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		<title>Glass on UV Curing Global</title>
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		<description>Recent content in Glass on UV Curing Global</description>
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			<lastBuildDate>Fri, 03 Jul 2026 11:13:48 +0800</lastBuildDate>
		
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				<title>UV curing lamp for glass bonding</title>
				<link>http://uv-curing-global.com/en/posts/uv-curing-lamp-for-glass-bonding/</link>
				<pubDate>Fri, 03 Jul 2026 11:13:48 +0800</pubDate>
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				<description>&lt;p&gt;&lt;img src=&#34;http://uv-curing-global.com/images/75bb99bd990872cf480712bdbadfde26.png&#34; alt=&#34;UV curing lamp for glass bonding&#34;&gt;&lt;/p&gt;&#xA;&lt;p&gt;On the press, speed isn’t the only constraint. You need consistent cross-linking on glass—no micro-voids, no heat stress, and no adhesion coming undone. In glass bonding, the lamp has to deliver a stable dose right at the bond line, day after day, even when line speed and ambient temperature are moving around.&lt;/p&gt;&#xA;&lt;h2 id=&#34;what-matters-technically&#34;&gt;What matters, technically&lt;/h2&gt;&#xA;&lt;p&gt;With glass bonding, it comes down to spectral output and irradiance. If those aren’t right, the photoinitiator won’t fully respond before the fixture clears the cure zone.&#xA;A high-pressure mercury vapor lamp, built for stable output, typically gives you strong peaks at 365 nm and 395 nm, plus solid output across the UVA band. That broad-band profile lines up with the photoinitiators in adhesives and coatings used on glass, so you get a fast surface cure and the deeper through-cure you need where it counts.&#xA;Spec the lamp power based on application width and the energy density you have to hit. For example, a 120 W/cm lamp running at 10 m/min can land around 800 mJ/cm² at the substrate—assuming the reflector keeps tight focal control.&#xA;Peak irradiance at the bond line has to be high enough to push through absorption and shadowing. So we pair the lamp with a dichroic-coated reflector that cuts IR heat load and keeps substrate temperature within tolerance.&#xA;Lamp life is predictable: with the right ballast and cooling, output holds within ±5% for 2,000–3,000 hours, then drifts down gradually. Keep a radiometer on it, and swap lamps before the dose drops below the adhesive’s threshold.&lt;/p&gt;</description>
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				<title>Quartz glass transmittance UV</title>
				<link>http://uv-curing-global.com/en/posts/quartz-glass-transmittance-uv/</link>
				<pubDate>Thu, 28 May 2026 02:42:02 +0800</pubDate>
				<guid>http://uv-curing-global.com/en/posts/quartz-glass-transmittance-uv/</guid>
				<description>&lt;p&gt;&lt;img src=&#34;http://uv-curing-global.com/images/202304ad6af0f8b478173f2775b1fe8a.png&#34; alt=&#34;Quartz glass transmittance UV&#34;&gt;&lt;/p&gt;&#xA;&lt;h2 id=&#34;introduction&#34;&gt;Introduction&lt;/h2&gt;&#xA;&lt;p&gt;Let&amp;rsquo;s talk about UV curing in printing plants. It&amp;rsquo;s the kind of step that can make or break your whole operation. If your lamp can&amp;rsquo;t keep up, it becomes the bottleneck that slows everything down.&#xA;So we built our quartz UV lamps around one simple, non-negotiable idea: they have to deliver consistent power, day after day, with barely any drop-off. That reliability comes down to the quartz itself, &lt;a href=&#34;https://goldisgood.com&#34;&gt;which&lt;/a&gt; lets the UV light blast through with full force. Pair that with a long-life filament and a rock-solid arc design, and you&amp;rsquo;ve got something special.&#xA;When your lamp stays strong, your line doesn&amp;rsquo;t grind to a halt for bulb swaps. And that means your cost per piece goes down. Just like that.&lt;/p&gt;</description>
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