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Busbar Size Calculation: How to Choose the Right Busbar for Laser-Welding Type Battery Packs

At first glance, selecting a busbar when designing a lithium battery pack seems easy – you know the current, you know how the cells are connected, and you need a piece of copper or aluminum to connect the battery cells together. However, selecting a busbar is not just about matching the current to the thickness of the busbar.

Many factors affect the size of the busbar, including current, cross-sectional area, materials, temperature rise, available space, connection pattern, and the actual battery pack design.

For busbars that are meant to be used for laser welding, it is paramount that the geometry of the busbar is compatible with the terminals and the welding process.

It is for this reason that a busbar that looks perfectly good on paper may still end up giving you overheating, voltage drop, or mechanical or assembly issues in the finished battery pack.

This guide will help you determine how to go about the busbar sizing of your battery packs and tells manufacturers what to keep in mind before requesting custom busbars.

What Does Busbar Size Calculation Mean?

Busbar size calculation involves determining the correct width and thickness of a busbar depending on the current that it will carry and the environment where it is going to work.

When talking about battery packs, the calculation must also involve the arrangement of the cells, the length of the conductors, the material of the busbar, the thermal conditions in which it will be used, connection points, and what space is available for installation of the busbar.

As for a starting point, the formula is:

Busbar Cross-Sectional Area = Width Ă— Thickness

For instance, if a busbar is 20 mm wide and 2 mm thick:

20 mm × 2 mm = 40 mm²

However, this value does not help to understand whether a busbar is appropriate for the specific battery pack since the allowed current does not depend just on area.

The Importance of Busbar Sizing in Battery Packs

If busbars aren’t the right size, it can be a weak point in a high-quality battery system.

Current flowing through a conductor causes resistance to create heat, and higher resistance will cause a higher voltage drop, which will have implications for the efficiency of the system.

Poor sizing of busbars can lead to the following:

  • Too high a temperature increase

  • Higher energy losses

  • High incidence of voltage drop

  • Unreliable connections

  • Heating of terminal connections

  • Degradation of the materials used

  • Difficulties meeting the necessary requirements

On the other hand, making busbars excessively large is not a solution either.

Busbars that are too large will increase production costs, weight, size, and difficulties of production.

How To Calculate Busbar Size

There is no single busbar size suitable for all batteries. The practical calculating consists of finding the following inputs:

1. Find Maximum Constant Current

The busbar size must be calculated from the maximum continuous current value. The nominal battery current value must not be used without taking into account the level of actual operating conditions, including:

  • Constant discharging current

  • Constant charging current

  • Peak conditions

  • Average operating time

  • Connecting cells in parallel

  • Temperature

  • Cooling method

Once again, a busbar with a carrying capacity of 100 A during the whole time of operation should be considered differently from the one rated for only a few seconds.

2. Calculate Necessary Cross-Sectional Area

The basic formula is:

Cross-Sectional Area = Width Ă— Height

For example, if the necessary area is estimated to be about 30 mm², different combinations can provide the same area.

For instance:

  • 15 Ă— 2 mm = 30 mm²

  • 10 Ă— 3 mm = 30 mm²

  • 20 Ă— 1.5 mm = 30 mm²

While all options have the same electrically geometric cross-section, the difference is in their mechanical behavior. The choice of the configuration will depend on the available battery-pack place and bending needs.

3. Choose the Busbar Material

Copper and aluminum are two frequent choices for battery busbars.

Copper busbars are more preferable than aluminum busbars for compact dimensions with high conductivity.

Aluminum busbars are lighter than copper ones and are better choices for electric vehicles (EV) and energy storage projects because of their low weight and material efficiency.

The material chosen involves different weights, conductivity, resistance, thermal performance, surface processing, and other manufacturing features.

It is inappropriate to replace a copper busbar with an aluminum one with the same dimensions without knowing how it will perform in practice.

4. Take into Account Temperature Rise

The amount of current that can be passed through a busbar is not just an unchanging quantity measured for a specific busbar size.

The rise in temperature depends on many factors, such as:

  • Temperature of the surrounding environment

  • Orientation of the conductor

  • Air flow

  • Enclosure conditions

  • Busbar distance

  • Surface area

  • Continual current

  • The duty cycle

  • Number of conductors installed next to each other

  • Cooling method

Because of that, busbar sizes may serve as initial reference points only.

Busbar Current Carrying Capacity: The Important Points to Consider

Most of the time, you will see queries like “current carrying capacity of copper busbar,” “busbar ampacity,” “200 amp busbar size,” or “busbar size table.”

These queries provide good starting points, but there’s a downside.

Basically, a given busbar does not have one rating.

For instance, let’s take two identical copper busbars measuring 25 x 3 mm each.

The busbar located in a wide-open space will perform differently than the one placed in a small container that limits heat dissipation.

As a result, sizing a busbar requires more advanced specialists who can take into consideration electrical and thermal loading.

In case of battery packs, the same rule applies to each module.

Busbar Size Table: Is It Any Useful?

A busbar size table can simplify selecting busbars.

However, do not choose production busbars only based on the information provided in the table.

Use the table to narrow down your selection by checking up the information, for example:

Current → Cross-section → Material → Temperature rise → Geometry → Connection → Application

The final product should pass tests with regards to conditions under which it is going to operate.

Selecting the Busbars for Laser-Welding Battery Packs

There is a new design aspect connected to laser welding methods.

The busbar can be manufactured as a component that is appropriate for the laser welding process for prismatic lithium batteries, taking into account its geometry and material.

However, for an effective construction of the busbar, it is necessary to follow the welding requirements as well as the terminals of the cells.

The design aspects include:

  • Cell spacing

  • Terminal location

  • Busbar width and thickness

  • Welding area

  • Places of bending

  • Geometry of the holes or slits

  • Conditions for electrical isolation

  • Distance between the conductive elements

  • Tolerances

  • Sequence of the assembly of the battery module

Thus, it is obvious that a designed busbar has more possibilities compared to the ready-made one.

Adinath Enterprises produces copper and aluminum busbars in accordance with requirements and drawings of the customers. The company produces aluminum busbars, which are already ready for welding on prismatic cells of lithium batteries.

Frequent Busbar Sizing Errors

Only relying on current rating

Current should be the first variable considered, not the only one in the calculation.

Using a one-size-fits-all busbar size table

A sizing table can differ significantly from the vessel’s actual characteristics and cooling and working conditions.

Not considering voltage drop

For very long or high-current busbars, voltage drop and resistance should be taken into account.

Not choosing shape before gauging the thickness of the busbar

It can be possible to select a thicker busbar that matches the calculated current, but the hardware can have problems in a bend or a terminal of a cell.

Designing the busbar after designing the battery

Busbars should be taken into account while designing modules instead of treating them as add-ons.

Disregarding tolerances needed for production

Even a precise CAD drawing needs repeatable tolerances to be made.

How to Select the Right Battery Busbar

When planning the design of a busbar, it is essential to provide your manufacturer with the following details:

  • Code of battery

  • Cell type and size

  • Design of the cell

  • Peak rated current

  • Maximum current value

  • Charge current

  • Material of busbar required

  • Dimensions of the busbar

  • Terminal dimensions of the cell

  • Layout of the busbar

  • Requirements for the hole positions

  • Requirements for manufacturing

  • The surface treatment required

  • Insulation factors

  • Production requirement

In case of the ongoing design process, some manufacturers can provide feedback on design from their end.

Why Customized Busbars Are Efficient for the Battery Makers?

Generally speaking, the design of the battery modules is rarely identical for all batteries.

Even if two batteries use almost similar formats of the battery cells, the demanded busbars can vary due to several factors:

  • Client position

  • Pins from terminals

  • Required current

  • Size of the module

  • Welding connections

  • Frame specifications to restrict the use of jigs

The use of customized busbars provides an opportunity to follow the specifications of the battery configuration rather than to apply standard elements to a battery design.

Busbar Design Recommendations

1. Consider the actual current draw when determining size.

It isn’t enough to use nominal voltage and battery capability alone to size.

2. Design for the real thermal environment.

A busbar operating in an enclosed module must be designed differently from a busbar operating in open air.

3. Match the busbar to the cell terminal.

Sizing is only a part of the equation; correctness in mechanical condition and connection must be ensured.

4. Make sure the welding area is clear.

If the busbar is designed for laser welding application, the welding zone must be suitable for the battery manufacturer’s welding method.

5. Provide a complete drawing.

Providing a proper drawing will eliminate confusion regarding holes, bends, dimensions, tolerances, etc.

6. Perform final validation.

Making prototypes and verifying thermoelectric properties of the product will justify high-volume production endeavors.

What Information Does a Busbar Manufacturer Need?

If you are trying to get a quote for a custom battery busbar, you don’t need to have the ideal size of the busbar beforehand.

A manufacturer can take your requirement, cell model, battery configuration, measurements, and drawings in order to come up with an appropriate production process.

For example, Adinath Enterprises can analyze customers’ drawings regarding the requirements for parameters such as material, measurements, the angle of bends, holes needed in the busbar, surface finish, and the feasibility of production.

That is why the process is much easier than trying to just ask for the “busbar for 100 A” or “busbar for 200 A” without giving any other information about the application.

Frequently Asked Questions

How is the size of the busbar determined?

To find the necessary busbar size, first determine the current needed, then calculate the cross section by multiplying the width by the thickness. You then need to factor in possible issues with the conductor material, the rising temperature, installation method, and voltage drop.

What is the formula for busbar size?

The basic geometric equation says the following:

Cross section of the busbar = width multiplied by thickness.

However, this won’t allow you to establish the exact size needed, because current is not the only factor needing consideration.

What is the size of busbars suitable for 200 amps?

There cannot be just one size suitable for 200A busbars. This depends on various factors like material used, acceptable temperature rise, how it is installed, how it cools off, and the general design requirements.

Which is better: copper or aluminum for battery busbars?

Neither has an undeniable advantage here. Copper has a higher conductivity, while aluminum is much more lightweight. The correct choice will depend on battery design, weight requirements, and way of connection.

Is it possible to utilize aluminum busbars for lithium battery packs?

Definitely. In battery applications where weight and electrical characteristics are significant factors, aluminum busbars are quite popular. The quality of material and its dimensions, terminal interface, and welding requirements must be compatible with the battery design.

What is a busbar fit for laser welding?

A busbar fit for the laser welding process is a product designed with the necessary dimensions, geometry, and material. This means that the busbar does not have to undergo laser welding by the supplier.

Is it possible for Adinath Enterprises to produce custom battery busbars?

Sure. Adinath Enterprises develops busbars made of aluminum and copper as per the order this can include aluminum busbars fit for laser welding to be used for the production of prismatic cell lithium batteries.

Making Sure the Busbar Size is Correct

Sizing the busbars is not simply about choosing a value from a current ratings table.

Instead, creating a working battery pack demands consideration of the current, the cross section, material, temperature rise, voltage drop, shape, the terminals, the welding area, and the tolerances.

In this regard, the situation is more complicated for compact lithium battery packs, as here the busbars have to be designed to both carry the current and fit the mechanical features of the pack.

If you have a drawing, specification sheet, or current demand, you should find a manufacturer that specializes in making busbars, and that will help you turn your design into a final product.

Are you looking for a custom copper or aluminum busbar that can be welded by laser and fit into your battery pack? Contact us at Adinath Enterprises, and let’s discuss what your project will look like.

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