)
71/2 in to No. 4 (12.5 to 4.75 mm)
83/8 in to No. 8 (9.5 to 2.36 mm)
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A size number is a gradation designation, not a single particle diameter

Referring to “No. 57 rock” as if it means every particle measures exactly 1 inch or 3/4 inch is a common misunderstanding. The number identifies a specific range of sieve requirements spanning from the nominal maximum size down to a fine sieve such as No. 4 or No. 8, with a distribution of particle sizes throughout that range.

⭐⭐⭐⭐⭐ No. 57 Aggregate Gradation

No. 57 stone is one of the most common coarse aggregate gradations in concrete and construction.

SievePercent Passing
1 1/2 in100
1 in95 to 100
1/2 in25 to 60
No. 40 to 10
No. 80 to 5

What No. 57 means

No. 57 is an ASTM C33 coarse aggregate size designation covering particles nominally between 1 inch and the No. 4 sieve, with the specific percent passing distribution shown above.

Common applications

Commonly used in concrete mixtures, as a drainage aggregate, and as a base or fill material in various construction applications.

See the Crushed Stone Size Chart and the 57 Stone Calculator for additional reference and quantity estimation.

57 crushed stone showing typical aggregate particle sizes ranging from 1 inch to No. 4 sieve size.
No. 57 stone is a commonly used crushed aggregate containing a range of particle sizes, typically graded from about 1 inch down to the No. 4 sieve size.

⭐⭐⭐⭐ No. 67 Aggregate Gradation

No. 67 is a smaller coarse aggregate gradation than No. 57, commonly used in similar applications.

SievePercent Passing
1 in100
3/4 in90 to 100
3/8 in20 to 55
No. 40 to 10
No. 80 to 5

No. 67 has a smaller nominal maximum size than No. 57, since its distribution runs from 3/4 inch down to No. 4 rather than 1 inch down to No. 4. This makes No. 67 useful where a smaller top size is desired for concrete cover, pipe bedding, or drainage applications.

⭐⭐⭐⭐ Other Common Coarse Aggregate Gradations

Additional ASTM C33 size numbers commonly encountered in construction.

No. 7

Nominal range from 1/2 inch to No. 4, a smaller gradation than No. 67, used where a finer coarse aggregate is desired.

No. 8

Nominal range from 3/8 inch to No. 8, one of the smallest standard coarse aggregate gradations, often used in surface treatments and smaller applications.

Combined designations such as No. 467 and No. 56

Some size numbers combine digits to represent a blend spanning the range of their component numbers, and are often furnished as separate stockpiled sizes rather than one uniform product. Always verify the specific percent passing requirements for any combined designation from the current ASTM C33 table rather than assuming it averages the individual size numbers.

⭐⭐⭐⭐⭐ Fine vs Coarse Aggregate Gradation

A side by side comparison of how these two categories are defined and graded.

FeatureFine AggregateCoarse Aggregate
Typical boundaryPasses No. 4 sieveMostly retained on No. 4 sieve
Main role in concreteFills voids, contributes to workabilityProvides volume and structural skeleton
Key gradation measureContinuous sieve distribution, No. 4 to No. 100Size-number-based grading table
Governing standard (concrete)ASTM C33 fine aggregate tableASTM C33 coarse aggregate size number tables

⭐⭐⭐⭐⭐ Combined Aggregate Gradation

Combined gradation reflects the total particle-size distribution of fine and coarse aggregate together in a concrete mixture.

Combined aggregate gradation is the resulting particle-size distribution when a specific proportion of fine aggregate is blended with a specific proportion of coarse aggregate. It affects particle packing, void content, and how much cement paste is needed to fill remaining voids and coat particle surfaces, which in turn relates to mixture workability and economy.

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Combined gradation targets are not universally mandatory

Various combined gradation targets and specification bands exist in industry practice and agency specifications, but these should not be presented as a single mandatory target applicable to every concrete mixture. Any specific combined gradation requirement should be tied to the applicable project specification.

⭐⭐⭐⭐⭐ Combined Aggregate Gradation Chart

An illustrative example of blending fine and coarse aggregate into a combined gradation.

SieveFine Aggregate % PassingCoarse Aggregate % PassingCombined % Passing (40% Fine / 60% Coarse)
1 in1009798.2
1/2 in1004265.2
No. 498542.2
No. 885134.6
No. 3040016.0
No. 100301.2

This example uses illustrative fine and coarse aggregate percent passing values consistent with materials that individually satisfy ASTM C33, blended at a 40 percent fine to 60 percent coarse ratio by mass, to demonstrate the calculation method. Actual combined gradation depends on the specific fine and coarse aggregate sources and blend proportions used on a given project.

⭐⭐⭐⭐⭐ How to Calculate Combined Aggregate Gradation

Combined gradation at each sieve is a weighted average of the fine and coarse aggregate passing percentages.

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Combined gradation formula

P(combined) = f(f) x P(f) + f(c) x P(c), where f(f) is the fraction of fine aggregate in the blend by mass, f(c) is the fraction of coarse aggregate in the blend by mass, P(f) is the fine aggregate percent passing a given sieve, and P(c) is the coarse aggregate percent passing that same sieve.

Worked calculation at the No. 4 sieve

Given: 40 percent fine aggregate (98 percent passing No. 4) blended with 60 percent coarse aggregate (5 percent passing No. 4).P(combined) = 0.40 x 98 + 0.60 x 5 = 39.2 + 3.0 = 42.2 percent passing No. 4, matching the combined gradation chart above.

⭐⭐⭐⭐⭐ Dense-Graded Aggregate

A broad, relatively continuous distribution of particle sizes designed to minimize void space.

Broad size distribution

Dense-graded aggregate contains a wide range of particle sizes, from the maximum size down through the fines.

Void-filling behavior

Smaller particles occupy the voids left between larger particles, producing a relatively dense, low-void material.

Continuous grading curve

The gradation curve for dense-graded material rises smoothly and continuously across the sieve range without significant gaps.

Applications

Common in concrete aggregate, base materials, and many pavement applications where density and load distribution are priorities.

⭐⭐⭐⭐⭐ Open-Graded Aggregate

Contains few fine particles, leaving larger interconnected voids for drainage.

Few fines

Open-graded material intentionally minimizes fine particle content, often keeping material passing the No. 200 sieve very low.

Larger connected voids

Without fines filling the spaces between larger particles, open-graded material retains substantial interconnected void space.

Drainage and permeability

The connected void structure gives open-graded aggregate significantly higher permeability than dense-graded material of similar maximum size.

⭐⭐⭐⭐⭐ Gap-Graded Aggregate

Intentionally limits or omits one or more intermediate particle-size fractions.

Intentional gap

One or more intermediate sieve fractions are deliberately reduced or absent from the distribution.

Distinct gradation curve

A gap-graded curve shows a flat or near-flat section at the intermediate sieves where material is missing, distinct from the smooth curve of dense-graded material.

Different packing behavior

Removing intermediate sizes changes how particles interlock and pack compared to a continuously graded material of the same maximum size.

Types
Comparison of dense-graded, open-graded, gap-graded, and uniformly graded aggregates, showing how particle size distribution affects voids, density, drainage, and performance.

⭐⭐⭐⭐ Uniformly Graded / Single-Sized Aggregate

A narrow range of particle sizes that are all relatively similar.

Narrow particle-size range

Most particles fall within a relatively tight size range rather than spanning from coarse to fine.

Higher void content

Without a range of smaller particles to fill gaps, uniformly graded material generally has higher void content than well-graded material of the same maximum size.

Specialized applications

Used in applications where high void content or specific drainage characteristics are desired, rather than dense packing.

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Not the same as “well graded”

Uniform gradation and well-graded material are distinct concepts. Well-graded material has a broad distribution across many sizes, while uniformly graded material has a narrow distribution concentrated around one size. Do not use these terms interchangeably.

⭐⭐⭐⭐⭐ Well-Graded vs Poorly Graded Aggregate

Two general classifications describing the breadth of a particle-size distribution.

ClassificationDescription
Well gradedA broad, continuous distribution of particle sizes spanning from coarse to fine without significant gaps
Poorly gradedA limited or narrow size range, or a distribution missing one or more intermediate sizes

These classification terms are used in geotechnical engineering, including soil classification systems that apply gradation parameters and specific criteria to distinguish poorly graded sands and gravels from well-graded ones. In concrete aggregate contexts, well graded material generally supports good particle packing and workability, though meeting a specification’s numeric grading limits is the definitive compliance test, not the general well-graded or poorly-graded label alone.

⭐⭐⭐⭐⭐ Maximum Aggregate Size

Generally the smallest sieve opening through which essentially all of the aggregate passes.

Maximum aggregate size is typically defined, depending on the applicable specification, as the smallest standard sieve opening through which 100 percent, or essentially all, of the aggregate sample passes. Because this definition depends on the specific standard or specification in use, always confirm which definition applies before comparing values across different sources.

⭐⭐⭐⭐⭐ Nominal Maximum Aggregate Size (NMAS)

A related but distinct term widely used in mixture proportioning.

What NMAS means

Nominal maximum aggregate size is generally the sieve size one size larger than the first sieve to retain more than a specified small percentage of the material, commonly used for mixture design purposes.

Why it matters

NMAS affects mixture proportioning, reinforcement clearance requirements, placement method, and pumpability of a given concrete mixture.

Concrete mixture proportioning

Mixture design procedures commonly reference NMAS when establishing water demand, cement content relationships, and other proportioning factors.

Placement and pumpability

A larger NMAS can affect how easily a mixture pumps through line diameters and finishes at exposed surfaces or tight reinforcement spacing.

⭐⭐⭐⭐⭐ Maximum Size vs Nominal Maximum Size

These terms are frequently confused but are not identical.

TermGeneral Definition
Maximum aggregate sizeSmallest sieve through which essentially all (typically 100 percent) of the sample passes
Nominal maximum aggregate size (NMAS)One sieve size larger than the first sieve retaining more than a specified small percentage of material; a small portion of the sample may still be retained on this sieve
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These are not interchangeable

NMAS is typically one size class coarser than maximum size, because it tolerates a small percentage of oversized material rather than requiring 100 percent passing. Always identify which term a specification or mixture design document is actually using.

⭐⭐⭐⭐⭐ Percent Passing vs Percent Retained

The two basic quantities used to interpret any sieve analysis report.

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Core formulas

Percent retained = (mass retained on sieve / total sample mass) x 100. Percent passing = 100 minus cumulative percent retained on that sieve and all coarser sieves above it.

⭐⭐⭐⭐⭐ Sieve Analysis Procedure

The standard workflow for determining aggregate gradation.

Obtain a representative sample.

Use proper sampling and splitting procedures so the tested portion represents the full aggregate source.

Dry the sample.

Dry to a constant mass so moisture does not affect measured weights.

Weigh the total dry mass.

Record the starting mass before sieving begins.

Arrange sieves in order.

Stack sieves from largest opening at the top to smallest opening at the bottom, with a pan underneath.

Shake the sample through the sieve stack.

Use mechanical or manual shaking for a standardized duration to separate particles by size.

Weigh material retained on each sieve.

Record the mass retained on each individual sieve and in the bottom pan.

Calculate percentages.

Convert retained masses to percent retained, cumulative percent retained, and percent passing for each sieve.

Plot the gradation curve.

Graph percent passing against sieve size to visualize the distribution and compare against any applicable specification envelope.

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Standards basis

AASHTO T27, Standard Method of Test for Sieve Analysis of Fine and Coarse Aggregates, is the commonly referenced test method for performing aggregate sieve analysis in highway and construction materials testing programs.

⭐⭐⭐⭐⭐ How to Read an Aggregate Gradation Report

A sample report layout and explanation of each column.

SieveWeight Retained (g)Percent RetainedCumulative % RetainedPercent Passing
No. 4202298
No. 8130131585
No. 16200203565
No. 30250256040
No. 50250258515
No. 10012012973
Pan3031000

Weight retained

The raw mass of material caught on each individual sieve during testing, based on a 1000 gram sample in this example.

Percent retained

Weight retained on that sieve divided by total sample weight, multiplied by 100.

Cumulative percent retained

Running total of percent retained, adding each sieve’s percent retained to the sum of all sieves above it.

Percent passing

100 minus the cumulative percent retained at that sieve, representing material finer than that sieve opening.

⭐⭐⭐⭐⭐ How to Plot an Aggregate Gradation Curve

The standard graphical format for visualizing gradation data.

Semi-log x-axis

Sieve size or particle size is commonly plotted on a logarithmic horizontal axis, since sieve openings span a wide range of magnitudes.

Percent passing y-axis

Cumulative percent passing is plotted on a standard linear vertical axis from 0 to 100 percent.

Specification envelope

Upper and lower specification limit curves can be plotted alongside the sample curve to visually check compliance.

Sample curve

The actual tested sample’s percent passing values are plotted and connected to form its unique gradation curve.

⭐⭐⭐⭐⭐ Aggregate Gradation Envelope

The region between a specification’s upper and lower limits at every sieve.

Upper limit

The maximum percent passing allowed at each sieve under the applicable specification.

Lower limit

The minimum percent passing allowed at each sieve under the applicable specification.

Target curve

Some specifications or mixture designs identify a preferred target curve within the broader envelope.

Out-of-spec result

A sample curve that crosses outside the upper or lower limit at any sieve does not meet that specification’s grading requirement at that sieve, using ASTM C33 fine aggregate as the reference example.

⭐⭐⭐⭐⭐ Fineness Modulus of Fine Aggregate

A single number summarizing average particle size, calculated directly from sieve analysis data.

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Fineness modulus formula

FM equals the sum of the cumulative percent retained on the No. 4, No. 8, No. 16, No. 30, No. 50 and No. 100 sieves, divided by 100.

SievePercent RetainedCumulative % Retained
No. 422
No. 81315
No. 162035
No. 302560
No. 502585
No. 1001297

Fineness modulus calculation

Sum of cumulative percent retained: 2 + 15 + 35 + 60 + 85 + 97 = 294.FM = 294 / 100 = 2.94, which falls within the ASTM C33 required range of 2.3 to 3.1 for fine aggregate.
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FM does not fully describe gradation

Fineness modulus is a single summary number and does not by itself confirm that a sample satisfies every individual sieve’s percent passing limit. A sample can have an acceptable fineness modulus while still failing an individual sieve requirement, so FM should be used alongside, not instead of, the full sieve analysis.

⭐⭐⭐⭐⭐ How Aggregate Gradation Affects Concrete Workability

Gradation influences particle packing and paste demand, but is only one factor among several.

A well-distributed gradation generally supports good particle packing, which can reduce the volume of cement paste needed to fill voids and coat particle surfaces, supporting workability, finishability, and pumpability. Poorly optimized gradation, such as a harsh gap-graded blend lacking intermediate sizes, can produce a mixture that resists consolidation or finishes poorly. However, more fines does not automatically improve workability; excess fines can increase water and paste demand and create a sticky, harsh-handling mixture depending on the specific fines content and aggregate characteristics.

⭐⭐⭐⭐⭐ Aggregate Gradation and Water Demand

Gradation affects surface area and void content, both of which relate to water demand.

A poorly optimized particle-size distribution can increase the total surface area needing paste coverage or leave more void space to fill, which can increase water and paste demand in a given mixture. However, aggregate shape and surface texture also significantly affect water demand, so gradation alone should not be treated as the sole cause of a mixture’s water demand behavior.

⭐⭐⭐⭐⭐ Aggregate Gradation and Concrete Strength

Gradation is one contributing factor among several that affect concrete performance.

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Gradation alone does not determine compressive strength

Good particle packing from favorable gradation can support proper consolidation and paste distribution, but compressive strength is primarily governed by the water-to-cementitious-materials ratio, along with proper consolidation, curing, and avoiding segregation. A well-graded aggregate does not guarantee high strength if the water-cementitious ratio or curing is deficient.

⭐⭐⭐⭐ Aggregate Gradation and Segregation

Certain gradation characteristics can increase the risk of segregation during placement.

Excess coarse particles

A mixture with disproportionately more coarse aggregate relative to paste and fines can be prone to segregation during placement and consolidation.

Insufficient fines

Too little fine material can leave a mixture harsh and less cohesive, increasing segregation risk.

Gap grading effects

A pronounced gap in intermediate particle sizes can affect how well the mixture holds together during placement.

Workability and placement method

Placement method, such as pumping or free-fall discharge, interacts with gradation to influence actual segregation risk on a given project.

⭐⭐⭐⭐ Aggregate Gradation and Bleeding

Gradation can influence bleeding, but is not the only, or necessarily primary, factor.

Aggregate gradation can affect mixture stability and the pathways available for water to migrate upward during bleeding, but bleeding is also strongly influenced by water content, cementitious materials content and fineness, chemical admixtures, air content, and ambient temperature. Treat gradation as one contributing variable among several rather than the primary determinant of bleeding behavior.

⭐⭐⭐⭐⭐ Aggregate Gradation for Pumped Concrete

Pumpability depends on a continuous particle-size distribution and adequate mortar fraction relative to pump line diameter.

Continuous particle-size distribution

A gap in the gradation curve can create pumping difficulties by disrupting the lubricating layer that helps concrete move through the line.

Mortar fraction

Adequate fine aggregate and paste content relative to coarse aggregate helps maintain a pumpable mixture.

Maximum aggregate size vs pump line diameter

Maximum aggregate size should be appropriately smaller than the pump line diameter to avoid blockages.

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No universal pump gradation value

Specific gradation targets for pumped concrete depend on the mixture design, pump equipment, and line configuration used on a given project. Consult the mixture-specific requirements rather than applying one universal gradation target to every pumped mixture.

⭐⭐⭐⭐ Aggregate Gradation for Concrete Slabs and Pavements

Gradation affects finishability and surface characteristics of flatwork.

Finishability

A well-distributed gradation supports a workable surface mortar layer that finishers can work effectively.

Aggregate size relative to slab thickness

Maximum aggregate size is generally selected with consideration for slab thickness and finishing requirements.

Placement and consolidation

Gradation interacts with placement method and consolidation practice to affect the final surface quality of slabs and pavement.

⭐⭐⭐⭐ Aggregate Gradation for Base and Subbase

Gradation extends beyond concrete into unbound base and subbase applications.

Unbound base and subbase materials are also evaluated by gradation, typically reporting cumulative particle-size distribution across a wide sieve range from several inches down to the No. 200 sieve. Base course gradation requirements are generally set by the applicable transportation agency or project specification rather than ASTM C33, since C33 specifically addresses concrete aggregates.

⭐⭐⭐⭐ Aggregate Gradation for Drainage Applications

Open grading is often preferred where permeability is the primary goal.

Where water needs to move freely through an aggregate layer, such as in drainage backfill or permeable pavement base, an open-graded material with minimal fines is often preferred over a dense-graded material, since the larger interconnected voids allow water to pass through more readily. Specific drainage aggregate gradation requirements should come from the applicable project specification or drainage design.

⭐⭐⭐⭐⭐ ASTM C33 Aggregate Grading Requirements

The primary standards section anchoring this page’s concrete-related gradation data.

RequirementASTM C33 Provision
Fine aggregate gradingPercent passing limits for 3/8 in through No. 100 sieves
Fine aggregate fineness modulusNot less than 2.3 nor more than 3.1
Fine aggregate sieve retention limitNot more than 45 percent passing any one sieve and retained on the next consecutive sieve
Coarse aggregate size numbersSeparate percent passing tables for each standardized size number, such as No. 57 and No. 67
Deleterious substances / fines limitsSeparate limits on material passing the No. 200 sieve and other deleterious substances for both fine and coarse aggregate
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Illustrative vs specification tables on this page

The fine aggregate table, No. 57 table, and No. 67 table on this page reproduce actual ASTM C33 specification limits. The combined gradation chart and worked examples are illustrative demonstrations of calculation method, not themselves a specification requirement.

⭐⭐⭐⭐ AASHTO Aggregate Gradation References

Transportation and highway agencies commonly reference parallel AASHTO standards.

AASHTO M43

Standard specification for sizes of aggregate for road and bridge construction, providing size designations similar in structure to ASTM C33 and ASTM D448 coarse aggregate size numbers.

AASHTO T27

Standard method of test for sieve analysis of fine and coarse aggregates, commonly referenced for highway and transportation materials testing.

⭐⭐⭐⭐⭐ Aggregate Gradation Worked Examples

Practical demonstrations of the calculations used throughout this chart.

1. Calculate percent passing from sieve weights

Given: a 1000 gram fine aggregate sample with 130 grams retained on the No. 8 sieve, and 15 grams cumulative retained on all sieves coarser than No. 8 combined with the No. 8 retained mass equaling 150 grams total cumulative retained.Percent passing No. 8 = 100 minus (150 / 1000 x 100) = 100 minus 15 = 85 percent passing, matching the sample report table above.

2. Check fine aggregate against the ASTM C33 envelope

Given: a sample showing 85 percent passing No. 8 and 65 percent passing No. 16.Result: 85 percent falls within the ASTM C33 No. 8 range of 80 to 100 percent, and 65 percent falls within the No. 16 range of 50 to 85 percent, so this sample satisfies the ASTM C33 grading limit at both sieves.

3. Blend fine and coarse aggregate into a combined gradation

Given: 40 percent fine aggregate at 98 percent passing No. 4, blended with 60 percent coarse aggregate at 5 percent passing No. 4.Combined percent passing No. 4 = 0.40 x 98 + 0.60 x 5 = 39.2 + 3.0 = 42.2 percent, matching the combined gradation chart example above.

4. Identify a gap-graded curve

Given: a sample gradation curve showing 90 percent passing 3/4 inch, 88 percent passing 3/8 inch, but only 10 percent passing No. 4, with almost no material between 3/8 inch and No. 4.Result: the near-flat section of the curve between 3/8 inch and No. 4 indicates a gap-graded distribution, missing intermediate particle sizes in that range.

⭐⭐⭐⭐⭐ Common Aggregate Gradation Mistakes

Most gradation errors trace back to one of these misunderstandings.

❌ Confusing aggregate size with gradation

Nominal size describes one dimension; gradation describes the full particle-size distribution.

❌ Confusing percent retained and percent passing

These are complementary but different values calculated from the same sieve data.

❌ Misidentifying sieve sizes

Sieve numbers and their actual openings in inches or millimeters must be matched correctly using the standard sieve chart.

❌ Ignoring No. 200 fines

Material passing the No. 200 sieve has its own separate specification limits and cannot be inferred from the coarser sieve data alone.

❌ Using one coarse gradation for every ASTM size number

Each size number, such as No. 57 or No. 67, has its own distinct percent passing table.

❌ Confusing maximum size with NMAS

These terms use different definitions and are not interchangeable.

❌ Assuming well graded means compliant with every specification

A general well-graded description does not replace confirming actual compliance with a specific numeric specification.

❌ Ignoring sample representativeness

An unrepresentative sample can produce gradation results that do not reflect the actual aggregate source.

❌ Mixing ASTM and AASHTO designations without labels

Always identify which standard a specific size number or requirement comes from.

⭐⭐⭐⭐⭐ Aggregate Gradation Chart Limitations

Understanding what gradation data does not tell you is essential for material selection.

Gradation alone does not establish concrete quality

Many other mixture and material factors also govern final concrete performance.

Particle shape matters

Angular, rounded, or flat and elongated particles behave differently even at identical gradation.

Texture matters

Smooth versus rough particle surfaces affect paste bond and water demand independent of gradation.

Absorption and specific gravity matter

These properties affect mixture proportioning calculations separately from gradation.

Moisture affects testing and batching

Field moisture content must be accounted for separately from dry gradation test results.

Deleterious materials matter

Clay, shale, and other deleterious substances have their own separate specification limits beyond gradation.

Application and specification govern requirements

The applicable project specification, not a generic chart, determines actual compliance requirements.

Local DOT requirements may differ

State and local transportation agencies may specify their own gradation tables distinct from ASTM C33.

Frequently Asked Questions

Aggregate gradation is the particle-size distribution of an aggregate sample, describing what percentage of particles fall within each size range, typically determined by sieve analysis and expressed as percent passing each sieve.
A gradation chart is a table or curve showing the percentage of aggregate passing each of a series of standard sieves, used to evaluate whether a sample falls within a specification’s grading limits.
Aggregate gradation is measured through sieve analysis, in which a dried, weighed sample is passed through a stack of standard sieves of decreasing opening size, and the mass retained on each sieve is recorded and converted to percent passing.
Percent passing is the percentage, by dry mass, of the aggregate sample that passes through a given sieve opening, calculated as 100 minus the cumulative percent retained on that sieve and all coarser sieves.
Percent retained is the percentage, by mass, of the sample that remains on a specific sieve after shaking, calculated as the mass retained on that sieve divided by the total sample mass, multiplied by 100.
A well-graded aggregate has a broad, relatively continuous distribution of particle sizes, so smaller particles help fill the voids between larger particles, generally producing a dense particle packing.
Gap-graded aggregate intentionally limits or omits one or more intermediate particle-size fractions, producing a distinct gradation curve with a gap rather than a smooth, continuous distribution.
Open-graded aggregate contains few fine particles, leaving larger interconnected voids between particles, which increases permeability and drainage capacity compared to dense-graded material.
Dense-graded aggregate has a broad, continuous distribution of particle sizes in which smaller particles fill the voids between larger particles, minimizing void space and producing a relatively dense, low-permeability material.
Uniformly graded, or single-sized, aggregate has a narrow range of particle sizes that are all relatively similar, which tends to produce higher void content than a well-graded blend of the same maximum size.
Aggregate size describes the nominal or maximum particle size of a material, while aggregate gradation describes the full distribution of particle sizes present in the sample, expressed as percent passing across a series of sieves.
No. 57 is an ASTM C33 coarse aggregate size designation with 100 percent passing the 1 1/2 inch sieve, 95 to 100 percent passing the 1 inch sieve, 25 to 60 percent passing the 1/2 inch sieve, and 0 to 10 percent passing the No. 4 sieve, rather than a single particle diameter.
ASTM C33 is the standard specification for concrete aggregates that establishes grading limits for fine aggregate and size-number-based grading requirements for coarse aggregate used in concrete.
Under ASTM C33, fine aggregate must have 100 percent passing the 3/8 inch sieve, 95 to 100 percent passing the No. 4 sieve, 80 to 100 percent passing the No. 8 sieve, 50 to 85 percent passing the No. 16 sieve, 25 to 60 percent passing the No. 30 sieve, 5 to 30 percent passing the No. 50 sieve, and 0 to 10 percent passing the No. 100 sieve.
Nominal maximum aggregate size is the sieve size that is one size larger than the first sieve to retain more than a specified small percentage of the material, commonly used in mixture proportioning even though a small portion of the sample may still be retained on that sieve.
Maximum aggregate size is generally defined as the smallest sieve opening through which the entire sample passes, or through which essentially all of the sample passes, depending on the applicable specification’s exact definition.
Combined gradation at a given sieve is calculated by multiplying the fine aggregate percent passing by its proportion of the total blend, multiplying the coarse aggregate percent passing by its proportion of the blend, and adding the two results together.
A gradation curve plots sieve size on the horizontal axis, often on a logarithmic scale, against cumulative percent passing on the vertical axis, connecting the percent-passing values for each sieve tested.
Gradation affects particle packing, paste and water demand, workability, finishability, pumpability and segregation resistance, though gradation alone does not determine compressive strength, since water-cementitious ratio, consolidation and other mixture factors also govern strength.

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ASTM C33 fine aggregate limitsASTM C33 coarse size numbersNo. 57 and No. 67 gradationSieve size conversionsCombined gradation calculationFineness modulus formulaGradation curve envelopeDense, open, gap, uniform typesWorked examplesAASHTO references

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