Iowanews Headlines

Investment Casting Tolerances Under ISO 8062 Define Key CT Grade Requirements

 Breaking News
  • No posts were found

Investment Casting Tolerances Under ISO 8062 Define Key CT Grade Requirements

September 14
11:42 2026

Taiyuan, Shanxi, China – September 14, 2026 – Investment Casting (lost-wax casting) can achieve dimensional tolerances of CT5 to CT7 per ISO 8062-3, depending on the shell process used — silica sol process delivers CT5–CT7, while water glass process delivers CT9–CT11. For a 50 mm dimension, this translates to approximately ±0.25 mm to ±0.50 mm. Surface finish ranges from Ra 6.3 μm to Ra 12.5 μm, and minimum wall thickness can be as thin as 1.5 mm. Understanding these tolerance grades is critical for engineers and procurement teams when specifying castings and evaluating supplier capabilities.

What Is ISO 8062?

ISO 8062 is the international standard that defines dimensional and geometrical tolerances for castings. The current version, ISO 8062-3:2019, specifies general dimensional tolerances, geometrical tolerances, and machining allowance grades for castings produced by all casting processes and all cast metals and alloys.

The standard defines 16 tolerance grades, designated CT1 through CT16, where CT1 is the tightest (most precise) and CT16 is the loosest (least precise). Each grade specifies a total tolerance band for a given nominal dimension range.

Key points about ISO 8062:

  • · The CT value represents the total tolerance band (not a ± value). If your drawing specifies a bilateral ± tolerance, divide the CT value by 2. For example, CT6 at 50 mm = 0.64 mm total = ±0.32 mm.
  • · The standard applies to as-cast dimensions before any secondary machining.
  • · Different casting processes naturally fall into different CT grade ranges — no single process can achieve all 16 grades.
  • · The equivalent Chinese national standard is GB/T 6414, and the German standard is VDG P690 (where grade D2 roughly corresponds to CT5).

Understanding CT Grades

The CT grade system works on a simple principle: lower number = tighter tolerance = higher precision = higher cost.

CT Grade Range

Precision Level

Typical Processes

CT1–CT3

Ultra-high precision

Rarely achieved by casting; typically requires Cnc Machining

CT4–CT6

High precision

Silica sol investment casting, high-pressure die casting

CT7–CT9

Medium precision

Water glass investment casting, Shell Molding, permanent mold casting

CT10–CT12

Standard precision

Machine sand casting, gravity die casting

CT13–CT16

Low precision

Hand mold sand casting, large castings

For investment casting specifically, the achievable grade depends primarily on the shell-making process:

  • · Silica sol process: CT5–CT7 — the most precise investment casting method, suitable for stainless steel, alloy steel, and high-temperature alloys requiring tight tolerances and excellent surface finish.
  • · Water glass process: CT9–CT11 — more cost-effective for carbon steel and lower-precision applications, with slightly rougher surface finish.

Full ISO 8062 Tolerance Table

The following table shows the total dimensional tolerance band in millimeters for CT4 through CT12, covering the range most relevant to investment casting and precision sand casting.

Important: All values are total tolerance bands. For ± (bilateral) tolerances, divide by 2.

Nominal Dimension (mm) > ≤

CT4

CT5

CT6

CT7

CT8

CT9

CT10

CT11

CT12

0 – 10

0.26

0.36

0.52

0.74

1.0

1.5

2.0

2.8

4.0

10 – 16

0.27

0.38

0.54

0.78

1.1

1.6

2.2

3.0

4.4

16 – 25

0.28

0.40

0.56

0.82

1.2

1.7

2.4

3.2

4.8

25 – 40

0.30

0.42

0.60

0.86

1.3

1.8

2.6

3.6

5.2

40 – 63

0.32

0.46

0.64

0.92

1.4

2.0

2.8

4.0

5.6

63 – 100

0.36

0.50

0.70

1.0

1.6

2.2

3.2

4.4

6.0

100 – 160

0.40

0.56

0.78

1.1

1.8

2.5

3.6

5.0

7.0

160 – 250

0.50

0.70

1.0

1.4

2.0

2.8

4.0

5.6

8.0

250 – 400

0.56

0.78

1.1

1.6

2.2

3.2

4.4

6.4

9.0

400 – 630

0.64

0.90

1.2

1.8

2.5

3.6

5.0

7.0

10.0

630 – 1000

0.72

1.0

1.4

2.0

2.8

4.0

5.6

8.0

11.0

Example: A stainless steel investment casting with a nominal dimension of 80 mm produced by silica sol process at CT6 has a total tolerance of 0.70 mm, or ±0.35 mm.

What Tolerances Can Investment Casting Achieve?

Investment casting is one of the most precise near-net-shape casting processes available. Here is a breakdown of achievable tolerances by process variant:

Silica Sol Investment Casting

Parameter

Capability

Dimensional tolerance

CT4–CT6 (ISO 8062)

Tolerance at 50 mm

±0.18 mm to ±0.32 mm

Surface finish (Ra)

1.6 – 6.3 μm

Minimum wall thickness

0.5 – 1.5 mm

Typical part weight

10 g – 50 kg

Best for

Stainless steel, alloy steel, high-temperature alloys; parts requiring tight tolerances and excellent surface finish

Water Glass Investment Casting

Parameter

Capability

Dimensional tolerance

CT6–CT9 (ISO 8062)

Tolerance at 50 mm

±0.32 mm to ±0.50 mm

Surface finish (Ra)

3.2 – 12.5 μm

Minimum wall thickness

1.5 – 3.0 mm

Typical part weight

50 g – 100 kg

Best for

Carbon steel, low-alloy steel; cost-effective medium-precision parts

Key Tolerance Characteristics of Investment Casting

1. Consistency: Investment casting offers excellent repeatability — once the wax pattern and shell process are stabilized, batch-to-batch dimensional variation is minimal.

2. Complex geometry: Tolerances are maintained even on parts with undercuts, internal passages, and thin walls — features that would require extensive machining in other processes.

3. Draft angles: Investment casting requires minimal or no draft angles (0.5°–1° typical), compared to 1°–3° for sand casting and die casting.

4. Shrinkage allowance: Pattern dimensions are designed with a shrinkage allowance (typically 1.5%–2.5% for steel, 1.0%–1.5% for aluminum) to compensate for metal solidification shrinkage.

Casting Process Tolerance Comparison

Choosing the right casting process involves balancing tolerance requirements, surface finish, material compatibility, part complexity, and cost. The following table compares the typical tolerance capabilities of common casting processes:

Process

Typical CT Grade

Tolerance at 50 mm (±)

Surface Finish (Ra)

Min. Wall Thickness

Material Range

Investment Casting (Silica Sol)

CT5–CT7

±0.18–0.32 mm

1.6–6.3 μm

0.5–1.5 mm

All metals (steel, stainless, alloy, aluminum, copper)

Investment Casting (Water Glass)

CT9–CT11

±0.32–0.50 mm

3.2–12.5 μm

1.5–3.0 mm

Carbon steel, low-alloy steel

High-Pressure Die Casting

CT4–CT6

±0.10–0.25 mm

0.8–3.2 μm

0.5–0.75 mm

Non-ferrous only (aluminum, zinc, magnesium)

Shell Molding

CT7–CT9

±0.40–0.60 mm

3.2–12.5 μm

2.0–3.0 mm

Ferrous and non-ferrous

Permanent Mold Casting

CT6–CT9

±0.30–0.50 mm

1.6–6.3 μm

2.0–3.0 mm

Aluminum, zinc, magnesium, cast iron

Machine Sand Casting

CT10–CT13

±0.75–1.50 mm

12.5–50 μm

3.0–6.0 mm

All metals

Hand Mold Sand Casting

CT12–CT16

±1.50–3.00 mm

25–100 μm

5.0–10 mm

All metals, especially large parts

Key takeaway: If your part requires steel or stainless steel with tolerances tighter than CT8, investment casting (silica sol process) is the only viable casting process — die casting cannot handle ferrous metals, and sand casting cannot achieve CT8 or tighter.

Factors That Affect Casting Tolerances

Several factors influence the actual tolerances achievable on a specific investment casting:

1. Part Geometry

  • · Size: Larger parts have wider absolute tolerances (the CT grade is a percentage of dimension, so absolute tolerance increases with size).
  • · Wall thickness: Very thin walls (
  • · Complexity: Parts with deep pockets, undercuts, or internal cores may have slightly wider tolerances in those features.
  • · Section thickness variation: Abrupt changes in section thickness cause differential shrinkage and potential distortion.
  • · Shrinkage rate: Different alloys have different solidification shrinkage rates (steel ~2%, aluminum ~1.5%, copper ~1.6%). Higher shrinkage = more potential for dimensional variation.
  • · Melting point: Higher melting point alloys (stainless steel, high-temperature alloys) require hotter pouring, which increases shell thermal expansion and can slightly widen tolerances.
  • · Alloy composition: Elements that affect fluidity and solidification behavior can influence dimensional consistency.
  • · Wax pattern quality: Injection temperature, pressure, and cooling time affect pattern dimensional accuracy and stability.
  • · Shell building: Number of shell layers, slurry viscosity, and drying conditions influence shell strength and dimensional stability.
  • · Pouring temperature: Higher pouring temperatures increase metal shrinkage and shell thermal expansion.
  • · Shell preheat temperature: Preheating the shell before pouring affects metal flow and solidification rate.
  • · Cooling rate: Controlled cooling reduces residual stress and distortion.
  • · Cutting and grinding: Removing gates and risers can introduce local distortion if not done carefully.
  • · Heat treatment: Quenching and normalizing can cause dimensional changes, especially for parts with non-uniform section thickness.
  • · Shot blasting / sandblasting: Surface cleaning can remove a small amount of material (typically 0.02–0.05 mm), affecting critical dimensions.
  • · CNC machining: Secondary machining can achieve tolerances down to IT5–IT7 (±0.01–0.05 mm) for critical features.

2. Material3. Process Parameters4. Post-Casting Operations

How to Achieve Tighter Casting Tolerances

If your application requires tolerances at the tighter end of the investment casting range (CT4–CT5), consider these strategies:

1. Design for Manufacturability (DFM)

  • · Avoid abrupt section changes: Use gradual transitions (fillets, tapers) to minimize differential shrinkage.
  • · Specify critical dimensions: Clearly identify which dimensions are critical and which can use general tolerances — trying to hold every dimension to CT4 increases cost unnecessarily.
  • · Allow for machining stock: For features requiring tolerances tighter than casting can achieve, design with machining allowance (typically 0.5–1.5 mm per surface) and specify CNC machining for those features.
  • · Avoid thin, long features: Long thin sections are prone to warpage during cooling.
  • · Use silica sol process: If currently using water glass, switching to silica sol can improve tolerances by 1–2 CT grades and significantly improve surface finish.
  • · Stabilize wax injection: Use precision wax injection machines with controlled temperature, pressure, and cycle time. Use dimensionally stable wax blends.
  • · Control shell drying: Ensure consistent drying time and humidity for each shell layer — rushed drying causes shell deformation.
  • · Use casting simulation software: Tools like MAGMA, ProCAST, or AnyCasting can predict shrinkage, porosity, and distortion before tooling is cut, allowing design optimization.
  • · Use precision tooling: CNC-machined aluminum or steel wax injection dies with tight tolerances (±0.02 mm) ensure pattern accuracy.
  • · Implement first-article inspection: Perform full dimensional inspection (CMM) on the first production samples and adjust tooling dimensions accordingly.
  • · Use statistical process control (SPC): Monitor key dimensions over production runs to detect process drift early.
  • · Consider 3D-printed wax patterns: For low-volume or prototype parts, 3D-printed wax patterns (SLA/DLP) can achieve pattern tolerances of ±0.05 mm, eliminating tooling-related variation.
  • · For critical features requiring tolerances tighter than CT4 (±0.1 mm or better), CNC machining is the standard solution. Investment casting provides a near-net-shape blank, and machining achieves the final precision.
  • · Typical machining tolerances: IT5–IT7 per ISO 286 (±0.01–0.05 mm for small dimensions).
  • · Combining investment casting with CNC machining often yields the lowest total cost for precision steel parts — better than machining from solid billet, and more precise than casting alone.

2. Process Optimization

3. Tooling and Quality Control4. Secondary Machining

SIMIS Investment Casting Tolerance Capabilities

At Taiyuan Simis Investment Casting Co., Ltd., we operate both silica sol and water glass investment casting lines, with 6 foundries and 2 dedicated CNC machining workshops. Our tolerance capabilities include:

Capability

Specification

Silica sol investment casting

CT5–CT7 per ISO 8062

Water glass investment casting

CT9–CT11 per ISO 8062

Surface finish (silica sol)

Ra 3.2 – 6.3 μm

Surface finish (water glass)

Ra 6.3 – 12.5 μm

Minimum wall thickness

3.0 mm (silica sol); 5.0 mm (water glass)

CNC machining tolerance

IT5–IT7 (±0.01 – 0.05 mm) for critical features

Part weight range

10 g – 100 kg

Materials

Carbon steel (WCB, WCC), alloy steel (4140, 4340), stainless steel (304, 316/L, CF8M), duplex stainless, heat-resistant alloys, aluminum (A356.2, ADC12), copper alloys, cast iron, Ni-Resist

Standards

ASTM, AISI, DIN, JIS, GB, ISO 8062

Quality certification

ISO 9001:2015

Inspection equipment

CMM (coordinate measuring machine), optical projector, spectral analyzer, tensile tester, hardness tester, X-ray, UT, dye penetrant

We provide DFM (Design for Manufacturability) review for every new project — our engineering team will analyze your drawings, recommend the optimal casting process, identify features requiring CNC machining, and provide a tolerance feasibility assessment before production begins.

For parts requiring tolerances beyond casting capability, our in-house CNC machining centers deliver precision finishing with full traceability — eliminating the need for a separate machining subcontractor and ensuring consistent quality from raw casting to finished part.

Contact our engineering team today with your drawings for a free tolerance feasibility review and quotation.

About Us

Taiyuan Simis Investment Casting Co., Ltd., is a professional foundry that integrates development and production. The company specializes in producing various investment castings, sand castings, die castings, forgings, sheet metal fabrications, and precision machined parts.

Media Contact
Company Name: Taiyuan Simis Investment Casting Co., Ltd.
Contact Person: Media Relations
Email: Send Email
Country: China
Website: https://www.simis-manufacturer.com/

Categories