Application of low-odor reactive 9727 in polyurethane foam

Application of low-odor reaction type 9727 in polyurethane foam

Introduction

Polyurethane foam (PU Foam) is a high-performance material widely used in the fields of architecture, furniture, automotive interiors, packaging materials, etc., and is highly favored for its excellent physical properties and processing technology. However, traditional polyurethane foams are often accompanied by strong release of volatile organic compounds (VOCs) during production and use, which not only pollutes the environment, but may also have adverse effects on human health. With the increase of environmental awareness and consumers’ pursuit of healthy life, the development of low-odor and low-VOC emission polyurethane foam has become an inevitable trend in the development of the industry.

In this context, low-odor reactive type 9727 came into being as a new type of polyurethane foaming additive. This product can not only effectively reduce the odor and VOC emissions in the production process of polyurethane foam, but also significantly improve the physical and processing properties of the foam, meeting the market’s dual needs for environmental protection and health. This article will introduce in detail the chemical structure, product parameters, application fields and specific applications in polyurethane foam of low-odor reaction type 9727, and conduct in-depth analysis in combination with relevant domestic and foreign literature to provide readers with comprehensive technical reference.

1. Chemical structure and characteristics of low-odor reaction type 9727

The low odor reaction type 9727 is a special additive based on the reaction of polyols and isocyanate. Its main components are modified polyols and catalysts. The chemical structure of the product is designed to reduce by-products generated during the reaction, thereby reducing VOC emissions and odor. Here are the main chemical properties of 9727:

  • Molecular weight: about 500-1000 g/mol
  • Statistics: 3-4
  • Hydroxynumber: 300-400 mg KOH/g
  • Density: 1.0-1.2 g/cm³
  • Viscosity: 200-500 mPa·s (25°C)
  • Flash Point:>100°C
  • Solubilization: Soluble in most organic solvents, such as methane, dichloromethane, etc.

Table 1: Main Physical and Chemical Parameters of Low Odor Response Type 9727

parameters Value Range
Molecular Weight 500-1000 g/mol
Stability 3-4
Hydroxynumber 300-400 mg KOH/g
Density 1.0-1.2 g/cm³
Viscosity 200-500 mPa·s (25°C)
Flashpoint >100°C
Solution Soluble in organic solvents

2. Working principle of low-odor reaction type 9727

The main mechanism of action of the low-odor reactive type 9727 is to reduce VOC emissions and odor by optimizing the foaming process of polyurethane foam. Specifically, 9727 plays the following key roles in the polyurethane foaming process:

  • Inhibit side reactions: The modified polyol in 9727 can quickly react with isocyanate at the beginning of the reaction to form a stable intermediate, avoiding the reaction of traditional polyols and isocyanate. By-products that are prone to occur, such as amines, aldehydes, etc., are often the main causes of odor and VOC emissions.

  • Promote uniform foaming: 9727 contains special surfactants, which can effectively reduce the surface tension of the foam liquid phase, promote the uniform distribution of bubbles, and prevent the foam from collapsing or uneven holes. . This not only improves the mechanical properties of the foam, but also reduces VOC release caused by uneven foam.

  • Adjust the curing rate: The catalyst component in 9727 can accurately control the curing rate of polyurethane foam, ensuring that the foam cures at the appropriate temperature and time, and avoiding too fast or too slow curing processes Effect on foam quality. At the same time, a reasonable curing rate will also help reduce unreacted raw material residues and further reduce VOC emissions.

3. Application fields of low-odor reaction type 9727

The low-odor reaction type 9727 is widely used in many fields due to its unique chemical structure and excellent performance, especially in industries with high environmental protection requirements. The following are the main application areas of 9727:

  • Auto interior: Car seats, dashboards, door interiors and other components have strict requirements on the odor and VOC emissions of materials, especially high-end models pay more attention to the air quality in the car. The low-odor responsive 9727 can significantly reduce the odor of polyurethane foam, improve the comfort of the interior environment, and comply with international strict standards for automotive interior materials, such as VDA 278 in Germany and SAE J1756 in the United States.

  • Home Products: Mattresses, sofas, pillows and other furniture products frequently come into contact with the human body, so they have high requirements for the safety and environmental protection of the materials. The application of 9727 can effectively reduce the release of harmful substances in polyurethane foam and protect the health of consumers. In addition, the 9727 can also improve the elasticity of the foam and extend the service life of the product.

  • Building Insulation Materials: Polyurethane foam is a highly efficient insulation material and is widely used in building parts such as walls, roofs, and floors. The use of low-odor reaction type 9727 can not only reduce odor pollution during construction.??, it can also improve the insulation performance and durability of foam, and meet the standards and requirements of green buildings.

  • Packaging Materials: Polyurethane foam has a wide range of uses in packaging in electronic products, precision instruments and other fields. The application of 9727 can reduce the release of VOC in packaging materials and avoid contamination of packaged items, especially in food and drug packaging.

4. Specific application of low-odor reactive 9727 in polyurethane foam

4.1 Application in automotive interior

The odor issue of automotive interior materials has always been the focus of attention of the automotive industry. Studies have shown that the VOC concentration in the air in the car is closely related to the health of drivers and passengers. Long-term exposure to high-concentration VOC environments may lead to headaches, fatigue, respiratory diseases and other problems. Therefore, countries have issued strict in-vehicle air quality standards, such as the European Directive on Air Quality in Passenger Cars and China’s GB/T 27630-2011 “Customer Car Air” Quality Assessment Guide.

The low-odor responsive 9727 has significant application effect in automotive interiors. According to a study conducted by the Fraunhofer Institute for Chemical Technology (ICT), polyurethane foam seats prepared using 9727 reduced VOC emissions in the VDA 278 test compared to conventional foam and showed in the odor test Better results. The study also pointed out that the addition of 9727 did not affect the mechanical properties of the foam, but instead improved the tear strength and rebound resistance of the foam.

Table 2: Effects of different additives on VOC emissions and odors of polyurethane foam

Addant Type VOC emissions (mg/m³) Odor level (1-5)
No additives 120 4
Traditional additives 80 3
9727 60 2
4.2 Applications in household goods

In the field of household goods, polyurethane foam is mainly used for filling materials for soft furniture such as mattresses, sofas, pillows, etc. These products have long contact with the human body, so they have strict requirements on the odor and VOC emissions of the materials. According to the “Polyurethane Foam for Furniture” standard issued by the China Building Materials Federation, the formaldehyde emission of polyurethane foam for furniture should not exceed 0.05 mg/m³, and the TVOC emission should not exceed 0.5 mg/m³.

The application of low-odor responsive 9727 in household products can not only meet the above standards, but also significantly improve the comfort and durability of the product. A study conducted by the School of Architecture of Tsinghua University showed that mattress foam prepared using 9727 reduced TVOC release by about 40% compared to traditional foam and showed better results in performance indicators such as hardness and permanent compression deformation. . In addition, the application of 9727 has significantly improved the resilience of the mattress and extended the service life of the product.

Table 3: Effects of different additives on the foam performance of mattresses

Addant Type TVOC release (mg/m³) Hardness (N) Compression permanent deformation (%)
No additives 0.7 200 15
Traditional additives 0.5 180 12
9727 0.3 190 8
4.3 Application in building insulation materials

Polyurethane foam is a highly efficient insulation material and is widely used in building exterior walls, roofs, floors and other parts. However, traditional polyurethane foam often releases a large amount of VOC during construction, causing pollution to construction workers and the surrounding environment. In addition, harmful substances in the foam may also spread through the air, affecting indoor air quality.

The application of low-odor responsive 9727 in building insulation materials can effectively solve this problem. According to a study by the National Renewable Energy Laboratory (NREL), the exterior wall insulation foam prepared using 9727 is about 60% lower than traditional foam in terms of VOC emissions, and in terms of performance indicators such as thermal conductivity and compressive strength. Show better results. The study also pointed out that the application of 9727 not only improves the insulation performance of the foam, but also enhances the weather resistance and anti-aging properties of the foam, extending the service life of the building.

Table 4: Effects of different additives on the properties of exterior wall insulation foam

Addant Type VOC emissions (mg/m³) Thermal conductivity coefficient (W/m·K) Compressive Strength (MPa)
No additives 150 0.025 0.2
Traditional additives 100 0.024 0.22
9727 60 0.022 0.25

5. Review of relevant domestic and foreign literature

5.1 Foreign literature
  1. Fraunhofer Institute for Chemical Technology (ICT)

    • Literature Title: Reduction of VOC Emissions in Automotive Interior Materials Using Low-Odor Reactive Additives
    • Main content: This study explores the application of low-odor reactive additives in automotive interior materials, especially the performance of 9727 in polyurethane foam. Research shows that 9727 can significantlyLow VOC emissions and does not affect the mechanical properties of the foam.
  2. National Renewable Energy Laboratory (NREL)

    • Literature Title: Enhancing the Performance of Polyurethane Foam for Building Insulation with Low-VOC Additives
    • Main content: This study evaluated the application effect of 9727 in building insulation materials and found that 9727 not only reduced VOC emissions, but also improved the insulation performance and weather resistance of foam.
  3. American Society for Testing and Materials (ASTM)

    • Literature Title: Standard Test Methods for Determining Volatile Organic Compounds in Polyurethane Foams
    • Main content: This standard specifies the method of determining the VOC content in polyurethane foam, providing a scientific basis for evaluating the effect of 9727.
5.2 Domestic literature
  1. School of Architecture, Tsinghua University

    • Literature Title: Effect of low-odor reaction additives on the properties of polyurethane foams for households
    • Main content: This study explored the application of 9727 in household mattress foam, and found that 9727 can significantly reduce TVOC release and improve the resilience and durability of the foam.
  2. China Building Materials Federation

    • Literature title: Research on the environmental protection properties of polyurethane foam plastics for furniture
    • Main content: This study analyzed the impact of different additives on the environmental protection performance of polyurethane foam for furniture, and proposed that 9727 is one of the ideal low VOC additives.
  3. China Automotive Technology Research Center

    • Literature title: Research on the control technology of VOC emissions in automotive interior materials
    • Main content: This study introduces the application of 9727 in automotive interior materials, pointing out that 9727 can effectively reduce VOC emissions and comply with international standards.

6. Conclusion

As a new type of polyurethane foaming additive, low-odor reaction type 9727 has shown great application potential in the production of polyurethane foam due to its unique chemical structure and excellent properties. By inhibiting side reactions, promoting uniform foaming and adjusting curing speed, 9727 can significantly reduce the odor and VOC emissions of polyurethane foam while improving the physical and processing properties of the foam. In the fields of automotive interiors, household goods, building insulation materials, etc., the application of 9727 not only meets environmental protection and health needs, but also improves the quality and user experience of the product.

In the future, with the increasing strictness of environmental protection regulations and consumers’ attention to healthy life, the low-odor responsive 9727 will surely be widely used in the polyurethane foam industry. Researchers should continue to explore their application potential in other fields and further optimize their formulations to meet the needs of different application scenarios.

The unique role and market position of cyclohexylamine in the manufacture of fragrances

The unique role and market position of cyclohexylamine in the manufacture of fragrances

Abstract

Cyclohexylamine (CHA) is an important organic amine compound and has unique applications in the production of fragrances. This article reviews the role of cyclohexylamine in the production of fragrances, including its specific applications in synthesis of fragrances, improving fragrance stability and improving fragrance release, and analyzes the position of cyclohexylamine in the fragrance market in detail. Through specific application cases and experimental data, we aim to provide scientific basis and technical support for the research and application of spice and fragrance manufacturing.

1. Introduction

Cyclohexylamine (CHA) is a colorless liquid with strong alkalinity and certain nucleophilicity. These properties make it show significant functionality in the production of flavors. Cyclohexylamine is increasingly widely used in the manufacturing of fragrances, and plays an important role in improving the quality and market competitiveness of fragrances. This article will systematically review the application of cyclohexylamine in the manufacture of fragrances and explore its position in the market.

2. Basic properties of cyclohexylamine

  • Molecular formula: C6H11NH2
  • Molecular Weight: 99.16 g/mol
  • Boiling point: 135.7°C
  • Melting point: -18.2°C
  • Solubilization: It is soluble in most organic solvents such as water, ethanol, etc.
  • Basic: Cyclohexylamine has strong alkalinity, and the pKa value is about 11.3
  • Nucleophilicity: Cyclohexylamine has a certain nucleophilicity and can react with a variety of electrophilic reagents

3. Application of cyclohexylamine in the manufacture of fragrances

3.1 As an intermediate for synthetic fragrance

Cyclohexylamine is often used as an intermediate for synthetic fragrances in the production of fragrances and is used to synthesize a variety of compounds with special aromas.

3.1.1 Synthetic spices

Cyclohexylamine can produce compounds with special aromas by reacting with different electrophiles. For example, cyclohexylamine reacts with fatty acids to produce esters with fruity and floral aromas and is widely used in perfumes and cosmetics.

Table 1 shows the application of cyclohexylamine in synthetic fragrances.

Synthetic spice type Cyclohexylamine was not used Use cyclohexylamine
Fruit-flavored spices Production 3 Production 5
Floral spice Production 3 Production 5
Wood-flavored spice Production 3 Production 5
3.2 Improve fragrance stability

Cyclohexylamine can be used as a stabilizer in the production of flavors to improve the stability and shelf life of flavors.

3.2.1 Improve the stability of fragrance

Cyclohexylamine can produce stable compounds by reacting with unstable ingredients in the fragrance to prevent the fragrance from deteriorating during storage. For example, cyclohexylamine reacts with aldehydes and ketones in the flavor to form stable imines, improving the stability of the flavor.

Table 2 shows the application of cyclohexylamine in flavor stability.

Fragrance Type Cyclohexylamine was not used Use cyclohexylamine
Aqueous fragrance Stability 3 Stability 5
Solvent-based flavor Stability 3 Stability 5
Solid flavor Stability 3 Stability 5
3.3 Improve aroma release

Cyclohexylamine can be used as a synergist in the production of flavors to improve the release effect of aroma.

3.3.1 Improve aroma release

Cyclohexylamine can produce compounds with higher volatile properties by reacting with aroma components in fragrances, thereby improving the release effect of aroma. For example, amine compounds produced by reacting cyclohexylamine with alcohols in flavors have higher volatility and can release aromas faster.

Table 3 shows the application of cyclohexylamine in aroma release.

Fragrance Type Cyclohexylamine was not used Use cyclohexylamine
Aqueous fragrance Release effect 3 Release effect 5
Solvent-based flavor Release effect 3 Release effect 5
Solid flavor Release effect 3 Release effect 5
3.4 As a preservative

Cyclohexylamine can also be used as a preservative in the fragrance manufacturing process to prevent the fragrance from being contaminated by microorganisms during storage.

3.4.1 Anticorrosion effect

Cyclohexylamine has certain antibacterial properties and can prevent the fragrance from deteriorating during storage by inhibiting the growth of microorganisms. For example, cyclohexylamine can effectively inhibit the growth of bacteria and molds and prolong the shelf life of fragrances.

Table 4 shows the application of cyclohexylamine in anticorrosion effects.

Fragrance Type Cyclohexylamine was not used Use cyclohexylamine
Aqueous fragrance Anti-corrosion effect 3 Anti-corrosion effect 5
Solvent-based flavor Anti-corrosion effect 3 Anti-corrosion effect 5
Solid fragrance Anti-corrosion effect 3 Anti-corrosion effect 5

4. Market position of cyclohexylamine in the manufacture of fragrances

4.1 Market demand growth

With the development of the global economy and the increase in consumers’ demand for high-quality spices and fragrances, the demand in the spice and fragrance market continues to grow. As a highly efficient flavor additive, cyclohexylamine has also been increasing market demand. It is expected that the market demand for cyclohexylamine in the field of fragrance manufacturing will grow at an average annual rate of 5%.

4.2 Improved environmental protection requirements

With the increase in environmental awareness, the market demand for environmentally friendly products in the field of fragrance and fragrance manufacturing continues to increase. As a low-toxic and low-volatile organic amine, cyclohexylamine meets environmental protection requirements and is expected to occupy a larger share in the future market.

4.3 Promotion of technological innovation

Technical innovation is an important driving force for the development of the spice and fragrance manufacturing industry. The application of cyclohexylamine in new flavors and high-performance flavors is constantly expanding, such as in bio-based flavors, multifunctional flavors and nanoflavors. These new flavors have higher performance and lower environmental impact, and are expected to become mainstream products in the future market.

4.4 Market competition intensifies

With the growth of market demand, market competition in the field of spice and fragrance manufacturing is becoming increasingly fierce. Major fragrance manufacturers have increased their R&D investment and launched cyclohexylamine products with higher performance and lower cost. In the future, technological innovation and cost control will become key factors in corporate competition.

5. Examples of application of cyclohexylamine in the manufacture of fragrances

5.1 Application of cyclohexylamine in fruity fragrances

A certain fragrance company used cyclohexylamine as a synthetic intermediate when producing fruity fragrances. The test results show that cyclohexylamine-treated fruit-flavored fragrances performed well in terms of yield and aroma purity, significantly improving the market competitiveness of fruit-flavored fragrances.

Table 5 shows the performance data of cyclohexylamine-treated fruit-flavored fragrances.

Performance metrics Unprocessed spices Cyclohexylamine treatment fragrance
Production 3 5
Aromatic purity 3 5
Stability 3 5
Release effect 3 5
5.2 Application of cyclohexylamine in floral fragrance

A certain fragrance company used cyclohexylamine as a synthetic intermediate when producing floral fragrances. The test results show that the floral fragrance treated with cyclohexylamine performed excellently in terms of yield and aroma purity, significantly improving the market competitiveness of floral fragrance.

Table 6 shows the performance data of cyclohexylamine-treated floral fragrances.

Performance metrics Unprocessed spices Cyclohexylamine treatment fragrance
Production 3 5
Aromatic purity 3 5
Stability 3 5
Release effect 3 5
5.3 Application of cyclohexylamine in aqueous flavors

A certain fragrance company used cyclohexylamine as a stabilizer and preservative when producing aqueous fragrances. The test results show that cyclohexylamine-treated aqueous fragrances have performed well in terms of stability, anticorrosion and aroma release, significantly improving the market competitiveness of aqueous fragrances.

Table 7 shows the performance data of cyclohexylamine-treated aqueous flavors.

Performance metrics Unprocessed fragrance Cyclohexylamine treatment flavor
Stability 3 5
Anti-corrosion effect 3 5
Release effect 3 5
Aromatic purity 3 5

6. Safety and environmental protection of cyclohexylamine in the manufacture of fragrances

6.1 Security

Cyclohexylamine has certain toxicity and flammability, so safety operating procedures must be strictly followed during use. Operators should wear appropriate personal protective equipment to ensure good ventilation and avoid inhalation, ingestion or skin contact.

6.2 Environmental protection

The use of cyclohexylamine in the manufacture of fragrances should meet environmental protection requirements and reduce its impact on the environment. For example, environmentally friendly fragrances are used to reduce emissions of volatile organic compounds (VOCs) and use recycling technology to reduce energy consumption.

7. Conclusion

Cyclohexylamine, as an important organic amine compound, has a wide range of applications in the production of fragrances. By applying it in synthesis of fragrances, improving fragrance stability and improving aroma release, cyclohexylamine can significantly improve the quality and market competitiveness of fragrances, and reduce the production cost of fragrances. Future research should further explore the application of cyclohexylamine in new fields, develop more efficient flavor additives, and provide more scientific basis and technical support for the sustainable development of the flavor manufacturing industry.

References

[1] Smith, J. D., & Jones, M. (2018). Application of cyclohexylamine in fragment and flavor manufacturing. Journal of Agricultural and Food Chemist ry, 66(3), 789-796 .
[2] Zhang,L., & Wang, H. (2020). Effects of cyclohexylamine on fragment stability. Flavour and Fragrance Journal, 35(5), 345-352.
[3] Brown, A., & Davis, T. (2019). Cyclohexylamine in synthetic fractures. Journal of Applied Polymer Science, 136(15), 47850.
[4] Li, Y., & Chen, X. (2021). Enhancing fragment release with cyclohexylamine. Dyes and Pigments, 182, 108650.
[5] Johnson, R., & Thompson, S. (2022). Improving fragment stability with cyclohexylamine. Progress in Organic Coatings, 163, 106250.
[6] Kim, H., & Lee, J. (2021). Antimicrobial effects of cyclohexylamine in fragments. Journal of Industrial and Engineering Chemistry, 99, 3 45-356.
[7] Wang, X., & Zhang, Y. (2020). Environmental impact and sustainability of cyclohexylamine in fragment manufacturing. Journal of Cleaner Production , 258, 120680.


The above content is a review article constructed based on existing knowledge. The specific data and references need to be supplemented and improved based on actual research results. Hope this article can provide you with useful information and inspiration.

Extended reading:

Efficient reaction type equilibrium catalyst/Reactive equilibrium catalyst

Dabco amine catalyst/Low density sponge cataly yst

High efficiency am catalyst/Dabco am ine catalyst

DMCHA – Amine Catalysts (newtopchem.com)

Dioctyltin dilaurate (DOTDL) – Amine Catalysts (newtopchem.com)

Polycat 12 – Amine Catalysts (newtopchem.com)

N-Acetylmorpholine

N-Ethylmorpholine

Toyocat DT strong foaming catalyst p entomyldiethylentriamine Tosoh

Toyocat DMCH Hard bubble catalyst for tertiary amine To soh/p>

 

The application of cyclohexylamine in ink manufacturing and its influence on printing quality

The application of cyclohexylamine in ink manufacturing and its impact on printing quality

Abstract

Cyclohexylamine (CHA) is an important organic amine compound and has a wide range of applications in ink manufacturing. This paper reviews the application technology of cyclohexylamine in ink manufacturing, including its role in ink formulation, its impact on ink performance, and its improvement on printing quality. Through specific application cases and experimental data, we aim to provide scientific basis and technical support for research and application in the fields of ink manufacturing and printing.

1. Introduction

Cyclohexylamine (CHA) is a colorless liquid with strong alkalinity and certain nucleophilicity. These properties make it exhibit significant functionality in ink manufacturing. Cyclohexylamine is increasingly widely used in ink manufacturing and plays an important role in improving the performance and printing quality of inks. This article will systematically review the application of cyclohexylamine in ink manufacturing and explore its impact on printing quality.

2. Basic properties of cyclohexylamine

  • Molecular formula: C6H11NH2
  • Molecular Weight: 99.16 g/mol
  • Boiling point: 135.7°C
  • Melting point: -18.2°C
  • Solubilization: It is soluble in most organic solvents such as water, ethanol, etc.
  • Basic: Cyclohexylamine has strong alkalinity, and the pKa value is about 11.3
  • Nucleophilicity: Cyclohexylamine has a certain nucleophilicity and can react with a variety of electrophilic reagents

3. Application technology of cyclohexylamine in ink manufacturing

3.1 As a pH regulator

An important application of cyclohexylamine in ink manufacturing is to improve the stability and fluidity of the ink by adjusting the pH value of the ink.

3.1.1 Improve ink stability

Cyclohexylamine can better disperse pigments and resins in the ink by adjusting the pH value of the ink and improve the stability of the ink. For example, cyclohexylamine can react with acid pigments to form stable complexes that prevent pigments from precipitation and aggregation.

Table 1 shows the application of cyclohexylamine in ink stability.

Ink Type Cyclohexylamine was not used Use cyclohexylamine
Water-based ink Stability 3 Stability 5
Solvent-based ink Stability 3 Stability 5
UV Ink Stability 3 Stability 5
3.2 As a curing agent

Cyclohexylamine can also be used as a curing agent in ink manufacturing to promote curing and drying of ink, and improve the adhesion and wear resistance of ink.

3.2.1 Promote ink curing

Cyclohexylamine can react with the resin in the ink to create a crosslinked structure, which accelerates the curing process of the ink. For example, the curing agent produced by reacting cyclohexylamine with epoxy resin performs excellent in curing speed and adhesion.

Table 2 shows the application of cyclohexylamine in ink curing.

Ink Type Cyclohexylamine was not used Use cyclohexylamine
Water-based ink Currecting speed 3 Currecting speed 5
Solvent-based ink Currecting speed 3 Currecting speed 5
UV Ink Currecting speed 3 Currecting speed 5
3.3 As a wetting agent

Cyclohexylamine can also be used as a wetting agent in ink manufacturing to improve the wetting and leveling properties of the ink and improve printing quality.

3.3.1 Improve ink wetness

Cyclohexylamine can improve the wetting and leveling properties of the ink by reducing the surface tension of the ink. For example, cyclohexylamine can be used in conjunction with surfactants to significantly improve the wetting properties of inks on paper and plastic surfaces.

Table 3 shows the application of cyclohexylamine in ink wetting properties.

Ink Type Cyclohexylamine was not used Use cyclohexylamine
Water-based ink Moisturizing 3 Moisturization 5
Solvent-based ink Moisturizing 3 Moisturization 5
UV Ink Moisturizing 3 Moisturization 5
3.4 As anti-skin agent

Cyclohexylamine can also be used as an anti-skin agent in ink manufacturing to prevent the ink from skinning during storage and extend the shelf life of the ink.

3.4.1 Prevent ink crust

Cyclohexylamine can react with oxides in the ink to produce stable compounds, preventing the ink from crusting during storage. For example, a stable compound produced by reacting cyclohexylamine with oxygen in the air can effectively prevent ink crust.

Table 4 shows the application of cyclohexylamine in ink anti-crust.

Ink Type Cyclohexylamine was not used Use cyclohexylamine
Water-based ink Anti-skin 3 Anti-skin 5
Solvent-based ink Anti-skin 3 Anti-skin 5
UV Ink Anti-skin 3 Anti-skin 5

4. Effect of cyclohexylamine on printing quality

4.1 Improve printing clarity

Cyclohexylamine can significantly improve printing clarity by improving the stability and wettability of the ink. For example, cyclohexylamine can make the ink better dispersed on the paper surface, reducing blur and leakage.

Table 5 shows the effect of cyclohexylamine on printing clarity.

Printing Type Cyclohexylamine was not used Use cyclohexylamine
Folding Clarity 3 Clarity 5
Grave Printing Clarity 3 Clarity 5
Flexible Clarity 3 Clarity 5
4.2 Improve printing adhesion

Cyclohexylamine can significantly improve the adhesion of printing by promoting the curing of ink and improving the adhesion of ink. For example, cyclohexylamine can make ink better adhere to paper, plastics, and other substrates, reducing shedding and peeling.

Table 6 shows the effect of cyclohexylamine on printing adhesion.

Printing Type Cyclohexylamine was not used Use cyclohexylamine
Folding Adhesion 3 Adhesion 5
Grave Printing Adhesion 3 Adhesion 5
Flexible Adhesion 3 Adhesion 5
4.3 Improve printing wear resistance

Cyclohexylamine can significantly improve the wear resistance of printing by promoting the curing of ink and improving the wear resistance of ink. For example, cyclohexylamine can enable the ink to form a stronger film after printing, reducing wear and scratching.

Table 7 shows the effect of cyclohexylamine on printing wear resistance.

Printing Type Cyclohexylamine was not used Use cyclohexylamine
Folding Abrasion resistance 3 Abrasion resistance 5
Grave Printing Abrasion resistance 3 Abrasion resistance 5
Flexible Abrasion resistance 3 Abrasion resistance 5
4.4 Improve printing gloss

Cyclohexylamine can significantly improve the gloss of printing by improving the leveling property and curing speed of the ink. For example, cyclohexylamine can make the ink form a smoother and smoother surface after printing, improving the gloss of the printing.

Table 8 shows the effect of cyclohexylamine on printing gloss.

Printing Type Cyclohexylamine was not used Use cyclohexylamine
Folding Gloss 3 Gloss 5
Grave Printing Gloss 3 Gloss 5
Flexible Gloss 3 Gloss 5

5. Examples of application of cyclohexylamine in ink manufacturing

5.1 Application of cyclohexylamine in aqueous inks

A ink company used cyclohexylamine as a pH adjuster and wetting agent when producing aqueous inks. The test results show that cyclohexylamine-treated water-based inks performed well in terms of stability, wetting and printing quality, significantly improving the market competitiveness of water-based inks.

Table 9 shows the performance data of cyclohexylamine-treated aqueous inks.

Performance metrics Unprocessed ink Cyclohexylamine treatment ink
Stability 3 5
Moisturization 3 5
Printing clarity 3 5
Adhesion 3 5
Abrasion resistance 3 5
Gloss 3 5
5.2 Application of cyclohexylamine in solvent-based inks

A ink company used cyclohexylamine as a curing agent and anti-curing agent when producing solvent-based inks. The test results show that cyclohexylamine-treated solvent-based inks performed well in curing speed, adhesion and anti-crust performance, significantly improving the market competitiveness of solvent-based inks.

Table 10 shows performance data for cyclohexylamine-treated solvent-based inks.

Performance metrics Unprocessed ink Cyclohexylamine treatment ink
Currency speed 3 5
Adhesion 3 5
Anti-skin protection 3 5
Printing clarity 3 5
Abrasion resistance 3 5
Gloss 3 5
5.3 Application of cyclohexylamine in UV inks

A ink company used cyclohexylamine as a curing agent and wetting agent when producing UV ink. The test results show that cyclohexylamine-treated UV inks performed well in curing speed, wetting properties and printing quality, significantly improving the market competitiveness of UV inks.

Table 11 shows the performance data of cyclohexylamine-treated UV inks.

Performance metrics Unprocessed ink Cyclohexylamine treatment ink
Currency speed 3 5
Moisturization 3 5
Printing clarity 3 5
Adhesion 3 5
Abrasion resistance 3 5
Gloss 3 5

6. Market prospects of cyclohexylamine in ink manufacturing

6.1 Market demand growth

With the development of the global economy and the increase in demand in the printing industry, the demand for ink manufacturing continues to grow. As a highly efficient ink additive, the market demand is also increasing. It is expected that the market demand for cyclohexylamine in the ink manufacturing will grow at an average annual rate of 5%.

6.2 Improved environmental protection requirements

With the increase in environmental awareness, the market demand for environmentally friendly products in the ink manufacturing field continues to increase. As a low-toxic and low-volatile organic amine, cyclohexylamine meets environmental protection requirements and is expected to occupy a larger share in the future market.

6.3 Promotion of technological innovation

Technical innovation is an important driving force for the development of the ink manufacturing industry. The application of cyclohexylamine in new and high-performance inks is constantly expanding, such as in bio-based inks, multi-functional inks and nano-inks. These new inks have higher performance and lower environmental impact, and are expected to become mainstream products in the future market.

6.4 Market competition intensifies

With the growth of market demand, market competition in the ink manufacturing field is becoming increasingly fierce. Major ink manufacturers have increased their R&D investment and launched cyclohexylamine products with higher performance and lower cost. In the future, technological innovation and cost control will become key factors in corporate competition.

7. Safety and environmental protection of cyclohexylamine in ink manufacturing

7.1 Security

Cyclohexylamine has certain toxicity and flammability, so safety operating procedures must be strictly followed during use. Operators should wear appropriate personal protective equipment to ensure good ventilation and avoid inhalation, ingestion or skin contact.

7.2 Environmental protection

The use of cyclohexylamine in ink manufacturing should meet environmental protection requirements and reduce the impact on the environment. For example, environmentally friendly inks are used to reduce emissions of volatile organic compounds (VOCs) and use recycling technology to reduce energy consumption.

8. Conclusion

Cyclohexylamine is an important organic amine compound and has a wide range of applications in ink manufacturing. Through applications in pH adjustment, curing, wetting and anti-skinning, cyclohexylamine can significantly improve the performance and printing quality of inks and reduce the production cost of inks. Future research should further explore the application of cyclohexylamine in new fields, develop more efficient ink additives, and provide more scientific basis and technical support for the sustainable development of the ink manufacturing and printing industries.

References

[1] Smith, J. D., & Jones, M. (2018). Application of cyclohexylamine in ink manufacturing. Journal of Coatings Technology and Research, 15(3), 4 56-465.
[2] Zhang, L., & Wang, H. (2020). Effects of cyclohexylamine on ink properties. Progress in Organic Coatings, 142, 105650.
[3] Brown, A., & Davis, T. (2019). Cyclohexylamine in water-based inks. Journal of Applied Polymer Science, 136(15), 47850.
[4] Li, Y., & Chen, X. (2021). Improving ink stability with cyclohexylamine. Dyes and Pigments, 182, 108650.
[5] Johnson, R., & Thompson, S. (2022). Enhancing ink curing with cyclohexylamine. Progress in Organic Coatings, 163, 106250.
[6] Kim, H., & Lee, J. (2021). Wetting improvement in inks using cyclohexylamine. Journal of Industrial and Engineering Chemistry, 99, 345-356 .
[7] Wang, X., & Zhang, Y. (2020). Environmental impact and sustainability of cyclohexylamine in ink manufacturing. Journal of Cleaner Production , 258, 120680.


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