?VAC?2.26?1.7?1.29?3.810.5?0.8328kV
VC?VA??VAC?10.5?0.8328?9.6672kV
?VCE?0.301?0.9?0.161?0.89.6672?0.041kV
VE?VC??VCE?9.6672?0.041?9.6262kV
3.4 图所示110kV闭式电网,A点为某发电厂的高压母线,其运行电压为117kV。网络各组件参数为:
-6
线路Ⅰ、Ⅱ(每公里):r0=0.27Ω,x0=0.423Ω,b0=2.69×10S
-6
线路Ⅲ(每公里):r0=0.45Ω,x0=0.44Ω,b0=2.58×10S 线路Ⅰ长度60km,线路Ⅱ长度50km,线路Ⅲ长度40km 变电所b SN?20MVA,?S0?0.05?j0.6MVA,RT?4.84?,
XT?63.5?
变电所c SN?10MVA,?S0?0.03?j0.35MVA,RT?11.4?,
XT?127?
负荷功率 SLDb?24?j18MVA,SLDc?12?j9MVA
试求电力网络的功率分布及最大电压损耗。
解 (1)计算网络参数及制定等值电路。 线路Ⅰ: Z? B??(0.27?j0.423)?60??16.2?j25.38? ?2.69?10?6?60S?1.61?10?42?4S
2?QB? 线路Ⅱ: Z? B???1.61?10?110Mvar??1.95Mvar
?(0.27?j0.423)?50??13.5?j21.15? ?2.69?10?6?50S?1.35?10?42?4S
2?QB???1.35?10 线路Ⅱ: Z??? B????110Mvar??1.63Mvar?(0.45?j0.44)?40??18?j17.6? ?2.58?10?6?40S?1.03?10?42?4S
2?QB??? 变电所b:ZTb??1.03?10?110Mvar??1.25Mvar
?12?4.84?j63.5???2.42?j31.75?
?S0b 变电所b:ZTc?2?0.05?j0.6?MVA?0.1?j1.2MVA
?12?11.4?j127???5.7?j63.5?
?S0c等值电路如图所示
?2?0.03?j0.35?MVA?0.06?j0.7MVA
(2)计算节点b和c的运算负荷。
?STb?24?18110222?2.24?j31.75?MVA?0.18?j2.36MVA
Sb?SLDb??STb??Sob?j?QBI?j?QB????24?j18?0.18?j2.36?0.1?j1.2?j0.975?j0.623MVA?24.28?j19.96MVA?STc?12?9110222?5.7?j63.5?MVA?0.106?j1.18MVA
Sc?SLDc??STc??Soc?j?QB????j?QB???12?j9?0.106?j1.18?0.06?j0.7?j0.623?j0.815MVA?12.17?j9.44MVA(3)计算闭式网络的功率分布。
S???Sb?Z???Z?????ScZ?????Z??Z???Z????j19.96??31.5?j38.75???12.17?j9.44??13.5?j21.15?47.7?j64.13MVA????24.28?18.64?j15.79MVAS????Sc?Z??Z?????SbZ????Z??Z???Z????j19.44??34.2?j42.98???24.28?j19.96??16.2?j25.38?47.7?j64.13MVA????12.17?17.8?j13.6MVASI?S???18.64?j15.79?17.8?j13.6MVA?36.44?j29.39MVA
Sb?Sc?24.28?j19.96?12.17?j9.44MVA?36.45?j29.4MVA
可见,计算结果误差很小,无需重算。取S?
?18.64?j15.79MVA继续进行计算。
S????Sb?S??24.28?j19.96?18.65?j15.8MVA?5.63?j4.16MVA
由此得到功率初分布,如图所示。
(4)计算电压损耗。
由于线路Ⅰ和Ⅲ的功率均流向节点b,故节点b为功率分点,且有功功率分点和无功功率分点都在b点,因此这点的电压最低。为了计算线路Ⅰ的电压损耗,要用A点的电压和功率SA1。
SA1?S???SL??18.65?j15.8?18.64?15.8110222?16.2?j25.38?MVA?19.45?j17.05MVA?V??PA1R??QA?X?VA?19.45?16.2?17.05?25.38117?6.39MVA
变电所b高压母线的实际电压为 Vb?VA??V??117?6.39?110.61MVA
3.5 变比分别为k1?110/11和k2?115.5/11的两台变压器并联运行,如图所
示,两台变压器归算到低压侧的电抗均为1Ω,其电阻和导纳忽略不计。已知低压母线电压10kV,负荷功率为16+j12MVA,试求变压器的功率分布和高压侧电压。
解 (1)假定两台变压器变比相同,计算其功率分布。因两台变压器电抗相等,故
S1LD?S2LD?12SLD?12?16?j12?MVA?8?j6MVA
(2)求循环功率。因为阻抗已归算到低压侧,宜用低压侧的电压求环路电势。若取其假定正方向为顺时针方向,则可得
?k2??10.5?? ?E?VB??k?1??10?10?1?kV?0.5kV
???1?故循环功率为 Sc?VB?EZT1?ZT2???10?0.5?j1?j1MVA?j2.5MVA
(3)计算两台变压器的实际功率分布。 ST1 ST2?S1LD?Sc?8?j6?j2.5MVA?8?j8.5MVA ?S2LD?Sc?8?j6?j2.5MVA?8?j3.5MVA
(4)计算高压侧电压。不计电压降落的横分量时,按变压器T-1计算可得高压母线电压为 VA8.5?1????10??k1??10?0.85??10kV?108.5kV
10??3.5?1????10??k2??10?0.35??10.5kV?108.68kV
10??按变压器T-2计算可得 VA 计及电压降落的横分量,按T-1和T-2计算可分别得: VA?108.79kV,VA?109kV
(5)计及从高压母线输入变压器T-1和T-2的功率 ST1'?8?j8.5?8?8.510222?j1MVA?8?j9.86MVA