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JP2008055450A - Operation control method for screw press - Google Patents

Operation control method for screw press Download PDF

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JP2008055450A
JP2008055450A JP2006233810A JP2006233810A JP2008055450A JP 2008055450 A JP2008055450 A JP 2008055450A JP 2006233810 A JP2006233810 A JP 2006233810A JP 2006233810 A JP2006233810 A JP 2006233810A JP 2008055450 A JP2008055450 A JP 2008055450A
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outer cylinder
stock solution
flow rate
end side
screw shaft
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JP4862562B2 (en
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Hiroichi Kawasaki
博一 河崎
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Ishigaki Co Ltd
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B30PRESSES
    • B30BPRESSES IN GENERAL
    • B30B9/00Presses specially adapted for particular purposes
    • B30B9/02Presses specially adapted for particular purposes for squeezing-out liquid from liquid-containing material, e.g. juice from fruits, oil from oil-containing material
    • B30B9/12Presses specially adapted for particular purposes for squeezing-out liquid from liquid-containing material, e.g. juice from fruits, oil from oil-containing material using pressing worms or screws co-operating with a permeable casing
    • B30B9/125Control arrangements

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Treatment Of Sludge (AREA)
  • Filtration Of Liquid (AREA)

Abstract

<P>PROBLEM TO BE SOLVED: To suppress the variation in the feeding flow rate of a treatment raw liquid small, and to perform a stable operation. <P>SOLUTION: In the operation control method for a screw press, when, with a screw shaft rotating at the inside of an outer tube extensively provided with a screen, a treatment raw liquid fed between the starting-edge side of the outer tube and the screw shaft is carried to the heel side of the outer tube, and meanwhile a filtrate is separated from the screen of the outer tube, and a cake is discharged from an exhaust port 79 on the heel side of the outer tube, the feeding flow rate Q<SB>1</SB>of the treatment raw liquid is controlled for controlling the press-in pressure P<SB>1</SB>of the treatment raw liquid fed to the starting-edge side of the outer tube. Then, the feeding flow rate Q<SB>1</SB>of the treatment raw liquid is measured, further, in the case the measured flow rate Q<SB>1</SB>of the treatment raw liquid does not fall within the range of the previously set standard flow rate Q<SB>0</SB>±δ, by controlling the rotation of the screw shaft, the feeding flow rate Q<SB>1</SB>of the treatment raw liquid is returned to the range of the standard flow rate Q<SB>0</SB>, so as to be controlled to the fixed standard. <P>COPYRIGHT: (C)2008,JPO&INPIT

Description

この発明は、スクリュープレスの運転制御方法に関し、特にスクリーンを張設した外筒の始端側とスクリュー軸との間に供給される汚泥等の処理原液の圧入圧力を一定に制御するために原液ポンプを回転制御するスクリュープレスの運転制御方法に関する。   The present invention relates to an operation control method for a screw press, and more particularly to a raw liquid pump for controlling the press-fitting pressure of a processing raw liquid such as sludge supplied between a starting end side of an outer cylinder provided with a screen and a screw shaft to be constant. The present invention relates to an operation control method for a screw press that controls the rotation of the screw press.

従来のスクリュープレスは、円筒スクリーンとその内側で回転自在なスクリュー軸とを備え、このスクリュー軸の駆動回転で凝集汚泥を搬送しながら固液分離するものであり、このスクリュープレスに汚泥等の原液を供給する原液供給ポンプと、スクリュープレスに供給される原液の圧入圧力を検出する圧力検出器が設けられている。そして、スクリュープレスの運転制御方法としては、前記圧力検出器で検出される圧入圧力が略一定になるように前記原液供給ポンプの供給流量が制御される。つまり、検出圧が増大する方向では原液供給ポンプの吐出量を減少させ、検出圧が減少する方向では原液供給ポンプの吐出量を増大させる。   A conventional screw press is provided with a cylindrical screen and a screw shaft that is rotatable inside thereof, and is separated into solid and liquid while conveying the coagulated sludge by driving rotation of the screw shaft. And a pressure detector for detecting the press-fitting pressure of the raw solution supplied to the screw press. As an operation control method of the screw press, the supply flow rate of the stock solution supply pump is controlled so that the press-fit pressure detected by the pressure detector becomes substantially constant. That is, the discharge amount of the stock solution supply pump is decreased in the direction in which the detection pressure increases, and the discharge amount of the stock solution supply pump is increased in the direction in which the detection pressure decreases.

この種のスクリュープレスの運転制御方法としては、例えば特許文献1に示されている。この特許文献1では、上記の方法に加えて、円筒スクリーンを外周側から洗浄可能な洗浄装置が設けられており、上記の原液供給ポンプに該当する汚泥供給系における供給流量が洗浄開始用設定量以下になると、洗浄制御手段により洗浄装置を作動させることで、円筒スクリーンの目詰まりをタイミング良く解消してスクリュープレスへの供給流量を早期に増大させて、処理効率を向上させるものである。
特開2004−90049号公報
As an operation control method of this type of screw press, for example, Patent Document 1 discloses. In this patent document 1, in addition to the above method, a cleaning device capable of cleaning the cylindrical screen from the outer peripheral side is provided, and the supply flow rate in the sludge supply system corresponding to the stock solution supply pump is the set amount for starting cleaning. In the following, the cleaning device is operated by the cleaning control means, so that the clogging of the cylindrical screen is resolved at a good timing, the supply flow rate to the screw press is increased early, and the processing efficiency is improved.
JP 2004-90049 A

ところで、従来のスクリュープレスの運転制御方法においては、スクリュープレスに供給される原液の圧入圧力を一定に制御するために、スクリュープレスに供給される原液の供給流量を制御すべく原液供給ポンプの供給流量を制御するものである。しかし、実際には原液の原液濃度や脱水性の変動により処理量が変動する。例えば、原液濃度が小さいときは供給流量が多くなり、原液濃度が大きいときは供給流量が少なくなる。そのために、供給流量が変動することになるという問題点があった。つまり、原液の供給流量の変動をできるだけ小さくして、原液の処理量の変動を小さく抑え、安定した原液の処理量を得るというニーズがあった。   By the way, in the conventional screw press operation control method, in order to control the press-fitting pressure of the stock solution supplied to the screw press to a constant level, the supply of the stock solution supply pump is controlled to control the supply flow rate of the stock solution supplied to the screw press. The flow rate is controlled. In practice, however, the amount of processing varies depending on the concentration of the stock solution and the dehydration. For example, the supply flow rate increases when the stock solution concentration is low, and the supply flow rate decreases when the stock solution concentration is high. Therefore, there is a problem that the supply flow rate fluctuates. In other words, there has been a need to reduce the fluctuation of the supply flow rate of the stock solution as much as possible to suppress the fluctuation of the processing amount of the stock solution and to obtain a stable processing amount of the stock solution.

上記発明が解決しようとする課題を達成するために、この発明のスクリュープレスの運転制御方法は、スクリーンを張設した外筒の内部で回転するスクリュー軸で、前記外筒の始端側と前記スクリュー軸との間に供給した処理原液を、前記外筒の後端側に搬送しながら前記外筒のスクリーンからろ液を分離して前記外筒の後端側の排出口からケーキを取出す際に、前記外筒の始端側に供給される処理原液の圧入圧力を一定に制御するために前記処理原液の供給流量を制御するスクリュープレスの運転制御方法において、
前記処理原液の供給流量を測定し、この測定された処理原液の測定流量が予め設定した基準流量の範囲から外れた場合に、前記スクリュー軸の回転数を制御することで、前記処理原液の供給流量を基準流量の範囲内に戻して一定基準に制御することを特徴とするものである。
In order to achieve the problem to be solved by the above invention, a screw press operation control method according to the present invention comprises a screw shaft that rotates inside an outer cylinder having a screen stretched thereon, and a start end side of the outer cylinder and the screw. When separating the filtrate from the screen of the outer cylinder while transporting the processing stock solution supplied between the shaft to the rear end side of the outer cylinder and taking out the cake from the outlet on the rear end side of the outer cylinder In the operation control method of the screw press for controlling the supply flow rate of the processing stock solution to control the press-fitting pressure of the processing stock solution supplied to the starting end side of the outer cylinder to be constant,
Supplying the processing stock solution by measuring the supply flow rate of the processing stock solution and controlling the number of rotations of the screw shaft when the measured flow rate of the processing stock solution deviates from a preset reference flow rate range. The flow rate is returned to the range of the reference flow rate and controlled to a constant reference.

また、この発明のスクリュープレスの運転制御方法は、前記スクリュープレスの運転制御方法において、前記外筒を始端側外筒と後端側外筒に構成すると共に、前記スクリュー軸の回転数に加えて前記始端側外筒を前記スクリュー軸の回転方向と反対方向に回転せしめ、前記処理原液の供給流量が基準流量の範囲から外れるときは、前記スクリュー軸の回転数制御に加えて前記始端側外筒の回転数も制御することが好ましい。   According to the screw press operation control method of the present invention, in the screw press operation control method, the outer cylinder is constituted by a start end side outer cylinder and a rear end side outer cylinder, and in addition to the rotational speed of the screw shaft. When the start end side outer cylinder is rotated in the direction opposite to the rotation direction of the screw shaft, and the supply flow rate of the processing stock solution is out of the range of the reference flow rate, in addition to the control of the rotation speed of the screw shaft, the start end side outer tube It is preferable to control the number of rotations.

また、この発明のスクリュープレスの運転制御方法は、前記スクリュープレスの運転制御方法において、前記処理原液を供給する際に凝集剤を添加すると共に、前記スクリュー軸の回転数の制御、又は前記スクリュー軸の回転数と前記始端側外筒の回転数の制御で前記処理原液の供給流量が基準流量の範囲に回復しないときは、前記凝集剤の添加量を増減することが好ましい。   Further, the screw press operation control method of the present invention is the screw press operation control method, wherein the flocculant is added when the processing stock solution is supplied, and the rotation speed of the screw shaft is controlled. It is preferable to increase or decrease the amount of the flocculant added when the supply flow rate of the processing stock solution does not recover to the range of the reference flow rate by controlling the rotation speed and the rotation speed of the starting end side outer cylinder.

この発明のスクリュープレスの運転制御方法は、スクリーンを張設した外筒の内部で回転するスクリュー軸で、前記外筒の始端側と前記スクリュー軸との間に供給した処理原液を、前記外筒の後端側に搬送しながら前記外筒のスクリーンからろ液を分離して前記外筒の後端側の排出口からケーキを取出す際に、前記外筒の始端側に供給される処理原液の圧入圧力を一定に制御するために前記処理原液の供給流量を制御するスクリュープレスの運転制御方法において、
前記処理原液の供給流量と濃度を測定し、この測定された処理原液の測定流量と濃度から処理原液中の固形物量を演算し、この演算された固形物量が予め設定した目標値の範囲から外れた場合に、前記スクリュー軸の回転数を制御することで、前記処理原液の固形物量の目標値の範囲内に戻して一定基準に制御することを特徴とするものである。
The operation control method of the screw press according to the present invention is a screw shaft that rotates inside an outer cylinder having a screen stretched, and the processing stock solution supplied between the start end side of the outer cylinder and the screw shaft is used as the outer cylinder. When the filtrate is separated from the screen of the outer cylinder while being transported to the rear end side and the cake is taken out from the discharge port on the rear end side of the outer cylinder, the processing stock solution supplied to the starting end side of the outer cylinder In the operation control method of the screw press for controlling the supply flow rate of the processing stock solution in order to control the press-fitting pressure constant,
Measure the supply flow rate and concentration of the processing stock solution, calculate the amount of solids in the processing stock solution from the measured flow rate and concentration of the processing stock solution, and the calculated solids amount is out of the preset target value range. In this case, the rotational speed of the screw shaft is controlled to return to the target value range of the solid content of the processing stock solution, and the control is performed to a constant standard.

また、この発明のスクリュープレスの運転制御方法は、前記スクリュープレスの運転制御方法において、前記外筒を始端側外筒と後端側外筒に構成すると共に、前記スクリュー軸の回転数に加えて前記始端側外筒を前記スクリュー軸の回転方向と反対方向に回転せしめ、前記処理原液の固形物量が目標値の範囲から外れるときは、前記スクリュー軸の回転数制御に加えて前記始端側外筒の回転数も制御することが好ましい。   According to the screw press operation control method of the present invention, in the screw press operation control method, the outer cylinder is constituted by a start end side outer cylinder and a rear end side outer cylinder, and in addition to the rotational speed of the screw shaft. When the starting end side outer cylinder is rotated in the direction opposite to the rotation direction of the screw shaft, and the amount of solids in the processing stock solution is out of the target value range, in addition to controlling the number of rotations of the screw shaft, the starting end side outer cylinder It is preferable to control the number of rotations.

また、この発明のスクリュープレスの運転制御方法は、前記スクリュープレスの運転制御方法において、前記処理原液を供給する際に凝集剤を添加すると共に、前記スクリュー軸の回転数の制御、又は前記スクリュー軸の回転数と前記始端側外筒の回転数の制御で前記処理原液の固形物量が目標値の範囲に回復しないときは、前記凝集剤の添加量を増減することが好ましい。   Further, the screw press operation control method of the present invention is the screw press operation control method, wherein the flocculant is added when the processing stock solution is supplied, and the rotation speed of the screw shaft is controlled. When the amount of solids in the processing stock solution does not recover to the target value range by controlling the number of rotations and the number of rotations of the starting end side outer cylinder, it is preferable to increase or decrease the amount of the flocculant added.

以上のごとき課題を解決するための手段から理解されるように、この発明によれば、スクリュープレスに供給される処理原液の圧入圧力を一定に制御するために前記処理原液の原液流量をパラメータとして流量制御を優先し、前記処理原液の測定流量が予め設定した基準流量の範囲から外れた場合に前記スクリュー軸の回転数を制御することで、スクリュープレスにとって最も安定した運転を行うことができる。   As can be understood from the means for solving the problems as described above, according to the present invention, in order to control the press-fitting pressure of the processing stock solution supplied to the screw press to be constant, the stock solution flow rate of the processing stock solution is used as a parameter. By giving priority to flow rate control and controlling the number of rotations of the screw shaft when the measured flow rate of the processing stock solution deviates from a preset reference flow rate range, the most stable operation for the screw press can be performed.

また、この発明によれば、スクリュープレスに供給される処理原液の圧入圧力を一定に制御するために前記処理原液の原液流量をパラメータとして流量制御を優先し、前記処理原液中の固形物量が予め設定した目標値の範囲から外れた場合に前記スクリュー軸の回転数を制御することで、スクリュープレスにとって最も安定した運転を行うことができる。   Further, according to the present invention, in order to control the press-fitting pressure of the processing stock solution supplied to the screw press to be constant, flow control is prioritized using the stock solution flow rate of the processing stock solution as a parameter, and the amount of solids in the processing stock solution is preliminarily determined. By controlling the rotational speed of the screw shaft when it is outside the set target value range, the most stable operation for the screw press can be performed.

以下、この発明の実施の形態について図面を参照して説明する。   Embodiments of the present invention will be described below with reference to the drawings.

図1を参照するに、この実施の形態に係るスクリュープレスの運転制御方法で使用されるスクリュープレス1及びその運転制御システム3について説明すると、汚泥貯留槽5に貯留されている汚泥等の処理原液は、原液ポンプ7(P1)により原液流量Q(「供給流量」ともいう)で原液供給管9を経て凝集装置11に供給される。 Referring to FIG. 1, the screw press 1 and its operation control system 3 used in the operation control method of the screw press according to this embodiment will be described. Treatment stock solution such as sludge stored in the sludge storage tank 5 Is supplied to the aggregating apparatus 11 through the stock solution supply pipe 9 at a stock solution flow rate Q 1 (also referred to as “supply flow rate”) by the stock solution pump 7 (P1).

なお、原液供給管9の途中には、処理原液の原液濃度Cを測定するための原液濃度計13(C)と、処理原液の供給流量Qを測定するための原液流量計15(F)が例えば前記原液ポンプ7側より順に設けられている。 Incidentally, in the middle of the solution feed pipe 9, a stock concentration meter 13 for measuring the stock concentration C 1 of the process concentrate (C), stock solution flow rate for measuring the supply flow rate to Q 1 processing stock meter 15 (F For example, are provided in order from the stock solution pump 7 side.

さらに、凝集装置11と原液流量計15との間の原液供給管9の途中には、ポリマー溶解槽17に貯留されている高分子凝集剤が凝集剤ポンプ19(P2)により凝集剤流量Qで供給される凝集剤供給管21が接続されている。なお、高分子凝集剤流量Qは原液流量Qに対する比例制御で行われる。 Further, in the middle of the stock solution supply pipe 9 between the flocculating device 11 and the stock solution flow meter 15, the polymer flocculant stored in the polymer dissolution tank 17 is fed to the flocculant flow rate Q 2 by the flocculant pump 19 (P2). Is connected to the flocculant supply pipe 21. Incidentally, polymer coagulant flow Q 2 is performed in a proportional control for stock flow Q 1.

また、上記の凝集装置11は、処理原液に高分子凝集剤を添加し、撹拌混合して凝集フロックを生成するものであり、撹拌槽23内に流入した処理原液と高分子凝集剤が撹拌用モータ25(M)で回転駆動される撹拌羽根27で撹拌される構成である。この凝集装置11で撹拌された処理原液は原液供給管29を経てスクリュープレス1に供給され、この原液供給管29の途中にはスクリュープレス1に供給される処理原液の圧入圧力Pを計測するための原液供給圧力計31(PS)が接続されている。 The agglomeration apparatus 11 is a device in which a polymer flocculant is added to a processing stock solution, and agitation flocs are generated by stirring and mixing. The processing stock solution and the polymer flocculant that have flowed into the agitation tank 23 are used for stirring. It is the structure stirred by the stirring blade 27 rotationally driven by the motor 25 (M). The processing stock solution stirred by the aggregating device 11 is supplied to the screw press 1 through the stock solution supply pipe 29, and the press-fitting pressure P 1 of the processing stock solution supplied to the screw press 1 is measured in the middle of the stock solution supply pipe 29. The undiluted solution supply pressure gauge 31 (PS) for this is connected.

なお、上記の原液ポンプ7、原液濃度計13、原液流量計15、凝集剤ポンプ19、撹拌用モータ25(M)、原液供給圧力計31(PS)は、それぞれ制御装置33に接続されている。   The stock solution pump 7, stock solution concentration meter 13, stock solution flow meter 15, flocculant pump 19, stirring motor 25 (M), and stock solution supply pressure gauge 31 (PS) are connected to the control device 33. .

図2を併せて参照するに、スクリュープレス1は、前後のフレーム35,37に支架されており、後述する図3の外筒スクリーン39を周部に張設した外筒41の内部に、スクリュー羽根43を巻き掛けたスクリュー軸45が配設されている。   Referring also to FIG. 2, the screw press 1 is supported by the front and rear frames 35 and 37, and the screw press 1 is screwed inside an outer cylinder 41 having an outer cylinder screen 39 shown in FIG. A screw shaft 45 around which the blades 43 are wound is disposed.

図3を併せて参照するに、円筒状の外筒41は、始端側の濃縮ゾーンの始端側外筒41Aと後端側のろ過・脱水ゾーンの後端側外筒41Bに分割されており、濃縮ゾーンの始端側外筒41Aと、ろ過・脱水ゾーンの後端側外筒41Bの間に軸受47が介装されている。   Referring also to FIG. 3, the cylindrical outer cylinder 41 is divided into a starting end side outer cylinder 41A of the starting end side concentration zone and a rear end side outer cylinder 41B of the rear end side filtration / dehydration zone, A bearing 47 is interposed between the starting end side outer cylinder 41A of the concentration zone and the rear end side outer cylinder 41B of the filtration / dehydration zone.

外筒41について図3に基づいて詳述すると、外筒41の周部に巻き付けたパンチングプレート49の内周面に外筒スクリーン39が張設されており、この実施の形態では、濃縮ゾーンの始端側外筒41Aに直径が例えば1.5mmφの微細孔の濃縮スクリーン39Aが張設されており、ろ過・脱水ゾーンの後端側外筒41Bには、後方に向って順次微細孔を小さくした直径が例えば1.5mmφ、1.0mmφ、0.5mmφの脱水スクリーン39B,39C,39Dが張設されている。なお、パンチングプレート49の周部に補強用のリブ51が環着されている。   The outer cylinder 41 will be described in detail with reference to FIG. 3. An outer cylinder screen 39 is stretched on the inner peripheral surface of a punching plate 49 wound around the outer cylinder 41. In this embodiment, the outer cylinder screen 39 A fine-pore concentrating screen 39A having a diameter of, for example, 1.5 mmφ is stretched on the start-end side outer cylinder 41A, and the fine-holes are successively made smaller toward the rear end-side outer cylinder 41B in the filtration / dehydration zone. Dehydration screens 39B, 39C, and 39D having diameters of, for example, 1.5 mmφ, 1.0 mmφ, and 0.5 mmφ are stretched. A reinforcing rib 51 is attached to the peripheral portion of the punching plate 49.

再び図2を参照するに、濃縮ゾーンの始端側外筒41Aの始端側にフランジ53が連結されており、このフランジ53がフレーム35に止着した回転板軸受55に回動自在に軸承されている。フランジ53の端面に連結したスラスト受57にスプロケット59が嵌着されており、このスプロケット59が図1に示されている正逆転のモータ61(M2)に連動連結されており、濃縮ゾーンの始端側外筒41Aを正回転、あるいは逆回転ができるようにされている。   Referring to FIG. 2 again, a flange 53 is connected to the start end side of the start end side outer cylinder 41A of the concentration zone, and this flange 53 is rotatably supported by a rotary plate bearing 55 fixed to the frame 35. Yes. A sprocket 59 is fitted on a thrust receiver 57 connected to the end face of the flange 53, and this sprocket 59 is connected to the forward / reverse motor 61 (M2) shown in FIG. The side outer cylinder 41A can be rotated forward or backward.

また、外筒41はろ過・脱水ゾーンの後端側外筒41Bの後端側に回転板63が連結されており、この回転板63がフレーム37に止着した回転板軸受65に回動自在に軸承されている。この回転板63に連結したスプロケット67が、図1に示されているモータ69(M3)に連動連結されており、外筒41に沿って配設した洗浄水管71から外筒スクリーン39に向って洗浄水を噴射する時に、ろ過・脱水ゾーンの後端側外筒41Bを濃縮ゾーンの始端側外筒41Aと一緒に回転させながら洗浄するように構成されている。   The outer cylinder 41 has a rotating plate 63 connected to the rear end side of the rear end side outer cylinder 41B of the filtration / dehydration zone, and the rotating plate 63 is freely rotatable on a rotating plate bearing 65 fixed to the frame 37. Has been supported. A sprocket 67 connected to the rotating plate 63 is interlocked to the motor 69 (M3) shown in FIG. 1 and is directed from the washing water pipe 71 disposed along the outer cylinder 41 toward the outer cylinder screen 39. When the cleaning water is jetted, the rear end side outer cylinder 41B of the filtration / dehydration zone is cleaned while being rotated together with the starting end side outer cylinder 41A of the concentration zone.

また、外筒41に内設したスクリュー軸45の始端側には、原液供給管29が連結されており、この原液供給管29の軸受部29Aが濃縮ゾーンの始端側外筒41Aに嵌着したフランジ53の内周面に軸承されている。   A stock solution supply pipe 29 is connected to the start end side of the screw shaft 45 provided in the outer cylinder 41, and the bearing portion 29A of the stock solution supply pipe 29 is fitted to the start end side outer cylinder 41A of the concentration zone. It is supported on the inner peripheral surface of the flange 53.

また、スクリュー軸45の後端部に連結した駆動軸73がフレーム37に止着した図示しないベアリングユニットに軸承されている。さらに、前記駆動軸73は図示しないスプロケットを介して図1に示されているモータ75(M1)で回転駆動されるように構成されており、スクリュー軸45が回転駆動される。   A drive shaft 73 connected to the rear end of the screw shaft 45 is supported by a bearing unit (not shown) fixed to the frame 37. Further, the drive shaft 73 is configured to be rotationally driven by a motor 75 (M1) shown in FIG. 1 through a sprocket (not shown), and the screw shaft 45 is rotationally driven.

さらに、スクリュー軸45の前端部に連結した原液供給管29には処理原液の供給路77が設けられており、この供給路77がスクリュー軸45の内部に連通し、スクリュー軸45には前記供給路77に連通する供給孔77Aが外筒41の始端部に向けて開孔されている。しかも、供給孔77Aから外筒41内に圧入される処理原液がスクリュー軸45に巻き掛けたスクリュー羽根43の間から供給するように構成されており、凝集された軟弱な汚泥等の処理原液がスクリュー羽根43の影響を受けないようにされている。   Further, the raw solution supply pipe 29 connected to the front end portion of the screw shaft 45 is provided with a processing raw solution supply passage 77, which is in communication with the inside of the screw shaft 45. A supply hole 77 </ b> A communicating with the passage 77 is opened toward the start end of the outer cylinder 41. In addition, the processing stock solution press-fitted into the outer cylinder 41 from the supply hole 77A is supplied from between the screw blades 43 wound around the screw shaft 45, and the processing stock solution such as agglomerated soft sludge is supplied. The screw blade 43 is not affected by the influence.

また、外筒41の終端側の排出口79にはプレッサー81が対設されており、このプレッサー81は移動軸83に吊設されて、プレッサー81の後端に連結したエアーシリンダ85でケーキに背圧を加えながら、排出口79の開口量を調節するように構成されている。例えば、スクリュープレス1に供給される処理原液の圧入圧力Pが基準より大きいか、又は原液流量Qが下限より少なくなった場合は、排出口79のプレッサー81の開度を大きくして調整することができる。 In addition, a presser 81 is provided at a discharge port 79 on the terminal end side of the outer cylinder 41. The presser 81 is suspended from a moving shaft 83 and is made into cake by an air cylinder 85 connected to the rear end of the presser 81. The opening amount of the discharge port 79 is adjusted while applying back pressure. For example, injection pressure P 1 of processing stock supplied to the screw press 1 is larger than the reference, or stock if the flow rate Q 1 is becomes less than the lower limit, by increasing the degree of opening of the presser 81 of the outlet 79 Adjustment can do.

また、スクリュー軸45に螺旋状に巻き掛けたスクリュー羽根43の先端部には、図示しないゴム等の弾力性を有する一連のスクレーパがスクリュー羽根43の濃縮ゾーンの始端部からろ過・脱水ゾーンの終端部にわたってボルトとナットで止着されており、このスクレーパは外筒41の内周面に弾圧的に摺接されている。このスクレーパにより、目詰りを未然に防止した濃縮ゾーンの濃縮スクリーン39Aからろ液を分離させ、濃縮ゾーンでの処理原液の供給流量Qを増加させ、濃縮汚泥を供給するろ過・脱水ゾーンの脱水スクリーン39B、39C,39Dの微細孔上のケーキ層を掻き取って、高脱水を行なうように構成されている。 Further, a series of scrapers having elasticity such as rubber (not shown) is provided at the tip of the screw blade 43 spirally wound around the screw shaft 45 from the start end of the concentration zone of the screw blade 43 to the end of the filtration / dehydration zone. The scraper is elastically slidably contacted with the inner peripheral surface of the outer cylinder 41. This scraper, to separate the concentrated screen 39A Kararo solution concentration zone which prevents clogging from occurring, increasing the supply flow rate to Q 1 treated stock in the concentration zone, the dehydration of the filtration and dewatering zone for supplying concentrated sludge The cake layers on the fine holes of the screens 39B, 39C, and 39D are scraped to perform high dehydration.

なお、スクリュー軸45に巻き掛けたスクリュー羽根43は、図2に示される実施の形態では、濃縮ゾーンの始端側外筒41Aに内設したスクリュー羽根43Aが脱水ゾーンのスクリュー羽根43Bの1/2ピッチの間隔で巻き掛けられているが、このピッチは限定されない。   In the embodiment shown in FIG. 2, the screw blade 43A wound on the screw shaft 45 is ½ of the screw blade 43B in the dehydration zone. Although it is wound at a pitch interval, this pitch is not limited.

また、上記のモータ75(M1)、モータ61(M2)、モータ69(M3)は、図1に示されているようにそれぞれ制御装置33に接続されている。   The motor 75 (M1), the motor 61 (M2), and the motor 69 (M3) are connected to the control device 33 as shown in FIG.

次に、上記構成のスクリュープレス1及びその運転制御システム3に基づいて、この実施の形態に係るスクリュープレスの運転制御方法について説明する。   Next, the operation control method of the screw press according to this embodiment will be described based on the screw press 1 configured as described above and the operation control system 3 thereof.

図1及び図4を参照するに、第1の実施の形態に係るスクリュープレスの運転制御方法は、スクリュープレス1を安定して運転するために、スクリュープレス1に供給される汚泥等の処理原液の圧入圧力Pを一定に制御することを基本としている。そこで、前記圧入圧力Pを一定に運転制御するために、前記スクリュープレス1に供給される処理原液の供給流量Q(「原液流量」ともいう)を制御すべく原液ポンプ7を回転制御するものである。しかし、前記圧入圧力Pを一定に運転制御するとしても、処理原液の原液濃度C(「汚泥濃度」ともいう)や脱水性の変動により処理量が変動する。例えば、原液濃度Cが小さいときは供給流量Qが多くなり、原液濃度Cが大きいときは供給流量Qが少なくなる。 Referring to FIGS. 1 and 4, the screw press operation control method according to the first embodiment is a processing stock solution such as sludge supplied to the screw press 1 in order to stably operate the screw press 1. It is basically to control the injection pressure P 1 constant. Therefore, in order to control the press-fitting pressure P 1 to be constant, the stock solution pump 7 is rotationally controlled to control the supply flow rate Q 1 (also referred to as “stock solution flow rate”) of the processing stock solution supplied to the screw press 1. Is. However, even if the press-fitting pressure P 1 is controlled to operate at a constant level, the processing amount varies depending on the concentration of the raw solution C 1 (also referred to as “sludge concentration”) and the dehydration. For example, when the stock concentration C 1 is small, it increases the supply flow rate Q 1, when stock concentration C 1 is large becomes small supply flow rate Q 1.

そこで、上記の供給流量Qをできる限り一定とするために、前記原液ポンプ7で供給される処理原液の原液流量Qを原液流量計15で測定し、この測定した原液流量Q(「測定流量」ともいう)が予め設定した基準流量Qから外れた場合に、スクリュープレス1のスクリュー軸45の回転を制御することで、前記供給流量Qを基準流量Qに戻して一定基準に制御することを特徴とするものである。 Therefore, in order to make the supply flow rate Q 1 as constant as possible, the stock solution flow rate Q 1 of the processing stock solution supplied by the stock solution pump 7 is measured by the stock solution flow meter 15, and the measured stock solution flow rate Q 1 (“ when referring to as a measured flow ") is out of the reference flow rate Q 0 which is set in advance, by controlling the rotation of the screw shaft 45 of the screw press 1, a constant reference back to the supply flow rate Q 1 to the reference flow rate Q 0 It is characterized by controlling to.

より詳しく説明すると、スクリュープレス1の運転が開始されると、スクリュープレス1に供給される処理原液の圧入圧力の圧力データPは、原液供給圧力計31(PS)で検知されて制御装置33に送られる。 More specifically, when the operation of the screw press 1 is started, the pressure data P 1 of the press-fitting pressure of the processing stock solution supplied to the screw press 1 is detected by the stock solution supply pressure gauge 31 (PS) and the control device 33. Sent to.

スクリュープレス1の運転中は、処理原液の原液濃度Cがアップしたり、スクリーンのろ過性(脱水性)が悪くなったりして、スクリュープレス1への負荷が増えると、処理原液の圧入圧力Pが上昇する。一方、処理原液の原液濃度Cがダウンしたり、スクリーンのろ過性(脱水性)が回復したりして、スクリュープレス1への負荷が減少すると、処理原液の圧入圧力Pが減少する。 During operation of the screw press 1, or the up-stock concentration C 1 of the process stock, screens filterability (dehydration property) is or worse, when the load on the screw press 1 increases, injection pressure of the processing stock P 1 is increased. On the other hand, or down a stock concentration C 1 is processed stock, screens filterability (dehydration property) is or recovered, when the load of the screw press 1 is reduced, injection pressure P 1 of processing stock solution decreases.

そこで、制御装置33では、原液供給圧力計31(PS)の圧力データPが予め設定した設定基準圧力Pと比較判断して、設定基準圧力Pより高い場合は、原液ポンプ7の回転速度を減らすべく原液ポンプ7に指令を与えて原液流量Qを減少させる。一方、圧力データPが設定基準圧力Pより低い場合は、原液ポンプ7の回転速度を増やすべく原液ポンプ7に指令を与えて原液流量Qを増加させる。 Therefore, the control device 33, as compared judged to set the reference pressure P 0 the pressure data P 1 of the solution feed pressure gauge 31 (PS) is set in advance, is higher than the preset reference pressure P 0, the rotation of the stock solution pump 7 It provides an instruction to the stock solution pump 7 in order to reduce the speed reducing stock flow Q 1. On the other hand, if the pressure data P 1 is lower than the set reference pressure P 0 increases the stock flow Q 1 provides an instruction to the stock solution pump 7 to increase the rotation speed of the stock pump 7.

なお、このとき、スクリュープレス1のスクリュー軸45はモータ75(M1)を駆動させることにより、単位時間あたりの回転数Nが一定で回転(回転速度が一定)しているが、モータ61(M2)、モータ69(M3)は駆動していないので、外筒41は回転していない。また、原液ポンプ7で供給される処理原液の原液濃度Cが原液濃度計13で測定されて制御装置33に送られると共に、処理原液の原液流量Qが原液流量計15で測定されて制御装置33に送られる。 At this time, the screw shaft 45 of the screw press 1 by driving the motor 75 (M1), the rotational speed N 1 per unit time is rotating at a constant (the rotational speed is constant), the motor 61 ( M2) Since the motor 69 (M3) is not driven, the outer cylinder 41 is not rotating. Further, the stock solution concentration C 1 of the processing stock solution supplied by the stock solution pump 7 is measured by the stock solution concentration meter 13 and sent to the control device 33, and the stock solution flow rate Q 1 of the processing stock solution is measured by the stock solution flow meter 15 and controlled. Sent to the device 33.

したがって、原液ポンプ7の回転を制御して原液流量Qを調整することにより、スクリュープレス1に供給される処理原液の圧入圧力Pがほぼ設定基準圧力Pに維持されることになる。 Therefore, by adjusting the stock flow Q 1 controls the rotation of the stock solution pump 7, so that the injection pressure P 1 of processing stock supplied to the screw press 1 is maintained substantially set the reference pressure P 0.

ところが、処理原液の原液濃度Cや脱水性の大幅な変動により、上記の原液流量Qと基準流量Qの差(Q−Q)が予め設定した範囲±δから外れた場合、すなわち、(原液流量Q−基準流量Q)<−δのときはスクリュープレス1のスクリュー軸45の回転数Nをα(min−1)まで段階的に増加させてケーキ搬送量を増加させることにより、原液流量Qを増加せしめて、−δ<(原液流量Q−基準流量Q)<+δに回復させることができる。 However, when the substantial fluctuations in stock concentrations C 1 and dewatering of treated stock, the difference between the stock solution flow rate Q 1, the reference flow rate Q 0 (Q 1 -Q 0) is out of the range ± [delta] set in advance, That is, when (raw solution flow rate Q 1 −reference flow rate Q 0 ) <− δ, the rotational speed N 1 of the screw shaft 45 of the screw press 1 is increased stepwise to α (min −1 ) to increase the cake conveyance amount. by and allowed increasing stock flow Q 1, - [delta <(stock flow Q 1 - reference flow rate Q 0) it can be restored to <+ [delta].

一方、(原液流量Q−基準流量Q)>+δのときはスクリュープレス1のスクリュー軸45の回転数Nをα(min−1)まで段階的に減少させてケーキ搬送量を減少させることにより、原液流量Qを減少せしめて、−δ<(原液流量Q−基準流量Q)<+δに回復させることができる。 On the other hand, when (raw solution flow rate Q 1 −reference flow rate Q 0 )> + δ, the rotational speed N 1 of the screw shaft 45 of the screw press 1 is decreased step by step to α (min −1 ) to reduce the cake conveyance amount. it makes it allowed reducing the stock solution flow rate Q 1, - [delta <(stock flow Q 1 - reference flow rate Q 0) can be restored to <+ [delta].

以上のことから、スクリュープレス1に供給される処理原液の圧入圧力Pを一定に制御するために前記処理原液の原液流量Qをパラメータとして流量制御を優先し、前記処理原液の測定流量Qが予め設定した基準流量Qの範囲±δから外れた場合に前記スクリュー軸45の回転数を制御することで、スクリュープレス1にとって最も安定した運転を行うことができる。 From the above, in order to control the press-fitting pressure P 1 of the processing stock solution supplied to the screw press 1 at a constant level, flow control is prioritized using the stock solution flow rate Q 1 of the processing stock solution as a parameter, and the measured flow rate Q of the processing stock solution By controlling the number of rotations of the screw shaft 45 when 1 is out of the preset range ± δ of the reference flow rate Q 0 , the most stable operation for the screw press 1 can be performed.

さらに、上記のスクリュー軸45の回転数Nを制御しても処理原液の−δ<(原液流量Q−基準流量Q)<+δの回復が得られないときは、ポリマー溶解槽17に貯留されている高分子凝集剤の添加量を増減することで、スクリュープレス1の処理量を制御することができる。 Further, if recovery of the processing stock solution −δ <(stock solution flow rate Q 1 −reference flow rate Q 0 ) <+ δ cannot be obtained even if the rotational speed N 1 of the screw shaft 45 is controlled, the polymer dissolution tank 17 is filled. The amount of processing of the screw press 1 can be controlled by increasing or decreasing the amount of the polymer flocculant stored.

すなわち、スクリュー軸45の回転数Nを増加しても原液流量Qが少ない場合、つまり(原液流量Q−基準流量Q)<−δのときは、原液流量Qが復帰するまで凝集剤流量Qを凝集剤ポンプ19で設定範囲内で段階的に増加させることにより、脱水状態を改善することができる。 That is, if less is stock flow Q 1 be increased rotational speed N 1 of the screw shaft 45, i.e. (stock flow Q 1 - reference flow rate Q 0) <- When δ until the stock solution flow rate Q 1 is restored by increasing stepwise within the setting range coagulant flow Q 2 flocculant pump 19, it is possible to improve the dehydration.

一方、スクリュー軸45の回転数Nを減少しても原液流量Qが多い場合、つまり(原液流量Q−基準流量Q)>+δのときは、原液流量Qが復帰するまで凝集剤流量Qを凝集剤ポンプ19で設定範囲内で段階的に減少させることにより、脱水状態を改善することができる。 On the other hand, if the stock solution flow rate Q 1 also reduces the rotational speed N 1 of the screw shaft 45 is large, i.e. (stock flow Q 1 - reference flow rate Q 0) to> + [delta] when the stock solution flow rate Q 1 is restored aggregation by stepwise reduction in the dosage rate Q 2 configuration with coagulant pump 19 range, you are possible to improve the dehydration.

上述した実施の形態では、スクリュープレス1として、外筒41が始端側外筒41Aと後端側外筒41Bとに区分けされたもので説明したが、始端側外筒41Aと後端側外筒41Bとに区分けせず、単なる回転しない外筒41としたものでも対応可能である。   In the above-described embodiment, the outer cylinder 41 is divided into the start end side outer cylinder 41A and the rear end side outer cylinder 41B as the screw press 1, but the start end side outer cylinder 41A and the rear end side outer cylinder are described. It is possible to cope with an outer cylinder 41 that does not rotate and is not divided into 41B.

図5を参照するに、上述した図4とは別の第2の実施の形態のスクリュープレスの運転制御方法について説明する。   Referring to FIG. 5, a screw press operation control method according to a second embodiment different from the above-described FIG. 4 will be described.

図4のように原液ポンプ7の回転数を制御して原液流量Qを調整することにより、スクリュープレス1に供給される処理原液の圧入圧力Pをほぼ設定基準圧力Pに維持するまでは同じである。 By adjusting the stock flow Q 1 controls the rotational speed of the stock pump 7 as in FIG. 4, until maintaining the injection pressure P 1 of processing stock supplied to the screw press 1 substantially set a reference pressure P 0 Are the same.

なお、このとき、スクリュープレス1のスクリュー軸45はモータ75(M1)を駆動させることにより、単位時間あたりの回転数Nが一定で回転(回転速度が一定)しており、始端側外筒41Aはモータ61(M2)を駆動させることにより、スクリュー軸45の回転方向と反対方向に単位時間あたりの回転数Nが一定で回転(回転速度が一定)している。後端側外筒41Bはモータ69(M3)を駆動させず、回転していない。なお、始端側外筒41Aがスクリュー軸45の回転方向と反対方向に回転することで、濃縮スクリーン39Aによる濃縮ゾーンでの汚泥充填率が向上するので、前述した図4の場合と比べて、脱水処理速度がより一層向上することになる。また、後端側外筒41Bは脱水処理中に回転せず、脱水処理後に脱水スクリーン39B、39C,39Dを洗浄するときに回転される。 At this time, the screw shaft 45 of the screw press 1 by driving the motor 75 (M1), the rotational speed N 1 per unit time is rotating at a constant (the rotational speed is constant), the starting side outer tube 41A by driving the motor 61 (M2), the rotational speed N 2 per unit time in the direction opposite to the rotational direction of the screw shaft 45 is rotated (rotational speed is constant) are constant. The rear end side outer cylinder 41B does not drive the motor 69 (M3) and does not rotate. Since the start end side outer cylinder 41A rotates in the direction opposite to the rotation direction of the screw shaft 45, the sludge filling rate in the concentration zone by the concentration screen 39A is improved. The processing speed is further improved. Further, the rear end side outer cylinder 41B does not rotate during the dehydration process, but rotates when the dehydration screens 39B, 39C, 39D are cleaned after the dehydration process.

ところが、処理原液の原液濃度や脱水性の大幅な変動により、(原液流量Q1−基準流量Q0)<−δのときはスクリュープレス1のスクリュー軸45の回転数Nをα(min−1)まで段階的に増加させると共に、始端側外筒41Aの回転数Nをα(min−1)まで段階的に増加させることにより、ケーキ搬送量を増加させることで原液流量Q1を増加せしめて、−δ<(原液流量Q−基準流量Q)<+δに回復させることができる。 However, the stock concentration and dehydration of the significant variation in processing stock solution (stock solution flow Q1- reference flow rate Q0) <- When the δ rotational speed N 1 of the screw shaft 45 of the screw press 1 alpha (min -1) And gradually increasing the rotational speed N 2 of the starting end side outer cylinder 41A to α 2 (min −1 ) to increase the cake transport amount to increase the stock solution flow rate Q1. , −δ <(stock solution flow rate Q 1 −reference flow rate Q 0 ) <+ δ.

したがって、スクリュー軸45の回転数Nを増加させることに加えて、始端側外筒41Aの回転数Nも増加させることで、前述した図4の場合より、脱水処理の制御に対する応答速度及び応答範囲がより一層向上する。 Therefore, in addition to increasing the rotational speed N 1 of the screw shaft 45, the rotational speed N 2 of the starting side outer cylinder 41A also be increased, compared with the case of FIG. 4 mentioned above, the response speed and for controlling the dewatering process The response range is further improved.

一方、(原液流量Q−基準流量Q)>+δとのときはスクリュープレス1のスクリュー軸45の回転数Nをα(min−1)まで段階的に減少させると共に、始端側外筒41Aの回転数Nをα(min−1)まで段階的に減少させることにより、ケーキ搬送量を減少させることで原液流量Qを減少せしめて、−δ<(原液流量Q−基準流量Q)<+δに回復させることができる。 On the other hand, when (raw solution flow rate Q 1 −reference flow rate Q 0 )> + δ, the rotational speed N 1 of the screw shaft 45 of the screw press 1 is decreased step by step to α (min −1 ), and the starting end side outer cylinder By reducing the rotational speed N 2 of 41A stepwise to α 2 (min −1 ), the cake flow rate Q 1 is reduced by reducing the cake transport amount, and −δ <(stock solution flow rate Q 1 −reference) The flow rate can be recovered to Q 0 ) <+ δ.

したがって、スクリュー軸45の回転数Nを減少させることに加えて、始端側外筒41Aの回転数Nも減少させることで、前述した図4の場合より、脱水処理の制御に対する応答速度及び応答範囲がより一層向上する。 Thus, in addition to reducing the rotational speed N 1 of the screw shaft 45, the rotational speed N 2 of the starting side outer cylinder 41A also to reduce, compared to the case of FIG. 4 mentioned above, the response speed and for controlling the dewatering process The response range is further improved.

例えば、外筒41の直径がφ700mmのとき、スクリュー軸45の回転数Nが例えば0.5(min−1当たり)で、始端側外筒41Aの回転数Nが例えば0.08(min−1当たり)であるとき、αを例えば0.05(min−1)であり、αを例えば0.01(min−1)である。αは回転数Nに対して10%程度の数値であり、αは回転数Nに対して10%程度の数値である。このとき、基準流量Qが例えば17(m/hr)であるのに対して範囲±δは例えば±1(m/hr)となる。つまり、±δは基準流量Qに対して5%程度の範囲となる。 For example, when the diameter of the outer cylinder 41 is φ700 mm, the rotational speed N 1 of the screw shaft 45 is, for example, 0.5 (per min −1 ), and the rotational speed N 2 of the starting end side outer cylinder 41A is, for example, 0.08 (min. when -1 per) are the alpha example 0.05 (min -1), which is an alpha 2 eg 0.01 (min -1). α is a numerical value of about 10% with respect to the rotational speed N 1 , and α 2 is a numerical value of about 10% with respect to the rotational speed N 2 . At this time, the reference flow rate Q 0 is, for example, 17 (m 3 / hr), whereas the range ± δ is, for example, ± 1 (m 3 / hr). That, ± [delta] is in the range of about 5% relative to the reference flow rate Q 0.

さらに、上記のスクリュー軸45の回転数N及び始端側外筒41Aの回転数Nを制御しても処理原液の−δ<(原液流量Q−基準流量Q)<+δの回復が得られないときは、ポリマー溶解槽17に貯留されている高分子凝集剤の添加量を増減することで、スクリュープレス1の処理量を制御することができる。 Furthermore, - [delta control to be processed stock the rotational speed N 1 and the rotational speed N 2 of the starting side outer cylinder 41A of the screw shaft 45 <- a (stock solution flow rate Q 1 reference flow rate Q 0) <+ [delta] recovery When it cannot be obtained, the processing amount of the screw press 1 can be controlled by increasing or decreasing the amount of the polymer flocculant stored in the polymer dissolution tank 17.

すなわち、スクリュー軸45の回転数N及び始端側外筒41Aの回転数Nを増加しても原液流量Qが少ない場合、つまり(原液流量Q−基準流量Q)<−δのときは、原液流量Qが復帰するまで凝集剤流量Qを凝集剤ポンプ19で段階的に増加させることにより、脱水状態を改善することができる。 That is, if less is stock flow Q 1 be increased rotational speed N 2 of the rotational speed N 1 and the starting end side outer cylinder 41A of the screw shaft 45, i.e. (stock flow Q 1 - reference flow rate Q 0) <- δ of time, by increasing stepwise flocculant pump 19 a coagulant flow Q 2 to stock flow rate Q 1 is restored, it is possible to improve the dehydration.

一方、スクリュー軸45の回転数N及び始端側外筒41Aの回転数Nを減少しても原液流量Qが多い場合、つまり(原液流量Q−基準流量Q)>+δのときは、原液流量Qが復帰するまで凝集剤流量Qを凝集剤ポンプ19で段階的に減少させることにより、脱水状態を改善することができる。 On the other hand, if even reduce the rotational speed N 2 of the rotational speed N 1 and the starting end side outer cylinder 41A of the screw shaft 45 stock flow Q 1 is large, that is (stock flow Q 1 - reference flow rate Q 0)> + δ when is by stepwise reduction in coagulant pump 19 a coagulant flow Q 2 to stock flow rate Q 1 is restored, it is possible to improve the dehydration.

次に、他の実施の形態のスクリュープレスの運転制御方法について図面を参照して説明する。   Next, the operation control method of the screw press of other embodiment is demonstrated with reference to drawings.

図6を参照するに、第3の実施の形態のスクリュープレスの運転制御方法は、前述した図4の第1の実施の形態のスクリュープレスの運転制御方法のように、原液ポンプ7の回転を制御して原液流量Qを調整することにより、スクリュープレス1に供給される処理原液の圧入圧力Pをほぼ設定基準圧力Pに維持するまでは同じである。 Referring to FIG. 6, the screw press operation control method of the third embodiment is the same as the screw press operation control method of the first embodiment shown in FIG. This is the same until the press-fitting pressure P 1 of the processing stock solution supplied to the screw press 1 is substantially maintained at the set reference pressure P 0 by controlling and adjusting the stock solution flow rate Q 1 .

なお、このとき、スクリュープレス1のスクリュー軸45はモータ75(M1)を駆動させることにより、単位時間あたりの回転数Nが一定で回転(回転速度が一定)しているが、モータ61(M2)、モータ69(M3)は駆動していないので、外筒41は回転していない。また、原液ポンプ7で供給される処理原液の原液濃度Cが原液濃度計13で測定されて制御装置33に送られると共に、処理原液の原液流量Qが原液流量計15で測定されて制御装置33に送られる。また、前記原液流量計15で測定した処理原液の原液流量Qと原液濃度計13で測定した原液濃度Cから、処理原液中の固形物量S(kg/hr)が〔原液流量(l/hr)×原液濃度(kg/l)〕で演算される。 At this time, the screw shaft 45 of the screw press 1 by driving the motor 75 (M1), the rotational speed N 1 per unit time is rotating at a constant (the rotational speed is constant), the motor 61 ( M2) Since the motor 69 (M3) is not driven, the outer cylinder 41 is not rotating. Further, the stock solution concentration C 1 of the processing stock solution supplied by the stock solution pump 7 is measured by the stock solution concentration meter 13 and sent to the control device 33, and the stock solution flow rate Q 1 of the processing stock solution is measured by the stock solution flow meter 15 and controlled. Sent to the device 33. Further, from the undiluted solution flow rate Q 1 measured with the undiluted solution flow meter 15 and the undiluted solution concentration C 1 measured with the undiluted solution concentration meter 13, the amount of solid matter S 1 (kg / hr) in the treated undiluted solution is determined as follows: / hr) × stock solution concentration (kg / l)].

ところが、処理原液の原液濃度Cや脱水性の大幅な変動により、上記の演算された固形物量Sが予め設定した目標値Sの範囲から外れた場合、すなわち、(固形物量S−目標値S)<基準値−δのときはスクリュープレス1のスクリュー軸45の回転数Nをα(rpm)まで段階的に増加させてケーキ搬送量を増加させることにより、処理される固形物量Sを目標値Sより大きく回復させることができる。 However, when the calculated solid amount S 1 deviates from the preset target value S 0 due to a large variation in the concentration C 1 of the processing stock solution and the dehydration property, that is, (solid amount S 1 − When the target value S 0 ) <reference value−δ S , the number of rotations N 1 of the screw shaft 45 of the screw press 1 is increased stepwise to α (rpm) to increase the cake conveyance amount. The solid amount S 1 can be recovered to be larger than the target value S 0 .

一方、(固形物量S−目標値S)>基準値δであるときは、スクリュー軸45の回転数Nをα(min−1)まで段階的に減少させてケーキ搬送量を減少させることにより、(固形物量S−目標値S)<基準値δに回復させることができる。なお、前記基準値δは目標値Sの許容範囲ということになる。 On the other hand, when (solid amount S 1 -target value S 0 )> reference value δ S , the rotational speed N 1 of the screw shaft 45 is decreased step by step to α (min −1 ) to reduce the cake conveyance amount. by, - it can be restored to (solid amount S 1 target value S 0) <reference value [delta] S. Note that the reference value δ S is an allowable range of the target value S 0 .

以上のことから、スクリュープレス1に供給される処理原液の圧入圧力Pを一定に制御するために前記処理原液の原液流量Qをパラメータとして流量制御を優先し、前記処理原液中の固形物量Sが予め設定した目標値Sの範囲(基準値δ)から外れた場合に前記スクリュー軸45の回転数を制御することで、スクリュープレス1にとって最も安定した運転を行うことができる。 From the above, in order to control the press-fitting pressure P 1 of the processing stock solution supplied to the screw press 1 at a constant level, flow control is prioritized using the stock solution flow rate Q 1 of the processing stock solution as a parameter, and the amount of solids in the processing stock solution by S 1 is to control the rotational speed of the screw shaft 45 when outside the range of the target value S 0 which is set in advance (reference value [delta] S), it is possible to perform the most stable operation for the screw press 1.

さらに、上記のスクリュー軸45の回転数Nを制御しても前記処理原液の固形物量Sの回復が得られないときは、ポリマー溶解槽17に貯留されている高分子凝集剤の添加量を増減することで、スクリュープレス1の処理量を増加することができる。 Further, if the solid amount S 1 of the processing stock solution cannot be recovered even if the rotational speed N 1 of the screw shaft 45 is controlled, the amount of the polymer flocculant stored in the polymer dissolution tank 17 is added. The amount of processing of the screw press 1 can be increased by increasing or decreasing.

すなわち、スクリュー軸45の回転数Nを増加しても(固形物量S−目標値S)<基準値−δのときは、固形物量Sが復帰するまで凝集剤流量Qを凝集剤ポンプ19で設定範囲内で段階的に増加させることにより、脱水状態を改善することができる。 That is, even if the rotational speed N 1 of the screw shaft 45 is increased (solid amount S 1 −target value S 0 ) <reference value−δ S , the flocculant flow rate Q 2 is maintained until the solid amount S 1 is restored. By increasing the concentration of the flocculant pump 19 stepwise within a set range, the dehydration state can be improved.

一方、(固形物量S−目標値S)>基準値δのときは、(固形物量S−目標値S)<基準値δに復帰するまで凝集剤流量Qを凝集剤ポンプ19で設定範囲内で段階的に減少させることにより、脱水状態を改善することができる。 On the other hand, when (solid matter amount S 1 -target value S 0 )> reference value δ S , the flocculant flow rate Q 2 is set until the amount returns to (solid matter amount S 1 -target value S 0 ) <reference value δ S. The dehydrating state can be improved by reducing the pump 19 stepwise within a set range.

上述した実施の形態では、スクリュープレス1として、外筒41が始端側外筒41Aと後端側外筒41Bとに区分けされたもので説明したが、始端側外筒41Aと後端側外筒41Bとに区分けせず、単なる回転しない外筒41としたものでも対応可能である。   In the above-described embodiment, the outer cylinder 41 is divided into the start end side outer cylinder 41A and the rear end side outer cylinder 41B as the screw press 1, but the start end side outer cylinder 41A and the rear end side outer cylinder are described. It is possible to cope with an outer cylinder 41 that does not rotate and is not divided into 41B.

図7を参照するに、上述した図6とは別の第4の実施の形態のスクリュープレスの運転制御方法について説明する。   Referring to FIG. 7, a screw press operation control method according to a fourth embodiment different from the above-described FIG. 6 will be described.

図6のように原液ポンプ7の回転数を制御して原液流量Qを調整することにより、スクリュープレス1に供給される処理原液の圧入圧力Pをほぼ設定基準圧力Pに維持するまでは同じである。 By adjusting the stock flow Q 1 controls the rotational speed of the stock pump 7 as in FIG. 6, until maintaining the injection pressure P 1 of processing stock supplied to the screw press 1 substantially set a reference pressure P 0 Are the same.

なお、このとき、スクリュープレス1のスクリュー軸45はモータ75(M1)を駆動させることにより、単位時間あたりの回転数Nが一定で回転(回転速度が一定)しており、始端側外筒41Aはスクリュー軸45の回転方向と反対方向に単位時間あたりの回転数Nが一定で回転(回転速度が一定)している。後端側外筒41Bはモータ63(M3)を駆動せず、回転していない。なお、始端側外筒41Aがスクリュー軸45の回転方向と反対方向に回転することで、前述した図4の場合と比べて、脱水処理速度がより一層向上することになる。また、後端側外筒41Bは脱水処理中に回転せず、脱水処理後に洗浄水管71から洗浄水を噴射して脱水スクリーン39B、39C,39Dを洗浄するときに回転される。 At this time, the screw shaft 45 of the screw press 1 by driving the motor 75 (M1), the rotational speed N 1 per unit time is rotating at a constant (the rotational speed is constant), the starting side outer tube 41A is the rotational speed N 2 per unit time in the direction opposite to the rotational direction of the screw shaft 45 is rotating at a constant (constant rotational speed). The rear end side outer cylinder 41B does not drive the motor 63 (M3) and is not rotating. In addition, when the start end side outer cylinder 41A rotates in the direction opposite to the rotation direction of the screw shaft 45, the dehydration processing speed is further improved as compared with the case of FIG. 4 described above. The rear end side outer cylinder 41B does not rotate during the dehydration process, but rotates when the dehydration screens 39B, 39C, and 39D are washed by spraying the washing water from the washing water pipe 71 after the dehydration process.

ところが、処理原液の原液濃度や脱水性の大幅な変動により、上記の演算した固形物量Sが予め設定した目標値Sの範囲から外れた場合、すなわち、(固形物量S−目標値S)<基準値−δのときはスクリュープレス1のスクリュー軸45の回転数Nをα(min−1)まで段階的に増加させると共に、始端側外筒41Aの回転数Nをα(min−1)まで段階的に増加させることにより、ケーキ搬送量を増加させることで、処理される固形物量Sを目標値Sより大きく回復させることができる。 However, when the calculated solid amount S 1 deviates from the preset target value S 0 due to a large change in the concentration of the processing stock solution and the dehydration property, that is, (solid amount S 1 -target value S). 0) <together when the reference value - [delta S increases the rotational speed N 1 of the screw shaft 45 of the screw press 1 alpha (min -1) stepwise to the rotational speed N 2 of the starting side outer cylinder 41A alpha By increasing the cake conveyance amount by increasing stepwise to 2 (min −1 ), the amount of solid matter S 1 to be processed can be recovered to be larger than the target value S 0 .

したがって、スクリュー軸45の回転数Nを増加させることに加えて、始端側外筒41Aの回転数Nも増加させることで、前述した図6の場合より、脱水処理の制御に対する応答速度及び応答範囲がより一層向上する。 Therefore, in addition to increasing the rotational speed N 1 of the screw shaft 45, the rotational speed N 2 of the starting side outer cylinder 41A also be increased, compared to the case of FIG. 6 described above, the response speed and for controlling the dewatering process The response range is further improved.

一方、(固形物量S−目標値S)<基準値δであるときは、そのままスクリュー軸45の回転数N及び始端側外筒41Aの回転数Nを変動しない。 On the other hand, (solid amount S 1 - target value S 0) <When the reference value [delta] S is not directly change the rotational speed N 1 and the rotational speed N 2 of the starting side outer cylinder 41A of the screw shaft 45.

また、上記のタイマー測定値が予め設定したタイマー設定値より長くても、(固形物量S−目標値S)>基準値δであるときは、スクリュー軸45の回転数Nをα(min−1)まで段階的に減少させると共に、始端側外筒41Aの回転数Nをα(min−1)まで段階的に減少させることにより、ケーキ搬送量を減少させることで、(固形物量S−目標値S)<基準値δに回復させることができる。なお、前記基準値δは目標値Sの許容範囲ということになる。 Even if the timer measurement value is longer than the preset timer setting value, if (solid matter amount S 1 -target value S 0 )> reference value δ S , the rotational speed N 1 of the screw shaft 45 is expressed as α By decreasing stepwise to (min −1 ) and decreasing the rotational speed N 2 of the starting end side outer cylinder 41A to α 2 (min −1 ) stepwise, the cake transport amount is reduced ( solid content S 1 - target value S 0) <it can be restored to the reference value [delta] S. Note that the reference value δ S is an allowable range of the target value S 0 .

したがって、スクリュー軸45の回転数Nを減少させることに加えて、始端側外筒41Aの回転数Nも減少させることで、前述した図6の場合より、脱水処理の制御に対する応答速度及び応答範囲がより一層向上する。 Thus, in addition to reducing the rotational speed N 1 of the screw shaft 45, the rotational speed N 2 of the starting side outer cylinder 41A also to reduce, compared to the case of FIG. 6 described above, the response speed and for controlling the dewatering process The response range is further improved.

例えば、外筒41の直径がφ700mmのとき、スクリュー軸45の回転数Nが例えば0.5(min−1当たり)で、始端側外筒41Aの回転数Nが例えば0.08(min−1当たり)であるとき、αを例えば0.05(min−1)であり、αを例えば0.01(min−1)である。αは回転数Nに対して10%程度の数値であり、αは回転数Nに対して10%程度の数値である。このとき、基準値δは目標値Sに対して5%程度の範囲となる。 For example, when the diameter of the outer cylinder 41 is φ700 mm, the rotational speed N 1 of the screw shaft 45 is, for example, 0.5 (per min −1 ), and the rotational speed N 2 of the starting end side outer cylinder 41A is, for example, 0.08 (min. when -1 per) are the alpha example 0.05 (min -1), which is an alpha 2 eg 0.01 (min -1). α is a numerical value of about 10% with respect to the rotational speed N 1 , and α 2 is a numerical value of about 10% with respect to the rotational speed N 2 . At this time, the reference value δ S is in a range of about 5% with respect to the target value S 0 .

さらに、上記のスクリュー軸45の回転数N及び始端側外筒41Aの回転数Nを制御しても前記処理原液の固形物量Sの回復が得られないときは、ポリマー溶解槽17に貯留されている高分子凝集剤の添加量を増減することで、スクリュープレス1の処理量を増加することができる。 Further, when the recovery rotational speed N 1 and the starting end side outer tube 41A rpm N 2 solid content S 1 of the process concentrate be controlled in the above-mentioned screw shaft 45 is not obtained, the polymer dissolution tank 17 By increasing / decreasing the amount of the polymer flocculant stored, the throughput of the screw press 1 can be increased.

すなわち、スクリュー軸45の回転数N及び始端側外筒41Aの回転数Nを増加しても(固形物量S−目標値S)<基準値−δのときは、固形物量Sが復帰するまで凝集剤流量Qを凝集剤ポンプ19で設定範囲内で段階的に増加させることにより、脱水状態を改善することができる。 That is, even if increasing the number of revolutions N 2 of the rotational speed N 1 and the starting end side outer cylinder 41A of the screw shaft 45 - when the (solid content S 1 target value S 0) <reference value - [delta S is solid amount S by increasing stepwise within the setting range coagulant flow Q 2 flocculant pump 19 until 1 returns, it is possible to improve the dehydration.

一方、(固形物量S−目標値S)>基準値δのときは、(固形物量S−目標値S)<基準値δに復帰するまで凝集剤流量Qを凝集剤ポンプ19で設定範囲内で段階的に減少させることにより、脱水状態を改善することができる。 On the other hand, when (solid matter amount S 1 -target value S 0 )> reference value δ S , the flocculant flow rate Q 2 is set until the amount returns to (solid matter amount S 1 -target value S 0 ) <reference value δ S. The dehydrating state can be improved by reducing the pump 19 stepwise within a set range.

この発明の実施の形態のスクリュープレスの運転制御システムを示す概略的な状態説明図である。BRIEF DESCRIPTION OF THE DRAWINGS It is a schematic state explanatory drawing which shows the operation control system of the screw press of embodiment of this invention. この発明の実施の形態に係るスクリュープレスの要部縦断面図である。It is a principal part longitudinal cross-sectional view of the screw press which concerns on embodiment of this invention. この発明の実施の形態に係るスクリーンを張設した外筒の縦断面図である。It is a longitudinal cross-sectional view of the outer cylinder which extended the screen which concerns on embodiment of this invention. この発明の第1の実施の形態のスクリュープレスの運転制御方法のフローチャートである。It is a flowchart of the operation control method of the screw press of 1st Embodiment of this invention. この発明の第2の実施の形態のスクリュープレスの運転制御方法のフローチャートである。It is a flowchart of the operation control method of the screw press of 2nd Embodiment of this invention. この発明の第3の実施の形態のスクリュープレスの運転制御方法のフローチャートである。It is a flowchart of the operation control method of the screw press of the 3rd Embodiment of this invention. この発明の第4の実施の形態のスクリュープレスの運転制御方法のフローチャートである。It is a flowchart of the operation control method of the screw press of 4th Embodiment of this invention.

符号の説明Explanation of symbols

1 スクリュープレス
3 スクリュープレスの運転制御システム
5 汚泥貯留槽
7 原液ポンプ(P1)
9 原液供給管
11 凝集装置
13 原液濃度計
15 原液流量計
17 ポリマー溶解槽
19 凝集剤ポンプ(P2)
21 凝集剤供給管
25 撹拌用モータ(M)
29 原液供給管
31 原液供給圧力計(PS)
33 制御装置
39 外筒スクリーン
39A 濃縮スクリーン
39B、39C,39D 脱水スクリーン
41 外筒
41A 始端側外筒
41B 後端側外筒
43 スクリュー羽根
45 スクリュー軸
61 モータ(M2)
73 駆動軸
75 モータ(M1)
77 供給路
77A 供給孔
79 排出口
81 プレッサー
原液流量
基準流量
δ 基準流量Qの範囲
凝集剤流量
圧力データ
原液濃度
設定基準圧力
回転数
回転数
固形物量
目標値(固形物量の)
δ 基準値(目標値Sの範囲)
DESCRIPTION OF SYMBOLS 1 Screw press 3 Operation control system of screw press 5 Sludge storage tank 7 Stock solution pump (P1)
9 Stock solution supply pipe 11 Coagulation device 13 Stock solution concentration meter 15 Stock solution flow meter 17 Polymer dissolution tank 19 Coagulant pump (P2)
21 Flocculant supply pipe 25 Stirring motor (M)
29 Stock solution supply pipe 31 Stock solution supply pressure gauge (PS)
33 Control device 39 Outer cylinder screen 39A Concentration screen 39B, 39C, 39D Dehydration screen 41 Outer cylinder 41A Start end side outer cylinder 41B Rear end side outer cylinder 43 Screw blade 45 Screw shaft 61 Motor (M2)
73 Drive shaft 75 Motor (M1)
77 supply passage 77A supply hole 79 outlet 81 repressor Q 1 stock solution flow rate Q 0 reference flow rate range of δ reference flow Q 0 Q 2 coagulant flow P 1 pressure data C 1 stock concentration P 0 set reference pressure N 1 rpm N 2 Rotation speed S 1 Solid amount S 0 Target value (of solid amount)
δ S reference value (range of target value S 0 )

Claims (6)

スクリーンを張設した外筒の内部で回転するスクリュー軸で、前記外筒の始端側と前記スクリュー軸との間に供給した処理原液を、前記外筒の後端側に搬送しながら前記外筒のスクリーンからろ液を分離して前記外筒の後端側の排出口からケーキを取出す際に、前記外筒の始端側に供給される処理原液の圧入圧力を一定に制御するために前記処理原液の供給流量を制御するスクリュープレスの運転制御方法において、
前記処理原液の供給流量を測定し、この測定された処理原液の測定流量が予め設定した基準流量の範囲から外れた場合に、前記スクリュー軸の回転数を制御することで、前記処理原液の供給流量を基準流量の範囲内に戻して一定基準に制御することを特徴とするスクリュープレスの運転制御方法。
A screw shaft that rotates inside an outer cylinder with a screen stretched, while the processing stock solution supplied between the start end side of the outer cylinder and the screw shaft is conveyed to the rear end side of the outer cylinder while the outer cylinder When the filtrate is separated from the screen of the outer cylinder and the cake is taken out from the outlet on the rear end side of the outer cylinder, the processing is performed in order to control the press-fitting pressure of the processing stock solution supplied to the starting end side of the outer cylinder to be constant. In the operation control method of the screw press that controls the supply flow rate of the stock solution,
Supplying the processing stock solution by measuring the supply flow rate of the processing stock solution and controlling the number of rotations of the screw shaft when the measured flow rate of the processing stock solution deviates from a preset reference flow rate range. An operation control method for a screw press, wherein the flow rate is returned to within a range of a reference flow rate and controlled to a constant reference.
前記外筒を始端側外筒と後端側外筒に構成すると共に、前記スクリュー軸の回転数に加えて前記始端側外筒を前記スクリュー軸の回転方向と反対方向に回転せしめ、前記処理原液の供給流量が基準流量の範囲から外れるときは、前記スクリュー軸の回転数制御に加えて前記始端側外筒の回転数も制御することを特徴とする請求項1記載のスクリュープレスの運転制御方法。   The outer cylinder is configured as a starting end side outer cylinder and a rear end side outer cylinder, and in addition to the rotational speed of the screw shaft, the starting end side outer cylinder is rotated in a direction opposite to the rotating direction of the screw shaft, and the processing stock solution 2. The operation control method for a screw press according to claim 1, wherein when the supply flow rate is out of a reference flow rate range, the rotational speed of the outer cylinder is controlled in addition to the rotational speed control of the screw shaft. . 前記処理原液を供給する際に凝集剤を添加すると共に、前記スクリュー軸の回転数の制御、又は前記スクリュー軸の回転数と前記始端側外筒の回転数の制御で前記処理原液の供給流量が基準流量の範囲に回復しないときは、前記凝集剤の添加量を増減することを特徴とする請求項1又は2記載のスクリュープレスの運転制御方法。   A flocculant is added when supplying the processing stock solution, and the supply flow rate of the processing stock solution is controlled by controlling the rotational speed of the screw shaft, or by controlling the rotational speed of the screw shaft and the rotational speed of the starting end side outer cylinder. The screw press operation control method according to claim 1 or 2, wherein the amount of the flocculant added is increased or decreased when it does not recover to the reference flow rate range. スクリーンを張設した外筒の内部で回転するスクリュー軸で、前記外筒の始端側と前記スクリュー軸との間に供給した処理原液を、前記外筒の後端側に搬送しながら前記外筒のスクリーンからろ液を分離して前記外筒の後端側の排出口からケーキを取出す際に、前記外筒の始端側に供給される処理原液の圧入圧力を一定に制御するために前記処理原液の供給流量を制御するスクリュープレスの運転制御方法において、
前記処理原液の供給流量と濃度を測定し、この測定された処理原液の測定流量と濃度から処理原液中の固形物量を演算し、この演算された固形物量が予め設定した目標値の範囲から外れた場合に、前記スクリュー軸の回転数を制御することで、前記処理原液の固形物量の目標値の範囲内に戻して一定基準に制御することを特徴とするスクリュープレスの運転制御方法。
A screw shaft that rotates inside an outer cylinder with a screen stretched, while the processing stock solution supplied between the start end side of the outer cylinder and the screw shaft is conveyed to the rear end side of the outer cylinder while the outer cylinder When the filtrate is separated from the screen of the outer cylinder and the cake is taken out from the outlet on the rear end side of the outer cylinder, the processing is performed in order to control the press-fitting pressure of the processing stock solution supplied to the starting end side of the outer cylinder to be constant. In the operation control method of the screw press that controls the supply flow rate of the stock solution,
Measure the supply flow rate and concentration of the processing stock solution, calculate the amount of solids in the processing stock solution from the measured flow rate and concentration of the processing stock solution, and the calculated solids amount is out of the preset target value range. In this case, by controlling the number of rotations of the screw shaft, the screw press operation control method is controlled so as to return to within the target value range of the solid content of the processing stock solution.
前記外筒を始端側外筒と後端側外筒に構成すると共に、前記スクリュー軸の回転数に加えて前記始端側外筒を前記スクリュー軸の回転方向と反対方向に回転せしめ、前記処理原液の固形物量が目標値の範囲から外れるときは、前記スクリュー軸の回転数制御に加えて前記始端側外筒の回転数も制御することを特徴とする請求項4記載のスクリュープレスの運転制御方法。   The outer cylinder is configured as a starting end side outer cylinder and a rear end side outer cylinder, and in addition to the rotational speed of the screw shaft, the starting end side outer cylinder is rotated in a direction opposite to the rotating direction of the screw shaft, and the processing stock solution 5. The operation control method for a screw press according to claim 4, wherein when the amount of the solid matter deviates from the range of the target value, the rotation speed of the outer cylinder on the start end side is controlled in addition to the rotation speed control of the screw shaft. . 前記処理原液を供給する際に凝集剤を添加すると共に、前記スクリュー軸の回転数の制御、又は前記スクリュー軸の回転数と前記始端側外筒の回転数の制御で前記処理原液の固形物量が目標値の範囲に回復しないときは、前記凝集剤の添加量を増減することを特徴とする請求項4又は5記載のスクリュープレスの運転制御方法。

The flocculant is added when supplying the processing stock solution, and the amount of solids in the processing stock solution is controlled by controlling the rotational speed of the screw shaft, or by controlling the rotational speed of the screw shaft and the rotational speed of the starting end side outer cylinder. 6. The operation control method for a screw press according to claim 4, wherein the amount of the flocculant added is increased or decreased when the target value does not recover.

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