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	<title>fiberglass medical equipment Archives - BLG Fiberglass</title>
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		<title>Fiberglass in Medical Equipment: Why MRI and CT Housings Use FRP Composites</title>
		<link>https://blgfiberglass.com/fiberglass-medical-equipment-mri-ct-housings/</link>
					<comments>https://blgfiberglass.com/fiberglass-medical-equipment-mri-ct-housings/#respond</comments>
		
		<dc:creator><![CDATA[Sandra C.]]></dc:creator>
		<pubDate>Mon, 08 Jun 2026 17:00:00 +0000</pubDate>
				<category><![CDATA[BLG Resources]]></category>
		<category><![CDATA[composite materials healthcare]]></category>
		<category><![CDATA[CT scanner housing]]></category>
		<category><![CDATA[fiberglass medical equipment]]></category>
		<category><![CDATA[FRP composites medical]]></category>
		<category><![CDATA[medical fiberglass manufacturing]]></category>
		<category><![CDATA[MRI housing fiberglass]]></category>
		<category><![CDATA[RF transparent composites]]></category>
		<guid isPermaLink="false">https://blgfiberglass.com/?p=3091</guid>

					<description><![CDATA[<p>  In this article Why medical equipment uses fiberglass 5 Reasons Fiberglass is Used in Healthcare RF transparency and MRI compatibility Key fiberglass medical applications Material properties that matter in healthcare Manufacturing process for medical housings Frequently asked questions Fiberglass medical equipment housings are everywhere in clinical environments, but most people never notice them. The [...]</p>
<p>The post <a href="https://blgfiberglass.com/fiberglass-medical-equipment-mri-ct-housings/">Fiberglass in Medical Equipment: Why MRI and CT Housings Use FRP Composites</a> appeared first on <a href="https://blgfiberglass.com">BLG Fiberglass</a>.</p>
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<div class="wp-block-group gilblog-toc">
<h3>In this article</h3>
<ul>
<li><a href="#why-fiberglass-medical">Why medical equipment uses fiberglass</a></li>
<li><a href="#medical-benefits-summary">5 Reasons Fiberglass is Used in Healthcare</a></li>
<li><a href="#rf-transparency">RF transparency and MRI compatibility</a></li>
<li><a href="#fiberglass-medical-applications">Key fiberglass medical applications</a></li>
<li><a href="#material-properties">Material properties that matter in healthcare</a></li>
<li><a href="#manufacturing-process">Manufacturing process for medical housings</a></li>
<li><a href="#faq">Frequently asked questions</a></li>
</ul>
</div>
<p>Fiberglass medical equipment housings are everywhere in clinical environments, but most people never notice them. The smooth white shell surrounding an MRI machine, the curved enclosure on a CT scanner, the protective casing on ultrasound units: these are almost universally made from fiberglass-reinforced plastic (FRP), not metal or standard thermoplastic. BLG Fiberglass manufactures <a href="https://blgfiberglass.com/industries/medical/">fiberglass medical enclosures</a> from our Toronto facility, and the reasons the industry standardized on this material are worth understanding if you are specifying a housing for diagnostic or therapeutic equipment.</p>
<p><strong>Fiberglass (FRP) is the standard material for medical equipment housings—such as MRI and CT scanners—because it offers unmatched radio-frequency (RF) transparency, non-magnetic properties, large-scale dimensional stability, and a smooth, easily cleanable surface that meets strict healthcare sanitation requirements.</strong></p>
<h2 id="why-fiberglass-medical">Why medical equipment uses fiberglass</h2>
<p>Fiberglass became the dominant housing material for medical imaging equipment not because of any single property, but because it satisfies a combination of requirements that no alternative matches cleanly. Steel is too heavy and electromagnetically problematic. Standard thermoplastics can meet some requirements but fall short on dimensional stability at the scale of large imaging housings. Fiberglass fills the gap.</p>
<p>The core requirements that fiberglass meets for medical applications include radio-frequency transparency, dimensional stability at large scales, a smooth cleanable surface, sufficient structural stiffness for equipment that may weigh hundreds of kilograms, and the ability to be formed into complex ergonomic curves that make clinical environments feel less industrial. No other material checks every box at comparable cost.</p>
<div id="medical-benefits-summary" style="background-color: #f9fafb; border-left: 4px solid #1a3a5c; padding: 18px 24px; margin: 32px 0;">
<h3 style="margin: 0 0 16px; font-size: 18px; color: #1a3a5c;">5 Reasons Fiberglass is Used in Healthcare</h3>
<ol style="margin: 0; padding-left: 20px; line-height: 1.8;">
<li><strong>RF Transparency:</strong> Does not interfere with MRI radio-frequency signals.</li>
<li><strong>Non-Magnetic:</strong> Contains no ferrous metals, eliminating projectile hazards in MRI rooms.</li>
<li><strong>Dimensional Stability:</strong> Holds complex shapes at large scales without warping or creeping.</li>
<li><strong>Chemical Resistance:</strong> Gel-coated surfaces withstand harsh hospital-grade disinfectants.</li>
<li><strong>Structural Stiffness:</strong> Supports heavy patient loads and maintains strict alignment tolerances.</li>
</ol>
</div>
<div class="wp-block-group gilblog-dyk">
<h4>Did you know?</h4>
<p>A typical 1.5-tesla MRI machine generates a magnetic field roughly 30,000 times stronger than Earth&#8217;s magnetic field. Any ferromagnetic metal in the patient bore area is not just a nuisance; it becomes a projectile hazard. Fiberglass composites contain no ferrous metals, making them essential for MRI bore liners and inner housings.</p>
</div>
<figure class="wp-block-image size-large aligncenter"><img fetchpriority="high" decoding="async" width="1200" height="896" class="wp-image-3085" src="https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-medical-housing-manufacturing-body-2026.webp" alt="Technician manufacturing fiberglass medical equipment housing in Toronto facility" srcset="https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-medical-housing-manufacturing-body-2026.webp 1200w, https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-medical-housing-manufacturing-body-2026-300x224.webp 300w, https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-medical-housing-manufacturing-body-2026-1024x765.webp 1024w, https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-medical-housing-manufacturing-body-2026-768x573.webp 768w" sizes="(max-width: 1200px) 100vw, 1200px" /><figcaption class="wp-element-caption">Fiberglass composite manufacturing for medical equipment housings at BLG Fiberglass Toronto.</figcaption></figure>
<h2 id="rf-transparency">RF transparency and MRI compatibility</h2>
<p>MRI machines work by emitting radio-frequency pulses and detecting the signal returned by hydrogen atoms in body tissue. Any conductive or ferromagnetic material inside the bore or near the RF coil attenuates that signal, distorts the image, or generates artifacts that make diagnostics unreliable. This is not a marginal concern. A metal screw in the wrong location can render an MRI image clinically unusable.</p>
<p>Fiberglass-reinforced plastic is inherently RF-transparent. The glass fibers are dielectric, meaning they do not conduct electricity. The resin matrix is similarly non-conductive. A well-designed fiberglass component introduces essentially zero signal interference inside an MRI bore. Carbon fiber composites, by contrast, are electrically conductive and are generally excluded from the MRI bore region for this reason.</p>
<div class="wp-block-group gilblog-poa" style="background-color: #f0f4ff;">
<h4>People often ask: can fiberglass composites be used inside an MRI bore?</h4>
<p>Yes. Fiberglass FRP is one of the only structural materials that can be used inside or adjacent to the MRI bore without image interference. It is non-ferrous, non-conductive, and dimensionally stable under the temperature and humidity conditions typical of MRI suites. Manufacturers use fiberglass for bore liners, patient table surfaces, and inner housing structures specifically because of these properties.</p>
</div>
<figure class="wp-block-image size-large aligncenter"><img decoding="async" width="768" height="1376" class="wp-image-3087" src="https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-medical-equipment-properties-infographic-2026.webp" alt="Fiberglass in medical equipment properties: RF transparency, MRI compatibility, stability comparison" srcset="https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-medical-equipment-properties-infographic-2026.webp 768w, https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-medical-equipment-properties-infographic-2026-167x300.webp 167w, https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-medical-equipment-properties-infographic-2026-572x1024.webp 572w" sizes="(max-width: 768px) 100vw, 768px" /><figcaption class="wp-element-caption">Why fiberglass FRP is the preferred material for medical equipment housings.</figcaption></figure>
<h2 id="fiberglass-medical-applications">Key fiberglass medical applications</h2>
<p>Medical equipment manufacturers use fiberglass across a wider range of components than most purchasing teams realize. The most visible applications are the large housings on imaging equipment, but the material appears throughout the clinical environment.</p>
<h3>MRI machine housings and bore liners</h3>
<p>The exterior shell and bore liner of an MRI machine are the most demanding fiberglass applications in medical manufacturing. The bore liner must maintain dimensional accuracy across temperature swings generated by gradient coil heating, must not introduce RF artifacts, and must present a smooth surface that the patient lies adjacent to for up to an hour. Fiberglass manufactured with tight quality control satisfies all three. Typical bore liners are made from woven glass fabric in an epoxy or vinyl ester matrix, laminated to achieve target stiffness with minimum weight.</p>
<h3>CT scanner housings</h3>
<p>CT scanner housings do not have the same MRI compatibility constraint, but the design requirements are still demanding. The housing must be rigid enough to maintain gantry alignment tolerances while being light enough that two technicians can manage the assembly during installation. The outer surface must be non-porous and cleanable with hospital-grade disinfectants without degrading. Fiberglass housings meet these requirements and can be produced in large one-piece sections that eliminate visible seams, which collect bacteria and complicate cleaning protocols.</p>
<h3>Patient table and couch surfaces</h3>
<p>MRI and CT patient table surfaces are almost universally carbon-free fiberglass laminates. The table must support patient weights up to 250 to 300 kg over a cantilevered span, must be RF-transparent, and must present a smooth, low-friction upper surface. Fiberglass with a gel coat finish achieves the necessary combination of stiffness, surface quality, and RF performance. For CT applications where X-ray attenuation matters, low-density glass fabric systems are specified to minimize beam hardening artifacts.</p>
<h3>Radiation therapy and linear accelerator components</h3>
<p>Linear accelerators (LINACs) used for radiation therapy require treatment head covers and patient positioning aids that are transparent to therapeutic X-ray beams. Fiberglass composites have low X-ray attenuation compared to metals, and they can be fabricated in the complex curved forms needed for treatment head geometry. Patient immobilization masks and bolus materials also rely on the formability of composite systems.</p>
<h3>Ultrasound and portable diagnostic equipment</h3>
<p>Portable diagnostic equipment needs housings that are light, impact-resistant, and easy to disinfect between patients. Fiberglass handles impact better than most thermoplastics at the same wall thickness, and unlike metal, it does not add mass that makes portable units difficult to reposition. Hand lay-up and RTM both produce viable housings for this category; the choice depends on production volume and whether both surfaces need a finished appearance.</p>
<div class="wp-block-group gilblog-protip">
<h4>Pro tip</h4>
<p>When specifying fiberglass for an MRI application, confirm with the composite manufacturer that no metallic fibers, carbon fiber, or conductive fillers are used in the laminate or gel coat. Even small quantities of electrically conductive material in a gel coat pigment can cause unexpected image artifacts. Request material data sheets and MRI compatibility test reports from the manufacturer.</p>
</div>
<h2 id="material-properties">Material properties that matter in healthcare</h2>
<p>Specifying materials for medical equipment is more constrained than industrial applications. The regulatory environment, the cleaning chemicals used in clinical settings, and the patient-contact considerations all impose requirements that do not exist in automotive or marine work. Here is how fiberglass performs against the criteria that actually matter in a healthcare context.</p>
<div style="overflow-x: auto; -webkit-overflow-scrolling: touch; width: 100%;">
<table style="width: 100%; border-collapse: collapse; min-width: 420px; font-size: 0.92rem;">
<thead>
<tr style="background: #002147; color: #fff;">
<th style="padding: 10px 12px; text-align: left; font-weight: 600;">Property</th>
<th style="padding: 10px 12px; text-align: left; font-weight: 600;">Fiberglass FRP</th>
<th style="padding: 10px 12px; text-align: left; font-weight: 600;">ABS / PC thermoplastic</th>
<th style="padding: 10px 12px; text-align: left; font-weight: 600;">Stainless steel</th>
</tr>
</thead>
<tbody>
<tr style="background: #f8f9fa;">
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;"><strong>RF transparency</strong></td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Excellent</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Good</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Poor (reflective)</td>
</tr>
<tr>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;"><strong>MRI compatibility</strong></td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Excellent</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Good</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Not compatible</td>
</tr>
<tr style="background: #f8f9fa;">
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;"><strong>Chemical resistance</strong></td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Very good with gel coat</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Moderate</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Excellent</td>
</tr>
<tr>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;"><strong>Weight</strong></td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Low to medium</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Low</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">High</td>
</tr>
<tr style="background: #f8f9fa;">
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;"><strong>Large-format dimensional stability</strong></td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Excellent</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Poor (creep, warp)</td>
<td style="padding: 9px 12px; border-bottom: 1px solid #e5e7eb;">Excellent</td>
</tr>
<tr>
<td style="padding: 9px 12px;"><strong>Complex curved geometry</strong></td>
<td style="padding: 9px 12px;">Excellent</td>
<td style="padding: 9px 12px;">Good (thermoforming)</td>
<td style="padding: 9px 12px;">Difficult, expensive</td>
</tr>
</tbody>
</table>
</div>
<p>The combination of RF transparency, large-format dimensional stability, and formability into complex curves is where fiberglass has no direct competitor in medical equipment manufacturing. Thermoplastics warp at large scales. Steel is ferromagnetic. Fiberglass addresses all three limitations simultaneously.</p>
<figure class="wp-block-image size-large aligncenter"><img decoding="async" width="1200" height="655" class="wp-image-3086" src="https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-composite-surface-medical-grade-body-2026.webp" alt="Medical-grade fiberglass composite surface showing smooth cleanable finish" srcset="https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-composite-surface-medical-grade-body-2026.webp 1200w, https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-composite-surface-medical-grade-body-2026-300x164.webp 300w, https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-composite-surface-medical-grade-body-2026-1024x559.webp 1024w, https://blgfiberglass.com/wp-content/uploads/2026/04/blg-fiberglass-composite-surface-medical-grade-body-2026-768x419.webp 768w" sizes="(max-width: 1200px) 100vw, 1200px" /><figcaption class="wp-element-caption">Medical-grade FRP surface: non-porous, smooth, and compatible with hospital disinfection protocols.</figcaption></figure>
<h2 id="manufacturing-process">Manufacturing process for medical housings</h2>
<p>Medical equipment housings are typically produced using one of three processes, chosen based on production volume, surface requirements, and geometry complexity.</p>
<h3>Hand lay-up for low volumes and prototypes</h3>
<p>For prototype housings, custom single installations, or low-volume medical devices where 1 to 50 units per year is the target, <a href="https://blgfiberglass.com/services/">hand lay-up FRP</a> is the most practical approach. Tooling costs are lower, lead times are shorter, and design changes between generations are less costly. Surface finish on the mold-face side is controlled by the gel coat; the back face requires secondary finishing if both sides need a clinical appearance.</p>
<h3>RTM for mid-volume with closed-mold surface quality</h3>
<p>When the housing needs finished surfaces on all visible faces and volume justifies the tooling investment, resin transfer molding is the preferred process. The closed mold produces consistent wall thickness, eliminates the variable surface quality of hand lay-up, and reduces worker exposure to styrene. For an imaging equipment housing running 200 to 2,000 units per year, RTM typically offers the best balance of quality and economics.</p>
<h3>Vacuum forming for non-structural panels</h3>
<p>Non-structural cover panels, access doors, and trim components on medical equipment are frequently produced by <a href="https://blgfiberglass.com/vacuum-forming-process/">vacuum forming</a> in ABS or high-impact polystyrene. These materials do not offer the structural performance or RF transparency of fiberglass, but for cosmetic panels that carry no structural load and are not adjacent to MRI RF coils, they provide a cost-effective option with fast cycle times.</p>
<div class="wp-block-group gilblog-poa" style="background-color: #f0f4ff;">
<h4>People often ask: what certifications does fiberglass need for medical equipment?</h4>
<p>Medical equipment housings typically need to meet IEC 60601-1 for electrical safety (relevant to materials in patient-accessible zones), ISO 10993 biocompatibility testing if there is any patient contact, and UL 94 flame ratings (usually V-0 for housings in electrical equipment). The composite manufacturer should provide material certifications and be able to support the OEM&#8217;s regulatory submission with documented material data. Gel coat selection matters: some pigments contain trace metals that can cause MRI artifacts or fail biocompatibility screening.</p>
</div>
<div style="overflow-x: auto;">
<div class="gilblog-related" style="background: #f0f4f8; border: 1px solid #dce3ea; border-radius: 8px; padding: 24px 24px 16px; margin: 32px 0;">
<p style="font-weight: 600; font-size: 17px; margin: 0 0 16px; color: #002147;">Keep reading</p>
<ul style="margin: 0; padding: 0; list-style: none; display: flex; flex-direction: column; gap: 10px;">
<li><a style="color: #002147; text-decoration: underline;" href="https://blgfiberglass.com/aluminum-vs-fiberglass-corrosion-guide/">Fiberglass vs aluminum corrosion: why industrial sectors are switching</a></li>
<li><a style="color: #002147; text-decoration: underline;" href="https://blgfiberglass.com/hand-lay-up-fiberglass-how-frp-composites-are-made-and-why-industry-prefers-them/">Hand lay-up fiberglass: how FRP composites are made and why industry prefers them</a></li>
<li><a style="color: #002147; text-decoration: underline;" href="https://blgfiberglass.com/what-is-fiberglass-used-for-key-industries-and-applications/">What is fiberglass used for: key industries and applications</a></li>
</ul>
</div>
</div>
<div style="background: #f0f4f8; border: 1px solid #dce3ea; border-radius: 8px; padding: 20px 24px; margin: 32px 0; display: flex; align-items: center; gap: 16px; flex-wrap: wrap;">
<div style="flex: 1; min-width: 200px;">
<p style="font-weight: 600; margin: 0 0 4px; color: #002147;">Download: Fiberglass Medical Equipment Specification Guide</p>
<p style="margin: 0; font-size: 13px; color: #666;">Material properties, MRI compatibility checklist, disinfection guide, and manufacturing process selection. Free PDF.</p>
</div>
<p><a style="background: #002147; color: #fff; text-decoration: none; padding: 10px 20px; border-radius: 4px; font-weight: 600; white-space: nowrap;" href="https://blgfiberglass.com/wp-content/uploads/2026/04/blg-medical-fiberglass-specification-guide-2026.pdf" download="">Download PDF</a></div>
<div class="gilblog-faq" style="margin: 32px 0;">
<h2 id="faq">Frequently asked questions</h2>
<details style="border: 1px solid #d1d5db; border-radius: 6px; margin: 6px 0; overflow: hidden;">
<summary style="padding: 14px 16px; cursor: pointer; font-weight: 600; background: #f9fafb; display: flex; justify-content: space-between; align-items: center;">Is fiberglass safe for patient-contact surfaces in medical equipment?<span style="font-size: 1.1em;">+</span></summary>
<div style="padding: 12px 16px 16px;">
<p>Fiberglass FRP can be made safe for incidental patient contact, but the resin system and surface coating must be specified correctly. Fully cured epoxy and vinyl ester resins with appropriate gel coat finishes pass ISO 10993 biocompatibility screening for brief, incidental skin contact. For surfaces with prolonged skin contact, additional testing and formulation work may be required. Always confirm biocompatibility requirements with the regulatory team before specifying materials.</p>
</div>
</details>
<details style="border: 1px solid #d1d5db; border-radius: 6px; margin: 6px 0; overflow: hidden;">
<summary style="padding: 14px 16px; cursor: pointer; font-weight: 600; background: #f9fafb; display: flex; justify-content: space-between; align-items: center;">Can fiberglass housings be painted or refinished in the field?<span style="font-size: 1.1em;">+</span></summary>
<div style="padding: 12px 16px 16px;">
<p>Yes. Fiberglass gel coat surfaces can be repaired and repainted using two-part polyurethane topcoats that are compatible with hospital cleaning chemicals. Minor scratches in gel coat can be buffed. More significant damage can be filled, faired, and repainted to match. This repairability is an advantage over injection-molded thermoplastic panels, which typically require full part replacement when scratched through the surface.</p>
</div>
</details>
<details style="border: 1px solid #d1d5db; border-radius: 6px; margin: 6px 0; overflow: hidden;">
<summary style="padding: 14px 16px; cursor: pointer; font-weight: 600; background: #f9fafb; display: flex; justify-content: space-between; align-items: center;">What is the typical lead time for a custom fiberglass medical housing?<span style="font-size: 1.1em;">+</span></summary>
<div style="padding: 12px 16px 16px;">
<p>Lead time depends on mold complexity and production volume. A hand lay-up prototype housing can typically be produced in 6 to 10 weeks from finalized drawings. An RTM tool and first production samples run 12 to 20 weeks. Production parts after tooling approval are typically 4 to 8 weeks depending on queue and complexity. These are general benchmarks; projects with complex geometry, embedded inserts, or tight tolerances run longer.</p>
</div>
</details>
<details style="border: 1px solid #d1d5db; border-radius: 6px; margin: 6px 0; overflow: hidden;">
<summary style="padding: 14px 16px; cursor: pointer; font-weight: 600; background: #f9fafb; display: flex; justify-content: space-between; align-items: center;">Does BLG Fiberglass have experience with medical equipment housings?<span style="font-size: 1.1em;">+</span></summary>
<div style="padding: 12px 16px 16px;">
<p>Yes. BLG Fiberglass manufactures fiberglass components for the medical sector including diagnostic equipment housings and structural enclosures. Our Toronto facility handles pattern development, CNC mold fabrication, lamination, gel coat finishing, painting, and secondary hardware installation. We work with OEM customers on both prototype and production programs. <a href="https://blgfiberglass.com/contact/">Contact us</a> to discuss your project requirements.</p>
</div>
</details>
<details style="border: 1px solid #d1d5db; border-radius: 6px; margin: 6px 0; overflow: hidden;">
<summary style="padding: 14px 16px; cursor: pointer; font-weight: 600; background: #f9fafb; display: flex; justify-content: space-between; align-items: center;">How does fiberglass perform under hospital disinfection protocols?<span style="font-size: 1.1em;">+</span></summary>
<div style="padding: 12px 16px 16px;">
<p>Fiberglass with a properly formulated gel coat is resistant to most hospital-grade disinfectants including quaternary ammonium compounds, hydrogen peroxide solutions, and chlorine-based disinfectants at standard clinical concentrations. Prolonged exposure to high-concentration bleach or phenolic disinfectants can attack some gel coat formulations over time. Specify a gel coat system designed for chemical resistance and confirm compatibility with the specific disinfectants used in the target clinical environment.</p>
</div>
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<p>BLG Fiberglass produces custom <a href="https://blgfiberglass.com/industries/medical/">fiberglass medical equipment housings</a> from our Toronto manufacturing facility. Whether you are developing a new diagnostic platform or need a production supplier for an established device, our team can assess your geometry, volume, and regulatory requirements and recommend the most appropriate manufacturing approach. Use our <a href="https://blgfiberglass.com/contact/">project inquiry form</a> to start the conversation.</p>
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<p>The post <a href="https://blgfiberglass.com/fiberglass-medical-equipment-mri-ct-housings/">Fiberglass in Medical Equipment: Why MRI and CT Housings Use FRP Composites</a> appeared first on <a href="https://blgfiberglass.com">BLG Fiberglass</a>.</p>
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