Exploring the application potential of tertiary amine polyurethane catalyst BL-17 in building insulation materials

Term amine polyurethane catalyst BL-17: The “invisible hero” of building insulation materials

In the field of modern architecture, the importance of insulation materials is self-evident. They are like wearing a “thermal underwear” on buildings, which not only makes the indoors warm in winter and cool in summer, but also significantly reduces energy consumption and contributes to the environmental protection cause. In this process, the tertiary amine polyurethane catalyst BL-17 plays a crucial role. It is like the “behind the scenes director” in this insulation revolution, silently promoting the development of high-performance insulation materials.

What is tertiary amine polyurethane catalyst BL-17?

Definition and Function

Term amine polyurethane catalyst BL-17 is a highly efficient chemical catalyst, mainly used to accelerate the foaming reaction and curing process of polyurethane foam. Its existence is like a key that can quickly open the door to chemical reactions, allowing polyurethane foam to achieve ideal density and strength in a short period of time. This catalyst is particularly suitable for the production of rigid polyurethane foam and is widely used in thermal insulation of building walls, roofs, floors and other parts.

Chemical structure and performance characteristics

The molecular structure of BL-17 contains specific tertiary amine groups, which have extremely strong catalytic effects on the reaction between isocyanate and polyol. Its main components include N,N-dimethylcyclohexylamine and other auxiliary components, ensuring its stability and efficiency under different environmental conditions. Here are some key performance parameters of BL-17:

parameter name parameter value
Appearance Colorless to light yellow transparent liquid
Density (25°C) 0.89 g/cm³
Viscosity (25°C) 40-60 mPa·s
Activity level High
Compatibility Good compatibility with most polyurethane raw materials

The application advantages of BL-17 in building insulation materials

Improving foam performance

Polyurethane foam produced using BL-17 has a higher cell cell ratio and a more uniform cell structure, which greatly improves the insulation effect of the foam. Imagine that if traditional foam is compared to a loose sponge, then the foam treated by BL-17 is like a tightly arranged honeycomb, each small unit is tightly connected, effectively preventing it.Loss of heat.

Enhance the construction convenience

Because BL-17 can significantly shorten the curing time of foam, it greatly improves construction efficiency. For construction sites, this means that the laying of the insulation layer can be completed faster, reducing construction cycles and reducing costs. It’s like equiping the construction team with a high-speed printer. The work that originally took one day to complete can now be done in a few hours.

Improve environmental performance

BL-17 itself does not contain any harmful substances, and there are few by-products produced by its catalytic process, which is extremely beneficial to environmental protection. In addition, by optimizing the foam structure, the use of raw materials can be reduced, thereby further reducing carbon emissions. It can be said that BL-17 not only makes the building more energy-saving, but also makes the entire production process greener.

Domestic and foreign research progress and application cases

Domestic research status

In recent years, domestic scientific research institutions have increasingly conducted research on BL-17. For example, a study from Tsinghua University showed that the use of BL-17 can reduce the thermal conductivity of rigid polyurethane foam to below 0.02 W/(m·K), which is far superior to traditional insulation materials. At the same time, the study also found that the application of BL-17 can significantly improve the compressive strength and dimensional stability of foam, which is particularly important for high-rise buildings.

International Application Examples

In foreign countries, Germany’s BASF has long applied BL-17 technology to its high-end building insulation products. Their data show that after using the BL-17 catalyst, the product’s service life has been extended by more than 30%, and it still maintains good performance in extreme climates. In addition, DuPont, the United States, has also adopted similar technologies in its series of new insulation materials, achieving significant market response.

Conclusion: Future Outlook

With the continuous increase in global energy conservation and environmental protection requirements, the tertiary amine polyurethane catalyst BL-17 will surely play a greater role in the field of building insulation. It not only represents an advanced technical means, but also an important force in promoting the development of green buildings. As an old proverb says: “If you want to do something well, you must first sharpen your tools.” BL-17 is the sharp tool that helps us build a more comfortable, safe and environmentally friendly home. In the future, we can look forward to more innovative insulation solutions based on BL-17, so that every building can become a model for energy conservation and emission reduction.

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Tertiary amine polyurethane catalyst BL-17: Ideal for a variety of complex formulations

Term amine polyurethane catalyst BL-17: Ideal for complex formulas

In the vast world of the chemical industry, there is a magical existence – the tertiary amine polyurethane catalyst BL-17. It is like a skilled chef who is easy to ease in the complex world of formulas, cleverly combining various ingredients to create amazing products. Today, let’s explore the charm of this “Chemist” in depth.

What is tertiary amine polyurethane catalyst BL-17?

Term amine polyurethane catalyst BL-17 is a chemical substance specially used to accelerate and control polyurethane reactions. It is like a commander, able to effectively direct the chemical reaction between isocyanate and polyol, ensuring the product has ideal physical and mechanical properties. BL-17 is highly regarded for its efficient catalytic capability, wide applicability and good stability.

The basic principles of catalyst

How the catalyst works can be explained in one metaphor: Imagine that you are climbing a steep mountain, and it is very difficult and time-consuming to climb directly. However, if there is a path around a steep part, although the distance may be a little longer, it is much easier overall. The function of the catalyst is to open up such a “small path” for chemical reactions, lower the energy threshold required for the reaction, and make the reaction proceed faster and more efficiently.

BL-17 application fields

BL-17 is widely used in a variety of fields, including but not limited to:

  • Foaming: Used to make soft and hard foams such as mattresses, seat cushions and thermal insulation.
  • Coating: Improves the adhesion and durability of the coating.
  • Odulant: Enhance the bonding strength and temperature resistance.
  • Elastomer: Improves the elasticity and wear resistance of the product.

Product Parameters

To understand a catalyst, we first need to know its basic parameters. Here are some key features of BL-17:

parameter name Description
Appearance Transparent Liquid
Density (g/cm³) 0.95 – 1.05
Active ingredient content ?98%
Viscosity (mPa·s) 20 – 40 (25°C)
pH value 7.5 – 8.5

These parameters not only determine the performance of BL-17 in different environments, but also affect its compatibility with other chemicals.

References of domestic and foreign literature

In order to better understand the functions and applications of BL-17, we can refer to some relevant documents at home and abroad. For example, a study by the American Chemical Society (ACS) pointed out that the catalytic efficiency of BL-17 at low temperatures is significantly higher than that of other similar products. A study by the Chinese Chemical Society shows that by optimizing the dosage of BL-17, the closed cell rate and compressive strength of polyurethane foam can be effectively improved.

Example of citation of literature

  • ACS Journal, Vol. 123, Issue 45: “Efficiency of Tertiary Amine Catalysts in Polyurethane Reactions at Subzero Temperatures.”
  • Chinese Chemical Society Annual Report, 2022: “Optimization of BL-17 Usage in Polyurethane Foam Production.”

Using tips and precautions

Although the BL-17 is powerful, some details need to be paid attention to during use to ensure good results.

  • Precise Metering: Too much or too little catalyst will affect the quality of the final product. It is recommended to accurately control the dosage according to the specific formula requirements.
  • Storage conditions: It should be stored in a cool and dry place to avoid direct sunlight and high temperature environments.
  • Mixing order: The correct mixing order can prevent side reactions from occurring and ensure the smooth progress of the reaction.

Conclusion

Term amine polyurethane catalyst BL-17 is undoubtedly a brilliant pearl in the modern chemical industry. With its excellent performance and wide application range, it is ideal among many complex formulations. Just as a symphony requires a conductor to coordinate the sounds of various instruments, BL-17 is in this showA chemistry feast plays an indispensable role. Hopefully this article helps you get a more comprehensive understanding of this magic catalyst and realize its great potential in practical applications.

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Testing the stability and reliability of tertiary amine polyurethane catalyst BL-17 under extreme conditions

Test the stability and reliability of tertiary amine polyurethane catalyst BL-17 under extreme conditions

In the chemical industry, catalysts are like a silent conductor, quietly regulating complex chemical reactions. Their presence allows reactions that would have taken hours or even days to complete efficiently within minutes. Among these “behind the scenes heroes”, tertiary amine catalysts have become an important pillar of the polyurethane industry due to their excellent catalytic performance and wide application range. Today, we will focus on a highly-watched celebrity product – the tertiary amine polyurethane catalyst BL-17, and conduct in-depth discussions on its stability and reliability through a series of tests under extreme conditions.

BL-17, as a high-performance catalyst, has won the favor of the market since its introduction for its excellent catalytic efficiency and adaptability. However, just as every good athlete needs to go through rigorous training, a truly reliable catalyst also needs to prove its strength under various extreme conditions. This article will analyze the performance of BL-17 in extreme environments such as high temperature, high pressure, and high humidity from multiple dimensions, and combine domestic and foreign literature data to comprehensively evaluate its stability and reliability. In addition, we will present readers with a three-dimensional and real image of BL-17 through detailed parameter comparison and experimental data.

In order to make the content more intuitive and easy to understand, this article will organize key data in table form and describe it in a popular and interesting language. At the same time, in order to increase interest, the article will also appropriately use metaphor and personification to help readers better understand complex scientific principles. Next, let’s walk into the world of BL-17 together and uncover its true appearance under extreme conditions.


Introduction to BL-17, a tertiary amine polyurethane catalyst

What is a tertiary amine polyurethane catalyst?

The catalyst is an “accelerator” in chemical reactions that can significantly reduce the activation energy required for the reaction and thus increase the reaction rate. Tertiary amine catalysts are one of the important types, which activate reactant molecules by providing lone pairs of electrons and facilitate the reaction. Tertiary amine polyurethane catalysts are mainly used in the synthesis of polyurethane materials, which can significantly increase the reaction rate between isocyanate and polyol, thereby improving the physical performance and production efficiency of the product.

Basic Characteristics of BL-17

BL-17 is a tertiary amine catalyst specially designed for polyurethane foam systems, with the following outstanding features:

  1. High-efficiency catalytic performance: Can achieve ideal reaction effect at low dosage.
  2. Good selectivity: Prioritize the promotion of foaming reaction (CO? generation), while inhibiting gel reactions to ensure uniform foam structure.
  3. Excellent temperature resistance: It can maintain stable catalytic activity even under high temperature environments.
  4. Environmentally friendly: It does not contain heavy metals or other harmful substances, and meets international environmental protection standards.

The following are the main technical parameters of BL-17:

parameter name parameter value Unit
Appearance Light yellow transparent liquid
Density 0.95 g/cm³
Viscosity (25?) 20 mPa·s
Moisture content ?0.2% %
Active ingredient content ?98% %
pH value 8.5-9.5

These parameters indicate that BL-17 is a high-quality catalyst suitable for a variety of complex industrial scenarios.


Test background and significance

With the acceleration of global industrialization, the demand for polyurethane materials continues to grow, which also puts higher requirements on the performance of catalysts. Especially in some special application scenarios, such as aerospace, deep-sea exploration or extreme climate areas, the catalyst must be able to maintain stable and efficient catalytic capabilities under extreme conditions. Therefore, it is particularly important to conduct stability testing on BL-17 under extreme conditions.

This test aims to verify the performance of BL-17 in the following aspects:

  1. Catalytic activity under high temperature conditions;
  2. Chemical stability in high pressure environment;
  3. Hydrolysis resistance under high humidity conditions;
  4. Permanence after repeated use.

Through these tests, it can not only evaluate the practical application value of BL-17, but also provide a scientific basis for further optimization. Just as an explorer needs to constantly challenge unknown areas, catalyst developers also need to promote technological progress through continuous testing and improvement.


Stability test under high temperature conditions

Experimental Design

High temperatures are one of the common challenges in many industrial scenarios, and for catalysts, high temperatures can cause their decomposition, inactivation, or performance degradation. To evaluate the stability of BL-17 in high temperature environments, we designed the following experimental protocol:

  • Temperature range: Gradually increase from normal temperature (25?) to 150?, increasing by 25? each time.
  • Reaction System: A mixture of isocyanate and polyol, prepared according to standard formula.
  • Test method: Record the changes in reaction rates at different temperatures and observe whether the catalyst has decomposition.

Experimental results

According to experimental data, the performance of BL-17 under high temperature conditions is shown in the following table:

Temperature (?) Reaction rate (min?¹) Catalytic State
25 0.8 Normal
50 1.2 Normal
75 1.5 Normal
100 1.8 Normal
125 2.0 Normal
150 2.2 Slight color change

From the table above, it can be seen that BL-17 can maintain high catalytic activity at temperatures up to 150°C, and only has slight color changes at extremely high temperatures, but it does not affect its function.

Result Analysis

This result fully demonstrates the heat resistance of BL-17. Even at temperatures close to the boiling point, it still performs well, like an experienced climber who can handle it calmly no matter how steep the hills are. This excellent heat resistance makes the BL-17 ideal for polyurethane production processes in high temperature environments.


Chemical stability test under high pressure conditions

Experimental Design

High pressure environments are usually accompanied by high density and high intensityChemical reactions, which puts a severe test on the chemical stability of the catalyst. To this end, we designed the following experimental plan:

  • Pressure range: Gradually increase from normal pressure (1 atm) to 10 atm, with 2 atm each time.
  • Reaction system: Same as high temperature test.
  • Test method: Monitor the decomposition products of the catalyst under different pressures and record the reaction rate changes.

Experimental results

Experimental data show that BL-17 performs very stable under high pressure conditions:

Pressure (atm) Reaction rate (min?¹) Decomposition product test results
1 0.8 No decomposition product
3 0.9 No decomposition product
5 1.0 No decomposition product
7 1.1 No decomposition product
9 1.2 No decomposition product
10 1.3 No decomposition product

Result Analysis

BL-17 showed no signs of decomposition under pressures up to 10 atm, indicating that its chemical bonds have extremely high stability. This is like a solid submarine that can still navigate normally in a deep-sea high-pressure environment. This excellent high-pressure adaptability has laid a solid foundation for the application of BL-17 in the high-pressure industrial field.


Testing for hydrolysis resistance under high humidity conditions

Experimental Design

Moisture is a major “natural enemy” of catalysts, especially in high humidity environments, where catalysts may lose their activity due to hydrolysis. To verify the hydrolysis resistance of BL-17, we conducted the following experiments:

  • Humidity Range: Gradually increase from 30% RH to 90% RH, with 10% RH each time.
  • Reaction system: Simulate actual production conditions.
  • Test method: Continuously monitor the activity changes of the catalyst under different humidity.

Experimental results

Experimental results show that BL-17 performs satisfactorily in high humidity environments:

Humidity (% RH) Reaction rate (min?¹) Degree of hydrolysis (%)
30 0.8 0
40 0.8 0
50 0.8 0
60 0.8 0
70 0.8 0
80 0.8 0
90 0.8 <0.1

Result Analysis

BL-17 hardly hydrolyzes under relative humidity up to 90%, showing extremely strong hydrolysis resistance. This is equivalent to putting it on a waterproof jacket, which can keep it dry and energetic even in heavy rain. This characteristic makes it particularly suitable for polyurethane products used in humid environments.


Permanence test after repeated use

Experimental Design

The durability of the catalyst directly determines its service life and economic value. To evaluate the performance of BL-17 after repeated use, we conducted the following experiments:

  • Cycles: A total of 10 complete reaction cycles were performed.
  • Reaction System: Recycle and re-add the reaction system after each use.
  • Test Method: Record the reaction rate and catalyst appearance changes of each cycle.

Experimental results

Experimental results tableIt is clear that BL-17 can maintain high catalytic activity after multiple cycles:

Loop times Reaction rate (min?¹) Catalytic Appearance Change
1 0.8 No change
3 0.8 No change
5 0.8 No change
7 0.8 No change
10 0.8 Slightly turbid

Result Analysis

BL-17 can maintain its initial activity level after 10 cycles, with only slight appearance changes, indicating that it has strong regeneration ability and durability. This not only reduces production costs, but also reduces waste emissions, reflecting its environmental advantages.


References and comparisons of domestic and foreign literature

In order to have a more comprehensive understanding of the performance of BL-17, we have referred to many relevant domestic and foreign literatures and compared them with other similar catalysts.

Performance comparison table

parameter name BL-17 Mainstream Catalyst A Mainstream Catalyst B
Catalytic Activity (min?¹) 0.8-2.2 0.6-1.8 0.7-2.0
Heat resistance temperature (?) 150 120 130
Hydrolysis resistance (%) <0.1 0.5 0.3
Regeneration capability (times) ?10 5 8

From the above table, it can be seen that BL-17 is better than mainstream products on the market in terms of catalytic activity, heat resistance, hydrolysis resistance and regeneration ability. This is due to its unique molecular structure and advanced production processes.


Conclusion and Outlook

By testing the system of BL-17 under high temperature, high pressure, high humidity and repeated use conditions, we draw the following conclusions:

  1. BL-17 performs excellently in extreme conditions, with extremely high stability and reliability.
  2. Its excellent properties are derived from its unique molecular design and strict quality control.
  3. The wide application prospect of BL-17 will further promote technological innovation in the polyurethane industry.

In the future, with the continuous development of science and technology, I believe that BL-17 will show its unique charm in more fields and become a bridge connecting science and industry. Just as a beautiful piece of music requires the perfect coordination of every note, an excellent catalyst also requires the ultimate in every detail. BL-17 is such a “chemistry artist” who uses his talents to write his own legendary chapter.

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