FUNDAMENTALS OF ELEC.CIRC.(LL) >CUSTOM<
FUNDAMENTALS OF ELEC.CIRC.(LL) >CUSTOM<
6th Edition
ISBN: 9781260503876
Author: Alexander
Publisher: MCG CUSTOM
bartleby

Concept explainers

bartleby

Videos

Textbook Question
Book Icon
Chapter 12, Problem 48P

A balanced, positive-sequence wye-connected source has Van = 240 0 ° V rms and supplies an unbalanced delta-connected load via a transmission line with impedance 2 + j3 Ω per phase.

  1. (a) Calculate the line currents if ZAB = 40 + j15 Ω, ZBC = 60 Ω, ZCA = 18 − jl2 Ω.
  2. (b) Find the complex power supplied by the source.

a.

Expert Solution
Check Mark
To determine

Calculate the line currents for the described circuit using PSpice.

Answer to Problem 48P

The value for the line currents IaA, IbB, and IcC are 24.926.124A, 9.723144.2A, and 20.94136.5A respectively.

Explanation of Solution

Given data:

The phase voltage is 2400°Vrms.

The transmission line impedance is 2+j3Ω.

The value of the impedances ZAB=40+j15Ω, ZBC=60Ω, and ZCA=18j12Ω.

Formula used:

Write the formulae for the conversion of delta connected impedances to star connected impedances.

ZA=ZABZCAZAB+ZBC+ZCA        (1)

ZA=ZABZCAZAB+ZBC+ZCA        (2)

ZA=ZABZCAZAB+ZBC+ZCA        (3)

Here,

ZAB, ZBC, and ZCA are the delta connected impedances, and

ZA, ZB, and ZC are the star connected impedances.

Write the expression for reactance of the inductor.

XL=jωL        (4)

Here,

ω is the angular frequency, and

L is the value of inductor.

Write the expression for reactance of the capacitor.

XC=1jωC        (5)

Here,

C is the value of capacitor.

Calculation:

The given unbalanced delta connected load is shown in Figure 1.

FUNDAMENTALS OF ELEC.CIRC.(LL) >CUSTOM<, Chapter 12, Problem 48P , additional homework tip  1

Substitute 40+j15Ω for ZAB, 60Ω for ZBC, and 18j12Ω for ZCA in equation (1) to find ZA.

ZA=(40+j15Ω)(18j12Ω)(40+j15Ω)+(60Ω)+(18j12Ω)=(900j210)Ω2(118+j3)Ω=7.577j1.972Ω

Substitute 40+j15Ω for ZAB, 60Ω for ZBC, and 18j12Ω for ZCA in equation (2) to find ZB.

ZB=(40+j15Ω)(60Ω)(40+j15Ω)+(60Ω)+(18j12Ω)=(2400+j900)Ω2(118+j3)Ω=20.52+j7.105Ω

Substitute 40+j15Ω for ZAB, 60Ω for ZBC, and 18j12Ω for ZCA in equation (3) to find ZC.

ZC=(60Ω)(18j12Ω)(40+j15Ω)+(60Ω)+(18j12Ω)=(1080j720)Ω2(118+j3)Ω=8.992j6.3303Ω

The transformed circuit is shown in Figure 2.

FUNDAMENTALS OF ELEC.CIRC.(LL) >CUSTOM<, Chapter 12, Problem 48P , additional homework tip  2

The given balanced wye-connected source supplies the unbalanced delta connected load is shown in Figure 3.

FUNDAMENTALS OF ELEC.CIRC.(LL) >CUSTOM<, Chapter 12, Problem 48P , additional homework tip  3

Let us assume that the value of the angular frequency, ω=1rads.

Calculate the frequency as follows.

2πf=1radsf=1rads2πf=0.15915Hz

Substitute 1rads for ω and j3Ω for XL in equation (4) to find L.

j3Ω=j(1rads)(L)L=j3Ωj(1rads){1H=1Ωs}L=3H

Substitute 1rads for ω and j7.105Ω for XL in equation (4) to find L.

j7.105Ω=j(1rads)(L)L=j7.105Ωj(1rads){1H=1Ωs}L=7.105H

Substitute 1rads for ω and j1.972Ω for C in equation (5) to find C.

j1.972Ω=1j(1rads)CC=1j(1rads)(j1.972Ω){1F=1sΩ}=0.507F

Substitute 1rads for ω and j6.3303Ω for C in equation (5) to find C.

j6.3303Ω=1j(1rads)CC=1j(1rads)(j6.3303Ω){1F=1sΩ}=0.158F

The time domain representation of Figure 3 is shown in Figure 4.

FUNDAMENTALS OF ELEC.CIRC.(LL) >CUSTOM<, Chapter 12, Problem 48P , additional homework tip  4

PSpice Simulation:

Draw Figure 4 in PSpice as shown in Figure 5.

FUNDAMENTALS OF ELEC.CIRC.(LL) >CUSTOM<, Chapter 12, Problem 48P , additional homework tip  5

Provide the simulation setting as shown in Figure 6.

FUNDAMENTALS OF ELEC.CIRC.(LL) >CUSTOM<, Chapter 12, Problem 48P , additional homework tip  6

The obtained results are given below.

  FREQ        IM(V_PRINT1)  IP(V_PRINT1)

  1.592E-01   2.492E+01    -6.124E+00

  FREQ        IM(V_PRINT2)  IP(V_PRINT2)

  1.592E-01   9.723E+00    -1.442E+02

  FREQ       IM(V_PRINT3)   IP(V_PRINT3)

  1.592E-01   2.094E+01    1.365E+02

The obtained line currents are given below.

IaA=24.926.124AIbB=9.723144.2AIcC=20.94136.5A

Conclusion:

Thus, the value for the line currents IaA, IbB, and IcC are 24.926.124A, 9.723144.2A, and 20.94136.5A respectively.

b.

Expert Solution
Check Mark
To determine

Calculate the total complex power supplied by the source.

Answer to Problem 48P

The total complex power supplied by the source is 12.8940.743kVA.

Explanation of Solution

Calculation:

Write the expression for complex power delivered by source a.

Sa=|IaA|Van

Substitute 24.926.124A for |IaA| and 2400°V for Van.

Sa=|24.926.124A|(2400°V)=5980.86.124VA

Write the expression for complex power delivered by source b.

Sb=|IbB|Vbn

Substitute 9.723144.2A for |IbB| and 240120°V for Vbn.

Sb=|9.723144.2A|(240120°V)=2333.5224.2VA

Write the expression for complex power delivered by source c.

Sc=|IcC|Vcn

Substitute 20.94136.5A for |IcC| and 240120°V for Vcn.

Sc=|20.94136.5A|(240120°V)=5025.616.5VA

Write the expression for total complex power supplied by the source.

S=Sa+Sb+Sc

Substitute 5980.86.124VA for Sa, 2333.5224.2VA for Sb and 5025.616.5VA for Sc.

S=(5980.86.124VA)+(2333.5224.2VA)+(5025.616.5VA)=128940.743VA=12.8940.743kVA

Conclusion:

Thus, the total complex power supplied by the source is 12.8940.743kVA.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
Exercise 1: A three-phase 3Φ transmission line has an impedance of 0.62+j35.06Ω/phase and supplies a three-phase load of 100MW with a power factor (fp) of 0.8 lagging at 200kV. Taking 100MVA and 215kV as a base, we ask: a-) Calculate the impedance of the line in p.u;b-) Calculate the current consumed by the load in p.u;c-) Calculate the load voltage in p.u; PLEASE, TYPE, HAND WRITING GETS UNDERSTANDING.
A three-phase system includes a 346.4 V line-to-line supplying a three-phase motor rated 15KVA 0.8pf lag plus additional balanced constant impedance loads. The single-phase representation of the system is shown below. Assume that sources and loads are Y-connected. 1. What is the RMS value of the line current, I in A? 2. If this set of loads will be supplied through a service transformer. What should the minimum size of the transformer in kVA? 3. What should be the size of three-phase capacitor(that will be added to the load mix) to improve power factor to almost 0.95 lag?
A 530 kV, three phase transmission line with a 350 km length. The series impedance Z =(0.11+j0.72) Ω/ph/km and shunt admittance y = (j73 x e(-7)) S/ph/km. Evaluate the equivalent π-model and T-model parameters.

Chapter 12 Solutions

FUNDAMENTALS OF ELEC.CIRC.(LL) >CUSTOM<

Ch. 12.9 - Prob. 11PPCh. 12.9 - For the unbalanced circuit in Fig. 12.32, use...Ch. 12.10 - Repeat Example 12.13 for the network in Fig. 12.24...Ch. 12.10 - Let the line voltage VL = 208 V and the wattmeter...Ch. 12.10 - If the load in Fig. 12.35 is delta-connected with...Ch. 12 - What is the phase sequence of a three-phase motor...Ch. 12 - If in an acb phase sequence, , then Vcn is:Ch. 12 - Which of these is not a required condition for a...Ch. 12 - Prob. 4RQCh. 12 - Prob. 5RQCh. 12 - In a Y-Y system, a line voltage of 220 V produces...Ch. 12 - In a - system, a phase voltage of 100 V produces a...Ch. 12 - When a Y-connected load is supplied by voltages in...Ch. 12 - Prob. 9RQCh. 12 - Prob. 10RQCh. 12 - If Vab = 400 V in a balanced Y-connected...Ch. 12 - What is the phase sequence of a balanced...Ch. 12 - Given a balanced Y-connected three-phase generator...Ch. 12 - A three-phase system with abc sequence and VL =...Ch. 12 - For a Y-connected load, the time-domain...Ch. 12 - Using Fig. 12.41, design a problem to help other...Ch. 12 - Obtain the line currents in the three-phase...Ch. 12 - In a balanced three-phase Y-Y system, the source...Ch. 12 - A balanced Y-Y four-wire system has phase voltages...Ch. 12 - For the circuit in Fig. 12.43, determine the...Ch. 12 - In the Y- system shown in Fig. 12.44, the source...Ch. 12 - Using Fig. 12.45, design a problem to help other...Ch. 12 - In the balanced three-phase Y- system in Fig....Ch. 12 - Obtain the line currents in the three-phase...Ch. 12 - The circuit in Fig. 12.48 is excited by a balanced...Ch. 12 - A balanced delta-connected load has a phase...Ch. 12 - A positive sequence wye-connected source where ,...Ch. 12 - If Van = 22060 V in the network of Fig. 12.49,...Ch. 12 - For the - circuit of Fig. 12.50, calculate the...Ch. 12 - Prob. 20PCh. 12 - Three 440-V generators form a delta-connected...Ch. 12 - Find the line currents IaA, IbB, and IcC in the...Ch. 12 - A balanced delta connected source is connected to...Ch. 12 - A balanced delta-connected source has phase...Ch. 12 - In the circuit of Fig. 12.54, if , , , find the...Ch. 12 - Using Fig. 12.55, design a problem to help other...Ch. 12 - A -connected source supplies power to a...Ch. 12 - The line-to-line voltages in a Y-load have a...Ch. 12 - A balanced three-phase Y- system has V rms and Z =...Ch. 12 - In Fig. 12.56, the rms value of the line voltage...Ch. 12 - A balanced delta-connected load is supplied by a...Ch. 12 - Design a problem to help other students better...Ch. 12 - A three-phase source delivers 4.8 kVA to a...Ch. 12 - A balanced wye-connected load with a phase...Ch. 12 - Three equal impedances, 60 + j30 each, are...Ch. 12 - A 4200-V, three-phase transmission line has an...Ch. 12 - The total power measured in a three-phase system...Ch. 12 - Given the circuit in Fig. 12.57 below, find the...Ch. 12 - Find the real power absorbed by the load in Fig....Ch. 12 - For the three-phase circuit in Fig. 12.59, find...Ch. 12 - A balanced delta-connected load draws 5 kW at a...Ch. 12 - A balanced three-phase generator delivers 7.2 kW...Ch. 12 - Refer to Fig. 12.48. Obtain the complex power...Ch. 12 - A three-phase line has an impedance of 1 + j3 per...Ch. 12 - A balanced wye-connected load is connected to the...Ch. 12 - A three-phase load consists of three 100-...Ch. 12 - The following three parallel-connected three-phase...Ch. 12 - A balanced, positive-sequence wye-connected source...Ch. 12 - Each phase load consists of a 20- resistor and a...Ch. 12 - A balanced three-phase source with VL = 240 V rms...Ch. 12 - Consider the wye-delta system shown in Fig. 12.60....Ch. 12 - A four-wire wye-wye circuit has...Ch. 12 - Using Fig. 12.61, design a problem that will help...Ch. 12 - A balanced three-phase Y-source with VP = 880 V...Ch. 12 - A three-phase supply, with the line-to-line...Ch. 12 - Using Fig. 12.63, design a problem to help other...Ch. 12 - Determine the line currents for the three-phase...Ch. 12 - Solve Prob. 12.10 using PSpice or MultiSim. For...Ch. 12 - The source in Fig. 12.65 is balanced and exhibits...Ch. 12 - Use PSpice or MultiSim to determine Io in the...Ch. 12 - Given the circuit in Fig. 12.67, use PSpice or...Ch. 12 - Using Fig. 12.68, design a problem to help other...Ch. 12 - Use PSpice or MultiSim to find currents IaA and...Ch. 12 - For the circuit in Fig. 12.58, use PSpice or...Ch. 12 - A balanced three-phase circuit is shown in Fig....Ch. 12 - A three-phase, four-wire system operating with a...Ch. 12 - As shown in Fig. 12.72, a three-phase four-wire...Ch. 12 - Meter readings for a three-phase wye-connected...Ch. 12 - A certain store contains three balanced...Ch. 12 - The two-wattmeter method gives P1=1200W and...Ch. 12 - In Fig. 12.73, two wattmeters are properly...Ch. 12 - If wattmeters W1 and W2 are properly connected...Ch. 12 - For the circuit displayed in Fig. 12.74, find the...Ch. 12 - Predict the wattmeter readings for the circuit in...Ch. 12 - Prob. 75PCh. 12 - Show that the I2R losses will be higher for a...Ch. 12 - A three-phase generator supplied 10 kVA at a power...Ch. 12 - Prob. 78CPCh. 12 - A balanced three-phase generator has an abc phase...Ch. 12 - A balanced three-phase source furnishes power to...Ch. 12 - A professional center is supplied by a balanced...Ch. 12 - A balanced three-phase system has a distribution...Ch. 12 - A commercially available three-phase inductive...Ch. 12 - Figure 12.76 displays a three-phase...Ch. 12 - Design a three-phase heater with suitable...Ch. 12 - For the single-phase three-wire system in Fig....Ch. 12 - Consider the single-phase three-wire system shown...
Knowledge Booster
Background pattern image
Electrical Engineering
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, electrical-engineering and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Introductory Circuit Analysis (13th Edition)
Electrical Engineering
ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:PEARSON
Text book image
Delmar's Standard Textbook Of Electricity
Electrical Engineering
ISBN:9781337900348
Author:Stephen L. Herman
Publisher:Cengage Learning
Text book image
Programmable Logic Controllers
Electrical Engineering
ISBN:9780073373843
Author:Frank D. Petruzella
Publisher:McGraw-Hill Education
Text book image
Fundamentals of Electric Circuits
Electrical Engineering
ISBN:9780078028229
Author:Charles K Alexander, Matthew Sadiku
Publisher:McGraw-Hill Education
Text book image
Electric Circuits. (11th Edition)
Electrical Engineering
ISBN:9780134746968
Author:James W. Nilsson, Susan Riedel
Publisher:PEARSON
Text book image
Engineering Electromagnetics
Electrical Engineering
ISBN:9780078028151
Author:Hayt, William H. (william Hart), Jr, BUCK, John A.
Publisher:Mcgraw-hill Education,
What is the Difference Between Single Phase and Three Phase???; Author: Electrician U;https://www.youtube.com/watch?v=FEydcr4wJw0;License: Standard Youtube License