![]() |
![]() NEW CONSEW Industrial Sewing Machine Servo Motor CS1000 3 4 HP $123.99 Time Remaining: 28d 20h 38m Buy It Now for only: $123.99 |
![]() SINGER 306 SEWING MACHINE MOTOR NOT WORKING $5.00 Time Remaining: 1h 11m |
![]() Singer Sewing Machine Motor Lubricant Grease S2129 $3.99 Time Remaining: 24d 6h 3m Buy It Now for only: $3.99 |
![]() TREADLE ROD COMPLETE MOTOR INDUSTRIAL SEWING MACHINE $7.95 Time Remaining: 1h 12m |
![]() Sewing Machine Motor Singer HA1 15669999K 9 amp $37.95 Time Remaining: 16d 5h 23m Buy It Now for only: $37.95 |
![]() NEW SEWING MACHINE MOTOR FOOT PEDAL CONTROL SET FITS SINGER 15 CLASS $28.04 Time Remaining: 15d 23h Buy It Now for only: $28.04 |
![]() Heavy Duty Dressmaster Industrial Strength Sewing Machine 13Amp motor Strong $31.00 (11 Bids) Time Remaining: 16h 10m |
![]() 1 Sewing Machine Motor Belt Pick your size 12131414 1 215161617 $8.50 Time Remaining: 23d 3h 29m Buy It Now for only: $8.50 |
![]() PFAFF HOMESEWING MACHINE MOTOR FOOT PEDAL CONTROL SET 220V 180W $20.55 Time Remaining: 1h 29m |
![]() NEW KENMORE WHITE SEWING MACHINE MOTOR DRIVE FRICTION PULLEY $8.95 Time Remaining: 9d 18h 14m Buy It Now for only: $8.95 |
![]() HOME SEWING MACHINE FOOT CONTROL PEDAL W LIGHT MOTOR BLOCK UNIVERSAL FC 143 $23.65 Time Remaining: 5d 5h 28m Buy It Now for only: $23.65 |
![]() PFAFF HOMESEWING MACHINE MOTOR FOOT PEDAL CONTROL SET 220V 180W $20.55 Time Remaining: 2h 4m |
![]() SINGER SEWING MACHINE GENUINE MOTOR FOR 221K FEATHERWEIGHT $99.00 Time Remaining: 21d 17h 1m Buy It Now for only: $99.00 |
![]() PFAFF HOMESEWING MACHINE MOTOR FOOT PEDAL CONTROL SET 220V 180W $26.50 Time Remaining: 2h 18m |
![]() DOUBLE POWER Sewing Machine Motor SERGER 9amp motor $37.95 Time Remaining: 7d 18h 4m Buy It Now for only: $37.95 |
![]() Singer Sewing Machine Motor Lubricant Grease $3.98 Time Remaining: 19d 18h 21m Buy It Now for only: $3.98 |
![]() Morse Sewing Machine Motor 1 15 HP 10 AMP 110 Volts Bench Tested O K $8.99 Time Remaining: 3d 58m |
![]() INDUSTRIAL SEWING MACHINE MOTOR V BELT Size 26 52 Consew Juki Pfaff Singer $4.99 Time Remaining: 3d 1h 29m Buy It Now for only: $4.99 |
![]() Sewing Machine Motor Belt Sears Kenmore 158 Rear Mounted Motor 14 Circ NOS $4.95 (1 Bid) Time Remaining: 4h 38m |
![]() universal home sewing machine Foot Control pedal +Cord Light Motor Block FC 143 $18.00 Time Remaining: 5d 20h 35m Buy It Now for only: $18.00 |
![]() New Pfaff Sewing Machine Motor Drive Belt 1217 1222 1229 Part 93 040121 05 $10.99 Time Remaining: 28d 23h 55m Buy It Now for only: $10.99 |
![]() SEWING MACHINE MOTOR FOOT FEED CONTROLLER 599 $5.99 Time Remaining: 3d 19h 26m |
![]() TWO NEW PFAFF SEWING MACHINE MOTOR BRUSHES 260 360 $6.00 Time Remaining: 29d 18h 17m Buy It Now for only: $6.00 |
![]() sewing machine motor and complete foot control kit 09A 110 130V 50 60Hz $29.95 Time Remaining: 10d 23h 47m Buy It Now for only: $29.95 |
![]() QUALITY MOTOR BELT HOME SEW MACHINE SINGER KENMORE 36cm $4.00 (1 Bid) Time Remaining: 1h 35m |
![]() 10 1 4 Sewing Machine Motor Belt Fits Older Models $6.99 Time Remaining: 7d 13h 3m Buy It Now for only: $6.99 |
![]() MOTOR CHAIN FOR INDUSTRIAL SEWING MACHINES $5.50 Time Remaining: 2h 28m |
![]() INDUSTRIAL SEWING MACHINE MOTOR PULLEY $9.49 Time Remaining: 21d 22h 46m Buy It Now for only: $9.49 |
![]() NEW SEWING MACHINE MOTOR FOOT PEDAL CONTROL SET FITS SINGER 15 CLASS $33.95 Time Remaining: 19d 17h 32m Buy It Now for only: $33.95 |
![]() QUALITY MOTOR BELT HOME SEW MACHINE SINGER KENMORE 36cm $4.00 Time Remaining: 1h 50m |
![]() Sewing Machine Replacement Motor From a Kenmore Very Strong 10 Amp $12.95 Time Remaining: 24d 22h 25m Buy It Now for only: $12.95 |
![]() QUALITY MOTOR BELT HOME SEW MACHINE SINGER KENMORE 36cm $4.00 Time Remaining: 2h 6m |
![]() Strong Double Power Sewing Machine Motor 10 Amp $37.95 Time Remaining: 19d 2h 42m Buy It Now for only: $37.95 |
![]() Alphasew UNIVERSAL Type L Sewing Machine Motor NA35L HS $41.99 Time Remaining: 14d 20h 7m Buy It Now for only: $41.99 |
![]() DRIVING PULLEY CLUTCH DISK MOTOR INDUSTRIAL SEW MACHINE $5.50 Time Remaining: 1h 9m |
![]() 5 QUALITY MOTOR BELT HOME SEWING MACHINE SINGER KENMORE $14.00 Time Remaining: 24d 6h 38m Buy It Now for only: $14.00 |
![]() QUALITY MOTOR BELT HOME SEW MACHINE SINGER KENMORE 36cm $4.00 Time Remaining: 2h 24m |
![]() 220V 180W 09A Domestic Household Sewing Machine Motor $34.99 Time Remaining: 14d 14h 47m Buy It Now for only: $34.99 |
![]() ON OFF SWITCH FOR INDUSTRIAL SEWING MACHINE MOTOR 110 VOLT WIRE NOT INCLUDED $8.99 Time Remaining: 4d 18h 40m Buy It Now for only: $8.99 |
![]() Sears Roebuck sewing machine motor controller with knee lever $14.99 Time Remaining: 5h 1m Buy It Now for only: $17.99 |
![]() SEWING MACHINE MOTOR PULLEY 1 4 SHAFT FITS MANY $4.50 Time Remaining: 5d 19h 28m Buy It Now for only: $4.50 |
![]() 13 1 4 Sewing Machine Motor Belt Fits Older Models $6.99 Time Remaining: 7d 14h 21m Buy It Now for only: $6.99 |
![]() Vintage Singer sewing machine model 27 shell no motor no guts Case included $0.99 Time Remaining: 2d 5h 8m |
![]() Triple POWER Sewing Machine Motor 15 amp motor only Strongest Supreme $49.95 Time Remaining: 6d 23h 53m Buy It Now for only: $49.95 |
![]() VTG SEARS KENMORE ROTARY 117589 SEWING MACHINE MOTOR W MOUNTING SCREWS $12.99 Time Remaining: 20h 44m Buy It Now for only: $15.00 |
![]() Singer Sewing Machine Motor from a Clean Model 66 $21.95 Time Remaining: 10d 10h 25m Buy It Now for only: $21.95 |
![]() sewing machine motor and foot control 9 Amp $34.50 Time Remaining: 3d 1h 20m Buy It Now for only: $34.50 |
![]() SINGER SEWING MACHINE MOTOR CONTROLLER FOOT PEDAL 625299 004 AND VARIOUS PARTS $5.00 Time Remaining: 4d 19h 12m |
![]() FISHING LINE SPOOLER OR SEWING MACHINE MOTOR $33.95 Time Remaining: 6d 6h 18m Buy It Now for only: $33.95 |
![]() QUALITY INDUSTRIAL SEWING MACHINE MOTOR BELT MANY SIZES $5.50 Time Remaining: 2h 31m |
![]() WHITE OR UNIVERSAL SEWING MACHINE FOOT OR KNEE PEDAL MOTOR LIGHT PLUG CONTROLLER $47.95 Time Remaining: 29d 14h 21m Buy It Now for only: $47.95 |
![]() NEW SINGER SEWING MACHINE 15 3 8 IN MOTOR V BELT 66 99 185 206 306 319 327 $6.95 Time Remaining: 29d 17m Buy It Now for only: $6.95 |
![]() DRESSMAKER MODEL 960 SEWING MACHINE W CASE PREMIER 15 AMP MOTOR S3010C LIGHT $29.99 Time Remaining: 3d 15h 59m |
![]() Kenmore Sewing Machine Replacement Motor runs Strong 12 Amp tests at 13 Amp $24.95 Time Remaining: 20d 2h 15m Buy It Now for only: $24.95 |
![]() KENMORE 5185 Sewing Machine Serger Motor Mounting Bracket Foot Pedal SEARS $39.99 Time Remaining: 20h 45m |
![]() SINGER BRAND MOTOR GREASE SEWING MACHINE LUBRICANT 1 2 OZTUBE S2129 $6.79 Time Remaining: 5d 6h 34m Buy It Now for only: $6.79 |
![]() Sewing Machine Motor TM11 W $26.95 Time Remaining: 12d 23h 18m Buy It Now for only: $26.95 |
![]() VTG DOMESTIC ROTARY SEWING MACHINE PARTS REPAIR MOTOR LIGHT WITH LIGHT SWITCH $12.99 Time Remaining: 3d 36m Buy It Now for only: $15.00 |
![]() NEW SINGER SEWING MACHINE 15 MOTOR V BELT 337 338 347 348 413 418 437 457 $6.95 Time Remaining: 27d 16h 51m Buy It Now for only: $6.95 |
![]() Vintage Singer Sewing Machine motor controller foot pedal $12.99 Time Remaining: 4d 2h 6m |
![]() ALHPASEW Sewing Machine Type L Reverse Motor NA35L R $34.99 Time Remaining: 14d 20h 7m Buy It Now for only: $34.99 |
![]() Vintage Electric MERCURY FOOT PEDAL Sewing Machine Motor Light Cat No 704 $24.99 Time Remaining: 27d 14h 38m Buy It Now for only: $24.99 |
![]() SINGER STYLIST 457 SEWING MACHINE REPAIR PARTS MOTOR LIGHT POWER SWITCH $15.99 Time Remaining: 3d 26m Buy It Now for only: $20.00 |
![]() NEW SINGER SEWING MACHINE FEATHERWEIGHT 221 BLACK MOTOR V BELT 17 1 2 $6.75 Time Remaining: 29d 21h 59m Buy It Now for only: $6.75 |
![]() SINGER SEWING MACHINE FEATHERWEIGHT 221 MOTOR BRUSH CAP 193543 $8.00 Time Remaining: 24d 16h 47m Buy It Now for only: $8.00 |
![]() Sewing Machine Motor Volts 115 130 Input 80 W Bench Tested O K $8.99 Time Remaining: 3d 1h 4m |
![]() NEW SEWING MACHINE MOTOR SINGER HA1 15 66 99 99K WITH PEDAL $28.04 Time Remaining: 16d 7h 49m Buy It Now for only: $28.04 |
![]() VINTAGE Model 66 Singer Sewing Machine Motor Great Shape Clean $12.99 (1 Bid) Time Remaining: 4d 2h 21m |
![]() NEW HOME KENMORE FREE SEWING MACHINE MOTOR DRIVE RUBBER FRICTION PULLEY $8.95 Time Remaining: 13d 17h 30m Buy It Now for only: $8.95 |
![]() YXP 18 HIGHLEAD SKIVING LEATHER MACHINE NEW KD Stand Servo Motor $999.00 Time Remaining: 4d 5h 59m Buy It Now for only: $999.00 |
![]() YDK YM43 8 New Home sewing machine motor mount $0.99 Time Remaining: 1d 18h 32m |
![]() 13 3 4 35 CM HOME SEWING MACHINE MOTOR LUG BELT SINGER PFAFF NECCHI 1334 $5.95 Time Remaining: 24d 22h 39m Buy It Now for only: $5.95 |
![]() USED SINGER SEWING MACHINE MOTOR FITS 401 03 04 500 03 600 03 04 20 25 26 29ETC $19.95 Time Remaining: 3d 22h 46m Buy It Now for only: $24.95 |
![]() NEW ALPHAS SEWING MACHINE MOTOR 7000 RPM L BRACKET $28.00 Time Remaining: 16d 17h 26m Buy It Now for only: $28.00 |
![]() Singer 362 Sewing Machine Motor Light Switch Part $9.78 Time Remaining: 14d 14h 28m Buy It Now for only: $9.78 |
![]() Singer 128 Sewing Machine Motor with bracket and Working $24.00 Time Remaining: 4d 15m |
![]() NEW ALPHASEW SEWING MACHINE MOTOR 7000 RPM SINGER 66 27 99 MANY $34.00 Time Remaining: 17d 2h 11m Buy It Now for only: $34.00 |
![]() Singer Sewing Machine Foot Pedal Motor Control $4.99 Time Remaining: 2d 22h 46m |
![]() NEW KENMORE SEWING MACHINE MOTOR BELT 158901 903 904 882 $6.95 Time Remaining: 19d 35m Buy It Now for only: $6.95 |
![]() 10pcs Carbon Motor Brush Home Sewing Machine $10.00 Time Remaining: 8d 7h 22m Buy It Now for only: $10.00 |
![]() Jones 300 Sewing Machine Motor $12.62 Time Remaining: 3d 15m |
![]() Sewing Machine Motor Singer HA1 15669999K 2728 $37.95 Time Remaining: 16d 5h 29m Buy It Now for only: $37.95 |
![]() 220V 180W 09A Domestic Household Sewing Machine Motor $25.00 Time Remaining: 5d 15h 36m Buy It Now for only: $25.00 |
![]() Ym43 e sewing machine serger motor for parts $2.00 Time Remaining: 1d 18h 27m |
![]() Kenmore Sewing Machine Motor 045A P N 639620022 $9.99 Time Remaining: 24d 18h 22m Buy It Now for only: $9.99 |
![]() SEWING MACHINE MOTOR 110 VOLT 1 AMP $12.95 Time Remaining: 3d 18h 15m |
![]() INDUSTRIAL SEWING MACHINE CLUTCH MOTOR V BELT SIZE 40 $5.49 Time Remaining: 4d 4h 34m Buy It Now for only: $5.49 |
![]() VINTAGE NECCHI MODEL 541 SEWING MACHINE MOTOR BRACKET W SCREW $24.99 Time Remaining: 5d 1h 24m Buy It Now for only: $24.99 |
![]() Supreme sewing machine motor $34.99 Time Remaining: 4d 2h 51m Buy It Now for only: $41.99 |
![]() ZOOM SPOUT SEWING MACHINE OIL SINGER GEAR MOTOR LUBRICANT $5.99 Time Remaining: 5d 16h 28m Buy It Now for only: $5.99 |
![]() Sears Roebuck sewing machine motor controller with knee lever $14.99 Time Remaining: 6d 1h 41m Buy It Now for only: $17.99 |
![]() INDUSTRIAL SEWING MACHINE SERVO MOTOR 550 WATTS ADJUSTABLE SPEED NOISELESS $112.50 Time Remaining: 23d 21h 31m Buy It Now for only: $112.50 |
![]() FISHING LATHE MOTOR SEWING MACHINE FISHING LINE SPOOLER 110V 10 AMPS $28.04 Time Remaining: 24d 1h 40m Buy It Now for only: $28.04 |
![]() INDUSTRIAL SEWING MACHINE MOTOR PULLEY SIZE 3 7 8 632 $4.99 Time Remaining: 5d 2h 57m Buy It Now for only: $5.99 |
![]() NEW SINGER KENMORE WARDS SEW MACHINE UNIVERSAL MOTOR LIGHT FOOT KNEE PEDAL PLUG $19.10 Time Remaining: 7d 16h 31m Buy It Now for only: $19.10 |
![]() Singer Motor Controller 197629 for Singer Sewing Machines $15.00 Time Remaining: 7d 20h 41m |
![]() QUALITY MOTOR BELT HOME SEWING MACHINES SINGER KENMORE $4.00 Time Remaining: 23d 21h 33m Buy It Now for only: $4.00 |
![]() Sewing Machine Motor Belt SingerBrotherKenmore 12 17 $6.00 Time Remaining: 27d 8h 55m Buy It Now for only: $6.00 |
![]() riccar sewing machine motor vintage 1966 ym 40 115v 08a working replacement $9.99 Time Remaining: 5d 3h 14m |
![]() Replacement Motor for Bernina Sewing Machines 830 Part BR830 $179.99 Time Remaining: 20d 18h 47m Buy It Now for only: $179.99 |
Machine Motor

Simulation of Voltage Stability Analysis in Induction Machine
I. INTRODUCTION
Voltage collapse problem has been one of the major problems facing the electric power utilities in many countries. The problem is also a main concern in power system operation and planning. It can be characterized by a continuous decrease of the system voltage. In the initial stage the decrease of the system voltage starts gradually and then decreases rapidly. Stressed power system; i.e. high active power loading in the system. In bulk transmission network to avoid the cost of building new lines and generation facilities. When a bulk transmission network is operated close to the voltage instability limit, it becomes difficult to control the reactive power margin for that system. As a result the system stability becomes one of the major concerns and an appropriate way must be found to monitor the system and avoid system collapse. One of the major reasons of voltage collapse is the heavy loading of the power system, which is comprised of long transmission lines. The system appears unable to supply the reactive power demand. Producing the demanded reactive power through synchronous generators, synchronous condensers or static capacitors can overtake the problem [1]. Another solution is to build transmission lines to the weakest nodes. Voltage collapse may occur due to a major disturbance in the system such as generators outage or lines outage.
In many algorithms have been proposed in the literature for voltage stability analysis. Most of the utilities have a tendency
to depend regularly on conventional load flows for such analysis. Some of the proposed methods are concerned with voltage instability analysis under small perturbations in system load parameters.
II. POWER FLOW PROBLEM
The solution of power flow predicts what the electrical state of the network will be when it is subject to a specified loading condition. The result of the power flow is the voltage magnitude and the angle at each of the system nodes. These bus voltage magnitudes and angles are defined as the system state variables [2]. That is because they allow all other system quantities to be computed such as real and reactive power flows, current flows, voltage drops, power losses etc., Power flow solution is closely associated with voltage stability analysis. It is an essential tool for voltage stability evaluation. Much of the research on voltage stability deals with the power-flow computation method. The power-flow problem solves the complex matrix equation
(1)
(2)
The Newton-Raphson method is the most general and reliable algorithm to solve the power-flow problem. It involves iterations based on successive linearization using the first term of Taylor expansion of the equation to be solved. From Equation (1), we can write the equation for node k (bus k) as
(3)
(4)
(5)
, (6)
(7)
= (8)
(9)
III. PERFORMANCE EIGEN VALUE ANALYSIS METHOD
It can predict voltage collapse in complex power system networks. It involves mainly the computing of the smallest Eigen values and associated eigenvectors of the reduced Jacobin matrix obtained from the load flow solution [3]. The Eigen values are associated with a mode of voltage and reactive power variation, which can provide a relative measure of proximity to voltage instability. Then, the participation factor can be used effectively to find out the weakest nodes or buses in the system
A. Effect of Load Modeling
It is important to have an analytical method to predict the voltage collapse in the power system, particularly with a complex and large one. The modal analysis or Eigen value analysis can be used effectively as a powerful analytical tool to verify both proximity and mechanism of voltage instability [4]. It involves the calculation of a small number of Eigen values and related eigenvectors of a reduced Jacobin matrix. The stability margin or distance to voltage collapse can be estimated by generating the Q-V curves for that particular bus the steady state induction machine load model is considered in this study.
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
Then
(18)
B. Modal Analysis & Q – V Curve
The modal analysis mainly depends on the power-flow Jacobin matrix. The voltage-reactive power curves are generated by series of power flow simulation. They plot the voltage at a test bus or critical bus versus reactive power at the same bus. The bus is considered to be a PV bus, where the reactive output power is plotted versus scheduled voltage. Most of the time these curves are termed Q–V curves rather than V–Q curves. Scheduling reactive load rather than voltage produces Q–V curves. These curves are a more general method of assessing voltage stability [5]. They are used by utilities as a workhorse for voltage stability analysis to determine the proximity to voltage collapse and to establish system design criteria based on Q and V margins determined from the curves. Operators may use the curves to check whether the voltage stability of the system can be maintained or not and take suitable control actions. The sensitivity and variation of bus voltages with respect to the reactive power injection can be observed clearly. The main drawback with Q–V curves is that it is generally not known previously at which buses the curves should be generated. In normal operating condition, an operator will attempt to correct the low voltage condition by increasing the terminal voltage.
C. Effect of Load Modeling
The load representation can play an important factor in the power system stability. The load characteristics can be divided into two categories, static characteristics and dynamic characteristics. The effect of the static characteristics is discussed in this section. Recently, the load representation has become more important in power system stability studies. In the previous analysis, the load was represented by considering the active power and reactive power. Both were represented by combination of constant impedance (resistance or reactance), constant current and constant power (active or reactive) elements. This kind of load modeling has been used in many of the power system steady state analyses. The effect of the static load modeling on voltage stability is presented in this section. A voltage dependent load model is proposed. The new load model is used instead of the constant load used previously. A significant change in the stability limit or distance to voltage collapse should be noticed clearly [6, 7].
D. Voltage Dependent Loads
Hp
Volts
Rpm
Torque
(N.m)
I
(A)
rs
(ohm)
X1S
(ohm)
Xm
(ohm)
X1r
(ohm)
rr
(ohm)
J
Kg.m2
500
2300
1773
1980
93.6
0.262
1.206
54.02
1.206
1.187
11.06
2250
2300
1786
8900
421.2
0.029
0.226
13.04
0.226
0.022
63.87
Voltage dependency of reactive power affects the steady state stability of power system. This effect primarily appears on voltages, which in turn affect the active power. It is well known that the stability improves and the system becomes voltage stable by installing static reactive power compensators or synchronous condensers. The active and reactive proposed static load model for a particular load bus in this study is an exponent function bus voltage as shown in the following equations:
(19)
(20)
Then the load flow equation (2.6) at load bus k can be written as
(21)
(22)
E. Effect of Induction Motor Load
Induction machine motor is one of the most popular loads in the power system. About 50-70% of all generated power is consumed by electric motors with about 90% of this being used by induction motors. Therefore, it is considered an important part of the power system load and a significant attention regarding this type of load has been taken for both dynamic and steady state analysis. In this research, the induction machine load is considered using the steady state model analysis.
IV. PROBLEM FORMULATION
The Modal analysis method has been successfully applied to two different electric power systems. The Q-V cures are generated for selected buses in order to monitor the voltage stability margin. Different voltage dependent load and Induction machine load models are simulated. A power flow program based on Mat lab is developed to,
A. Analyses with constant impedance Load
The modal analysis method is applied to the three suggested test systems. The voltage profile of the buses is presented from the load flow simulation. Then, the minimum Eigen value of the reduced Jacobin matrix is calculated. After that, computing the participating factors identifies the weakest load buses, which are subject to voltage collapse.
B. Analysis considering effect of induction machine load
The modal analysis including the induction machine load is performed for the three suggested test systems. The induction machine load can be connected to any bus in the tested system. In this study two-induction machine loads with different ratings have been selected for the analysis. The machines data are shown in Table 1.
TABLE .1. MACHINE PARAMETER
The voltage profile of the buses is presented from the load flow solution. Then, the minimum Eigen value of the reduced Jacobin matrix is calculated. After that, computing the participating factors identifies the weakest load buses, which are subject to voltage collapse [8, 9].
C. The IEEE 14 Bus System
Table.2 shows the voltage profiles of all buses of the IEEE 14 Bus system as obtained from the load flow including induction machine load model 1 & 2.
TABLE. 2. VOLTAGE PROFILES OF IEEE 14 BUS SYSTEM
BUS NO
CONSTANT LOAD MODEL
IMPEDANCE LOAD MODEL 1
IMPEDANCE LOAD
MODEL 2
1
1.060
1.060
1.060
2
1.040
1.040
1.040
3
1.010
1.010
1.010
4
0.979
0.983
0.983
5
0.983
0.986
0.987
6
1.070
1.070
1.070
7
1.046
1.049
1.050
8
1.080
1.080
1.080
9
1.050
1.055
1.056
10
1.049
1.053
1.053
11
1.056
1.058
1.058
12
1.024
1.027
1.027
13
1.044
1.049
1.050
14
1.029
1.050
1.053
The result shows the effect of both induction machine load and the constant load. It can be seen that all the bus voltages are within the acceptable level. In general, the lowest voltage compared to the other buses can be noticed at bus number 4 in all cases. Table.3 shows the Eigen values of all buses of the IEEE 14 Bus system as obtained from the load flow including induction machine load model 1 & 2.
TABLE .3. EIGEN VALUES OF IEEE 14 BUS SYSTEM
S.No
CONSTANT LOAD MODEL
IMPEDANCE LOAD MODEL 1
IMPEDANCE LOAD
MODEL 2
1
62.5497
62.7566
62.7774
2
40.0075
40.1996
40.2196
3
21.5587
21.6384
21.6466
4
18.7197
18.8205
18.8311
5
15.7882
15.8638
15.8714
6
11.1479
11.2021
11.2077
7
2.7811
2.8274
2.8321
8
5.4925
5.5355
5.5399
9
7.5246
7.6189
7.6290
Table .3. shows the participation factors of all buses of the IEEE 14 Bus system as obtained from the load flow including induction machine load model 1 & 2.
TABLE. 4. PARTICIPATION FACTORS OF IEEE 14 BUS SYSTEM
BUS
NO
CONSTANT
LOAD
MODEL
IMPEDANCE
LOAD
MODEL 1
IMPEDANCE LOAD
MODEL 2
4
0.0091
0.0092
0.0092
5
0.0045
0.0046
0.0046
7
0.0691
0.0704
0.0706
9
0.1912
0.1939
0.1942
10
0.2319
0.2376
0.2382
11
0.1095
0.1136
0.1140
12
0.0225
0.0226
0.0226
13
0.0351
0.0346
0.0345
14
0.3270
0.3135
0.3121
D. The IEEE 30 Bus System
Table.5. shows the voltage profiles of all buses of the IEEE 30 Bus system as obtained from the load flow including induction machine loads at bus 30.
TABLE .5 VOLTAGE PROFILES OF IEEE 30 BUS SYSTEM
BUS NO
CONSTANT LOAD MODEL
IMPEDANCE
LOAD MODEL
1
IMPEDANCE
LOAD MODEL
2
1
1.060
1.060
1.060
2
1.043
1.043
1.043
3
1.019
1.020
1.020
4
1.010
1.011
1.011
5
1.010
1.010
1.010
6
1.009
1.010
1.011
7
1.001
1.002
1.002
8
1.010
1.010
1.010
9
1.048
1.049
1.049
10
1.040
1.040
1.041
11
1.082
1.082
1.082
12
1.054
1.055
1.055
13
1.071
1.071
1.071
14
1.038
1.039
1.039
15
1.033
1.034
1.034
16
1.041
1.042
1.042
17
1.035
1.035
1.036
18
1.023
1.024
1.024
19
1.020
1.021
1.021
20
1.024
1.025
1.025
21
1.025
1.027
1.027
22
1.025
1.027
1.027
23
1.018
1.020
1.020
24
1.006
1.010
1.011
25
0.983
0.991
0.993
26
0.964
0.973
0.975
27
0.977
0.988
0.991
28
1.008
1.011
1.011
29
0.956
0.979
0.984
30
0.944
0.979
0.986
The result shows the effect of both induction machines load and the constant load. It can be seen that all the bus voltages are within the acceptable level except buses 29 and 30. In general, the lowest voltage compared to the other buses can be noticed at bus number 30 in all cases [10]. Table.6 shows the Eigen values of all buses of the IEEE 30 Bus system as obtained from the load flow including induction machine load model 1 & 2.
TABLE .6. EIGEN VALUES OF IEEE 30 BUS SYSTEM
S.NO
CONSTANT LOAD MODEL
IMPEDANCE LOAD MODEL 1
IMPEDANCE LOAD MODEL 2
1
110.2056
110.3383
110.3615
2
100.6465
100.7790
100.8104
3
65.9541
66.0366
66.0507
4
59.5431
59.5990
59.6125
5
37.8188
37.8559
37.8646
6
35.3863
35.4126
35.4185
7
23.4238
23.4500
23.4558
8
23.0739
23.1397
23.1521
9
19.1258
19.1603
19.1676
10
19.7817
19.7989
19.8026
11
18.0785
18.1123
18.1192
12
16.3753
16.4800
16.5022
13
13.7279
13.7888
13.8023
14
13.6334
13.6568
13.6612
15
11.0447
11.0704
11.0750
16
0.5060
0.5211
0.5240
17
1.0238
1.0355
1.0380
18
1.7267
1.7555
1.7618
19
8.7857
8.7949
8.7970
20
7.4360
3.5873
3.5887
21
3.5808
4.0554
4.0564
22
4.0507
7.5141
7.5303
23
6.0207
5.4839
5.4898
24
5.4527
6.1933
6.2299
Table.7 shows the participation factors of all buses of the IEEE 30 Bus system as obtained from the load flow including induction machine load model 1 & 2.The simulation results of voltage profile and participation factor of IEEE 14 & 30 bus systems are presented as shown in the Fig. 1 to 4 respectively.
TABLE .7 PARTICIPATION FACTORS OF IEEE 30 BUS SYSTEM
S.NO
CONSTANT LOAD MODEL
IMPEDANCE
LOAD MODEL
1
IMPEDANCE
LOAD MODEL
2
1
0.0004
0.0004
0.0004
2
0.0005
0.0005
0.0005
3
0.0005
0.0006
0.0006
4
0.0002
0.0002
0.0002
5
0.0037
0.0040
0.0041
6
0.0121
0.0130
0.0132
7
0.0037
0.0041
0.0041
8
0.0081
0.0088
0.0090
9
0.0111
0.0120
0.0122
10
0.0079
0.0087
0.0088
11
0.0115
0.0125
0.0127
12
0.0165
0.0181
0.0184
13
0.0179
0.0196
0.0200
14
0.0172
0.0189
0.0192
15
0.0176
0.0189
0.0191
16
0.0189
0.0203
0.0206
17
0.0238
0.0255
0.0258
18
0.0395
0.0414
0.0419
19
0.1055
0.1070
0.1073
20
0.1729
0.1770
0.1778
21
0.1028
0.1015
0.1013
22
0.0025
0.0026
0.0026
23
0.1934
0.1858
0.1842
24
0.2118
0.1988
0.1961
V. CONCLUSION
In this paper, the voltage collapse problem is studied. The Modal analysis technique is applied to investigate the stability of two well-known power systems. The method computes the smallest Eigen value and the associated Eigen vectors of the reduced Jacobin matrix using the steady state system model. The magnitude of the smallest Eigen value gives us a measure of how close the system is to the voltage collapse. Then, the participating factor can be used to identify the weakest node or bus in the system associated to the minimum Eigen value.
Fig.1. Voltage profile of IEEE 14 bus system
Fig. 2. Participation factor of IEEE 14 bus system
Fig. 3. Voltage profile of IEEE 30 bus system
Fig. 4. Participation factor of IEEE 30 bus system
VI . REFERENCES
[1] C. W. Taylor, "Power System Voltage Stability." New York: MaHraw- Hill, 2000.
[2] Sauer, Peter W. and Pai, M. A. "Power System Dynamics and Stability" New Jersey Prenitice Hall, 2002.
[3] Machowski, Bialek and Bumby "Power System Dynamics and Stability" John Wiley & Sons Ltd, 2002.
[4] Sirisuth, Piya "Voltage Instability analysis using the Sensitivity of Minimum Singular Value of Load Flow Jacobian" 2004.
[5] Ajjarapu, V. and Lee, B. "Bibliography on Voltage Stability" IEEE Trans. on Power Systems, vol. 13, pp. 115-125, 2006.
[6] C. Counan, M. Trotignon, E. Corride, G. Bortoni, M. Stubbe, and J. Deuse, "Major incidents on the French electric system- Potentiality and curative measures," IEEE Trans. on Power Systems, vol. 8, pp.879-886, Aug.2005.
[7] R. DÕAquila, N. W. Miller, K. M. Jimma, M. T. Shehan, and G. L. Comegys, "Voltage stability of the Puget Sound System under Abnormally Cold Weather Conditions," IEEE Trans. on Power Systems, vol. 8, pp. 1133-1142, Aug. 2006.
[8] F. D. Galiana and Z. C. Zeng, "Analysis of the Load Behavior near Jacobian Singularity," IEEE Trans. On Power Systems, vol. 7, pp. 1529- 1542, Nov. 2003.
[9] P. Kessel and H. Glavitsch, "Estimating the Voltage Stability of a Power System," IEEE Trans. on Power Delivery, vol. 1, pp. 346-353, July 2005.
[10] Y. Tamura, H. Mori, and S. Iwamoto, "Relationship between Voltage Stability and Multiple Load Flow Solutions in Electric Systems," IEEE Trans. on Power Apparatus and Systems, vol. PAS-102, pp. 1115 - 1123, May 2004.
About the Author
Assistant professor in lord venkateswara engineering college.I am doing phd in sathyabama university, Tamil Nadu,India.
what do i need to generate electricity with my old washing machine motor?
I am trying to DIY a electricity generator, got no dynamo of cars but have old washing machine. Do not have info, thanks for your help.
There are several sources on the web that describe the method. One is:
http://www.yourgreendream.com/diy_instructions.php
In general, I would likely use a vehicle alternator rather than a washing machine motor, but I think it will work fine. I can't speak of every motor, but in general, a motor that is spun will generate electricity. Some won't be very efficient, however.
Connecting Rods Machine Shop Video-Engine Building DVD




































































































