loading

PPE Testing Equipment Manufacturer | Safety Equipment Testing Machines | GESTER


Products

Influencing Factors of Determination of Polyurethane Oxygen Index by Digital Oxygen Index Meter

Polyurethane is the abbreviation of polyurethane, which is a thermal insulation material widely used in construction and industrial equipment and an important material in automobile, shipbuilding, packaging and other industries. However, due to the special structure of polyurethane foam itself, it is very easy to burn, and its oxygen index is only about 17%. The oxygen index is one of the signs to determine its flame retardant performance. The digital oxygen index meter is a test instrument for measuring the oxygen index of polyurethane. Co., Ltd. is a manufacturer, and customers in need are welcome to inquire. Main parameters: 01. Flow adjustment range: 0-10L/min (60-600L/h); 02. Response time: <5S; 03. Flow meter: 1-15L/min (60-900L/H) adjustable; 04. Propane (butane) ignition system, flame length 5mm-60mm can be adjusted freely; 05. Flame length: 16±4mm, size adjustable. 06. Combustion cylinder: inner diameter≥75mm, height 400mm; 07. Gas flow rate in the combustion cylinder: 40mm±2mm/s. In addition, the R&D engineer of (Hong Kong) Co., Ltd. said that the polyurethane oxygen index test will be affected by factors such as environmental conditions, operators, and sample preparation differences. 1. Influence of state adjustment time According to the requirements of the national standard GB/T2918-1988, the state adjustment of the test material is carried out to minimize the influence of environmental accidental factors on the test results. Therefore, the prepared TDCPP flame retardant polyurethane foam sample was selected for comparison test, and the temperature and humidity of the incubator was adjusted to a certain value required by the national standard (temperature: 23°C; relative humidity: 50%; air pressure: 86-106kPa). It can be seen from the test data that with the increase of the conditioning time of the sample, the average value of the oxygen index obtained by the test continues to decrease. When the conditioning time meets a certain time limit, the oxygen index remains stable. The test results of the samples under different adjustment time are different, therefore, the sample should be strictly adjusted according to the standard requirements, and then tested, so as to obtain the accurate oxygen index value under the standard adjustment time. 2. The influence of the ignition method of the sample According to GB/T2406-93, two ignition methods were used to test the oxygen index of the TDCPP flame retardant polyurethane foam sample, and the ignition time was 15s. Top ignition method: let the lowest visible part of the flame touch the top of the sample and cover the entire top surface, do not let the flame touch the edges and side surfaces of the sample. Diffusion ignition method: Fully lower and move the igniter so that the visible part of the flame is simultaneously applied to the top surface and vertical side surface of the sample about 6mm long. It was found that under the same conditions of the same material, different ignition methods had little or no effect on the measurement data of the oxygen index, which was not enough to change the evaluation of the oxygen index of the sample. No matter what kind of ignition method is used, when to remove the ignition source and start timing is to visually judge the ignition situation of the sample with the naked eye, there is a certain error, which may cause an impact on the inspection data, only by increasing the number of tests can we try to do as much as possible. reduce errors. In practice, it is more labor-saving to use the tip ignition method when igniting the sample. 3. Influence of sample length The sample length of the tested product in the national standard is 70-150mm, the purpose is to keep the length of the glass cylinder of the test instrument consistent, so that the oxygen concentration in the small ambient mixed gas in the glass cylinder is uniform constant. It can be seen that the length of the sample has a great influence on the test data. Within the range required by the national standard, the measured oxygen index value continues to increase with the increase of the length of the sample. When the sample length is short, there is still a considerable distance above the combustion area of ​​the tested sample from the top of the cylinder, so the oxygen required for its flame combustion is completely supported by the instrument itself and is not affected by the airflow outside the cylinder. However, as the length of the sample increases, the distance between the combustion area of ​​the tested sample and the top of the cylinder becomes shorter, and the flow of oxygen required for flame combustion is gradually affected by the airflow outside the cylinder. In order to support the flame combustion, the instrument itself must provide more oxygen to meet the flame combustion, resulting in a gradual increase in the measured oxygen concentration. Therefore, the length of the test sample should be specified as a specific value rather than a range value to reduce the influence of indoor ambient air flow on the combustion conditions in the instrument cylinder. 4. Effects of flame retardants As an expensive additive in polyurethane foam, flame retardants play a very important role. The more flame retardants are added, the better, and the effect of flame retardants on foam physical properties should also be considered. effect on mechanical properties. In view of factors such as cost, safety, meeting flame retardant specifications and foam physical and mechanical properties, the use of appropriate flame retardants should be optimized to maximize their effect. Influence of flame retardant addition amount: The data shows that for TDCPP flame retardant, based on polyether polyol, 10Phr of TDCPP can make the oxygen index of PUF to be 23%, and the oxygen index of PUF increases with the amount of flame retardant added. However, after the amount of TDCPP is greater than 15 Phr, and the amount of TDCPP is increased again, the oxygen index of the sample is very limited. Influence of different flame retardants: Different flame retardants have different flame retardant effects in polyurethane foam. With the change of flame retardant content, the change rule of flame retardant effect is also different. Differences and Effects of Flame Retardant Compatibility with Polyurethane Foam.

It has become necessary for GESTER International Co.,Limited to continually cultivate, develop and update their skills to work successfully alongside high-tech.

GESTER International Co.,Limited’s core aim is to afford high-quality products with the concept of manufacturing technology.

The above are only part of the examples regarding textile testing equipment, for more information, please click here GESTER Instruments.

GET IN TOUCH WITH Us
recommended articles
EN ISO 20345 Safety Footwear Standard — How to Choose the ISO 20345 Tester
EN ISO 20345 is the core international standard for general-purpose safety footwear, defining minimum performance requirements for foot protection against various workplace hazards. This article elaborates on the definition, key highlights and mainstream safety classes of the EN ISO 20345 standard, covering applicable industry scenarios. It further provides a systematic step-by-step guide for selecting qualified ISO 20345 testing equipment, involving test item confirmation, equipment performance evaluation and reliable supplier selection. Finally, it introduces professional ISO 20345-compliant testing solutions provided by GESTER for footwear manufacturers and third-party testing institutions.
PPE Testing Laboratory Equipment List
Setting up a PPE testing laboratory requires the right combination of instruments for safety footwear, gloves, protective clothing, masks and safety helmets. This guide explains the core testing equipment used in modern PPE laboratories, the standards they support, and the functions of each instrument, helping manufacturers, third-party laboratories and certification bodies choose a reliable and compliant testing setup.
What is EN 149 & Why is it Important?
EN 149 is the core European standard for particle-filtering half masks and FFP respirators. This article elaborates on the definition, structure, performance classification, marking rules and core advantages of EN 149, compares it with NIOSH N95, KN95, EN 143 and medical mask standards, and lists industry application scenarios, as well as professional mask and filter testing instruments compliant with EN 149 testing requirements.
Why Is Shoe Slip Resistance Tester Important for Footwear Safety?
Slip resistance is one of the most critical performance indicators for modern footwear, especially safety shoes used in industrial and high-risk working environments. Slip and fall accidents frequently occur on wet or smooth surfaces, posing serious risks to workers and consumers. To prevent such accidents and improve product safety, footwear manufacturers widely use professional testing equipment such as Shoe Slip Resistance Tester and Footwear Slip Testing Machine. These devices simulate real walking conditions to measure the coefficient of friction between the shoe sole and various surfaces. This article explores the working principle, features, applications, and industry significance of shoe slip safety tester, explaining why accurate slip resistance testing is essential for footwear safety, product development, quality control, and compliance with international standards.
ISO 20345 vs ASTM F2413: Differences Between Safety Footwear Standards
ISO 20345 and ASTM F2413 are the two most recognized safety footwear standards used worldwide to evaluate protective footwear performance. Although both standards define minimum requirements for impact resistance and compression protection, differences in test energy levels, compression loads, marking systems, and hazard classifications can affect certification results. This article explains the key differences between ISO 20345 and ASTM F2413, helping footwear manufacturers, exporters, and quality control teams select the correct testing standard and improve compliance with international safety requirements.
Why GESTER Ranks as a Leading TPP Thermal Protective Performance Tester Exporter
As a trusted leading TPP Thermal Protective Performance Tester exporter, GESTER International Co., Ltd. brings 25+ years of R&D and manufacturing expertise to PPE safety testing. Our flagship GT-RC02 series TPP testers feature advanced dual-source thermal simulation, high-sensitivity sensors, and full digital automation—delivering precise, repeatable data to evaluate thermal protection for firefighter and industrial protective clothing. Fully compliant with global standards (NFPA 1971, EN 469, ISO), GESTER’s equipment is trusted by SGS, Intertek, and top testing institutes worldwide. Backed by ISO 9001 certification, global service in 160+ countries, and professional calibration support, we empower manufacturers and labs to meet stringent safety regulations and ensure life-saving thermal protection. Discover tailored TPP testing solutions for PPE excellence at GESTER.
 Fabric Pilling Test: How to Choose the Right ICI Pilling Box Tester GT-C18
Fabric pilling directly affects the appearance, durability, and perceived quality of textile products. With global textile brands enforcing stricter testing standards, reliable laboratory testing equipment has become essential for manufacturers. This article explores how fabric pilling tests are conducted and why textile laboratories increasingly invest in professional ICI pilling box testers such as the GT-C18. It explains the advantages of in-house testing, international compliance requirements, key machine components, and important parameters buyers should evaluate before purchasing a pilling tester. By selecting the right equipment, textile companies can achieve faster quality verification, reduce dependence on third-party laboratories, and ensure their fabrics consistently meet international market standards.
What is the Safety Glove & Shoe Upper Cutting Tester GT-KC29
The Safety Glove & Shoe Upper Cutting Tester GT-KC29 is a high-precision testing instrument developed to measure the cut resistance performance of safety gloves and footwear uppers. In industrial and construction environments where sharp tools and metal edges pose significant injury risks, the GT-KC29 provides a reliable evaluation method by simulating real cutting motion. This tester meets EN 388 section 6.2, ISO 20344:2021 section 5.23, GB/T 20991 section 6.14, and other global standards, making it essential for PPE manufacturers, testing laboratories, and quality control departments. With automated operation, high repeatability, and multi-standard compliance, it helps companies improve product safety levels, enhance global competitiveness, and ensure superior protection for end users.
A Complete Guide to Martindale Testing by the Best Martindale Abrasion Tester Supplier
Durability is critical for textiles and footwear, and Martindale testing is the gold standard for measuring abrasion resistance and pilling performance. This guide dives into Martindale testing’s core mechanics (Lissajous figure multi-directional friction), strategies to boost testing accuracy (sample clamping, load calibration, abrasive standardization), and compliance with international standards (ISO 12947, ASTM D4966, EN). As a top Martindale abrasion tester supplier with 25+ years of expertise, GESTER International delivers high-precision instruments (Martindale Abrasion Tester GT-C13B, etc.) certified to ISO 9001 and trusted by SGS, Bureau Veritas, and other global testing institutes. Beyond machinery, GESTER offers global technical support, on-site installation, and calibration services. The guide also includes a procurement framework to help labs select tailored Martindale testing solutions. For reliable, standard-compliant durability testing, GESTER is your trusted partner.
Analyzing the Sweating Guarded Hotplate GT-C98 & Why it is Important
The Sweating Guarded Hotplate GT-C98 is a professional textile testing instrument designed to measure thermal resistance and evaporative resistance of fabrics, garments, and personal protective equipment (PPE). By simulating heat and moisture transfer from human skin, the instrument provides reliable data for evaluating thermal comfort, breathability, and moisture management properties. This article explores the working principle, key features, applications, and importance of the GT-C98, helping manufacturers, laboratories, and researchers improve textile product development and quality assurance.
GESTER International Co., Ltd. gains certificates of ISO 9001, 3A and SGS Audited supplier etc. with advanced design concept, excellent manufacturing technology and strict quality control.
WeChat
Contact us
Tel: +86-595-28886108 
Fax: +86-595-22515221
E-mail: sales10@gester-instruments.com,
                 info@gester-instruments.com
Mobile/Whatapp/ Wechat:  
             + 86(0)18059985379
Address:  No.15, Chifeng Road,Licheng Region, Quanzhou city of Fujian,PR China.
Customer service
detect