Patent classifications
C11D3/3749
Thermoplastic resin composition for cleaning molding processing machine
A thermoplastic resin composition for cleaning a molding processing machine, which has good cleaning performance and workability in cleaning an inner side of a molding processing machine of thermoplastic resin composition, such as an extruder and an injection molding and includes (A) an olefin-based resin, (B) a thermoplastic resin which is not compatible with the olefin-based resin of the component (A), (C) a thermoplastic resin for making the olefin-based resin of the component (A) and the thermoplastic resin of the component (B) compatible with each other, (D) an alkaline metal salt of a fatty acid, (E) a nonionic surfactant, and (F) a metal salt of an acidic phosphoric ester.
SOLID DETERGENT COMPOSITIONS AND METHODS OF ADJUSTING THE DISPENSE RATE OF SOLID DETERGENTS USING SOLID ANIONIC SURFACTANTS
A method of adjusting dispense rate of a solid detergent block of a detergent composition is described here. A solid detergent block is produced from this method may have a predetermined dispense rate or a comparable dispense rate as a solid detergent block produced by extruding method. A process for producing a solid detergent block and a solid detergent composition are also disclosed.
FABRIC CARE COMPOSITION COMPRISING METATHESIZED UNSATURATED POLYOL ESTERS
The present invention relates to fabric cleaning and/or treatment compositions as well as methods of making and using same. Such fabric cleaning and/or treatment compositions contain species of metathesized unsaturated polyol esters that have the correct rheology. Thus, such species of metathesized unsaturated polyol esters provide unexpectedly improved softenening performance and formulability.
METHOD OF TREATING A METAL SUBSTRATE
A method of removing at least a portion of an oxide layer from the surface of a metal substrate comprising exposing the metal substrate to a body of treatment liquor comprising a treatment formulation and a multiplicity of solid particles which comprise or consists of a multiplicity of polymeric particles and wherein said treatment formulation comprises one or more promoters selected from the group consisting of acids, bases and surfactants wherein the method further comprises causing the solid particles and the metal substrate to enter into contacting relative movement.
Processes and compositions for cleaning mixing devices to improve polymer production
A cleaning mixture comprising polymeric resin pellets having a Rockwell R hardness of 85 to 140, water, and a surfactant salt comprising at least one of sulfonate salts, C.sub.6 to C.sub.36 carboxylic acid salts, or mixtures thereof, is used to purge the mixing device. The cleaning mixture has a pH of 6.0 to 9.0.
TREATMENT COMPOSITIONS
- Mark Robert Sivik ,
- Travis Kyle Hodgdon ,
- Stephanie Ann Urbin ,
- Alessandro Corona, III ,
- Jocelyn Michelle McCullough ,
- Robert Richard Dykstra ,
- Denise Malcuit Belanger ,
- Richard Timothy Hartshorn ,
- Nicholas David Vetter ,
- Tessa Xuan ,
- Renae Dianna Fossum ,
- Reinhold Joseph Leyrer ,
- Gledison Fonseca ,
- Volodymyr Boyko ,
- Aaron Flores-Figueroa ,
- Pieter Jan Maria Saveyn ,
- Marc Johan Declercq ,
- Johan Smets
The present invention relates to treatment compositions containing polymer systems that provide stability and benefit agent deposition as well as methods of making and using same. Such treatment compositions may be used for example as through the wash and/or through the rinse fabric enhancers as well as unit dose treatment compositions.
CLEANING FOAM FOR CONCRETE PUMP
Provided is a method for manufacturing a concrete pump cleaning foam. The method comprises: providing a mixture of a polymer containing an olefin block copolymer (OBC) having a DSC melting point of 100 C. or higher and a natural or synthetic rubber, a liquid softening agent, and one or more additives selected from the group consisting of a crosslinking agent, a foaming agent, a metal oxide, stearic acid, an antioxidant, zinc stearate, titanium dioxide, a crosslinking coagent, and a pigment; placing the mixture in a mold and pressurizing the mixture at elevated temperature to form a polymer foam; and after the foaming, polishing the surface of the polymer foam to separate closed cells into a surface.
TREATMENT COMPOSITIONS
- Robert Richard Dykstra ,
- Mark Robert Sivik ,
- Travis Kyle Hodgdon ,
- Stephanie Ann Urbin ,
- Alessandro Corona, III ,
- Jocelyn Michelle McCullough ,
- Denise Malcuit Belanger ,
- Kristi Lynn FLITER ,
- Richard Timothy Hartshorn ,
- Nicholas David Vetter ,
- Tessa Xuan ,
- Reinhold Joseph Leyrer ,
- Gledison Fonseca ,
- Volodymyr Boyko ,
- Aaron Flores-Figueroa
The present invention relates to treatment compositions containing polymer systems that provide stability and benefit agent deposition as well as methods of making and using same. Such treatment compositions may be used for example as through the wash and/or through the rinse fabric enhancers as well as unit dose treatment compositions.
SOLVENT FOR CLEANING TURBINE COMPONENTS
A cleaning method and a cleaning fluid are provided. The cleaning method includes accessing a plurality of turbine components attached to a turbine assembly, the turbine assembly being a portion of a turbomachine, positioning at least one cleaning vessel over at least one of the turbine components, forming a liquid seal with a sealing bladder, providing a cleaning fluid to the cleaning vessel, and draining the cleaning fluid from the cleaning vessel. The cleaning fluid includes a carrier fluid and a solvent additive for removing fouling material from the turbine component. An alternative cleaning method is also provided.
Composition comprising fatty acyl isethionate and synthetic wax and method producing the same
A method of preparing a component of a personal care bar, the method comprising: (a) providing a composition comprising an isethionate surfactant at a temperature of at least 20 C.; (b) combining the composition comprising the isethionate surfactant with a synthetic 5 wax and optional further components at a temperature of at least 120 C.; and (c) cooling the mixture obtained in step (b).