JPH04275028A - Frequency conversion transmission system - Google Patents

Frequency conversion transmission system

Info

Publication number
JPH04275028A
JPH04275028A JP3437591A JP3437591A JPH04275028A JP H04275028 A JPH04275028 A JP H04275028A JP 3437591 A JP3437591 A JP 3437591A JP 3437591 A JP3437591 A JP 3437591A JP H04275028 A JPH04275028 A JP H04275028A
Authority
JP
Japan
Prior art keywords
frequency
power
transmission line
power transmission
generator
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
JP3437591A
Other languages
Japanese (ja)
Inventor
Hiroyuki Tanaka
裕幸 田中
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Kansai Electric Power Co Inc
Original Assignee
Kansai Electric Power Co Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Kansai Electric Power Co Inc filed Critical Kansai Electric Power Co Inc
Priority to JP3437591A priority Critical patent/JPH04275028A/en
Publication of JPH04275028A publication Critical patent/JPH04275028A/en
Pending legal-status Critical Current

Links

Abstract

PURPOSE:To increase power transporting ability by transmitting power, converting into a frequency (usually 10-30Hz) lower than a commercial frequency. CONSTITUTION:Frequency converters 4, 5 are put between a generator 1 and the beginning end of a transmission line 2, and between the termination of the transmission line 2 and a load 3 respectively. Hereupon the frequency of the AC power generated by the generator 1 is 60Hz. But the frequency is converted from 60Hz to 20Hz by the frequency converter 4 on the side of the generator 1, and converted reversely from 20Hz back to 60Hz by the frequency converter 5 on the side of the load 3. Incidentally, the frequency of the power is considered to be 20Hz, but it is judged that a range of 10-30Hz is appropriate. And this constitution makes it possible to transport more power on the same transmission line and to raise the transportation efficiency.

Description

【発明の詳細な説明】[Detailed description of the invention]

【0001】0001

【産業上の利用分野】この発明は、交流送電方式に関し
、特に低周波数に変換して送電する周波数変換送電方式
に関するものである。
BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention relates to an alternating current power transmission system, and more particularly to a frequency conversion power transmission system that transmits power by converting it to a lower frequency.

【0002】0002

【従来の技術】電力の輸送方式には、直流方式と交流方
式があるが、世界的にみて交流方式が中心である。これ
は、交流は変圧が可能であること、遮断が容易であるこ
と、潮流制御が容易であること、磁気的な影響が少ない
こと等によるものである。また、交流方式の場合の商用
周波数は、世界的に、ほぼ50Hzか60Hzのいずれ
かとなっているが、これは3相方式において周波数を高
くすると、伝送量が低下するだけでなく、軽負荷時に地
絡故障等の3相不平衡の条件が重なると容易に共振状態
となり過電圧が発生し、逆に、低い周波数では照明のチ
ラツキが気になるといった問題があることによる。その
他、発電機等の設計、製作上の諸条件を考慮のうえ、現
在の交流系の周波数が定められている。
BACKGROUND OF THE INVENTION There are two types of electric power transportation methods: DC and AC, but AC is the most commonly used method worldwide. This is because alternating current can be transformed, is easy to shut off, is easy to control power flow, and has little magnetic influence. In addition, the commercial frequency for AC systems is approximately 50Hz or 60Hz worldwide, but this is because increasing the frequency in 3-phase systems not only reduces the amount of transmission, but also lowers the transmission rate during light loads. This is because when three-phase unbalance conditions such as a ground fault occur, resonance easily occurs and overvoltage occurs, and conversely, at low frequencies, flickering of the lighting becomes a concern. In addition, the current frequency of AC systems is determined by taking into account the design and manufacturing conditions of generators, etc.

【0003】このような周波数域での交流方式において
、電力輸送量を電線の熱容量限界まで使用するためには
、交流抵抗としてのリアクタンスを、通常1/2〜1/
3程度にすれば十分である。このためには、直列コンデ
ンサを導入する方法が一般的であるが、低周波軸ねじれ
共振現象(SSR)のために限度がある。また、送電線
の低リアクタンス化についても努力が払われているが、
線路構造上限界に近いのが実情である。
[0003] In an AC system in such a frequency range, in order to use the amount of power transported up to the heat capacity limit of the electric wire, the reactance as AC resistance is usually reduced by 1/2 to 1/2.
A value of about 3 is sufficient. A common method for this purpose is to introduce a series capacitor, but it has limitations due to low frequency axial torsional resonance (SSR). Efforts are also being made to reduce the reactance of power transmission lines, but
The reality is that the line structure is close to its limits.

【0004】そこで、この発明は、電力の輸送能力を高
めるため直列コンデンサの導入や、送電線の低リアクタ
ンス化に代わる新たな方式により電力の輸送能力を向上
させる送電方式を提供することを技術的課題とする。
[0004] Therefore, this invention aims to provide a power transmission system that improves the power transport capacity by introducing a series capacitor and by introducing a new method to replace the low reactance of the power transmission line. Take it as a challenge.

【0005】[0005]

【課題を解決するための手段】上記の課題を解決するた
めに、この発明は交流送電方式において、商用周波数よ
り低い周波数(通常10〜30Hz)に変換して送電す
る方式を採用したものである。
[Means for Solving the Problems] In order to solve the above-mentioned problems, the present invention adopts a method of transmitting power by converting it to a frequency lower than the commercial frequency (usually 10 to 30 Hz) in the AC power transmission system. .

【0006】即ち、交流による輸送電力Pは、次式で表
わされる。
That is, the transportation power P due to alternating current is expressed by the following equation.

【0007】 P=(VG ・VL ・sinδ)/Xただし、VG 
:発電端電圧 VL :負荷端電圧 δ  :VG 、VL の相差角 X  :送電線リアクタンス(=2πfL)(f=周波
数、L=送電線インダクタンス)すなわち、周波数を低
くして送電すれば、同一送電線で多くの電力を輸送でき
、原理的には、周波数を1/2にすると、2倍の電力輸
送が可能になる。
P=(VG ・VL ・sin δ)/X However, VG
: Generation end voltage VL : Load end voltage δ : Phase difference angle between VG and VL Electric wires can transport a lot of power, and in principle, if the frequency is halved, twice as much power can be transported.

【0008】[0008]

【実施例】図1から図3は、この発明の方式の実施例で
あり、図1に示したものは、発電機1と送電線2の始端
との間及び、送電線2の終端と負荷3との間に、それぞ
れ周波数変換器4、5を介在したものである。発電機1
において発電される交流電力の周波数は60Hz、負荷
3に供給する場合の周波数も60Hzであるが、発電機
1側の周波数変換器4により60Hzから20Hzに変
換し、負荷3側の周波数変換器5により逆に20Hzか
ら60Hzに変換する。従って、送電線2により輸送さ
れる電力の周波数は20Hzとなる。
[Embodiment] Figures 1 to 3 show examples of the system of the present invention, and the one shown in Figure 1 shows the connection between the generator 1 and the starting end of the power transmission line 2, and between the end of the power transmission line 2 and the load. 3, frequency converters 4 and 5 are interposed between them. generator 1
The frequency of the alternating current power generated at Conversely, convert from 20Hz to 60Hz. Therefore, the frequency of the power transported by the power transmission line 2 is 20 Hz.

【0009】図2に示した実施例は、発電機1と送電線
2の始端との間に変圧器6を介在し、送電線2の終端と
負荷3との間に前述と同様の周波数変換器5を介在した
ものである。
In the embodiment shown in FIG. 2, a transformer 6 is interposed between the generator 1 and the starting end of the power transmission line 2, and the same frequency conversion as described above is performed between the end of the power transmission line 2 and the load 3. A container 5 is used.

【0010】この場合、発電機1の周波数は20Hzで
あり、従って送電線2により送電される電力の周波数は
20Hzとなり、周波数変換器5で60Hzに変換され
る。
In this case, the frequency of the generator 1 is 20 Hz, so the frequency of the power transmitted by the power transmission line 2 is 20 Hz, which is converted by the frequency converter 5 to 60 Hz.

【0011】図3の実施例は、図1の場合と同様の構成
であるが、この場合の発電機1の周波数は200Hzで
あり、これを周波数変換器4により20Hzに変換する
The embodiment shown in FIG. 3 has a configuration similar to that shown in FIG. 1, but the frequency of the generator 1 in this case is 200 Hz, which is converted to 20 Hz by the frequency converter 4.

【0012】以上の実施例は、いずれも送電線2により
送電される電力の周波数を20Hzとしているが、この
周波数は10〜30Hzの範囲が適切と判断される。こ
れは、10Hzより低くなると、タービンおよび発変電
機器が大きくなり、また30Hzを越えると、システム
に占める変換器コストのウエイトが大きくなるため、コ
スト面で実用的でないからである。
[0012] In all of the above embodiments, the frequency of the power transmitted by the power transmission line 2 is 20 Hz, but it is judged that this frequency is appropriate in the range of 10 to 30 Hz. This is because if the frequency is lower than 10 Hz, the turbine and power generation/transformation equipment will be large, and if the frequency exceeds 30 Hz, the weight of the converter cost in the system will become large, making it impractical in terms of cost.

【0013】[0013]

【発明の効果】以上のように、この発明の送電方式は、
周波数を通常の場合より低くして送電するものであるか
ら、同一送電線で多くの電力を輸送することができる。 言い換えれば、既設送電線の輸送効率を上げることがで
き、また新設送電線のルート数を少なくすることができ
る効果がある。
[Effect of the invention] As described above, the power transmission method of this invention is
Since power is transmitted at a lower frequency than normal, a large amount of power can be transported on the same transmission line. In other words, it has the effect of increasing the transportation efficiency of existing power transmission lines and reducing the number of routes for new power transmission lines.

【図面の簡単な説明】[Brief explanation of the drawing]

【図1】実施例のブロック図[Figure 1] Block diagram of the embodiment

【図2】実施例のブロック図[Figure 2] Block diagram of the embodiment

【図3】実施例のブロック図[Figure 3] Block diagram of the embodiment

【符号の説明】[Explanation of symbols]

1  発電機 2  送電線 3  負荷 4、5  周波数変換器 6  変圧器 1 Generator 2 Power transmission line 3 Load 4, 5 Frequency converter 6 Transformer

Claims (2)

【特許請求の範囲】[Claims] 【請求項1】  交流送電方式において、商用周波数よ
り低い周波数に変換して送電することを特徴とする周波
数変換送電方式。
1. A frequency conversion power transmission method in which power is transmitted by converting it to a frequency lower than the commercial frequency in an AC power transmission method.
【請求項2】  送電周波数が10〜30Hzであるこ
とを特徴とする請求項1に記載の周波数変換送電方式。
2. The frequency conversion power transmission system according to claim 1, wherein the power transmission frequency is 10 to 30 Hz.
JP3437591A 1991-02-28 1991-02-28 Frequency conversion transmission system Pending JPH04275028A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP3437591A JPH04275028A (en) 1991-02-28 1991-02-28 Frequency conversion transmission system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP3437591A JPH04275028A (en) 1991-02-28 1991-02-28 Frequency conversion transmission system

Publications (1)

Publication Number Publication Date
JPH04275028A true JPH04275028A (en) 1992-09-30

Family

ID=12412425

Family Applications (1)

Application Number Title Priority Date Filing Date
JP3437591A Pending JPH04275028A (en) 1991-02-28 1991-02-28 Frequency conversion transmission system

Country Status (1)

Country Link
JP (1) JPH04275028A (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2001026201A1 (en) * 1999-10-01 2001-04-12 Abb Ab A plant for transmitting electric power and a method for reconstructing such a plant
WO2009015670A1 (en) * 2007-07-30 2009-02-05 Siemens Aktiengesellschaft Energy transmission system, particularly for offshore oil installations
JP2014519297A (en) * 2011-04-04 2014-08-07 エフ・エル・スミス・エー・エス Heavy duty mill

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS59127531A (en) * 1983-01-12 1984-07-23 株式会社東芝 Power converter

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS59127531A (en) * 1983-01-12 1984-07-23 株式会社東芝 Power converter

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2001026201A1 (en) * 1999-10-01 2001-04-12 Abb Ab A plant for transmitting electric power and a method for reconstructing such a plant
WO2009015670A1 (en) * 2007-07-30 2009-02-05 Siemens Aktiengesellschaft Energy transmission system, particularly for offshore oil installations
JP2014519297A (en) * 2011-04-04 2014-08-07 エフ・エル・スミス・エー・エス Heavy duty mill

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