• E-Fiberglass Chopped Strand Mat for Roof Translucent Clear Panel Sheet FRP Panel System 1
  • E-Fiberglass Chopped Strand Mat for Roof Translucent Clear Panel Sheet FRP Panel System 2
  • E-Fiberglass Chopped Strand Mat for Roof Translucent Clear Panel Sheet FRP Panel System 3
E-Fiberglass Chopped Strand Mat for Roof Translucent Clear Panel Sheet FRP Panel

E-Fiberglass Chopped Strand Mat for Roof Translucent Clear Panel Sheet FRP Panel

Ref Price:
get latest price
Loading Port:
China main port
Payment Terms:
TT OR LC
Min Order Qty:
50 kg
Supply Capability:
10000 kg/month

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E-Fiberglass Chopped Strand Mat for Roof Translucent Clear Panel Sheet FRP Panel

Product Description:

Chopped strand mat is made from chopped glass fibers, which are bonded with powder or emulsion binders. It can be used in hand lay-up process and continuous laminating process to produce FRP products, such as plates, lighting board, hull, bathtub, cooling towers, anti-corrosion materials, vehicles.

Features:

Uniform thickness, softness and hardness good. 
Good compatibility with resin, easy completely wet-out.
Fast and consistent wet-out speed in resins and good manufacturability.
Good mechanical properties, easy cutting.
Good cover mold, suitable for modeling complex shapes.

Application:

fiberglass thickness  is suitable for application by hand lay-up, reinforce and machine FRP molding,

including interior decoration of vehicles, boat hulls, complete set of sanitary equipment, anticorrosive pipes, tanks, building materials, tables, chairs, panels and all kind of composite FRP products.

Specifications:

Item

Over Density

Moisture Content

Chop Density

Polyester Yarn

Width


(g/m2)

(%)

(g/m2)

(g/m2)

(mm)

EMK300

309.5

≤0.15

300

9.5

50-3300

EMK380

399


380

19


EMK450

459.5


450

9.5


EMK450

469


450

19


EMC0020

620.9


601.9

19


EMC0030

909.5


900

9.5


Special products are available according to customer’s requirement.

Product Packaging:
Each Surface Tissue is wound onto a paper tube which has an inside diameter of 76mm and the mat roll has a diameter of 330mm. The mat roll is wrapped up with plastic film,and then packed in a cardboard box or wrapped up with kraft paper. The rolls can be vertically or horizontally placed. For transportation, the rolls can be loaded into a cantainer directly or on pallets.

E-Fiberglass Chopped Strand Mat for Roof Translucent Clear Panel Sheet FRP Panel
Product Storage:
Unless otherwise specified, Chopped Strand Mat should be stored in a dry, cool and rain-proof area. It is recommended that the room temperature and humidity should be always maintained at 15℃~35℃ and 50%~75% respectively.

Company Information

CNBM (China National Building Material) Group is the largest comprehensive building materials group in China that in integrate scientific research, manufacturing and logistics into one entity. The largest building materials and equipment specialists in China. Upon State Council approval, today CNBM owned more than 300 subordinate manufacturing factories and servicing companies. There are 6 fully owned public listed companies and 11 partially owned with substantial shares public listed companies. In many of these fields, CNBM is playing the leading role in the building industry in the country.

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Order Information

Ordering please specify:

1. the product code, 2. weight, 3. width, 4. order quantity, 5. packaging, 6. special requirements please specify.

FAQ:

1. How long will you get reply?

Any inquiry will be replied within 24 hours. Usually we will reply within 12 hours.

2. How long is warranty period?

We provide 3 year warranty period.

3. What is your MOQ?

Any order quantity is available.

4. Can you provide sample?

Yes, samples are in stock. we can offer free sample for you.

5. Payment terms?

We can accept L/C, T/T, Western Union, Paypal etc.

6. Do you offer OEM service?

Yes, we can print customers’ logo on the packaging;

And the size and specification can be produced and design according to your demand.

7. What is the Production Lead Time?

15-20 days for bulk production after confirm the order.

Q:How is the peel strength of fiberglass chopped strand composites determined?
The peel strength of fiberglass chopped strand composites is determined through a standardized testing method known as the ASTM D3167 test. This test involves applying a tensile force to separate the composite layers and measuring the force required to peel them apart. The result obtained from this test provides an indication of the adhesion strength between the fiberglass strands and the resin matrix, which is crucial for evaluating the overall performance and suitability of the composite material for specific applications.
Q:Can fiberglass chopped strand be used in composite materials?
Yes, fiberglass chopped strand can be used in composite materials. Chopped strand is commonly used as a reinforcement in composite materials to enhance their strength and durability.
Q:Is fiberglass chopped strand suitable for electrical connectors?
Electrical connectors typically do not find fiberglass chopped strand suitable due to its insulating nature and inability to conduct electricity. To ensure proper electrical contact, it is crucial for connectors to be composed of materials with excellent conductivity. Typically, electrical connectors are crafted from copper or other highly conductive metals. Moreover, fiberglass may lack the necessary mechanical strength and durability to withstand the diverse environmental and mechanical strains placed upon connectors.
Q:Can fiberglass chopped strand be used in electrical insulation sheets?
Yes, fiberglass chopped strand can be used in electrical insulation sheets. It offers excellent electrical insulation properties due to its high dielectric strength and low electrical conductivity. Additionally, its mechanical strength and temperature resistance make it suitable for various electrical applications.
Q:How is the density of fiberglass chopped strand determined?
The density of fiberglass chopped strand can be determined by measuring the mass of a known volume of the material. Typically, this is accomplished using a pycnometer, a glass container with a predetermined volume. To begin, the chopped strand is placed inside the pycnometer and its mass is measured. Subsequently, the volume of the pycnometer is determined by filling it with a fluid, such as water, and measuring the displaced volume. By dividing the mass of the chopped strand by the volume of the pycnometer, the density can be calculated. This measurement plays a crucial role in assessing the overall quality and performance of the fiberglass chopped strand across different applications.
Q:What are the safety precautions to be taken while handling fiberglass chopped strand?
When handling fiberglass chopped strand, there are several safety precautions that should be taken to ensure the well-being of individuals. 1. Personal Protective Equipment (PPE): It is essential to wear appropriate PPE when handling fiberglass chopped strand. This includes safety goggles or a face shield to protect the eyes from any loose fibers or particles. Additionally, gloves should be worn to prevent direct contact with the fiberglass, which can cause irritation or cuts on the skin. Long-sleeved shirts and long pants should also be worn to provide further protection. 2. Ventilation: Fiberglass chopped strand should be handled in a well-ventilated area to minimize the inhalation of airborne fibers. If working indoors, open windows and doors or use exhaust fans to ensure proper air circulation. If working outdoors, position yourself upwind to avoid inhaling any fiberglass particles. 3. Proper Storage: Store fiberglass chopped strand in a secure location away from moisture and direct sunlight. This will prevent any potential degradation of the material and ensure its safety for use. 4. Handling Techniques: When handling fiberglass chopped strand, it is important to handle the material with care. Avoid dropping or mishandling the fibers to prevent the release of loose particles into the air. It is recommended to use gloves or tools specifically designed for handling fiberglass to minimize direct contact. 5. Cleanliness and Hygiene: After handling fiberglass chopped strand, individuals should thoroughly wash their hands and exposed skin to remove any loose fibers. It is also important to avoid touching the face, eyes, or mouth during the handling process to prevent accidental ingestion or irritation. 6. Disposal: Proper disposal of fiberglass chopped strand is crucial to prevent any environmental contamination. Dispose of any unused or waste material in accordance with local regulations and guidelines. By following these safety precautions, individuals can minimize the risks associated with handling fiberglass chopped strand and ensure a safe working environment.
Q:Plastic fiber content in how to detect, there are no professional instruments?
The high temperature burned the plastic part and the remaining ash was fiberglass. X light can also be used to produce the content depending on the spectrum of the light produced.
Q:Can fiberglass chopped strand be used in reinforcing concrete?
Yes, fiberglass chopped strand can be used in reinforcing concrete. It helps to improve the overall strength, durability, and crack resistance of the concrete. Additionally, the lightweight and corrosion-resistant properties of fiberglass make it an ideal choice for concrete reinforcement.
Q:Can fiberglass chopped strand be used in thermal insulation materials?
Yes, fiberglass chopped strand can be used in thermal insulation materials. Fiberglass is a versatile material that has excellent thermal insulation properties. The chopped strands can be mixed with other materials, such as resins or binders, to create insulation products that are used in a variety of applications such as walls, roofs, and pipes. The fibers in the chopped strand form a network that traps air, which helps to reduce heat transfer and improve energy efficiency. Additionally, fiberglass is non-combustible and does not release toxic gases when exposed to high temperatures, making it a safe choice for thermal insulation materials.
Q:What are the fatigue strength properties of fiberglass chopped strand?
The fatigue strength properties of fiberglass chopped strand refer to its ability to withstand repeated loading and unloading cycles without experiencing failure or degradation. Fiberglass chopped strand is commonly used in various applications where durability and resistance to fatigue are essential, such as in the automotive industry, construction, and marine applications. The fatigue strength of fiberglass chopped strand is influenced by several factors, including the quality of the resin matrix used to bind the strands together, the length and orientation of the strands, and the overall quality of the manufacturing process. When properly manufactured and processed, fiberglass chopped strand can exhibit excellent fatigue strength properties. Fiberglass chopped strand typically demonstrates a high fatigue life, allowing it to withstand thousands or even millions of loading cycles without failure. This is due to the inherent properties of fiberglass, such as its high tensile strength and stiffness, which can effectively distribute and absorb stress throughout the material. Additionally, the orientation of the chopped strands can have a significant impact on the fatigue strength properties. When the strands are randomly oriented, the fatigue resistance may be lower compared to aligned or continuous fibers. However, the use of advanced manufacturing techniques, such as controlled fiber alignment or weaving, can enhance the fatigue strength properties of fiberglass chopped strand. It is important to note that the fatigue strength of fiberglass chopped strand can be influenced by various external factors, including temperature fluctuations, exposure to chemicals, and environmental conditions. These factors can potentially degrade the material over time, reducing its fatigue resistance. Overall, fiberglass chopped strand is known for its excellent fatigue strength properties when properly manufactured and processed. It offers a durable and reliable material option for applications that require resistance to cyclic loading, making it a popular choice in industries where fatigue resistance is crucial.

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