In a highly digital world, it's easy to take the safety of electronics for granted. We can hold phones in our pockets, get hooked up to medical equipment, and ride in planes without being shocked, even though these systems ultimately connect to high-voltage power sources. We owe much of that safety to isolation.
Isolation is a safety mechanism in electronics that prevents us from contacting high-voltage currents. It works like a dam to halt the fast flow of current and keep it controlled, so even untrained users can safely interact with electronics and avoid the risk of electric shock. Although isolation is vital in some applications, it can add unnecessary costs and complexities in others.
Choosing between an isolated and non-isolated power supply depends on several factors. Let's explore isolated vs. non-isolated systems and how to choose the right one for your application.
An isolated power supply is separated from other circuits in a system. Being isolated protects users and downstream components from large voltage and current surges from the input power source. Insulating materials, such as electrical tape, a hard plastic housing or even a few centimeters of air, help prevent the current from reaching the person. Devices like transformers or coupled inductors transfer power in a controlled manner without a direct electrical connection.
A transformer, for example, is commonly used for power transfer and magnetically couples the energy from one circuit to another without any contact. An isolated power supply can also transmit signals by using techniques that maintain electrical isolation between the primary and secondary sides. Adding power factor correction (PFC) and regulator stages at other points can help keep output currents safe and stable.
Many devices need isolated power supplies to meet industry regulations that help reduce the risk of shock. For example, even with high-voltage units, the user may need to interact with the power supply's output stage, such as plugging or unplugging wires or adjusting control settings. Since isolation separates the output from the input, the user's risk of shock is much lower. In many cases, the reduction is enough to allow untrained users to interact with the power supply.
Isolation capabilities can break down over time, so it's important to pay attention to specifications and maximum voltages to keep isolation systems in good condition, especially in high-voltage applications.
Isolated power supplies are used to provide electrical power while maintaining electrical isolation between the input and output. They are a key part of controlling the transfer of high amounts of energy and creating electronics safe for human contact. You might use an isolated power supply for:
As you may have guessed, a non-isolated power supply does not have insulation to isolate the circuit. Both the input and output share a common electrical connection, so the current can flow between them through a single circuit. Since the two are connected, the output of a non-isolated power supply could carry hazards from the input, like high voltage, to the user.
Non-isolated systems can still be isolated from the user to prevent electrical shock. Take a hair dryer, for instance. It has a heater and a fan, both connected to electrical power without any isolation between them. However, they are isolated from the user through the plastic body of the hair dryer and other components. You can also have truly non-isolated components that don't contact the human body at all, like electrical motors in pumps and fans.
While non-isolated power supplies have other benefits, they may require alternative means of protection to prevent human contact. In some cases, only trained technicians can handle non-isolated power supplies since they understand safety requirements. Other times, the product will need to accommodate additional features like safety barriers or prevent the system from connecting to others that could cause damage or be damaged. For example, an industrial power supply shouldn't be compatible with a phone charger.
While they lack the safety features of an isolated power supply, non-isolated power supplies offer other benefits, like advantages in speed and design. When board-mounted near the load, they may be called point-of-load power supplies, which help reduce high incoming voltages to lower ones. Placing a non-isolated power supply downstream from an isolated power supply can help alleviate some safety concerns.
Since they don't require the additional components of an isolated supply, non-isolated units can offer:
While this increased performance can be tempting, the end user's safety is critical. As with most aspects of electrical engineering, you must balance these benefits with the characteristics of your application, such as available space, allowable interference, efficiency requirements, potential safety risks and budget.
Both isolated and non-isolated power supplies are essential elements in many electronic devices, from consumer laptops and blenders to industrial manufacturing equipment, medical imaging machines, and mission-critical military vehicles. The right one for your application depends on a range of factors. Here are some primary areas where isolated and non-isolated power supplies differ.
Isolated and non-isolated power supplies support different use cases. An isolated power supply is typically used where the safety of non-experts, such as consumers, patients, and untrained employees, would otherwise be at risk. They may require additional certification or verifications, but they can help you avoid instances of injury or damage that could hurt your bottom line and your reputation.
Using an isolated power supply will call for a slightly larger and less efficient system, so it may not be appropriate for particularly small installations or those that need maximum efficiency.
However, non-isolated power supplies can offer speed and efficiency, but they may require other precautions to prevent safety hazards. As with our hair dryer example, the overall system could be isolated from the user. Without appropriate safety mechanisms, only trained technicians should interact with the power supply.
Consider any applicable safety standards your product must meet. Even if you don't have standards to address, isolation could help you mitigate risk and improve the overall safety of the product. Weigh the necessity of isolation with information on the typical user and the power supply's environment.
An isolated system will typically increase the cost of the power supply thanks to the need for a transformer and other components. If you have a tight budget, you may need to think about where else you can reduce costs or whether a non-isolated option is viable. If you have a healthy budget and can handle the added complexity, an isolated system can boost safety and reduce noise.
The additional parts involved make isolated systems larger, while non-isolated power supplies may take up less room. In tight quarters, an isolated system could be too bulky for your application. It adds some complexity to the design process, and other changes may be necessary to compensate for the extra size. However, isolation can add flexibility by allowing you to break ground loops and make floating outputs.
Transformer losses in an isolated system can reduce its efficiency. For applications with small efficiency thresholds, this loss could be enough to make isolation inappropriate. If you need isolation, you may need to pay attention to additional heat generation or energy costs to ensure a high-performing system.
Isolated power supplies can help reduce noise in circuits that are sensitive to it by separating the circuits. Breaking ground loops, for instance, may limit noise and preserve signal quality in some applications.
Depending on their design and application requirements. The difference lies in whether there is an electrical isolation between the input and output, typically achieved using a transformer. You can tell if your existing power supply is isolated with one of the following methods:
Until you know for sure, treat your power supply as though it is not isolated. Use all appropriate precautions and do not apply high voltages to it.
Remember, many different factors will affect how a power supply will meet your needs. Consider how the device will be used, the characteristics of the power source, what standards you may need to meet and any design limitations you may have, such as size or budget restrictions.
You may want to use an isolated power supply if:
However, you might want to use a non-isolated power supply if:
You may need to weigh demands for safety or technical requirements with the need for efficiency, size and costs. Isolation can play a significant role in the design of a power supply, so keep this technology in mind from the start. Pay attention to how your users will interact with the product and how other parts of your system, such as upstream components and available space, will affect or be affected by an isolated or non-isolated power supply.
Neither an isolated nor non-isolated power supply is better than the other. The best choice depends on the many factors involved in the design and use of the unit. Here at Astrodyne TDI, we have power supplies to fit your needs and the expertise necessary to help you find the right ones.
Our entire line of low-power units and most of our high-power units are isolated. Non-isolated systems include our full line of EMI filters and our non-isolated LiquaBlade™ products. If you're not sure what's best for your application, our knowledgeable team can help. Reach out to us today to request a quote or talk with an expert to find the ideal power supply for your project.