• https://www.databridgemarketresearch.com/reports/global-hydrogenation-catalyst-market
    https://www.databridgemarketresearch.com/reports/global-hydrogenation-catalyst-market
    Hydrogenation Catalyst Market – Global Industry Trends and Forecast to 2028 | Data Bridge Market Research
    Global Hydrogenation Catalyst Market, By Product Type (Precious Metal Based Hydrogenation Catalyst, Common Metal Based Hydrogenation Catalyst, Alloys, Others), Process Type (Oleochemical Hydrogenation Process, Industrial Hydrogenation Process, Other), Form (Heterogeneous, Homogeneous), End Use (Chemical, Oil and Gas, Pharmaceutical, Polymer), Country (U.S., Canada, Mexico, Brazil, Argentina, Rest of South America, Germany, France, Italy, U.K., Belgium, Spain, Russia, Turkey, Netherlands, Switzerland, Rest of Europe, Japan, China, India, South Korea, Australia, Singapore, Malaysia, Thailand, Indonesia, Philippines, Rest of Asia-Pacific, U.A.E, Saudi Arabia, Egypt, South Africa, Israel, Rest of Middle East and Africa) Industry Trends and Forecast to 2028.
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  • https://www.databridgemarketresearch.com/reports/global-hydrogen-sensor-market
    https://www.databridgemarketresearch.com/reports/global-hydrogen-sensor-market
    WWW.DATABRIDGEMARKETRESEARCH.COM
    Hydrogen Sensor Market – Global Industry Trends and Forecast to 2028 | Data Bridge Market Research
    Global Hydrogen Sensor Market, By Technology (Electrochemical, Metal Oxide Semiconductors, Thermal Conductivity, Palladium, Catalytic), End Use Industry (Automotive, Manufacturing, Oil and Gas, Healthcare, Mining, Aerospace and Defense, Others), Country (U.S., Canada, Mexico, Brazil, Argentina, Rest of South America, Germany, Italy, U.K., France, Spain, Netherlands, Belgium, Switzerland, Turkey, Russia, Rest of Europe, Japan, China, India, South Korea, Australia, Singapore, Malaysia, Thailand, Indonesia, Philippines, Rest of Asia-Pacific, Saudi Arabia, U.A.E, South Africa, Egypt, Israel, Rest of Middle East and Africa) Industry Trends and Forecast to 2028
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  • https://www.databridgemarketresearch.com/reports/global-hydrogen-sensor-market
    https://www.databridgemarketresearch.com/reports/global-hydrogen-sensor-market
    WWW.DATABRIDGEMARKETRESEARCH.COM
    Hydrogen Sensor Market – Global Industry Trends and Forecast to 2028 | Data Bridge Market Research
    Global Hydrogen Sensor Market, By Technology (Electrochemical, Metal Oxide Semiconductors, Thermal Conductivity, Palladium, Catalytic), End Use Industry (Automotive, Manufacturing, Oil and Gas, Healthcare, Mining, Aerospace and Defense, Others), Country (U.S., Canada, Mexico, Brazil, Argentina, Rest of South America, Germany, Italy, U.K., France, Spain, Netherlands, Belgium, Switzerland, Turkey, Russia, Rest of Europe, Japan, China, India, South Korea, Australia, Singapore, Malaysia, Thailand, Indonesia, Philippines, Rest of Asia-Pacific, Saudi Arabia, U.A.E, South Africa, Egypt, Israel, Rest of Middle East and Africa) Industry Trends and Forecast to 2028
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  • Hydrogen Gas Sensor Market Size, Industry Analysis By Type (Electrochemical-Based Hydrogen Sensors, Metal-Oxide Semiconductors-Based Hydrogen Sensors, Thermal Conductivity-Based Hydrogen Sensors, Catalytic Hydrogen Sensors, MEMS Hydrogen Sensors, And Others), By Portability (Fixed And Portable), By Maximum Measurement Range (Hydrogen Sensors <2,000 Ppm, Hydrogen Sensors <5,000 Ppm, Hydrogen Sensors <10,000 Ppm, Hydrogen Sensors <20,000 Ppm, And Hydrogen Sensors Above 20,000 Ppm) & Region - Forecasts 2022-2030
    The global hydrogen gas sensor market is presently valued at USD 685 million and is anticipated to amplify at a CAGR of 6.2%, thereby amassing a valuation of USD 1,250 million by end of the assessment timeline.
    https://wemarketresearch.com/reports/hydrogen-gas-sensor-market/129/
    Hydrogen Gas Sensor Market Size, Industry Analysis By Type (Electrochemical-Based Hydrogen Sensors, Metal-Oxide Semiconductors-Based Hydrogen Sensors, Thermal Conductivity-Based Hydrogen Sensors, Catalytic Hydrogen Sensors, MEMS Hydrogen Sensors, And Others), By Portability (Fixed And Portable), By Maximum Measurement Range (Hydrogen Sensors <2,000 Ppm, Hydrogen Sensors <5,000 Ppm, Hydrogen Sensors <10,000 Ppm, Hydrogen Sensors <20,000 Ppm, And Hydrogen Sensors Above 20,000 Ppm) & Region - Forecasts 2022-2030 The global hydrogen gas sensor market is presently valued at USD 685 million and is anticipated to amplify at a CAGR of 6.2%, thereby amassing a valuation of USD 1,250 million by end of the assessment timeline. https://wemarketresearch.com/reports/hydrogen-gas-sensor-market/129/
    WEMARKETRESEARCH.COM
    Hydrogen Gas Sensor Catalysts Market Size, Share, Growth & Trends 2022-30
    The Global Hydrogen Gas Sensor Market is presently valued at USD 685 million and is anticipated to amplify at a CAGR of 6.2%, thereby amassing a valuation of USD 1,250 million by end of the assessment timeline.
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  • Liquid Hydrogen Market Promising Growth and by Platform Type, Technology and End User Industry Statistics, Scope, Demand by 2030

    Liquid hydrogen is used as a fuel in the rocket engines of launch vehicles, such as the Space Shuttle and the Saturn V, due to its high energy content, low density, and clean combustion products.
    Get Details :- https://wemarketresearch.com/reports/liquid-hydrogen-market/967/
    Liquid Hydrogen Market Promising Growth and by Platform Type, Technology and End User Industry Statistics, Scope, Demand by 2030 Liquid hydrogen is used as a fuel in the rocket engines of launch vehicles, such as the Space Shuttle and the Saturn V, due to its high energy content, low density, and clean combustion products. Get Details :- https://wemarketresearch.com/reports/liquid-hydrogen-market/967/
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  • https://www.databridgemarketresearch.com/reports/global-hydrogen-energy-storage-market
    https://www.databridgemarketresearch.com/reports/global-hydrogen-energy-storage-market
    Hydrogen Energy Storage Market – Global Industry Trends and Forecast to 2030 | Data Bridge Market Research
    Global Hydrogen Energy Storage Market, By Technology (Physical Based, Material Based, Liquid Hydrogen, Metal Hydrides, Carbon Absorption, Underground Salt Caverns), Physical State (Solid, Liquid, Gas), Application (Stationary Power, Transportation, Portable Power, Power Generation, Chemicals, Metal Workings, Utility, Others), End Use (Commercial, Industrial, Residential), Storage Type (Stationary Storage, Physical Storage, Chemical Storage) - Industry Trends and Forecast to 2023 to 2030.
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  • Fuel Cells In Aerospace And Defense Market Top Players, Segmentation & Future Trends Analysis till 2030

    Fuel cells are the power source for manned spacecraft where they generate electric power from oxygen and stored hydrogen.

    Get Details :- https://wemarketresearch.com/reports/fuel-cells-in-aerospace-and-defense-market/76/
    Fuel Cells In Aerospace And Defense Market Top Players, Segmentation & Future Trends Analysis till 2030 Fuel cells are the power source for manned spacecraft where they generate electric power from oxygen and stored hydrogen. Get Details :- https://wemarketresearch.com/reports/fuel-cells-in-aerospace-and-defense-market/76/
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  • NT CAT PC-8 CAS No.:98-94-2 Synthesis method and application New
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    Rm1104 ,No. 258, West SongXing Road, BaoShan District, Shanghai, China.
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    NT CAT PC-8 CAS No.:98-94-2 Synthesis method and application

    Brief introduction.
    Chemical Chinese name: N,N-dimethylcyclohexylamine
    Chemical English name: N,N-dimethylcyclohexylamine; dimethyl aminocy clohexane
    Chemical Alias: Dimethyl aminocyclohexane
    CAS No.: 98-94-2
    EC No.: 202-715-5
    Molecular formula: C8H17N

    Synthesis method.
    N,N-dimethylaniline catalytic chlorination method
    In 1904, Sabatier et al. carried out the gas-phase hydrogenation of N,N a dimethylamine at a temperature of 160-180°C and at atmospheric pressure to produce DMCHA.

    Phenol method
    This method uses Pd or Rh as the catalyst, and phenol dimethylamine and hydrogen as raw materials. For example, when Pd is the catalyst, the catalyst dosage is 0.2~0.5, and the process conditions are 60~150℃, hydrogen pressure 0.15~0.48MPa, reaction time 6h, and the yield is between 70~80%. The raw material is available, and the reaction conditions are mild, but the catalyst is made of precious metals, and the yield is low.

    Cyclohexylamine method
    The process also uses formaldehyde and formic acid to react with cyclohexylamine, or uses oxides of Bi, Sb, Mg, A1, Lu, etc. as catalysts to react cyclohexylamine with methanol to methylate cyclohexylamine to produce DMCHA. the disadvantage of this method is the low selectivity of the former reaction, and the yield of the later methylation is not high.

    Cyclohexanone method
    Among the methods for the synthesis of DMCHA, the reductive amination method using cyclohexanone as raw material has more advantages: high conversion, yield and selectivity. The processes using Pd/C catalyst or Cu-A1 catalyst have their own characteristics and are currently under development in China.

    Uses.
    [Use I] Mainly used as polyurethane hard foam catalyst
    [Use II] N,N-dimethylcyclohexylamine can be used in a wide range of rigid foams. N,N-Dimethylcyclohexylamine is also suitable for the manufacture of rigid foam furniture frames and decorative parts. It can be used as the main catalyst alone in rigid foam products without the addition of organotin, or it can be supplemented with JD series catalysts according to the process and product requirements. It is also used as intermediate of rubber accelerator and synthetic fiber.
    Use III】It is used as intermediate of dyestuff, used to make vanillin, azo dyestuff, triphenylmethane dyestuff, also can be used as solvent, stabilizer, analysis reagent, etc.. Also used as catalyst.

    Storage and transportation.
    Should be sealed and stored in a dry, cool and ventilated warehouse

    Package: 200KG/drum
    200KG/drum Storage: It is recommended to store in dry and cool area with proper ventilation. Please fasten the lid as soon as possible after original packaging to prevent the mixing of other substances such as moisture and other substances from affecting the product performance. Do not inhale dust and avoid skin and mucous membrane contact. Smoking, eating and drinking are prohibited in the workplace. After work, shower and change clothes. Store contaminated clothes separately and wash them before use. Maintain good hygiene habits.

    More:https://www.newtopchem.com/archives/40458
    NT CAT PC-8 CAS No.:98-94-2 Synthesis method and application Brief introduction. Chemical Chinese name: N,N-dimethylcyclohexylamine Chemical English name: N,N-dimethylcyclohexylamine; dimethyl aminocy clohexane Chemical Alias: Dimethyl aminocyclohexane CAS No.: 98-94-2 EC No.: 202-715-5 Molecular formula: C8H17N Synthesis method. N,N-dimethylaniline catalytic chlorination method In 1904, Sabatier et al. carried out the gas-phase hydrogenation of N,N a dimethylamine at a temperature of 160-180°C and at atmospheric pressure to produce DMCHA. Phenol method This method uses Pd or Rh as the catalyst, and phenol dimethylamine and hydrogen as raw materials. For example, when Pd is the catalyst, the catalyst dosage is 0.2~0.5, and the process conditions are 60~150℃, hydrogen pressure 0.15~0.48MPa, reaction time 6h, and the yield is between 70~80%. The raw material is available, and the reaction conditions are mild, but the catalyst is made of precious metals, and the yield is low. Cyclohexylamine method The process also uses formaldehyde and formic acid to react with cyclohexylamine, or uses oxides of Bi, Sb, Mg, A1, Lu, etc. as catalysts to react cyclohexylamine with methanol to methylate cyclohexylamine to produce DMCHA. the disadvantage of this method is the low selectivity of the former reaction, and the yield of the later methylation is not high. Cyclohexanone method Among the methods for the synthesis of DMCHA, the reductive amination method using cyclohexanone as raw material has more advantages: high conversion, yield and selectivity. The processes using Pd/C catalyst or Cu-A1 catalyst have their own characteristics and are currently under development in China. Uses. [Use I] Mainly used as polyurethane hard foam catalyst [Use II] N,N-dimethylcyclohexylamine can be used in a wide range of rigid foams. N,N-Dimethylcyclohexylamine is also suitable for the manufacture of rigid foam furniture frames and decorative parts. It can be used as the main catalyst alone in rigid foam products without the addition of organotin, or it can be supplemented with JD series catalysts according to the process and product requirements. It is also used as intermediate of rubber accelerator and synthetic fiber. Use III】It is used as intermediate of dyestuff, used to make vanillin, azo dyestuff, triphenylmethane dyestuff, also can be used as solvent, stabilizer, analysis reagent, etc.. Also used as catalyst. Storage and transportation. Should be sealed and stored in a dry, cool and ventilated warehouse Package: 200KG/drum 200KG/drum Storage: It is recommended to store in dry and cool area with proper ventilation. Please fasten the lid as soon as possible after original packaging to prevent the mixing of other substances such as moisture and other substances from affecting the product performance. Do not inhale dust and avoid skin and mucous membrane contact. Smoking, eating and drinking are prohibited in the workplace. After work, shower and change clothes. Store contaminated clothes separately and wash them before use. Maintain good hygiene habits. More:https://www.newtopchem.com/archives/40458
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  • NT CAT PC-8 CAS No.:98-94-2 Synthesis method and application New
    $10
    In stock
    Rm1104 ,No. 258, West SongXing Road, BaoShan District, Shanghai, China.
    0 Reviews
    NT CAT PC-8 CAS No.:98-94-2 Synthesis method and application

    Brief introduction.
    Chemical Chinese name: N,N-dimethylcyclohexylamine
    Chemical English name: N,N-dimethylcyclohexylamine; dimethyl aminocy clohexane
    Chemical Alias: Dimethyl aminocyclohexane
    CAS No.: 98-94-2
    EC No.: 202-715-5
    Molecular formula: C8H17N

    Synthesis method.
    N,N-dimethylaniline catalytic chlorination method
    In 1904, Sabatier et al. carried out the gas-phase hydrogenation of N,N a dimethylamine at a temperature of 160-180°C and at atmospheric pressure to produce DMCHA.

    Phenol method
    This method uses Pd or Rh as the catalyst, and phenol dimethylamine and hydrogen as raw materials. For example, when Pd is the catalyst, the catalyst dosage is 0.2~0.5, and the process conditions are 60~150℃, hydrogen pressure 0.15~0.48MPa, reaction time 6h, and the yield is between 70~80%. The raw material is available, and the reaction conditions are mild, but the catalyst is made of precious metals, and the yield is low.

    Cyclohexylamine method
    The process also uses formaldehyde and formic acid to react with cyclohexylamine, or uses oxides of Bi, Sb, Mg, A1, Lu, etc. as catalysts to react cyclohexylamine with methanol to methylate cyclohexylamine to produce DMCHA. the disadvantage of this method is the low selectivity of the former reaction, and the yield of the later methylation is not high.

    Cyclohexanone method
    Among the methods for the synthesis of DMCHA, the reductive amination method using cyclohexanone as raw material has more advantages: high conversion, yield and selectivity. The processes using Pd/C catalyst or Cu-A1 catalyst have their own characteristics and are currently under development in China.

    Uses.
    [Use I] Mainly used as polyurethane hard foam catalyst
    [Use II] N,N-dimethylcyclohexylamine can be used in a wide range of rigid foams. N,N-Dimethylcyclohexylamine is also suitable for the manufacture of rigid foam furniture frames and decorative parts. It can be used as the main catalyst alone in rigid foam products without the addition of organotin, or it can be supplemented with JD series catalysts according to the process and product requirements. It is also used as intermediate of rubber accelerator and synthetic fiber.
    Use III】It is used as intermediate of dyestuff, used to make vanillin, azo dyestuff, triphenylmethane dyestuff, also can be used as solvent, stabilizer, analysis reagent, etc.. Also used as catalyst.

    Storage and transportation.
    Should be sealed and stored in a dry, cool and ventilated warehouse

    Package: 200KG/drum
    200KG/drum Storage: It is recommended to store in dry and cool area with proper ventilation. Please fasten the lid as soon as possible after original packaging to prevent the mixing of other substances such as moisture and other substances from affecting the product performance. Do not inhale dust and avoid skin and mucous membrane contact. Smoking, eating and drinking are prohibited in the workplace. After work, shower and change clothes. Store contaminated clothes separately and wash them before use. Maintain good hygiene habits.

    More:https://www.newtopchem.com/archives/40458
    NT CAT PC-8 CAS No.:98-94-2 Synthesis method and application Brief introduction. Chemical Chinese name: N,N-dimethylcyclohexylamine Chemical English name: N,N-dimethylcyclohexylamine; dimethyl aminocy clohexane Chemical Alias: Dimethyl aminocyclohexane CAS No.: 98-94-2 EC No.: 202-715-5 Molecular formula: C8H17N Synthesis method. N,N-dimethylaniline catalytic chlorination method In 1904, Sabatier et al. carried out the gas-phase hydrogenation of N,N a dimethylamine at a temperature of 160-180°C and at atmospheric pressure to produce DMCHA. Phenol method This method uses Pd or Rh as the catalyst, and phenol dimethylamine and hydrogen as raw materials. For example, when Pd is the catalyst, the catalyst dosage is 0.2~0.5, and the process conditions are 60~150℃, hydrogen pressure 0.15~0.48MPa, reaction time 6h, and the yield is between 70~80%. The raw material is available, and the reaction conditions are mild, but the catalyst is made of precious metals, and the yield is low. Cyclohexylamine method The process also uses formaldehyde and formic acid to react with cyclohexylamine, or uses oxides of Bi, Sb, Mg, A1, Lu, etc. as catalysts to react cyclohexylamine with methanol to methylate cyclohexylamine to produce DMCHA. the disadvantage of this method is the low selectivity of the former reaction, and the yield of the later methylation is not high. Cyclohexanone method Among the methods for the synthesis of DMCHA, the reductive amination method using cyclohexanone as raw material has more advantages: high conversion, yield and selectivity. The processes using Pd/C catalyst or Cu-A1 catalyst have their own characteristics and are currently under development in China. Uses. [Use I] Mainly used as polyurethane hard foam catalyst [Use II] N,N-dimethylcyclohexylamine can be used in a wide range of rigid foams. N,N-Dimethylcyclohexylamine is also suitable for the manufacture of rigid foam furniture frames and decorative parts. It can be used as the main catalyst alone in rigid foam products without the addition of organotin, or it can be supplemented with JD series catalysts according to the process and product requirements. It is also used as intermediate of rubber accelerator and synthetic fiber. Use III】It is used as intermediate of dyestuff, used to make vanillin, azo dyestuff, triphenylmethane dyestuff, also can be used as solvent, stabilizer, analysis reagent, etc.. Also used as catalyst. Storage and transportation. Should be sealed and stored in a dry, cool and ventilated warehouse Package: 200KG/drum 200KG/drum Storage: It is recommended to store in dry and cool area with proper ventilation. Please fasten the lid as soon as possible after original packaging to prevent the mixing of other substances such as moisture and other substances from affecting the product performance. Do not inhale dust and avoid skin and mucous membrane contact. Smoking, eating and drinking are prohibited in the workplace. After work, shower and change clothes. Store contaminated clothes separately and wash them before use. Maintain good hygiene habits. More:https://www.newtopchem.com/archives/40458
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  • Dicyclohexylamine CAS 101-83-7 New
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    Jining High-tech Development Zone, Shandong, China/Room a2110, building 55, No. 709, Lingshi Road, Zhabei District, Shanghai
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    Dicyclohexylamine CAS 101-83-7

    Descriptions:
    Product:Dicyclohexylamine
    Synonyms:N,N-Dicyclohexylamine;Perhydrodiphenylamine;DCHA
    Molecular Formula:C12H23N
    Molecular Weight:181.32
    CAS:101-83-7
    EINECS:202-980-7
    InChI:1S/C12H23N/c1-3-7-11(8-4-1)13-12-9-5-2-6-10-12/h11-13H,1-10H2

    Physicochemical properties:
    Melting point: -2ºC
    Boiling point: 256ºC
    Water solubility: 1G/L(20ºC)
    Refractive index: 1.4832-1.4852
    Flash point: 103ºC
    Density: 0.912
    Properties descriptions: Colorless transparent oil liquid,pungent ammonia smell,flammable and high toxic. Melting point is about 20℃,Freezing point-2℃,Boiling point 255.8℃(Decomposition),87-93℃(1.73kPa),Relative density0.9103(20、4℃),Refractive index 1.4823,1.4842,Flash point 96℃。Miscible with organic solvents, slightly soluble in water, strongly alkaline.

    Safety information:
    Safety descriptions:S26:in case of contact with eyes, rinse immediately with plenty of water and seek medical advice.
    S45:If you have an accident or feel unwell, go to your doctor for help immediately (preferably with a product container label).
    S60:The substance residues and containers must be disposed of as hazardous waste
    S61:Avoid discharge of this substance residue into the environment. Refer to special instructions/safety data sheets.
    S36/37/39:Wear appropriate protective clothing, gloves and use goggles or face masks.
    Dangerous mark:C:Corrosive substance
    N:Environmental hazardous substance
    Risk codes: R22:Harmful if swallowed.
    R34:Causes burns
    R50/53:Very toxic to aquatic organisms, may cause long-term adverse effects in the aquatic environment.
    UN code :UN2565
    MSDS report: Dicyclohexylamine MSDS report

    Storage and transport information:
    It should be sealed and stored in a dry and cool ventilated warehouse

    Other information:
    Product application:Used in organic synthesis and as insecticide, acid gas absorbent, steel anti-rust agent.
    Production method and others: Dicyclohexylamine was prepared by hydrogenation of aniline at high temperature and high pressure in the presence of catalyst.
    Packaging:
    200KG/ drum storage: It is recommended to store in dry and cool areas and properly ventilated. After the original packaging, please fasten the packaging cover as soon as possible to prevent moisture and other substances from mixing and affecting the product performance. Do not inhale dust and avoid skin and mucous membrane contact. Smoking, eating and drinking are prohibited in the workplace. After work, shower and change. Store contaminated clothes separately and reuse them after washing. Maintain good hygiene.



    Contact Us
    SHANGHAI OHANS CO., LTD.
    Factory Address :Jining High-tech Development Zone, Shandong, China
    Call Center :021-5161-9971
    Headquarters :Room a2110, building 55, No. 709, Lingshi Road, Zhabei District, Shanghai
    Email Us :honda@ohans.com candy@ohans.com

    More:https://www.ohans.com/dicyclohexylamine-cas-101-83-7-pdf/
    Dicyclohexylamine CAS 101-83-7 Descriptions: Product:Dicyclohexylamine Synonyms:N,N-Dicyclohexylamine;Perhydrodiphenylamine;DCHA Molecular Formula:C12H23N Molecular Weight:181.32 CAS:101-83-7 EINECS:202-980-7 InChI:1S/C12H23N/c1-3-7-11(8-4-1)13-12-9-5-2-6-10-12/h11-13H,1-10H2 Physicochemical properties: Melting point: -2ºC Boiling point: 256ºC Water solubility: 1G/L(20ºC) Refractive index: 1.4832-1.4852 Flash point: 103ºC Density: 0.912 Properties descriptions: Colorless transparent oil liquid,pungent ammonia smell,flammable and high toxic. Melting point is about 20℃,Freezing point-2℃,Boiling point 255.8℃(Decomposition),87-93℃(1.73kPa),Relative density0.9103(20、4℃),Refractive index 1.4823,1.4842,Flash point 96℃。Miscible with organic solvents, slightly soluble in water, strongly alkaline. Safety information: Safety descriptions:S26:in case of contact with eyes, rinse immediately with plenty of water and seek medical advice. S45:If you have an accident or feel unwell, go to your doctor for help immediately (preferably with a product container label). S60:The substance residues and containers must be disposed of as hazardous waste S61:Avoid discharge of this substance residue into the environment. Refer to special instructions/safety data sheets. S36/37/39:Wear appropriate protective clothing, gloves and use goggles or face masks. Dangerous mark:C:Corrosive substance N:Environmental hazardous substance Risk codes: R22:Harmful if swallowed. R34:Causes burns R50/53:Very toxic to aquatic organisms, may cause long-term adverse effects in the aquatic environment. UN code :UN2565 MSDS report: Dicyclohexylamine MSDS report Storage and transport information: It should be sealed and stored in a dry and cool ventilated warehouse Other information: Product application:Used in organic synthesis and as insecticide, acid gas absorbent, steel anti-rust agent. Production method and others: Dicyclohexylamine was prepared by hydrogenation of aniline at high temperature and high pressure in the presence of catalyst. Packaging: 200KG/ drum storage: It is recommended to store in dry and cool areas and properly ventilated. After the original packaging, please fasten the packaging cover as soon as possible to prevent moisture and other substances from mixing and affecting the product performance. Do not inhale dust and avoid skin and mucous membrane contact. Smoking, eating and drinking are prohibited in the workplace. After work, shower and change. Store contaminated clothes separately and reuse them after washing. Maintain good hygiene. Contact Us SHANGHAI OHANS CO., LTD. Factory Address :Jining High-tech Development Zone, Shandong, China Call Center :021-5161-9971 Headquarters :Room a2110, building 55, No. 709, Lingshi Road, Zhabei District, Shanghai Email Us :honda@ohans.com candy@ohans.com More:https://www.ohans.com/dicyclohexylamine-cas-101-83-7-pdf/
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