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Wiring and Protection Flashcards

6 cards from real NEC practice questions. Tap to flip, then mark Knew It or Still Learning — missed cards come back until you master them.

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  1. An individual branch circuit supplies a continuous-duty motor with a full-load current (FLA) of 30A. The circuit conductors are sized appropriately. According to NEC Article 430, what is the maximum standard size inverse-time circuit breaker that can be used for short-circuit and ground-fault protection for this motor?

    Answer: 75A

    NEC Table 430.52 allows the rating of an inverse-time circuit breaker used for motor branch-circuit, short-circuit, and ground-fault protection to be a maximum of 250% of the motor's full-load current (FLA). For a 30A motor, the calculation is 30A x 2.50 = 75A. Since 75A is a standard size overcurrent device listed in NEC 240.6(A), it is the maximum permitted size.

  2. When installing conductors in parallel, which of the following conditions is NOT required by NEC 310.10(G)?

    Answer: The conductors must be the same color.

    NEC 310.10(G) requires that paralleled conductors be the same length, consist of the same conductor material, have the same circular mil area, and have the same insulation type. While color-coding is essential for identifying phases and grounded conductors, the NEC does not mandate that each parallel set for a specific phase must be the same color as the other sets for that same phase.

  3. A 400A feeder is installed using two parallel runs of 3/0 AWG THHN copper conductors per phase in separate nonmetallic conduits. Based on the rating of the feeder's 400A overcurrent protective device, what is the minimum size required for the wire-type equipment grounding conductor (EGC) in each conduit according to NEC Table 250.122?

    Answer: 3 AWG Copper

    According to NEC 250.122(F), when conductors are installed in parallel in multiple raceways, a full-sized equipment grounding conductor, based on the rating of the overcurrent device, must be installed in each raceway. Looking at Table 250.122, for a 400A overcurrent device, the minimum size for a copper equipment grounding conductor is 3 AWG.

  4. What is the primary purpose of bonding the metallic, non-current-carrying parts of an electrical system, such as enclosures and raceways?

    Answer: To establish a low-impedance path for fault current to facilitate the operation of overcurrent devices.

    Per NEC Article 250, bonding creates an effective ground-fault current path. This path must be a low-impedance circuit that can safely carry the maximum fault current, allowing the circuit breaker or fuse to operate quickly and clear the fault. While grounding connects the system to the earth to stabilize voltage and protect from lightning, bonding specifically connects conductive parts to each other and to the system grounding conductor.

  5. Unless specifically permitted otherwise, what is the maximum overcurrent protection allowed for a 12 AWG copper conductor according to NEC 240.4(D)?

    Answer: 20A

    NEC 240.4(D) provides specific overcurrent protection limitations for small conductors. For 12 AWG copper conductors, the maximum standard overcurrent protective device rating is 20 amperes, regardless of the conductor's higher ampacity rating listed in Table 310.16.

  6. An electrician is installing nine current-carrying 10 AWG THHN copper conductors in a single conduit in an area with an ambient temperature of 30°C. What is the allowable ampacity of each conductor after applying the necessary adjustment factor from NEC Table 310.15(C)(1)?

    Answer: 20A

    First, find the starting ampacity of 10 AWG THHN copper wire from the 90°C column of Table 310.16, which is 40A. Next, refer to Table 310.15(C)(1) for adjustment factors for more than three current-carrying conductors. For 7-9 conductors, the adjustment factor is 50%. Therefore, the final ampacity is 40A x 0.50 = 20A.