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GB/T 3103.3-2020 Flat Washer Tolerances Guide

由 epkr | 12 月 22, 2025 | 技术文档和参考资料

GB/T 3103.3-2020 Flat Washer Tolerances Guide

Tolerances for Flat Washers

1. Introduction

Flat washers play a critical role in fastening systems by distributing loads, preventing surface damage, and ensuring assembly integrity. The GB/T 3103.3-2020 standard specifies tolerances for plain flat washers with nominal diameters from 1 mm to 150 mm, applicable to product grades A, C, and F. This standard is essential for maintaining precision in mechanical engineering, automotive, aerospace, and construction industries.

Adopted from ISO 4759-3:2016, it ensures compatibility with international practices, promoting quality control and interchangeability. This guide details tolerances for inner hole, outer diameter, thickness, chamfers, and form/position attributes, aiding engineers in design and procurement.

2. GB/T 3103.3-2020 Standard Overview

Released in 2020 by the Standardization Administration of China, this standard updates previous versions to align with global advancements in fastener technology. It applies to plain washers used with bolts, screws, and nuts, excluding special types like lock washers.

Key content includes dimensional tolerances before surface treatment, with provisions for deviations only when technically justified. Shape and position tolerances follow GB/T 1182 and GB/T 16671.

3. Basic Principles of Flat Washer Tolerances

Tolerances ensure washers fit precisely in assemblies, preventing failures due to misalignment or excessive play. They are defined for product grades: A (precision), C (general), and F (fine). Unless specified otherwise, tolerances apply pre-treatment.

Key parameters include inner diameter (d1), outer diameter (d2), thickness (t), chamfers (c1, c2), and form tolerances like coaxiality and flatness.

4. Detailed Tolerance Specifications

4.1 Inner Hole d1

 

Tolerances for inner hole d1 vary by thickness and product grade.

Thickness公差
Product Grade
F一个C
t < 2
2 ≤ t < 4
t ≥ 4
d1
Tolerance
t1
min
e1
最大限度
d1
Tolerance
t1
min
e1
最大限度
d1
Tolerance
H120.5 t0.10 tH130.3 t0.15 tH14
H120.3 t0.15 tH130.25 t0.20 tH14
H130.2 t0.20 tH140.2 t0.25 tH15
Burring not defined but permittedTear band (e1), t1 and burring not defined but permitted
t1 is the portion of the hole within the specified tolerance of d1
4.2 Outer Diameter d2

 

Thickness公差
Product Grade
F一个C
t < 2
2 ≤ t < 4
t ≥ 4
d2
Tolerance
e2
最大限度
d2
Tolerance
e2
最大限度
d2
Tolerance
h130.13 th140.18 th16
h130.15 th140.20 th16
h140.18 th150.25 th16
Burring and t2 not defined but permittedTear band (e2), t2 and burring not defined but permitted
t2 is the portion of the outer diameter within the specified tolerance of d2
4.3 Thickness t

Thickness tolerances measured after deburring.

Thickness tProduct Grade
F一个C
t ≤ 0.5±0.04±0.05±0.10
0.5 < t ≤ 1±0.06±0.10±0.20
1 < t ≤ 2.5±0.12±0.20±0.30
2.5 < t ≤ 4±0.16±0.30±0.60
4 < t ≤ 6±0.20±0.60±1.00
6 < t ≤ 10±0.24±1.00±1.20
10 < t ≤ 20±0.28±1.20±1.60
4.4 Chamfers

 

Nominal ThicknessProduct Grade
F一个C
c1
min
c2
min
c1
min
c2
min
c1
min
c2
min
1 ≤ t < 20.20 t0.25 t0.20 t0.25 t0.20 t0.25 t
2 ≤ t < 40.18 t0.22 t0.18 t0.22 t0.18 t0.22 t
t ≥ 40.15 t0.20 t0.15 t0.20 t0.15 t0.20 t
4.4.3 Combined Washers Supplementary Requirements

Upon buyer request, chamfer position relative to stamping deviations should be specified in the order.

4.5 Form and Position Tolerances

Δt applies outside x = 0.1 (d2 – d1), i.e., 60% of ring width.

Thickness tProduct Grade
F一个C
Δt
最大限度
Δt
最大限度
t ≤ 0.50.020.025No requirement
0.5 < t ≤ 10.030.05
1 < t ≤ 2.50.060.1
2.5 < t ≤ 40.080.15
4 < t ≤ 60.10.2
6 < t ≤ 100.120.3
10 < t ≤ 200.140.4
4.5.2 Coaxiality y
Thickness tProduct Grade
F一个C
y
最大限度
y
最大限度
y
最大限度
t < 22 IT112 IT122 IT13
2 ≤ t ≤ 42 IT122 IT132 IT14
t ≥ 42 IT132 IT142 IT15
Tolerance y based on diameter d2
4.5.3 Flatness (Deflection) z

Flatness z is the difference between effective height heff and effective thickness teff. Note: Independent of thickness tolerance; additional processes like grinding may reduce deflection. Measured after deburring.

Thickness tProduct Grade
F一个C
z
最大限度
z
最大限度
z
最大限度
t ≤ 0.50.070.10.13
0.5 < t ≤ 10.10.150.2
1 < t ≤ 2.50.20.20.25
2.5 < t ≤ 40.30.30.3
4 < t ≤ 60.40.40.4
6 < t ≤ 100.60.60.6
10 < t ≤ 20111

5. Key Requirements in GB/T 3103.3-2020

Tolerances must be verified pre-surface treatment. Product standards take precedence if differing. Measurements for thickness and flatness occur post-deburring to ensure accuracy.

6. Precision and Error Analysis

Errors may arise from manufacturing processes like stamping, leading to burring or coaxiality issues. Improve accuracy via precise tooling and post-processing. Common errors include ignoring chamfer specs; resolve by adhering to grade-specific tables.

7. Impact of GB/T 3103.3-2020 on Industry

This standard enhances material research by standardizing tolerances, aids quality control in manufacturing, and supports applications in high-precision sectors like aerospace, where grade A washers ensure reliability.

8. Frequently Asked Questions (FAQ)

What is the difference between product grades A, C, and F?

Grade A offers the tightest tolerances for precision applications, C for general use, and F for fine tolerances in specific scenarios, as detailed in the tables.

When should tolerances be measured?

Tolerances apply before surface treatment, with thickness and flatness measured after deburring to avoid inaccuracies from manufacturing artifacts.

How does this standard compare to ISO 4759-3?

GB/T 3103.3-2020 is equivalent to ISO 4759-3:2016, ensuring global compatibility for tolerances on flat washers.

What if product standards differ from this?

Product-specific standards take precedence, but deviations require technical justification.

Are chamfers mandatory?

Minimum chamfers are specified to prevent sharp edges, with values based on thickness and grade; for combined washers, position may need specification.

How to select the appropriate grade for an application?

Choose based on assembly precision: A for high-load critical parts, C for standard bolting, considering factors like vibration and load distribution.

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