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		<title>adam wang</title>
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			<title>adam wang posted a thread.</title>
			<link>https://worldschoolface.com/index.php/forum/thread/2381/slide-gate-plate/</link>
			<description><![CDATA[<p>The <a href="https://hyrefr.com/product/ladle-shroud/">ladle shroud nozzle</a> for continuous casting is also called the protective sleeve. It is an important component connecting the ladle and the tundish. It is connected to the lower shroud of the sliding shroud device at the bottom of the ladle, and the lower end extends into the tundish.</p>

<p><img alt="" src="https://hyrefr.com/wp-content/uploads/2025/06/ladle-shroud2.jpg" /></p>

<p>The shroud is an important functional <a href="https://hyrefr.com/wear-reason-about-the-slide-gate-plate/">refractory material</a> for maintaining casting and improving steel quality. The length of the shroud is generally 600-1800mm, the pipe diameter is 90-150 mm, and the structure of the ladle shroud nozzle is shown in Figure 2. Its use conditions are harsh and must have the following functions: excellent thermal shock resistance; good mechanical strength; excellent resistance to alternating corrosion of molten steel and slag, high oxidation resistance, and in addition, other suitable properties are required for some special steel grades.more information,please check <a href="https://hyrefr.com/">here</a></p>

<p><a href="https://hyrefr.com/product/isostatical-tundish-nozzle/">Tundish nozzle</a></p>

<p><a href="https://hyrefr.com/refractory-for-slide-plates/">Slide Gate Plate</a> is a critical component in the continuous casting process, used to <a href="https://hyrefr.com/">control the flow</a> of molten steel from the ladle or tundish to the crystallizer. The following is a detailed description:</p>

<h2>Role and Function</h2>

<ul>
	<li><strong>Flow Control:</strong>&nbsp;The <a href="https://hyrefr.com/wear-reason-about-the-slide-gate-plate/">sliding gate plate</a> adjusts the opening size of the nozzle through the sliding mechanism, thereby controlling the flow of molten steel. This is very important for maintaining a constant and controllable casting process.</li>
	<li><strong>Operational Flexibility:</strong>&nbsp;The sliding gate plate allows operators to adjust the molten steel flow rate as needed during the casting process to adapt to different production requirements and conditions.</li>
	<li><strong>Emergency Stop:</strong>&nbsp;In an emergency, the <a href="https://hyrefr.com/product/unburned-slide-gate-plate/">sliding gate plate</a> can completely close the flow channel and stop the flow of molten steel, thereby preventing accidents and losses.</li>
</ul>

<p><strong>Slide gate plate for Converter</strong><br />
The&nbsp;<a href="https://hyrefr.com/new-generation-ladle-slide-gate-system-for-performance-improvement/">slide gate plate</a>&nbsp;is made of sintered corundum, fused corundum, fused zirconium corundum, zirconium mullite and other main raw materials. It is combined with new resin, formed by high pressure and fired at high temperature. It has the advantages of high strength, super hard, high temperature resistance and corrosion resistance, and strong thermal stability.</p>

<p><a href="https://hyrefr.com/product/tundish-stopper/">Stopper</a></p>

<p><a href="https://hyrefr.com/product/tundish-stopper/">Monoblock Stopper&nbsp;</a>is used mainly for flow control on Molten Steel poured from tundish to mould. <a href="https://hyrefr.com/performance-features-of-submerged-entry-nozzle-in-high-speed-casting-on-thin-slab-continuous-casting-machines/">Monolithic Stopper</a> is installed in the Tundish above the&nbsp;<a href="https://hyrefr.com/product/submerged-entry-nozzle/"><strong>Sub Entry Nozzle</strong></a>&nbsp;and the gap between stopper head and Nozzle decide the throughput requirement of Molten Steel inside the Mould.</p>

<p>Argon can be blown into the tundish through argon inlet to prevent nozzle from Clogging ( specially designed feature wherever it is required we design and customise accordingly)</p>

<p><strong>SPECIAL FEATURES:</strong><br />
o Facility for gas purging<br />
o Anti oxidant properties<br />
o Design and size as per customer&rsquo;s requirement<br />
o Clogging free casting for long sequence of casting<br />
o Gas purging facilities to prevent alumina clogging (optional)<br />
o Slag zone immersed part re-inforcement with special material for long life<br />
o Argon sealing purging arrangement can be provided on customer&rsquo;s request<br />
o Wide range of formulation for withstanding oxidation and long sequence casting<br />
o Different assembly methods for assured security even in long sequence casting<br />
o We manufacture Silica free Oxy-bore ladle shroud for less corrosion and long sequence casting</p>

<h1><a href="https://hyrefr.com/recycling-slide-gate-plates-to-save-costs-and-reduce-waste/">Recycling slide gate plates to save costs and reduce waste</a></h1>

<p><a href="https://hyrefr.com/the-top-5-ladle-shroud-manufacturers-in-china/"><strong>The top 5 ladle shroud manufacturers in China</strong></a></p>

<p><a href="https://hyrefr.com/production-and-application-of-isostatically-pressed-refractory-materials/"><strong>Production and application of isostatically pressed refractory materials</strong></a></p>

<p>&nbsp;</p>

<p><a href="https://hyrefr.com/performance-features-of-submerged-entry-nozzle-in-high-speed-casting-on-thin-slab-continuous-casting-machines/">SEN</a></p>

<p><a href="https://sites.google.com/view/junhuamachinery/%E9%A6%96%E9%A1%B5">??</a></p>

<p><a href="https://images.google.com.hk/url?q=https%3A%2F%2Fhyrefr.com/">?????</a></p>

<p><a href="https://archinect.com/people/cover/150496320/adam-wang">adam wang | Archinect</a></p>

<p><a href="https://hyrefr.com/production-and-application-of-isostatically-pressed-refractory-materials/"><strong>Monoblock Stopper</strong></a>&nbsp;is used mainly for <a href="https://hyrefr.com/the-iso-refractory-trial-report-compared-with-vesuvius/">flow control</a> on Molten Steel poured from tundish to mould. Monolithic Stopper is installed in the Tundish above the&nbsp;<a href="https://hyrefr.com/product/submerged-entry-nozzle/"><strong>Sub Entry Nozzle</strong>&nbsp;</a>and the gap between <a href="https://hyrefr.com/product/tundish-stopper/">stopper</a> head and Nozzle decide the throughput requirement of Molten Steel inside the Mould.</p>

<p>Argon can be blown into the tundish through argon inlet to prevent nozzle from Clogging ( specially designed feature wherever it is required we design and customise accordingly)</p>

<p>sequence casting<br />
o Different assembly methods for assured security even in long sequence casting<br />
o We manufacture Silica free Oxy-bore ladle shroud for less corrosion and long sequence casting</p>

<p><img alt="" src="https://hyrefr.com/product/unburned-slide-gate-plate/" /><img alt="" src="https://hyrefr.com/wp-content/uploads/2025/06/3-27-%E8%BD%AC%E6%8D%A2%E8%87%AA-jpg-150x150.avif" /></p>

<p><a href="https://www.intensedebate.com/people/junhuamachinery">IntenseDebate - junhuamachinery</a></p>

<p><a href="https://smpmariamediatrix.sch.id/2025/09/12/5-key-factors-behind-ladle-shroud-cracking/">5 Key Factors Behind Ladle Shroud Cracking | SMP Maria Mediatrix</a></p>

<p><a href="https://github.com/hyrefractory/slide-gate-plate/wiki/The-top-5-ladle-shroud-manufacturers-in-China">The top 5 ladle shroud manufacturers in China &middot; hyrefractory/slide-gate-plate Wiki</a></p>

<p><a href="https://hyrefr.com/">HYRE&nbsp;&nbsp;&nbsp;</a></p>

<p><a href="https://hyrefr.com/product/ladle-shroud/">ladle shroud</a></p>

<p><a href="https://hyrefr.com/product/tundish-stopper/">tundish stopper</a></p>

<p><a href="https://hyrefr.com/product/submerged-entry-nozzle/">Sub entry nozzle</a></p>

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			<guid>https://worldschoolface.com/index.php/forum/thread/2381/slide-gate-plate/</guid>
			<pubDate>Mon, 09 Feb 2026 03:45:11 +0000</pubDate>
			<dc:creator>adam wang</dc:creator>
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			<title>adam wang posted a thread.</title>
			<link>https://worldschoolface.com/index.php/forum/thread/2380/key-refractory-products-used-in-the-tundish-system-of-continuous-casting/</link>
			<description><![CDATA[<h2>1. Introduction</h2>

<p>In modern continuous casting steelmaking, the tundish is not merely an intermediate vessel between the ladle and the mold; it is a&nbsp;<strong>metallurgical reactor</strong>&nbsp;that plays a crucial role in steel cleanliness, temperature control, and flow optimization. To achieve these objectives, a series of&nbsp;<strong>functional refractory products</strong>&nbsp;are installed in and around the tundish. These refractory items must operate under extreme conditions, including high temperature, aggressive molten steel and slag, thermal shock, erosion, and chemical corrosion.</p>

<p>Among the most critical tundish-related refractories are the&nbsp;<a href="https://hyrefr.com/product/ladle-shroud/">ladle shroud</a><strong>, stopper rod, seating block</strong>, and associated flow-control components such as&nbsp;<strong>tundish nozzles and sub-entry nozzles (SENs)</strong>. Each of these items performs a specific function and must be designed with appropriate material composition, structure, and performance characteristics.</p>

<p>This article provides a detailed technical overview of these key refractory products, focusing on their&nbsp;<strong>functions, materials, working conditions, failure mechanisms, and performance requirements</strong>.</p>

<hr />
<h2>2. Ladle Shroud</h2>

<p><iframe height="314" src="https://www.youtube.com/embed/EmNn8E3hRdo" width="560"></iframe></p>

<h3>2.1 Function of the Ladle Shroud</h3>

<p>The&nbsp;<strong>ladle shroud</strong>&nbsp;is a tubular refractory component installed between the&nbsp;<strong>ladle slide gate</strong>&nbsp;and the&nbsp;<strong>tundish impact zone</strong>. Its primary function is to&nbsp;<strong>protect the molten steel stream from reoxidation and nitrogen pickup</strong>&nbsp;during transfer from the ladle to the tundish.</p>

<p>Key functions include:</p>

<ul>
	<li>
	<p>Creating a&nbsp;<strong>closed pouring system</strong></p>
	</li>
	<li>
	<p>Preventing air aspiration and secondary oxidation</p>
	</li>
	<li>
	<p>Reducing inclusion formation</p>
	</li>
	<li>
	<p>Stabilizing the steel flow into the tundish</p>
	</li>
	<li>
	<p>Minimizing temperature loss</p>
	</li>
</ul>

<p>The ladle shroud is especially critical in the production of&nbsp;<strong>clean steels</strong>, such as automotive grades, IF steels, and bearing steels.</p>

<h3>2.2 Materials and Structure</h3>

<p>Ladle shrouds are typically manufactured from&nbsp;<strong>high-purity alumina-based or zirconia-containing refractories</strong>. Common material systems include:</p>

<ul>
	<li>
	<p><strong>Al?O?&ndash;C</strong>&nbsp;(alumina-carbon)</p>
	</li>
	<li>
	<p><strong>Al?O?&ndash;ZrO?&ndash;C</strong></p>
	</li>
	<li>
	<p><strong>ZrO?&ndash;C</strong>&nbsp;(for high-end applications)</p>
	</li>
</ul>

<p>Key material requirements:</p>

<ul>
	<li>
	<p>High thermal shock resistance</p>
	</li>
	<li>
	<p>Excellent resistance to steel and slag corrosion</p>
	</li>
	<li>
	<p>Low wettability with molten steel</p>
	</li>
	<li>
	<p>High mechanical strength at elevated temperature</p>
	</li>
</ul>

<p>Carbon is often added to improve thermal shock resistance and reduce steel adhesion, while zirconia enhances corrosion resistance and dimensional stability.</p>

<h3>2.3 Failure Mechanisms</h3>

<p>Typical failure modes of ladle shrouds include:</p>

<ul>
	<li>
	<p>Oxidation of carbon at high temperature</p>
	</li>
	<li>
	<p>Erosion by high-velocity steel stream</p>
	</li>
	<li>
	<p>Cracking due to thermal shock</p>
	</li>
	<li>
	<p>Joint leakage caused by improper gasket sealing</p>
	</li>
</ul>

<p>Advanced ladle shrouds may incorporate&nbsp;<strong>anti-oxidation coatings</strong>&nbsp;and optimized inner bore designs to extend service life.</p>

<hr />
<h2>3. Stopper Rod</h2>

<p><iframe height="314" src="https://www.youtube.com/embed/AJ3Dt9R2Rh8" width="560"></iframe></p>

<h3>3.1 Role of the Stopper Rod in Tundish Flow Control</h3>

<p>The&nbsp;<strong>stopper rod</strong>&nbsp;is a critical&nbsp;<strong>flow-control refractory</strong>&nbsp;used in tundishes equipped with stopper-controlled casting systems. By moving vertically, the stopper rod regulates the flow rate of molten steel from the tundish to the mold through the tundish nozzle.</p>

<p>Main functions:</p>

<ul>
	<li>
	<p>Precise control of steel flow</p>
	</li>
	<li>
	<p>Stable casting speed</p>
	</li>
	<li>
	<p>Quick response during start and end of casting</p>
	</li>
	<li>
	<p>Emergency shut-off capability</p>
	</li>
</ul>

<p>Compared with slide gate systems, stopper rods offer&nbsp;<strong>finer flow control</strong>&nbsp;and are widely used in slab and bloom casting.</p>

<h3>3.2 Stopper Rod Construction and Materials</h3>

<p>A typical stopper rod assembly consists of:</p>

<ul>
	<li>
	<p><strong>Stopper head (tip)</strong>&nbsp;&ndash; directly contacts molten steel</p>
	</li>
	<li>
	<p><strong>Rod body</strong>&nbsp;&ndash; connects the head to the actuator</p>
	</li>
	<li>
	<p><strong>Protective coatings or sleeves</strong></p>
	</li>
</ul>

<p>Material systems for stopper heads commonly include:</p>

<ul>
	<li>
	<p><strong>Al?O?&ndash;C</strong></p>
	</li>
	<li>
	<p><strong>Al?O?&ndash;ZrO?&ndash;C</strong></p>
	</li>
	<li>
	<p><strong>MgO&ndash;C</strong>&nbsp;(for specific steel grades)</p>
	</li>
</ul>

<p>The stopper head must exhibit:</p>

<ul>
	<li>
	<p>Excellent erosion resistance</p>
	</li>
	<li>
	<p>High thermal shock resistance</p>
	</li>
	<li>
	<p>Minimal steel adhesion</p>
	</li>
	<li>
	<p>Dimensional stability during long casting sequences</p>
	</li>
</ul>

<p>The rod body is often made from&nbsp;<strong>dense alumina</strong>&nbsp;or&nbsp;<strong>fiber-reinforced refractories</strong>, sometimes protected by insulating sleeves.</p>

<h3>3.3 Wear and Failure Issues</h3>

<p>Common problems include:</p>

<ul>
	<li>
	<p>Erosion of stopper tip leading to unstable flow</p>
	</li>
	<li>
	<p>Build-up of alumina inclusions</p>
	</li>
	<li>
	<p>Cracking due to repeated thermal cycling</p>
	</li>
	<li>
	<p>Misalignment with the seating block</p>
	</li>
</ul>

<p>Advanced stopper designs optimize tip geometry and material gradients to improve service life and flow stability.</p>

<hr />
<h2>4. Seating Block</h2>

<h3>4.1 Function of the Seating Block</h3>

<p>The&nbsp;<strong>seating block</strong>&nbsp;(also known as the&nbsp;<strong>upper nozzle block</strong>) is installed at the bottom of the tundish and serves as the&nbsp;<strong>mounting interface between the tundish lining and the tundish nozzle</strong>.</p>

<p>Its primary functions include:</p>

<ul>
	<li>
	<p>Supporting the tundish nozzle</p>
	</li>
	<li>
	<p>Ensuring precise alignment with the stopper rod</p>
	</li>
	<li>
	<p>Providing a tight seal to prevent steel leakage</p>
	</li>
	<li>
	<p>Withstanding high mechanical and thermal stresses</p>
	</li>
</ul>

<p>Although relatively small in size, the seating block is a&nbsp;<strong>critical safety component</strong>.</p>

<h3>4.2 Material Characteristics</h3>

<p>Seating blocks are typically produced from&nbsp;<strong>high-density, high-strength refractory materials</strong>, such as:</p>

<ul>
	<li>
	<p>Dense alumina</p>
	</li>
	<li>
	<p>Alumina-spinel composites</p>
	</li>
	<li>
	<p>Alumina&ndash;zirconia materials</p>
	</li>
</ul>

<p>Key performance requirements:</p>

<ul>
	<li>
	<p>High compressive strength</p>
	</li>
	<li>
	<p>Excellent thermal shock resistance</p>
	</li>
	<li>
	<p>Minimal deformation at casting temperature</p>
	</li>
	<li>
	<p>Good compatibility with nozzle and tundish lining materials</p>
	</li>
</ul>

<p>The bore accuracy and surface flatness of the seating block are extremely important for leak-free operation.</p>

<h3>4.3 Failure Risks</h3>

<p>Potential issues include:</p>

<ul>
	<li>
	<p>Cracking caused by thermal gradients</p>
	</li>
	<li>
	<p>Steel leakage due to poor machining tolerance</p>
	</li>
	<li>
	<p>Chemical attack from aggressive slags</p>
	</li>
	<li>
	<p>Misalignment leading to uneven stopper wear</p>
	</li>
</ul>

<p>Precision manufacturing and proper installation practices are essential to avoid these problems.</p>

<hr />
<h2>5. Other Important Tundish Refractory Items</h2>

<h3>5.1 Tundish Nozzle</h3>

<p><iframe height="314" src="https://www.youtube.com/embed/ctppROYzPuc" width="560"></iframe></p>

<p>The&nbsp;<strong>tundish nozzle</strong>&nbsp;is installed below the seating block and guides molten steel into the mold or SEN. It must resist:</p>

<ul>
	<li>
	<p>Severe erosion</p>
	</li>
	<li>
	<p>Chemical attack</p>
	</li>
	<li>
	<p>Clogging by non-metallic inclusions</p>
	</li>
</ul>

<p>Common materials include&nbsp;<strong>Al?O?&ndash;C</strong>&nbsp;and&nbsp;<strong>ZrO?&ndash;C</strong>, often with anti-clogging additives.</p>

<hr />
<h3>5.2 Sub-Entry Nozzle (SEN)</h3>

<p>The&nbsp;<a href="https://hyrefr.com/product/submerged-entry-nozzle/">SEN</a>&nbsp;connects the tundish to the mold and controls steel delivery into the mold cavity. It plays a vital role in:</p>

<ul>
	<li>
	<p>Mold flow pattern control</p>
	</li>
	<li>
	<p>Slag entrainment prevention</p>
	</li>
	<li>
	<p>Surface quality improvement</p>
	</li>
</ul>

<p>Zirconia-based SENs are widely used due to their superior corrosion resistance.</p>

<hr />
<h3>5.3 Impact Pad</h3>

<p>Installed in the tundish impact zone, the&nbsp;<strong>impact pad</strong>&nbsp;absorbs the kinetic energy of incoming steel from the ladle shroud, reducing lining erosion and turbulence.</p>

<p>Materials are usually:</p>

<ul>
	<li>
	<p>High-alumina castables</p>
	</li>
	<li>
	<p>Spinel-containing refractories</p>
	</li>
</ul>

<hr />
<h3>5.4 Dams and Weirs</h3>

<p>These flow-control refractories optimize steel residence time and inclusion flotation. They are usually made from&nbsp;<strong>insulating or alumina-based materials</strong>&nbsp;and are often disposable.</p>

<hr />
<h2>6. Integration and System Performance</h2>

<p>The performance of tundish refractories should not be evaluated individually but as a&nbsp;<strong>complete functional system</strong>. Proper matching of ladle shroud, stopper rod, seating block, and nozzles ensures:</p>

<ul>
	<li>
	<p>Stable casting</p>
	</li>
	<li>
	<p>Improved steel cleanliness</p>
	</li>
	<li>
	<p>Reduced breakout risk</p>
	</li>
	<li>
	<p>Lower refractory consumption</p>
	</li>
</ul>

<p>Advanced steel plants increasingly work with refractory suppliers to develop&nbsp;<strong>system-based solutions</strong>&nbsp;rather than standalone products.</p>

<hr />
<h2>7. Conclusion</h2>

<p>Refractory products such as the&nbsp;<strong>ladle shroud, stopper rod, and seating block</strong>&nbsp;are indispensable components of the tundish system in continuous casting. Each item serves a distinct function, yet all must work together under extreme thermal, chemical, and mechanical conditions.</p>

<p>With the increasing demand for&nbsp;<strong>clean steel, longer casting sequences, and higher productivity</strong>, the design and material selection of tundish refractories continue to evolve. Innovations in composite materials, anti-oxidation technologies, and precision manufacturing are pushing the performance of these refractory items to new levels.</p>

<p>A deep understanding of these tundish refractories is essential for steelmakers seeking to improve&nbsp;<strong>casting stability, product quality, and overall operational efficiency</strong>.</p>]]></description>
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			<pubDate>Mon, 09 Feb 2026 01:29:30 +0000</pubDate>
			<dc:creator>adam wang</dc:creator>
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			<pubDate>Mon, 09 Feb 2026 01:27:33 +0000</pubDate>
			<dc:creator>adam wang</dc:creator>
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