NANOFLUIDS
20220105566 · 2022-04-07
Inventors
Cpc classification
International classification
B01J19/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A nanofluid manufactured by nuclear irradiating a mixture that comprises a precursor and a base fluid, a method of manufacturing the nanofluid, and a system for use in manufacturing the nanofluid. The combination of the uniform irradiation dosage results in substantially no sedimentation of the suspended nanoparticles. The formed nanofluid has been observed to have better properties compared to those known in the art.
Claims
1. A method of manufacturing a nanofluid, the method comprising exposing a mixture, contained in a container, of a base fluid and a precursor mixture, to gamma radiation, wherein in exposing the mixture to gamma radiation, the container, and thereby the mixture, is rotated relative to gamma radiation beam rays thus substantially uniformly irradiating the mixture and preventing agglomeration of nanoparticles formed during radiolysis of the precursor, wherein the container, and thereby the mixture, is rotated such that the rotational axis of the container is substantially perpendicular to the direction of travel of the gamma radiation beam rays to allow all sides of the container, and thereby the mixture, to be exposed to gamma radiation during rotation thereof.
2. The method according to claim 1, wherein the base fluid is selected from a water or an organic solvent, such as glycol, preferably ethylene glycol.
3. The method according to claim 1, wherein the precursor is a metallic salt selected from the group consisting of a copper salt, silver salt, or any other suitable metallic salt, or combination thereof.
4. A system for use in the manufacture of a nanofluid, the system comprising: a container for containing a mixture of a precursor and a base fluid; a gamma rays irradiator facing a side of the container for emitting gamma rays through the container; and a rotatable platform or turntable supporting the container such that the rotational axis of the container is arranged substantially perpendicular to the direction of travel of the gamma rays arranged to be emitted by the gamma rays irradiator, the rotatable platform being arranged to rotate the container during irradiation such that mixture held in the container is rotated relative to the gamma radiation beam rays thus substantially uniformly irradiating the mixture.
5. The system according to claim 4, wherein the base fluid is selected from one of a water or an organic solvent, such as glycol, preferably ethylene glycol.
6. The system according to claim 4, wherein the precursor is a metallic salt selected from the group consisting of a copper salt, silver salt, or any other suitable metallic salt, or the combination thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The objects and features of the present invention will become fully apparent from following the description taken in conjunction with the accompanying drawings. Undertaking that these drawings depict only typical embodiments of the invention and are therefore, not to be considered limiting its scope, the invention will be described and explained with additional specific and detail through the use of the accompanying drawings in which:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0030] While various inventive aspects, concepts and features of the invention may be described and illustrated herein as embodied in combination in the exemplary embodiments, these various aspects, concepts and features may be used in many alternative embodiments, either individually or in various combinations and sub-combinations thereof. Unless expressly exclude herein all such combinations and sub-combinations are intended to be within the scope of the present invention. Still further, while various alternative embodiments as to the various aspects, concepts and features of the invention—such alternative structures, configurations, methods, devices and components, alternatives as to form, fit and function, and so on—may be described herein, such descriptions are not intended to be a complete or exhaustive list of available alternative embodiments, whether presently known or later developed.
[0031] Those skilled in the art may readily adopt one or more of the inventive aspects, concepts of features into additional embodiments and uses within the scope of the present invention even if such embodiments are not expressly disclosed herein. Still further, exemplary or representative values and ranges may be included to assist in understanding the present disclosure: however, such values and ranges are not to be construed in a limiting sense and are intended to be critical values or ranges only if so expressly, stated. Moreover, while various aspects, features and concepts may be expressly identified herein as being inventive or forming part of an invention, such identification is not intended to be exclusive but rather there may be inventive aspects, concepts and features that are fully described herein without being expressly identified as such or as part of a specific invention.
[0032] As can be seen in
[0033] In use, the said mixture 32 is provided in the container 30. The container 30 operatively faces the gamma ray emitter so that the beam path 20 of the gamma rays 18 can extend through the mixture 32. The dosage of gamma rays 18 arranged to irradiate the mixture 32 can be predefined depending on the concentration of the precursor in the base fluid, for example a small dosage of about 0.95 KG ray may be emitted by the emitter 18. The turntable 28 is automatically rotated by the system 10 (e.g. a motor (not shown) which is arranged to rotate the turntable) at a predefined rotational speed to ensure that the mixture is uniformly irradiated so as to facilitate the disassociation or radiolysis of the precursor salt (by means of the nuclear rays, i.e. gamma rays) into undissolved metallic nanoparticles which are suspended in the base fluid combined with the rest of the elements/compounds disassociated from the salt. The rotation of the container 30 ensures that the mixture 32 is uniformly irradiated, typically by exposing all sides of the mixture 32 to the same amount of irradiation dosage, for example by rotating the mixture relative to the direction of travel of the beam path 20 of the gamma rays 18. The rotation of the container 30 further prevents the agglomeration of the nanoparticles formed during the radiolysis process and allows the mixture to mix and continuously cycle from side to side and up and down or vice versa.
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[0040] As shown in
[0041] The Applicant has observed that the combination of the uniform irradiation dosage results in substantially no sedimentation of the suspended nanoparticles. The formed nanofluid has been observed to have better properties compared to those known in the art.