JPH01116289A - Wind mill generator - Google Patents

Wind mill generator

Info

Publication number
JPH01116289A
JPH01116289A JP62270362A JP27036287A JPH01116289A JP H01116289 A JPH01116289 A JP H01116289A JP 62270362 A JP62270362 A JP 62270362A JP 27036287 A JP27036287 A JP 27036287A JP H01116289 A JPH01116289 A JP H01116289A
Authority
JP
Japan
Prior art keywords
turbine
air
air compressor
generator
wind
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
JP62270362A
Other languages
Japanese (ja)
Inventor
Yoichi Iwanaga
岩永 洋一
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.)
Mitsubishi Heavy Industries Ltd
Original Assignee
Mitsubishi Heavy Industries Ltd
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 Mitsubishi Heavy Industries Ltd filed Critical Mitsubishi Heavy Industries Ltd
Priority to JP62270362A priority Critical patent/JPH01116289A/en
Publication of JPH01116289A publication Critical patent/JPH01116289A/en
Pending legal-status Critical Current

Links

Classifications

    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/72Wind turbines with rotation axis in wind direction

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  • Wind Motors (AREA)

Abstract

PURPOSE:To reserve energy obtained by a wind mill so as to utilize the energy again, by providing a speed increasing/decreasing device with inversion mechanism between a generator and an air compressor turbine. CONSTITUTION:When a wind mill 1 is rotated by catching wind, a generator 3 is driven through a speed increaser 2, while an air compressor turbine 5 is driven through a speed increasing/decreasing device with inversion mechanism 4. The speed increasing/decreasing device with inversion mechanism is provided between the generator 3 and the air compressor turbine 5, and when the air compressor turbine 5 is driven from the wind mill 1 side, it operates as the speed increaser. On the other hand, when the generator 3 is driven by the air compressor turbine 5, it operates as an inversion speed reducer because the air compressor turbine 5 is inverted, so that a torque is increased to drive the generator.

Description

【発明の詳細な説明】 〔産業上の利用分野〕 本発明は風車を利用した発電装置に関する。[Detailed description of the invention] [Industrial application field] The present invention relates to a power generation device using a wind turbine.

〔従来の技術〕[Conventional technology]

従来の風車発電装置は第3図に示すように風車01、に
減速機02を介して連結された、発電機03からなって
いた。
As shown in FIG. 3, a conventional wind turbine power generation device consists of a generator 03 connected to a wind turbine 01 via a speed reducer 02.

〔発明が解決しようとする問題点〕[Problem that the invention seeks to solve]

上記従来の風車発電装置は風速に応じた発電を春するの
みであるから発電は電力需要とは全(無関係になり、た
とえば夜間風が強く、昼間風が弱くなる地区では、夜間
の電力不需要時に大出力が生じて空費され、昼間の電力
需要がピークに達する時には、必要電力が得られないと
いう不具合があった。
Since the conventional wind turbine generator described above only generates power according to the wind speed, the power generation is completely independent of the electricity demand. At times, large outputs were produced and wasted, and during the day when power demand reached its peak, the necessary power could not be obtained.

即ち、風車の得たエネルギーを貯菫し再利用できないと
いう不具合があった。
That is, there was a problem in that the energy obtained by the windmill could not be stored and reused.

〔問題点を解決するための手段〕[Means for solving problems]

本発明は上記問題点の解決手段として、風により回転し
て発電機、空気コンプレッサ・タービンを駆動する風車
と、同風車又は前記空気コンプレッサ・タービンにより
駆動される発電機と、前記発電機と前記空気コンプレク
サ・タービンとの間に設けられ風車側から空気コンプレ
ッサ・タービンを駆動する場合は、増速機として働らき
、空気コンプレッサ・タービンから前記発電機を駆動す
る場合は、反転減速機として働らく、反転機構付増減速
機と、前記風車側から駆動される場合は、コンプレッサ
として働き、空気アキュムレータからの加圧空気で駆動
される場合は空気タービンとして働らく前記空気コンプ
レッサ・タービンと、同空気コンプレッサ・タービンで
加圧された空気を貯え、必要に応じて、前記空気;ンプ
レッサ・タービンへ加圧空気を供給する。
The present invention provides a means for solving the above-mentioned problems, and includes: a wind turbine that rotates with wind to drive a generator or an air compressor/turbine; a generator driven by the wind turbine or the air compressor/turbine; When the air compressor/turbine is installed between the air compressor/turbine and the windmill side is driven, it functions as a speed increaser, and when the air compressor/turbine drives the generator, it functions as a reversing speed reducer. , an increase/decelerator with a reversing mechanism, and an air compressor/turbine that works as a compressor when driven from the wind turbine side and as an air turbine when driven by pressurized air from the air accumulator, Air compressed by the compressor turbine is stored, and the compressed air is supplied to the compressor turbine as needed.

空気アキエムレ〜りとを具えてなることを特徴とする風
車発電装置を提供しようとするものである。
It is an object of the present invention to provide a wind turbine power generation device characterized by comprising an air turbine.

〔作用〕 本発明は上記のよ5に構成されるので次の作用を有する
。即ち、 +11  風車の得た風のエネルギーは発電機を駆動し
て発電も行なうと同時に空気コンプレッサ・タービンを
コンプレッサとして駆動し、空気アキュムレータに加圧
空気の形でエネルギーを蓄積し、風の有無とは無関係に
電力需要時に取出して空気コンプレッサ・タービンを空
気タービンとして駆動し、発電機を廻わして電力を得る
[Function] Since the present invention is configured as described in 5 above, it has the following function. In other words, +11 The wind energy obtained by the windmill drives a generator to generate electricity, and at the same time drives an air compressor/turbine as a compressor, stores energy in the form of pressurized air in an air accumulator, and changes the power depending on the presence or absence of wind. When electricity is required, it is extracted and used to drive an air compressor/turbine as an air turbine, which rotates a generator to obtain electricity.

(2)従って電力不需要時には風のエネルギーは専ら蓄
積され、無駄の生じないように作用する。
(2) Therefore, when there is no demand for electricity, wind energy is exclusively stored and acts so as not to be wasted.

〔実施例〕〔Example〕

本発明の一実施例を第1図により説明する。 An embodiment of the present invention will be explained with reference to FIG.

図において1は風車で風を受けて回転すると、後述の増
速機2を介して発電機3を駆動すると共に後述の反転機
構付増減機4を介して空気コンプレッサ・タービン5を
駆動する。2は増速機で風車1の回転を増速して発電機
3及び空気コンプレッサ・タービン5へ伝達する。3は
発電機で、風のあるときは風車1によって、無風又は弱
風で、かつ、電力需要のあるときは空気コンプレッサ・
タービン5によって駆動され、任意のときに発電し、電
力供給する。4は反転機構付増減速機で発電機3と空気
コンプレッサ・タービン5との間にあって、風車1側か
ら空気コンプレッサ・タービン5を駆動する場合はその
効率を高めるため増速機として働き、空気コンプレッサ
・タービン5から発電機3を駆動する場合は、空気コン
プレッサ・タービン5が反転するため、反転減速機とし
て働き、トルクを増して発電機3を駆動する。なお、発
電機3は常に正転する。5は空気コンプレッサ・タービ
ンで風車1側から駆動される場合は空気コンプレッサと
して働き、大気より図の実線矢印の向きに空気を取込ん
で圧縮後述の空気アキュムレータ6に送給する。別の指
令によって空気アキュムレータ6から逆に加圧空気の送
給を受けると今度は図の破線矢印の向きに排気して空気
タービンとして働き、上述の通り反転機構付増減速機4
を介して発電機3を駆動する。6は空気アキュムレータ
で、空気コンプレッサ・タービン5で加圧された空気を
貯え、電力需要に応じて空気コンプレッサ・タービン5
に逆送して空気コンプレッサ・タービン5を駆動、前述
の通り発電機3を回転して発電する。
In the figure, reference numeral 1 denotes a windmill which, when rotated by the wind, drives a generator 3 via a speed increaser 2, which will be described later, and also drives an air compressor/turbine 5 via an increase/decrease gear with a reversing mechanism 4, which will be described later. 2 is a speed increaser that speeds up the rotation of the wind turbine 1 and transmits it to the generator 3 and the air compressor/turbine 5. 3 is a generator, which uses wind turbine 1 when there is wind, and an air compressor when there is no wind or weak wind and there is a demand for electricity.
It is driven by a turbine 5 to generate and supply power at any time. Reference numeral 4 denotes a speed increase/reducer with a reversing mechanism, which is located between the generator 3 and the air compressor/turbine 5. When the air compressor/turbine 5 is driven from the wind turbine 1 side, it functions as a speed increaser to increase the efficiency of the air compressor/turbine 5. - When the generator 3 is driven from the turbine 5, since the air compressor turbine 5 is reversed, it works as a reversing speed reducer and increases the torque to drive the generator 3. Note that the generator 3 always rotates normally. Reference numeral 5 denotes an air compressor/turbine, which functions as an air compressor when driven from the wind turbine 1 side, takes in air from the atmosphere in the direction of the solid arrow in the figure, compresses it, and sends it to an air accumulator 6, which will be described later. When pressurized air is supplied from the air accumulator 6 in the opposite direction according to another command, the air is exhausted in the direction of the broken line arrow in the figure and acts as an air turbine, and as described above, the speed increase/decelerator 4 with a reversing mechanism
The generator 3 is driven via the 6 is an air accumulator that stores the air pressurized by the air compressor/turbine 5, and stores the air pressurized by the air compressor/turbine 5, and operates the air compressor/turbine 5 according to the power demand.
The air is sent back to drive the air compressor/turbine 5, and as described above, the generator 3 is rotated to generate electricity.

なお、空気コンプレッサ・タービン5と空気アキュムレ
ータ6との間には図示しない電磁弁が設けられており、
空気コンプレッサ・タービン5が空気コンプレッサ又は
空気タービンとして働いている場合は開いており、需要
電力と、風車1のみによる供給エネルギーとがバランス
している場合は、空気コンプレッサ・タービン5は別に
設けた制御システムにより発電機3と切離されて停止し
ているか別の開放弁によって背圧フリーの状態で空転し
ているので、電磁弁は閉じて空気アキュムレータ6の蓄
圧を維持する構成となっている。又、電力需要に対し、
風車1の得るエネルギーだけでは不足する場合は不足分
に見合っただけ電磁弁が開キ、空気コンプレッサ・ター
ビン5を空気タービンとして駆動、発電機3の回動力を
助勢する。
Note that a solenoid valve (not shown) is provided between the air compressor/turbine 5 and the air accumulator 6.
When the air compressor/turbine 5 is working as an air compressor or an air turbine, it is open, and when the demand power and the energy supplied by the wind turbine 1 alone are balanced, the air compressor/turbine 5 is operated by a separate control. The electromagnetic valve is closed to maintain the accumulated pressure in the air accumulator 6, either because the system separates it from the generator 3 and stops it, or because it runs idly with no back pressure due to another open valve. In addition, for electricity demand,
When the energy obtained by the wind turbine 1 alone is insufficient, the solenoid valve opens to compensate for the shortage, drives the air compressor/turbine 5 as an air turbine, and assists the rotational force of the generator 3.

又、風車1の得るエネルギーが電力需要を上回る場合は
空気コンプレッサ・タービン5が空気コンプレッサとし
て働き、余剰エネルギーを空気アキュムレータ6に貯え
るようKなっている。勿論、空気アキュムレータ6の耐
圧には限度があるので、圧力が限度に達したときにはそ
れを検知して空気コンプレッサ・タービン5は発電機3
と切離されて停止するか或は背圧フリーとなって、風車
1によって駆動されている発電機3のブレーキとならな
いよう構成されている。。
Further, when the energy obtained by the wind turbine 1 exceeds the electric power demand, the air compressor/turbine 5 acts as an air compressor, and the excess energy is stored in the air accumulator 6. Of course, there is a limit to the pressure resistance of the air accumulator 6, so when the pressure reaches the limit, it is detected and the air compressor/turbine 5 is activated by the generator 3.
It is configured so that the wind turbine 1 is disconnected from the wind turbine 1 and stopped, or becomes free of back pressure and does not act as a brake for the generator 3 driven by the wind turbine 1. .

本実施例は上記のように構成されているので、風車1の
獲得するエネルギーは常に目下の電力需要か未来の電力
需要に当てられるのでエネルギーの空費が生ぜず、きわ
めて高い効率が得られる。
Since the present embodiment is configured as described above, the energy acquired by the wind turbine 1 can always be applied to the current power demand or future power demand, so that no energy is wasted, and extremely high efficiency can be obtained.

又、風の有無に拘らず、所望のときに所望の電力を引出
せるので需要側の有用性が格段に高まる。
Moreover, since the desired power can be drawn at the desired time regardless of the presence or absence of wind, the utility on the demand side is greatly increased.

更に、風車1と空気アキュムレータ6とからの相加エネ
ルギーの引出しが可能なので、その地域の有効最大風速
から得られる電力より更に大きな電力を間歇的に得られ
ることになり、電力需要ピークの高い地域に比較的小型
で最適の発電装置を供給することが可能となる。
Furthermore, since it is possible to extract additive energy from the wind turbine 1 and the air accumulator 6, it is possible to intermittently obtain more power than that obtained from the maximum effective wind speed in the area, so it can be used in areas with high peak power demand. This makes it possible to supply relatively small and optimal power generation equipment to

次に本発明の第2冥施例について第2図により説明する
Next, a second embodiment of the present invention will be explained with reference to FIG.

第2図は概ね第1図の装置の空気コンプレッサ・タービ
ン5と空気アキュムレータ6との間に、空気アキュムレ
ータ6がら空気コンプレッサ・タービン5へ加圧空気を
送給する場合のルートと工して、ソーラ空気加熱器7を
付加したに相当する図で、その他については第1図と概
ね同様につき、必要の場合以外は説明を省略する。
FIG. 2 generally shows a route for supplying pressurized air from the air accumulator 6 to the air compressor/turbine 5 between the air compressor/turbine 5 and the air accumulator 6 of the apparatus shown in FIG. This is a diagram corresponding to the addition of a solar air heater 7, and other aspects are generally the same as those in FIG. 1, and explanations will be omitted unless necessary.

図は第2実施例としての最も原理的な構成を図示したも
ので、実用する場合は第1!i!施例同様、弁その他は
自動制御の利く電磁弁、それを制御するための制御シス
テム等が用いられる。
The figure shows the most basic configuration of the second embodiment. i! As in the embodiment, a solenoid valve that can be automatically controlled and a control system for controlling it are used for the valves and the like.

図において7はソーラ空気加熱器で、空気アキュムレー
タ6がら空気コンプレッサ・タービン5に加圧空気を送
給して空気コンプレッサ・タービン5を空気タービンと
して用いるルートに介在させである。ソーラ空気加熱器
7は太陽熱で空気コンプレッサ・タービン5に送給され
る加圧空気を加熱するので、加圧空気はそれによって付
与された熱エネルギー分だけ更に圧力を高めて空気コン
プレッサ・タービン5に入り、常温で入りた場合より空
気タービンとしての出力を増す。従りて駆動される発電
機3からの電力は相応して高まり、発電装置としての効
率が更に向上する。なお、ソー2空気加熱器7は、加圧
空気の温度を330℃以上に高め用いる場合は効率上、
集光式を用いる。
In the figure, reference numeral 7 denotes a solar air heater, which is interposed in a route that supplies pressurized air to the air compressor/turbine 5 from the air accumulator 6 and uses the air compressor/turbine 5 as an air turbine. The solar air heater 7 uses solar heat to heat the pressurized air that is sent to the air compressor/turbine 5, so that the pressure of the pressurized air is further increased by the amount of heat energy imparted thereto, and then the air is sent to the air compressor/turbine 5. The output of the air turbine increases compared to when it enters at room temperature. Therefore, the electric power from the driven generator 3 increases accordingly, and the efficiency of the power generation device is further improved. In addition, when using the saw 2 air heater 7 to raise the temperature of the pressurized air to 330°C or higher, for efficiency reasons,
Uses a condensing method.

即ち、本実施例では風のエネルギー以外に太陽エネルギ
ーも電力に変換されることになり、自然エネルギーの有
効利用が高度に果たされる。なお、ソーラ空気加熱器7
には太陽からの熱照射がソーラ空気加熱器7の熱放射な
土足わる場合だけ制御部からの指令によって熱媒が循環
し、吸熱部からの熱を蓄熱部へ貯蔵する機能が付与され
ており、曇天や夜間時でも空気アキュムレータ6がら空
気コンプレッサ・タービン5へ向う空気を加熱可能な構
成となっズいる。8,9.10は各空気止弁で、空気止
弁8は空気コンプレッサ・タービン5が空気コンプレッ
サとして働く場合に開いて吸気ボートを形成し、空気タ
ービンとして働く場合は閉じて、最も排気効率の高い他
方の破線矢印の側に排気する。空気止弁9は空気アキュ
ムレータ6へ加圧空気が貯えられる場合にのみ開き、空
気止弁10は空気アキュムレータ6がら空気コンプレッ
サ・タービン5へ加圧空気が供給されるときのみ開く。
That is, in this embodiment, not only wind energy but also solar energy is converted into electric power, and natural energy is highly utilized effectively. In addition, solar air heater 7
is provided with the function of circulating the heat medium in response to a command from the control unit and storing heat from the heat absorption part in the heat storage part only when the heat irradiation from the sun is insufficient for the heat radiation of the solar air heater 7. The configuration is such that the air flowing from the air accumulator 6 to the air compressor/turbine 5 can be heated even on cloudy days or at night. 8, 9, and 10 are air stop valves. Air stop valve 8 is opened to form an intake boat when the air compressor/turbine 5 works as an air compressor, and closed when it works as an air turbine to achieve the most exhaust efficiency. Exhaust to the side of the other dashed arrow which is higher. The air stop valve 9 opens only when pressurized air is stored in the air accumulator 6, and the air stop valve 10 opens only when pressurized air is supplied from the air accumulator 6 to the air compressor turbine 5.

以上二つの実施例について示したが、本発明はこれら実
施例に限定されるものではない。
Although two embodiments have been described above, the present invention is not limited to these embodiments.

なお、因みに、これら実施例によって得られる電力を、
理論値及びデータ等をベースに見積った例を以下に説明
する。本例は風車軸端出力300KW級の風車発電装置
の例である。説明中、空気コンプレッサ及び空気タービ
ンの用語は上記実施例の空気コンプレッサ・タービンに
相当する機器であるが、使用目的を明確にするため、目
的に応じて使い分けたものである。
Incidentally, the power obtained by these examples is
An example of estimation based on theoretical values, data, etc. will be explained below. This example is an example of a wind turbine generator with a wind turbine shaft end output of 300 kW class. In the description, the terms air compressor and air turbine refer to equipment corresponding to the air compressor/turbine in the above embodiment, but in order to clarify the purpose of use, they are used differently depending on the purpose.

風車の軸端平均出力100KWとし、1日24時間中1
8時間が空気コンプレッサ運転残り6時間が風車と空気
タービンの並列運転とすると、18時間で空気コンプレ
ッサが吐出する空気量は吐出圧力9.3 ataの場合
的19 TONである。空気タービンの作動空気圧力を
g、3 ata〜3 ataとすると空気アキュムレー
タの容積は約6400 m”必要となる。このとき空気
アキュムレータ内の空気温度は約330℃である。この
加圧空気で空気タービンを駆動すると約250〜9QK
Wの動力を6時間の運転中連続的に得ることができる。
The average output at the shaft end of the wind turbine is 100KW, and the output is 1 for 24 hours a day.
Assuming that the air compressor is operated for 8 hours and the windmill and air turbine are operated in parallel for the remaining 6 hours, the amount of air discharged by the air compressor in 18 hours is 19 TON at a discharge pressure of 9.3 ata. If the operating air pressure of the air turbine is g, 3 ata to 3 ata, the volume of the air accumulator will be approximately 6400 m''. At this time, the air temperature inside the air accumulator is approximately 330°C. Approximately 250~9QK when driving the turbine
W power can be obtained continuously during 6 hours of operation.

又この空気タービン運転時間中に風車によって直接駆動
される発電力は約9QKWであるから、この6時間での
総合発電力は約340KW〜180 KWとなる。
Also, since the power generated directly by the wind turbine during this air turbine operation time is about 9 QKW, the total power generated during these 6 hours is about 340KW to 180KW.

〔発明の効果〕〔Effect of the invention〕

本発明は上記のように構成されるので次の効果を有する
Since the present invention is configured as described above, it has the following effects.

(1)昼夜の別なく又、電力需要の繁閑に関係なく風の
エネルギーを貯蕨し、必要に応じて取出し、電力として
利用できるので効率のきわめて高い風車発電装置が得ら
れる。
(1) An extremely highly efficient wind turbine power generation device can be obtained since wind energy can be stored day and night and regardless of whether the power demand is high or low, and can be taken out and used as electric power as needed.

(2)風の有無とは無関係に所望のときに電力が得られ
るので利便性が高い。
(2) It is highly convenient because electricity can be obtained when desired regardless of the presence or absence of wind.

(3)そのときどきにおける風のエネルギーと、予め貯
えたエネルギーとの相加利用が可能なので、その地域で
は従来得られなかった高いエネルギーの電力が得られる
(3) Since it is possible to make additive use of wind energy at any given time and energy stored in advance, it is possible to obtain high-energy electricity that has not been previously available in the area.

(4)  ソーラシステムを併設して発電効率をより高
くできる。
(4) Power generation efficiency can be increased by installing a solar system.

(5)  貯麗エネルギーを併用して発電機を駆動すれ
ば、凰の強弱によって生じがちな電圧ないしはサイクル
の変動を小さくできるので良質の給電ができる。
(5) By using stored energy to drive a generator, it is possible to reduce fluctuations in voltage or cycle that tend to occur depending on the strength of the power source, allowing for a high-quality power supply.

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

第1図は本発明の第1実施例の概念的系統図、第2図は
同じく第2実施例の概念的系統図、第3図は従来例の概
念図である。 1・・・風車    2・・・増速機   3・・・発
電機4・・・反転機構付増減速機 5・・・空気コンプレッサ・タービン 6・・・空気アキュムレータ 7・・・ソーラ空気加熱器 8.9.10・・・空気止弁
FIG. 1 is a conceptual system diagram of a first embodiment of the present invention, FIG. 2 is a conceptual system diagram of the second embodiment, and FIG. 3 is a conceptual diagram of a conventional example. 1... Wind turbine 2... Speed increaser 3... Generator 4... Speed increaser/deceleration gear with reversing mechanism 5... Air compressor/turbine 6... Air accumulator 7... Solar air heater 8.9.10...Air stop valve

Claims (1)

【特許請求の範囲】[Claims] 風により回転して発電機、空気コンプレッサ・タービン
を駆動する風車と、同風車又は前記空気コンプレッサ・
タービンにより駆動される発電機と、前記発電機と前記
空気コンプレッサ・タービンとの間に設けられ風車側か
ら空気コンプレッサ・タービンを駆動する場合は増速機
として働らき、空気コンプレッサ・タービンから前記発
電機を駆動する場合は反転減速機として働らく、反転機
構付増減速機と、前記風車側から駆動される場合は、コ
ンプレッサとして働き、空気アキュムレータからの加圧
空気で駆動される場合は空気タービンとして働らく前記
空気コンプレッサ・タービンと、同空気コンプレッサ・
タービンで加圧された空気を貯え、必要に応じて、前記
空気コンプレッサ・タービンへ加圧空気を供給する空気
アキュムレータとを具えてなることを特徴とする風車発
電装置。
A windmill that rotates with the wind to drive a generator or an air compressor/turbine;
A generator driven by a turbine is provided between the generator and the air compressor/turbine, and when the air compressor/turbine is driven from the wind turbine side, it acts as a speed increaser, and the generator is installed between the generator and the air compressor/turbine. When the machine is driven, it works as a reversing speed reducer, and when it is driven from the wind turbine side, it works as a compressor, and when it is driven by pressurized air from the air accumulator, it works as an air turbine. The air compressor/turbine that works as a
A wind turbine power generation device comprising: an air accumulator that stores air pressurized by a turbine and supplies pressurized air to the air compressor/turbine as needed.
JP62270362A 1987-10-28 1987-10-28 Wind mill generator Pending JPH01116289A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP62270362A JPH01116289A (en) 1987-10-28 1987-10-28 Wind mill generator

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP62270362A JPH01116289A (en) 1987-10-28 1987-10-28 Wind mill generator

Publications (1)

Publication Number Publication Date
JPH01116289A true JPH01116289A (en) 1989-05-09

Family

ID=17485212

Family Applications (1)

Application Number Title Priority Date Filing Date
JP62270362A Pending JPH01116289A (en) 1987-10-28 1987-10-28 Wind mill generator

Country Status (1)

Country Link
JP (1) JPH01116289A (en)

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH05223054A (en) * 1992-02-07 1993-08-31 Teruhisa Kimura Power generator during no-wind period for wind prime mover
JPH074346A (en) * 1993-06-17 1995-01-10 Kyocera Corp Air energy-utilizing apparatus
JP2000199474A (en) * 1998-12-28 2000-07-18 Shigeru Sakurai Wind/hydraulic power engine
JP2002322977A (en) * 2001-04-27 2002-11-08 Nishimura Masayuki Output stabilizing system
JP2003184727A (en) * 2001-12-20 2003-07-03 Toyoichi Yosoku Device for generating electric power by difference of outside air pressure and suction inner pressure, and electric power generation and accumulation system thereof
JP2005036769A (en) * 2003-07-18 2005-02-10 Kunio Miyazaki Wind power generation device
JP2005530074A (en) * 2001-10-05 2005-10-06 エニス、ベン Method for supplying electric power generated using a wind turbine to a place far away from a power generation laying network without interruption, and an apparatus related thereto
WO2019058716A1 (en) * 2017-09-22 2019-03-28 三菱日立パワーシステムズ株式会社 Solar thermal power generation equipment

Cited By (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH05223054A (en) * 1992-02-07 1993-08-31 Teruhisa Kimura Power generator during no-wind period for wind prime mover
JPH074346A (en) * 1993-06-17 1995-01-10 Kyocera Corp Air energy-utilizing apparatus
JP2000199474A (en) * 1998-12-28 2000-07-18 Shigeru Sakurai Wind/hydraulic power engine
JP2002322977A (en) * 2001-04-27 2002-11-08 Nishimura Masayuki Output stabilizing system
JP2005530074A (en) * 2001-10-05 2005-10-06 エニス、ベン Method for supplying electric power generated using a wind turbine to a place far away from a power generation laying network without interruption, and an apparatus related thereto
JP4731812B2 (en) * 2001-10-05 2011-07-27 エム. エニス,ベン Method for supplying electric power generated using a wind turbine to a place far away from a power generation laying network without interruption, and an apparatus related thereto
JP2003184727A (en) * 2001-12-20 2003-07-03 Toyoichi Yosoku Device for generating electric power by difference of outside air pressure and suction inner pressure, and electric power generation and accumulation system thereof
JP2005036769A (en) * 2003-07-18 2005-02-10 Kunio Miyazaki Wind power generation device
WO2019058716A1 (en) * 2017-09-22 2019-03-28 三菱日立パワーシステムズ株式会社 Solar thermal power generation equipment
JPWO2019058716A1 (en) * 2017-09-22 2020-10-22 三菱パワー株式会社 Solar thermal power generation equipment
US11174843B2 (en) 2017-09-22 2021-11-16 Mitsubishi Power, Ltd. Solar thermal power generation equipment including wind turbine on the same vertically oriented shaft

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