High temp. resistance capsule, and its prepn. method
A technology of high temperature resistance and capsule, applied in the directions of microcapsule preparation and microsphere preparation, etc., can solve the problems of inability to have both sealing and heat resistance, low heat resistance temperature and low heat resistance temperature, and easy rupture of capsules, so as to improve emulsification. The effect of good effect, thermal stability and heat resistance, low production cost
- Summary
- Abstract
- Description
- Claims
- Application Information
AI Technical Summary
Problems solved by technology
Method used
Examples
preparation example Construction
[0025] Any known encapsulation technique can be used in the preparation process of the capsule of the present invention. The most commonly used method is interfacial polymerization or in-situ polymerization, especially the in-situ polymerization is more suitable for producing the capsules of the present invention, because the in-situ polymerization can effectively control the generated capsules according to the addition of wall materials and capsule cores. The wall of the capsule is thick, and the capsule core functional substance A and volatile substance B can be effectively coated inside the capsule, which is beneficial to the improvement of product quality.
[0026] The applicable capsule diameter range of the present invention is not limited, generally from 10 nanometers to 10 millimeters, preferably from 50 nanometers to 1 millimeter.
[0027] The shape of the capsule of the present invention is generally approximately spherical, and after heat treatment, the capsule will...
Embodiment 1
[0031] After heating and melting 40 grams of n-eicosane, mix it with 5 milliliters of hexanaphthene, add it to a solution of 20 grams of styrene-maleic anhydride copolymer emulsifier (19% aqueous solution) and 300 milliliters of distilled water, and emulsify at a high speed On the machine, emulsify at 8000 rpm for 90 minutes to obtain emulsion D, adjust the pH value of emulsion D to 3-5; Stir at 200 rpm until melamine is completely dissolved to obtain prepolymer E; Emulsion D is transferred to a 500ml three-necked flask, placed in a 70°C water bath, stirred at 600 rpm, and prepolymer E is slowly added dropwise, and the reaction continues after the drop is complete Emulsion F was obtained in 180 minutes. 10% sodium hydroxide solution adjusted the pH value of emulsion F to 7-9, filtered under reduced pressure, washed once with 100 ml of 25% hot ethanol, washed twice with hot water, and dried the filter cake to obtain microcapsules. The diameter of the capsule is in the range of...
Embodiment 2
[0033] 10 grams of n-hexadecane was heated and melted and mixed with 10 milliliters of n-heptane, and the rest of the raw materials and process conditions were the same as in Example 1. After testing, the heat-resistant temperature of the obtained capsule is 268° C., and the diameter of the capsule is in the range of 0.05-0.95 microns.
PUM
Property | Measurement | Unit |
---|---|---|
boiling point | aaaaa | aaaaa |
diameter | aaaaa | aaaaa |
diameter | aaaaa | aaaaa |
Abstract
Description
Claims
Application Information
- R&D Engineer
- R&D Manager
- IP Professional
- Industry Leading Data Capabilities
- Powerful AI technology
- Patent DNA Extraction
Browse by: Latest US Patents, China's latest patents, Technical Efficacy Thesaurus, Application Domain, Technology Topic, Popular Technical Reports.
© 2024 PatSnap. All rights reserved.Legal|Privacy policy|Modern Slavery Act Transparency Statement|Sitemap|About US| Contact US: help@patsnap.com