Table of Contents
It is critical to maintain PCB flatness for component placement, soldering and long-term reliability. Bow and twist are two common types of PCB warpage phenomena that may appear during processing, storage, or assembly. In this article, ELE PCB explains what bow and twist are, how they’re defined in manufacturing standards, and how to get flat and reliable PCBs.
What is Bow and Twist in PCBs?
Why is Controlling PCB Warpage Important?
The Acceptable Limit of PCB Warpage
| Bow | Twist | |||
| Limit percentage | Calculation formula | Limit percentage | Calculation formula | |
| Circuit Board (without SMD parts) | 1.50% | Longer Side: Shorter Side: L = Board Length RL & RW = Go/No-Go feeler/pin gauge size for PCB length & width respectively | 1.50% | R = 2 (D)(T)/100 D = Diagonal MeasurementT = % Twist LimitR = Go/No-Go feeler/pin gauge size |
| Circuit Board (with SMD parts) | 0.75% | 0.75% | ||
What Causes PCB Bow and Twist?
Imbalanced Panel Layout: In case heavy parts or copper traces are not uniformly distributed over the PCB layout, this results in local weight and heat unbalancing. This may distort the board during soldering. Also, non-regular panelization and cutouts can generate stress at a specific point, which may cause twist or bow effect.
Ways to Minimize Bow and Twist
Design Process
Maintaining the PCB layout’s symmetry helps in distributing the manufacturing process’s thermal stresses. The methods involve:
- Balancing the copper pattern and circuit area of each layer of the board.
- Ensuring boards of layers are products of the same company.
- Using balanced stack-up designs.
- Select Proper Materials
- Pre-bake Boards When Needed
- Heating and Cooling Control
- Maintain Proper PCB Storage
Methods of Fixing Bow and Twist
Conclusion
FAQs
A1:
Yes. Thicker boards (e.g. 2.0 mm vs. 1.6 mm) are stiffer and less prone to warping. But that increases cost, and impedance or weight can be an issue. Only use it if:


