JP4857906B2 - Manufacturing method of molten metal plated steel strip - Google Patents

Manufacturing method of molten metal plated steel strip Download PDF

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JP4857906B2
JP4857906B2 JP2006140964A JP2006140964A JP4857906B2 JP 4857906 B2 JP4857906 B2 JP 4857906B2 JP 2006140964 A JP2006140964 A JP 2006140964A JP 2006140964 A JP2006140964 A JP 2006140964A JP 4857906 B2 JP4857906 B2 JP 4857906B2
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steel strip
gas wiping
molten metal
gas
nozzle
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JP2007308778A (en
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秀行 高橋
玄太郎 武田
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JFE Steel Corp
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本発明は、溶融金属めっき浴から連続的に引き上げられる鋼帯の表面に、ガスワイピングノズルから気体を吹き付け、鋼帯表面のめっき付着量の制御を行う溶融金属めっき鋼帯の製造方法に関するものである。   The present invention relates to a method for producing a molten metal plated steel strip in which a gas wiping nozzle is sprayed with a gas onto the surface of a steel strip that is continuously pulled up from a molten metal plating bath to control the amount of coating on the surface of the steel strip. is there.

連続溶融めっきプロセスにおいては、一般に溶融金属が満たされているめっき浴に鋼帯を浸漬させ、この鋼帯をめっき浴から垂直上方に引き上げた後、鋼帯を挟んで対向して設けられたガスワイピングノズルから鋼帯面に気体を吹き付けるガスワイピングが行われる。このガスワイピングにより、余剰な溶融金属が掻き取られてめっき付着量が制御されるとともに、鋼帯表面に付着した溶融金属が板幅方向および板長手方向で均一化される。ガスワイピングノズルは、多様な鋼帯幅に対応するとともに、鋼帯引き上げ時の幅方向の位置ズレなどに対応するため、通常、鋼帯幅より長く構成され、鋼帯の幅端部より外側まで延びている。   In a continuous hot dipping process, a steel strip is generally immersed in a plating bath filled with molten metal, and the steel strip is pulled vertically upward from the plating bath, and then a gas provided opposite to the steel strip. Gas wiping in which gas is blown from the wiping nozzle onto the steel strip surface is performed. By this gas wiping, excess molten metal is scraped off and the amount of plating adhesion is controlled, and the molten metal adhering to the steel strip surface is made uniform in the plate width direction and the plate longitudinal direction. The gas wiping nozzle is usually configured to be longer than the width of the steel strip and to the outside of the width end of the steel strip in order to cope with various widths of the steel strip as well as misalignment in the width direction when the steel strip is pulled up. It extends.

このようなガスワイピング方式では、鋼帯に衝突した気体噴流の乱れによって鋼帯下方に落下する溶融金属が周囲に飛び散る、いわゆるスプラッシュが発生し、これが鋼帯表面に付着してめっき鋼帯の表面品質の低下を招くという問題がある。
鋼帯の連続処理プロセスにおいて生産量を増加させるには、鋼帯通板速度(ライン速度)を増加させればよい。しかし、連続溶融めっきプロセスにおいてガスワイピング方式でめっき付着量を制御する場合、ライン速度を増加させると、溶融金属の粘性によって鋼帯のめっき浴通過直後の初期付着量が増加するため、めっき付着量を一定範囲内に制御するには、ガスワイピングノズルから鋼帯面に吹き付ける気体圧力をより高圧に設定する必要があり、これによってスプラッシュが大幅に増加し、良好な表面品質を維持できなくなる。
In such a gas wiping method, a so-called splash is generated in which molten metal falling below the steel strip is scattered around due to the turbulence of the gas jet that collided with the steel strip, which adheres to the surface of the steel strip and adheres to the surface of the plated steel strip. There is a problem that the quality is degraded.
In order to increase the production amount in the continuous processing process of the steel strip, the steel strip passing speed (line speed) may be increased. However, when controlling the coating amount by gas wiping method in the continuous hot dipping process, if the line speed is increased, the initial coating amount immediately after passing through the plating bath of the steel strip increases due to the viscosity of the molten metal. In order to control within a certain range, it is necessary to set the gas pressure blown from the gas wiping nozzle to the steel strip surface to a higher pressure, which greatly increases the splash and makes it impossible to maintain good surface quality.

上記の問題を解決するため、例えば、以下のような技術が提案されている。
特許文献1には、バッフルプレートを設けるとともに、ガスワイピングノズル下部の金属板エッジ付近に、金属板に付着した溶融めっき金属に働く外力を金属板の幅中心部に向かう方向に変える方向変換手段を設ける技術が示されている。
特許文献2には、ガスワイピングノズルとめっき浴面との間に、鋼帯との間に静圧を発生するためのスリットを備えたヘッダー室を有するエアパッドを設ける技術が示されている。
In order to solve the above problems, for example, the following techniques have been proposed.
In Patent Document 1, a baffle plate is provided, and direction changing means for changing an external force acting on a hot dipped metal attached to the metal plate in a direction toward the center of the width of the metal plate in the vicinity of the metal plate edge below the gas wiping nozzle. The technology to provide is shown.
Patent Document 2 discloses a technique of providing an air pad having a header chamber having a slit for generating a static pressure between a gas wiping nozzle and a plating bath surface and a steel strip.

特許文献3には、ガスワイピングノズル下方から後方を経て上方に回り込んで鋼板正面に向かう気流の流速を、ガスワイピングノズル後方に張り出させた整流板によって弱める、および/または、前記気流に乗って運ばれるスプラッシュをガスワイピングノズル上前部に設けた堰により止める技術が示されている。
特許文献4には、主ノズルの上下に、幅方向で3分割以上され、分割部がそれぞれ独立に圧力制御可能な補助ノズル(副ノズル)を設けて気体を噴射することより、主ノズルからの主噴流の広がりを抑え、衝突後鋼板に沿って流れるガスを安定させる技術が示されている。
In Patent Document 3, the flow velocity of the airflow that goes around from the lower side of the gas wiping nozzle to the upper side and faces the front of the steel plate is weakened by a rectifying plate that protrudes behind the gas wiping nozzle and / or rides on the airflow. The technique which stops the splash conveyed by the weir provided in the gas wiping nozzle upper front part is shown.
In Patent Document 4, an auxiliary nozzle (sub nozzle) that is divided into three or more in the width direction on the upper and lower sides of the main nozzle, and each of the divided portions can independently control the pressure, and injects the gas from the main nozzle. A technique for suppressing the spread of the main jet and stabilizing the gas flowing along the steel plate after the collision is shown.

特開2003−321757号公報JP 2003-321757 A 特開2002−173750号公報JP 2002-173750 A 特開200−328218公報JP-A-200-328218 特開平10−204599号公報JP-A-10-204599

しかし、これらの従来技術では、スプラッシュの発生を安定的に低減させることはできない。溶融金属用のガスワイピングノズルのスリットギャップは、一般に縦横比が非常に小さく(アスペクト比=1:2000程度)、このためノズルの加工精度や取付精度がガスワイピングの適否に与える影響が非常に大きい。したがって、ガスワイピングノズル自体の加工精度や取付精度、さらにはライン速度、鋼帯の反り量などの操業条件によって、スプラッシュが発生しにくい最適条件は異なったものとなる。このため、上記従来技術を用いたとしても、スプラッシュの発生を安定的に抑えることは困難である。   However, these conventional techniques cannot stably reduce the occurrence of splash. The slit gap of a gas wiping nozzle for molten metal generally has a very small aspect ratio (aspect ratio = 1: 2000 or so), so the influence of nozzle processing accuracy and mounting accuracy on the suitability of gas wiping is very large. . Therefore, the optimum conditions in which splash is unlikely to occur vary depending on the operating conditions such as the processing accuracy and mounting accuracy of the gas wiping nozzle itself, as well as the line speed and the warp amount of the steel strip. For this reason, even if the above prior art is used, it is difficult to stably suppress the occurrence of splash.

したがって本発明の目的は、以上のような従来技術の課題を解決し、ガスワイピングノズルを用いてめっき付着量の制御を行う溶融金属めっき鋼帯の製造方法において、鋼帯を高速通板させる場合でもスプラッシュによるめっき表面欠陥の発生を適切に抑え、高品質の溶融金属めっき鋼帯を安定して製造することができ製造方法を提供することにある。   Therefore, the object of the present invention is to solve the above-mentioned problems of the prior art and to make the steel strip pass at high speed in the manufacturing method of the molten metal plated steel strip in which the amount of plating adhesion is controlled using the gas wiping nozzle. However, an object of the present invention is to provide a manufacturing method that can appropriately suppress the occurrence of plating surface defects due to splash and stably manufacture a high-quality molten metal-plated steel strip.

上記課題を解決するための本発明の製造方法の要旨は、以下のとおりである。
[1] 溶融金属めっき浴から連続的に引き上げられる鋼帯の表面に、ガスワイピングノズルからガスを吹き付けてめっき付着量の制御を行う溶融金属めっき鋼帯の製造方法において、ガスワイピング部で発生する音波を測定して、周波数スペクトラムに変換し、その周波数スペクトラムが予め決められた条件を満足するように、ガスワイピングノズルの位置を調整することを特徴とする溶融金属めっき鋼帯の製造方法。
[2]上記[1]の製造方法において、周波数スペクトラムの特定周波数領域での音圧強度又は音圧強度の積分値が基準値以下となるように、ガスワイピングノズルの位置を調整することを特徴とする溶融金属めっき鋼帯の製造方法。
[3]上記[1]又は[2]の製造方法において、ガスワイピングノズルの上下方向での傾き角度を調整することを特徴とする溶融金属めっき鋼帯の製造方法。
The gist of the production method of the present invention for solving the above problems is as follows.
[1] Generated at the gas wiping part in the manufacturing method of the molten metal plated steel strip, which controls the amount of plating by blowing gas from the gas wiping nozzle onto the surface of the steel strip that is continuously pulled up from the molten metal plating bath. A method for producing a molten metal-plated steel strip, comprising: measuring a sound wave, converting it into a frequency spectrum, and adjusting a position of a gas wiping nozzle so that the frequency spectrum satisfies a predetermined condition.
[2] In the manufacturing method of [1], the position of the gas wiping nozzle is adjusted so that the sound pressure intensity in the specific frequency region of the frequency spectrum or the integrated value of the sound pressure intensity is equal to or less than a reference value. A method for producing a molten metal-plated steel strip.
[3] A method for producing a molten metal-plated steel strip, characterized in that, in the production method of [1] or [2], an inclination angle in the vertical direction of the gas wiping nozzle is adjusted.

本発明によれば、ガスワイピング部で発生する音波の周波数スペクトラムとスプラッシュの発生との相関関係を利用し、ガスワイピング部で発生する音波の周波数スペクトラムが予め決められた条件を満足するようにガスワイピングノズルの位置を調整することにより、ガスワイピングノズルの加工精度・取付精度や操業条件などに関わりなく、鋼帯を高速通板させる場合でもスプラッシュの発生を効果的に抑制することができる。   According to the present invention, the correlation between the frequency spectrum of the sound wave generated by the gas wiping unit and the occurrence of the splash is utilized, and the gas frequency spectrum generated by the gas wiping unit satisfies the predetermined condition. By adjusting the position of the wiping nozzle, it is possible to effectively suppress the occurrence of splash even when the steel strip is passed at high speed regardless of the processing accuracy, mounting accuracy, operating conditions, etc. of the gas wiping nozzle.

溶融金属めっき浴から連続的に引き上げられる鋼帯の表面に、ガスワイピングノズルからガスを吹き付けてめっき付着量の制御を行う方法において、ガスワイピングにより生じる溶融金属のスプラッシュの多くは、鋼帯エッジ部から発生する(エッジスプラッシュ)。これは以下の理由による。すなわち、鋼帯両側に配置されたガスワイピングノズルから吐出されたガス噴流は、鋼帯センター部では、鋼帯に衝突した後は単独噴流のまま壁面噴流となるのに対し、鋼帯エッジ部では、対向した両ガスワイピングノズルからのガス噴流が衝突することで、当該部分での速度変動が非常に大きくなり、このため鋼帯エッジ部でスプラッシュが非常に発生しやすくなる。   In the method of controlling the coating amount by blowing gas from the gas wiping nozzle onto the surface of the steel strip that is continuously pulled up from the molten metal plating bath, most of the splash of molten metal generated by gas wiping is the edge of the steel strip. Generated from (edge splash). This is due to the following reason. That is, the gas jet discharged from the gas wiping nozzles arranged on both sides of the steel strip becomes a wall jet as a single jet after colliding with the steel strip at the steel strip center, whereas at the steel strip edge, When the gas jets from the opposing gas wiping nozzles collide with each other, the speed fluctuation in the part becomes very large, and therefore, splash easily occurs at the steel strip edge part.

ここで、溶融金属のガスワイピング部を観察すると、音が大きく変わることがある。この音の変化は、鋼帯の溶接点が通過するタイミングであったり、ガスワイピング圧力、ガスワイピングノズル−鋼帯間距離、ガスワイピングノズルの上下方向での傾き角度などのワイピング条件が変更されるタイミングであったりする場合が非常に多い。そして、本発明者らがその音とスプラッシュ発生との関係について調査、検討を行った結果、その音の周波数スペクトラムとスプラッシュの発生との間に明確な相関関係があることが判った。このことから、さらに検討を進めた結果、ガスワイピング部で発生する音波の周波数スペクトラムが予め決められた条件を満足するように、ガスワイピングノズルの位置を調整することにより、スプラッシュの発生を安定的に抑制できることが判った。   Here, when the gas wiping portion of the molten metal is observed, the sound may change greatly. This change in sound is the timing at which the welding point of the steel strip passes, or the wiping conditions such as the gas wiping pressure, the distance between the gas wiping nozzle and the steel strip, and the tilt angle of the gas wiping nozzle in the vertical direction are changed. Very often it is timing. As a result of investigations and studies on the relationship between the sound and the occurrence of splash by the present inventors, it was found that there is a clear correlation between the frequency spectrum of the sound and the occurrence of splash. Therefore, as a result of further investigation, it is possible to stabilize the occurrence of splash by adjusting the position of the gas wiping nozzle so that the frequency spectrum of the sound wave generated in the gas wiping unit satisfies a predetermined condition. It was found that it can be suppressed.

このため本発明では、溶融金属めっき浴から連続的に引き上げられる鋼帯の表面に、ガスワイピングノズルからガスを吹き付けてめっき付着量の制御を行う溶融金属めっき鋼帯の製造方法において、ガスワイピング部で発生する音波を測定して、周波数スペクトラムに変換し、その周波数スペクトラムが予め決められた条件を満足するように、ガスワイピングノズルの位置を調整する。
本発明において、予め決められた周波数スペクトラムの条件としては種々のものが考えられるが、例えば、(1)特定周波数領域での音圧強度の最大値、(2)特定周波数領域での音圧強度の積分値、などについて予め基準値を定め、測定値がその基準値以下となるようにするものである。また、周波数スペクトラムの広範な周波数領域の中でも、特に高周波領域とスプラッシュ発生との相関が高いことから、高周波領域において上記(1),(2)の基準値を設定することが好ましい。例えば、上記(1)の場合には、周波数スペクトラムの1000〜5000Hzの周波数領域での音圧強度の最大値が基準値(例えば、−20dB)以下となるようにし、上記(2)の場合には、周波数スペクトラムの3000Hz以上の周波数領域の音圧強度の積分値が基準値(例えば、−20dB)以下となるようにする。
For this reason, in the present invention, a gas wiping unit is used in a method for manufacturing a molten metal plated steel strip in which a gas wiping nozzle blows gas onto the surface of a steel strip that is continuously pulled up from a molten metal plating bath to control the amount of plating. The sound wave generated in is measured and converted into a frequency spectrum, and the position of the gas wiping nozzle is adjusted so that the frequency spectrum satisfies a predetermined condition.
In the present invention, various conditions of the predetermined frequency spectrum are conceivable. For example, (1) the maximum value of the sound pressure intensity in the specific frequency region, and (2) the sound pressure intensity in the specific frequency region. A reference value is determined in advance for the integral value, etc., so that the measured value is equal to or less than the reference value. In addition, in the wide frequency range of the frequency spectrum, since the correlation between the high frequency region and the occurrence of splash is particularly high, it is preferable to set the reference values (1) and (2) in the high frequency region. For example, in the case of (1) above, the maximum value of the sound pressure intensity in the frequency region of 1000 to 5000 Hz in the frequency spectrum is set to be a reference value (for example, −20 dB) or less, and in the case of (2) above. Is set so that the integrated value of the sound pressure intensity in the frequency region of 3000 Hz or higher of the frequency spectrum is equal to or lower than a reference value (for example, −20 dB).

ガスワイピング部で発生する音波の周波数スペクトラムの変動要因としては、例えば、ライン速度、板形状(例えば、浴中サポートロールの押込み量、電磁力や気体力を用いた形状制御量に基づく板形状)、ガスワイピング圧力、ガスワイピングノズル−鋼帯間距離、ガスワイピングノズルの上下方向での傾き角度などのワイピング条件が考えられる。しかし、上記ライン速度、ガスワイピングノズル−鋼帯間距離、ガスワイピング圧力などを変更するとめっき付着量が変化するため、制御が複雑化してしまう。このため本発明では、ガスワイピングノズルの位置を制御(調整)対象とする。また、ガスワイピングノズルの位置調整の中でも、図1(図中、S:鋼帯)に示すようなガスワイピングノズル1a,1bの水平方向に対する上下方向での傾き角度θを調整することが、特に周波数スペクトラムを制御する上で有効であり、且つその調整がめっき付着量に及ぼす影響も非常に小さいことが判った。したがって、ガスワイピングノズルの位置調整としては、ガスワイピングノズルの水平方向に対する上下方向での傾き角度θを調整することが特に好ましい。   Examples of the fluctuation factors of the frequency spectrum of the sound wave generated by the gas wiping unit include, for example, the line speed and the plate shape (for example, the plate shape based on the pushing amount of the support roll in the bath, and the shape control amount using electromagnetic force or gas force) The wiping conditions such as the gas wiping pressure, the distance between the gas wiping nozzle and the steel strip, and the inclination angle of the gas wiping nozzle in the vertical direction can be considered. However, when the line speed, the distance between the gas wiping nozzle and the steel strip, the gas wiping pressure, etc. are changed, the plating adhesion amount changes, and the control becomes complicated. For this reason, in the present invention, the position of the gas wiping nozzle is a control (adjustment) target. Further, among the adjustment of the position of the gas wiping nozzle, it is particularly possible to adjust the inclination angle θ in the vertical direction with respect to the horizontal direction of the gas wiping nozzles 1a and 1b as shown in FIG. 1 (S: steel strip in the figure). It has been found that this is effective in controlling the frequency spectrum, and that the effect of the adjustment on the amount of plating is very small. Therefore, as the position adjustment of the gas wiping nozzle, it is particularly preferable to adjust the inclination angle θ in the vertical direction with respect to the horizontal direction of the gas wiping nozzle.

本発明を実施するに当たっては、ガスワイピング部近傍に音圧検出用マイクを設置してガスワイピング部からの音波を測定し、この音波を公知のリアルタイム音波解析装置で周波数スペクトラムに変換し、その周波数スペクトラムと上述したような基準値に基づいてガスワイピングノズルの位置調整(好ましくは、ガスワイピングノズルの水平方向に対する上下方向での傾き角度θの調整)を行う。また、このようなガスワイピング部からの音波の周波数スペクトラムの解析とこれに基づくガスワイピングノズルの位置調整は、操業中連続的に行ってもよいし、適宜時間的な間隔をおいて行ってもよい。また、めっき条件の変更時に適宜行ってもよい。   In practicing the present invention, a sound pressure detection microphone is installed in the vicinity of the gas wiping unit to measure the sound wave from the gas wiping unit, and this sound wave is converted into a frequency spectrum by a known real-time sound wave analysis device. Based on the spectrum and the reference value as described above, the position of the gas wiping nozzle is adjusted (preferably, the tilt angle θ in the vertical direction with respect to the horizontal direction of the gas wiping nozzle). Further, the analysis of the frequency spectrum of the sound wave from the gas wiping unit and the position adjustment of the gas wiping nozzle based on the analysis may be performed continuously during the operation or may be performed at appropriate time intervals. Good. Moreover, you may perform suitably at the time of change of plating conditions.

溶融亜鉛めっき鋼帯の製造ラインにおいて、ガスワイピングノズルの側方で3m離れた位置に音圧検出用マイクを設置してガスワイピング部からの音波を測定し、この音波をリアルタイム音波解析装置で周波数スペクトラムに変換し、周波数スペクトラムとスプラッシュ欠陥の発生個数との関係を調べた。なお、スプラッシュ欠陥の発生個数は、オンライン欠陥検出器を用い画像処理で欠陥を識別することにより計数した。
溶融亜鉛めっき鋼帯の製造条件は、鋼帯サイズ:板厚1.0mm×板幅1000mm、ライン速度:150mpm、溶融亜鉛めっき浴温:460℃、目標めっき付着量50g/mとした。また、ガスワイピング条件は、ノズルスリットサイズ:1.0mm×2000mm、ノズルガス圧力:70kPa、ノズル−鋼帯距離:8mm、めっき浴面からのノズル高さ:400mmとした。
この実施例では、図1に示すようなガスワイピングノズルの水平方向に対する上下方向での傾き角度θを調整対象とした。
In the production line for hot-dip galvanized steel strip, a sound pressure detection microphone is installed at a position 3 m away from the side of the gas wiping nozzle, and the sound wave from the gas wiping part is measured. The spectrum was converted into a spectrum, and the relationship between the frequency spectrum and the number of splash defects was investigated. The number of splash defects generated was counted by identifying defects by image processing using an online defect detector.
The production conditions of the hot dip galvanized steel strip were as follows: steel strip size: plate thickness 1.0 mm × plate width 1000 mm, line speed: 150 mpm, hot dip galvanizing bath temperature: 460 ° C., target plating adhesion amount 50 g / m 2 . The gas wiping conditions were nozzle slit size: 1.0 mm × 2000 mm, nozzle gas pressure: 70 kPa, nozzle-steel strip distance: 8 mm, and nozzle height from the plating bath surface: 400 mm.
In this embodiment, the tilt angle θ in the vertical direction with respect to the horizontal direction of the gas wiping nozzle as shown in FIG.

本発明適用前の比較例の操業では、図1に示すガスワイピングノズル1a,1bの傾き角度θをノズル1a:0°、ノズル1b:0°とした。この操業では、スプラッシュ欠陥の発生個数は3.4個/kmであった。
これに対して本発明例では、100Hz以上の周波数領域の音圧強度の最大値:−8dBという基準値を定め、測定された音波の周波数スペクトラムがこの基準値以下となるように、図1に示すガスワイピングノズル1a,1bの傾き角度θを調整した。傾き角度θをノズル1a:−0.4°、ノズル1b:−0.7°(マイナスは、ノズル先端が下向きの傾きを持つことを意味する)に調整した際の周波数スペクトラムを、上記比較例の周波数スペクトラムとともに図2に示す。この本発明例の周波数スペクトラムでは、音圧強度が全体的に低下するとともに、100Hz以上の周波数領域の音圧強度の最大値は−8dBという基準値を下回っている。この結果、スプラッシュ欠陥の発生個数は0.1個/kmと激減した。
In the operation of the comparative example before application of the present invention, the inclination angles θ of the gas wiping nozzles 1a and 1b shown in FIG. 1 were set to the nozzle 1a: 0 ° and the nozzle 1b: 0 °. In this operation, the number of occurrences of splash defects was 3.4 / km.
On the other hand, in the present invention example, a reference value of -8 dB is set as the maximum value of the sound pressure intensity in the frequency region of 100 Hz or higher, and the frequency spectrum of the measured sound wave is equal to or lower than this reference value. The inclination angle θ of the gas wiping nozzles 1a and 1b shown was adjusted. The frequency spectrum when the inclination angle θ is adjusted to nozzle 1a: −0.4 °, nozzle 1b: −0.7 ° (minus means that the tip of the nozzle has a downward inclination) 2 together with the frequency spectrum. In the frequency spectrum of this example of the present invention, the sound pressure intensity decreases as a whole, and the maximum value of the sound pressure intensity in the frequency region of 100 Hz or higher is lower than the reference value of -8 dB. As a result, the number of occurrences of splash defects was drastically reduced to 0.1 / km.

ガスワイピングノズルの水平方向に対する傾き角度θを示す説明図Explanatory drawing which shows inclination-angle (theta) with respect to the horizontal direction of a gas wiping nozzle. 実施例の本発明例においてガスワイピング部で発生した音波の周波数スペクトラムを、本発明適用前の比較例の周波数スペクトラムとともに示すグラフThe graph which shows the frequency spectrum of the sound wave which generate | occur | produced in the gas wiping part in the Example of this invention of an Example with the frequency spectrum of the comparative example before this invention application

Claims (3)

溶融金属めっき浴から連続的に引き上げられる鋼帯の表面に、ガスワイピングノズルからガスを吹き付けてめっき付着量の制御を行う溶融金属めっき鋼帯の製造方法において、
ガスワイピング部で発生する音波を測定して、周波数スペクトラムに変換し、その周波数スペクトラムが予め決められた条件を満足するように、ガスワイピングノズルの位置を調整することを特徴とする溶融金属めっき鋼帯の製造方法。
In the manufacturing method of the molten metal plating steel strip, which controls the amount of plating by blowing gas from the gas wiping nozzle on the surface of the steel strip continuously pulled up from the molten metal plating bath,
A molten metal plated steel characterized by measuring a sound wave generated in a gas wiping unit, converting it to a frequency spectrum, and adjusting a position of the gas wiping nozzle so that the frequency spectrum satisfies a predetermined condition. Manufacturing method of the belt.
周波数スペクトラムの特定周波数領域での音圧強度又は音圧強度の積分値が基準値以下となるように、ガスワイピングノズルの位置を調整することを特徴とする請求項1に記載の溶融金属めっき鋼帯の製造方法。   2. The molten metal plated steel according to claim 1, wherein the position of the gas wiping nozzle is adjusted so that the sound pressure intensity in a specific frequency region of the frequency spectrum or the integrated value of the sound pressure intensity is equal to or less than a reference value. Manufacturing method of the belt. ガスワイピングノズルの上下方向での傾き角度を調整することを特徴とする請求項1又は2に記載の溶融金属めっき鋼帯の製造方法。   The method for producing a molten metal-plated steel strip according to claim 1 or 2, wherein an inclination angle in a vertical direction of the gas wiping nozzle is adjusted.
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