A break in a conductive circuit is called an “open circuit.” An open circuit has no current flowing through it in the ideal steady-state model.
Although there is no current flowing, the open circuit can still have voltage across it; therefore, the open circuit is not automatically de-energized or safe.
What Is an Open Circuit?
An “open circuit” is an interruption of path continuity that would normally connect two terminals. With no continuous path (route) through the branch, the ideal steady-state current flowing through the branch becomes zero. This zero-current condition is what Tufts University uses to describe an ideal open circuit.
The term “open” can refer to an intentionally created open condition (e.g., an open switch) or an unintended one (e.g., a blown fuse, broken wire, loose connection, open winding, or damaged PCB interconnect).
Why Can an Open Circuit Have Voltage but No Current?
In electrical language, voltage is defined as the difference in electrical potential between two points in a circuit, whereas current is the flow of electrical charge through a path.

Therefore, a potential difference can exist between two open-circuit terminals even when there is no current flowing through the open branch.
On an ideal DC open circuit, the ideal resistance (R) of the open circuit goes to infinity; therefore, as I = V/R, the current through an ideal DC open circuit becomes zero when any finite voltage is applied to it.
However, voltage across an open circuit can still exist and is dependent upon the source, the surrounding circuit, and which two points (terminals) are measured with a voltmeter.
OpenStax states that even when a switch is opened, a voltage may be present across the opened switch in the circuit conceptual questions. The voltage shown across the switch in the U.S. Navy NAVEDTRA 14265A Training Material confirms that voltage can appear across an open.
Power (P) in a branch is given by P = VI. When I becomes zero, the power entering the open branch becomes zero. However, the remainder of the surrounding electrical system may still have stored energy.
For example, suppose a DC battery or source and a resistor form a series circuit with an open switch connecting both. The open switch reduces steady-state current flowing to the resistor from the battery to zero. One switch terminal may remain near the battery source potential, while the other connects through the load toward the return side, so a voltmeter across the gap may show a substantial potential difference.
The term “open-circuit voltage” is associated with the terminal voltage of an electrical power source under a no-load condition in which no external load current is being drawn; NI explains this example in its battery cell quality testing overview. Open-circuit voltage does not mean that every point of the electrical source is at a zero-energy state.
The ideal DC open-circuit model has limitations and will not hold true under all conditions, particularly at higher frequencies, where capacitance in fixtures, cables, connectors, probes, and so forth can create frequency-dependent current paths, as explained in Keysight parasitic capacitance measurements. Under sufficiently high electric fields or high voltage levels, a physical gap can break down or arc, so a real open may not remain an ideal open circuit. Similarly, open and short circuits represent limiting ideal approximations of very high resistance and very low impedance, respectively.
Open, Closed, Short, and De-Energized Are Different States
These labels are not equivalent and cannot be used interchangeably.

A regular operational closed circuit would not be classified as a short circuit. It includes an intended load that limits electrical current and performs useful work.
By contrast, a short circuit bypasses some intended impedance, so its current and heating risks are fundamentally different.
What Causes an Open Circuit?
Open circuits are not always permanent; loose contacts, cracked solder joints, fractured traces, or corrosion can cause intermittent open circuits due to flexing of PCBs or assembly components, changes in temperature, or contact movement. Static bench tests can miss these types of faults, which is why testing unpopulated boards with defined net lists using electrical testing methods such as those defined in IPC-9252B (coupon and continuity) is designed to detect marginal continuity. A cracked via barrel or plated hole wall can still pass current with the board flat at room temperature, then open under board flex or thermal excursion in service, so a single room-temperature continuity check on the finished board is not enough to rule out this intermittent fault.
Where the Open Occurs Changes What Stops Working
The location of the interruption will show which loads lose continuity due to the opening, not necessarily which loads in the entire system are affected. Identify the break, remove the routes that passed through it, and maintain the routes that bypassed it; this will assist in identifying which downstream loads will still receive current.

In a series loop, multiple components share one current path; therefore, if any of the following occurs anywhere along the loop (lamp filament breaks, a connector disconnects, or a wire breaks), it will interrupt current flow for all components in the series circuit.
When individual branches exist after splitting a circuit, parallel circuits do not operate in the same manner; each branch connects across common nodes and can provide its own current path, so if one of the branches is interrupted, current can be halted for that branch, but not necessarily for the intact branch.
If the opening occurs in a common supply or return, multiple branches may fail, but if the opening occurs after the circuit has split, only one device may fail. If there are multiple loads on shared voltage rails that are being fed by the same source (e.g., multiple integrated circuit devices being fed from a common voltage rail), a trace failure after the split may result in one device failing while the others are still operational.
Dead loads, intermittent operation, or unexpected node voltages are symptoms that may indicate an open circuit; however, these symptoms do not indicate where the physical break occurred. Missing supplies, disabled control signals, failed components, shorts, or poor measurement references can all create symptoms similar to an open circuit.
What Does an Open Circuit Look Like on a Multimeter?
Using continuity or resistance checks will first require disconnection of all circuit power (where applicable) and second require that any stored energy in capacitors is discharged according to the equipment manufacturer’s operating procedures and guidelines. Fluke’s resistance measurement guidance directs users to disconnect circuit power and discharge any connected capacitors prior to measuring circuit resistance. For in-circuit resistance measurements, isolation or removal of the path being measured may also be necessary due to the impact of parallel circuits on the in-circuit reading.

Fluke states that most meters indicate continuity somewhere between 0 and 50 ohms. As a result, a beep or no-beep is a model-specific threshold result rather than a universal resistance limit.
All multimeters have upper display limits for each resistance range, so the path may be intact but very high in resistance (example: heater element, precision sense resistor, or very long and thin trace), and if the selected range does not go that high, the meter may show OL. Therefore, if a reading shows OL, you need to try again using the next resistance range or switch to the dedicated continuity setting. When trying again, if your reading shows a finite, expected value within your newly selected range, then the path is intact and the first reading signified that the selected range was too narrow.
Refer to your model’s manual for the specific wording of the displays and symbols of your multimeter.
Confirm the energy state and the schematic of the circuit you are testing, narrow down the branch containing the failure, inspect the accessible wires and connections, and use the appropriate measurement method to locate the break in the circuit. Service procedures for live probing, mains work, and product repair depend upon the service procedure associated with each type of product being serviced or repaired by qualified personnel.
How Can Unintentional Open Circuits Be Reduced?
Unintentional open circuits can be reduced by controlled terminal engagement, connector retention, strain relief, solder-joint integrity, and control of mechanical stress on traces and vias, thereby minimizing connection failures due to impact or other exposure. When exposure to moisture, chemicals, vibration, repeated flexing, or thermal cycling is a possibility, such environments should be considered when designing the connection, materials used, and mechanical aspects of the connection.
Testing for electrical continuity can detect missing or broken connections, while visual or structural inspection may address defects that do not lend themselves to electrical continuity testing. After rework or repair, the repaired net and the affected assembly or functional requirement should be verified separately.
How Does an Open Circuit Appear on a PCB?
An open circuit on a PCB is a physical discontinuity in a net that has been defined to electrically connect specified points of a PCB. The break may occur in a copper trace, the copper plating of a via or hole wall, a pad connection, or a connector contact. An open circuit could result in one pin being electrically isolated or in the interruption of a shared path that provides power to many circuits.
Testing for electrical continuity checks whether the defined conductive network meets the requirements for electrical connection as specified in IPC-9252B, Test Standard for Electrical Testing of Unpopulated Printed Boards. IPC’s standards revision table currently marks IPC-9252 as No Longer Maintained.
Completing an electrical continuity test may not address all aspects of an assembly’s physical dimensions or hole-wall margin or provide a complete picture of the product through the continuity test alone. The intended purpose of IPC-9252B is electrical testing of unpopulated printed boards only; therefore, it remains necessary to verify all aspects of assembly and functional performance through separate verification processes.
For production boards, electrical testing of a PCB may utilise controlled netlists, defined coverage, and electrical test reporting to verify the designated connectivity of the PCB.
Conclusion: Follow the Path, Then Verify the State
An open circuit interrupts an intended current path, and the effect on a system depends on the location of the open; therefore, to diagnose an open circuit, the affected branch must be traced and interpreted based upon continuity, resistance, and voltage measurements in the correct state of the circuit. It is not sufficient to treat OL or a missing continuity beep as proof of an open circuit by itself.
References & Sources
- Open and Short Circuits – Tufts University
- Conceptual Questions – OpenStax
- Series Circuits – OpenStax
- Parallel Circuits – OpenStax
- NAVEDTRA 14265A – U.S. Navy
- How to Measure Resistance with a Digital Multimeter – Fluke
- What Is Continuity? – Fluke
- Charging Ahead: Battery Cell Quality Testing in EV Production – NI
- How to Measure Parasitic Capacitance in Test Fixtures – Keysight
- IPC-9252B: Requirements for Electrical Testing of Unpopulated Printed Boards – IPC
- IPC Standards Revision Table – IPC
- Open Circuit and Short Circuit – Ultimate Electronics Book
- How to Find Open and Short Circuits Fast – RealPars



