Dispersion of a wax in an alkyl methyl siloxane fluid
Patent Information
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- DOW SILICONES CORP
- Filing Date
- 2023-06-13
- Publication Date
- 2026-04-22
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Figure CN2023100044_19122024_PF_FP_ABST
Abstract
Description
Dispersion of a Wax in an Alkyl Methyl Siloxane FluidBackground of the Invention
[0001] The present invention relates to a composition comprising a dispersion of a wax in an alkyl methyl siloxane fluid continuous phase. The composition is useful as an immersion cooling fluid for data centers.
[0002] Data centers consume vast amounts of energy. Currently, most data centers are air cooled, which is highly inefficient. In a typical data center, only 60%of the total energy is consumed for computation / information requests, data storage, and networking, while 40%is used to remove heat generated by electronic components.
[0003] Immersion cooling, where all the data center components are immersed in a dielectric (non-electrically conducting) fluid, is expected to replace air-cooling in the next few years. Examples of dielectric fluids suitable as immersion coolants include fluorinated fluids such as hydrofluoroethers and fluoroketones. The dielectric and chemical inertness of fluorinated fluids make them particularly attractive as heat transfer media, along their wide range of boiling points, low viscosities, low pour points, low surface tension, high thermal and chemical stability as well as compatibility with metals, plastics, and elastomers. These fluids are further advantaged by being odorless, non-flammable, non-explosive, and virtually non-toxic. Moreover, as two-phase immersion fluids that transition from a liquid phase to a vapor phase below the operating temperature of the heat generating components in the server (CPUs and GPUs) , fluorinated fluids use the latent heat of the phase transition to extract heat from CPUs and GPUs.
[0004] Nevertheless, fluorinated fluids are encumbered by their relatively high vapor pressures, long atmospheric lifetimes, and relatively strong absorbance of infra-red radiation, all of which contribute to severe global warming potential of these fluids. Losses due to evaporation or leakage due to the low fluid surface tension also pose environmental hazards.
[0005] Silicone fluids are another class dielectric fluids that show promise as immersion cooling fluids. Like fluorinated fluids, they exhibit low viscosity, low dielectric properties, thermal stability, low flammability, chemical inertness, and low toxicity. Silicone fluids have the additional advantage of being environmentally impermanent; however, as single-phase fluids, they extract heat much less efficiently than fluorinated fluids. It would therefore be an advantage in the field of immersion cooling fluids to discover a medium that meets property and environmental demands.
[0006] Background of the Invention
[0007] The present invention addresses a need by providing a composition comprising a dispersion of a C16-C28 hydrocarbon wax in an alkyl methyl silicone fluid continuous phase of Formula 1:
[0008] where R and R1 are each independently methyl or C6-C18-alkyl, with the proviso that at least one of R and R1 is C6-C18-alkyl; where m is from 1 to 20; and n is from 0 to 10; with the further proviso that when n is 0, one or both of the R1 groups is C6-C18-alkyl; where the relative amounts of the wax and the alkyl methyl silicone fluid are such that the viscosity of the dispersion is in the range of from 10 cSt to 100 cSt and the phase change energy absorbed of the dispersion is at least 12 J / g. The composition of the present invention is useful as a 2-phase immersion coolant.Brief Description of Drawings
[0009] FIG. 1 is a dynamic scanning calorimetric thermal analysis of a dispersion of waxes in an alkyl methyl silicone fluid continuous phase.Detailed Description of the Invention
[0010] The present invention is a composition comprising a dispersion of a C16-C28 hydrocarbon wax in an alkyl methyl silicone fluid continuous phase of Formula 1:
[0011] where R and R1 are each independently methyl or C6-C18-alkyl, with the proviso that at least one of R and R1 is C6-C18-alkyl; where m is from 1 to 20; and n is from 0 to 10; with the further proviso that when n is 0, one or both of the R1 groups is C6-C18-alkyl; where the relative amounts of the wax and the alkyl methyl silicone fluid are such that the viscosity of the dispersion is in the range of from 10 cSt to 100 cSt and the phase change energy absorbed of the dispersion is at least 12 J / g. The composition of the present invention is useful as a 2-phase immersion coolant.
[0012] The wax may be a single wax or a combination of C16-C28 hydrocarbon waxes having a melting point preferably in the range of from 18 ℃ to 65 ℃. In one aspect, each R1 is methyl, n is from 1 to 10, m is from 1 or from 2, to 10 or to 5; and each R is C6-C18 alkyl, preferably C8-C16 alkyl; in a second aspect, n is 0; and at least one of R1 is C6-C18 alkyl, preferably each of R1 is C8-C16 alkyl; and in a third aspect, n is from 1 to 10; at least one of R1 is C6-C18 alkyl, preferably each of R1 is C8-C16 alkyl; and each R is C6-C18 alkyl, preferably C8-C16 alkyl. Where R and R1 are C6-C18 groups, R and R1 are preferably linear C6-C18 groups.
[0013] Compounds of Formula 1 can be prepared by the catalytic hydrosilylation of a 1-alkene with an organohydrogenpolysiloxane containing internal Si-H groups:
[0014] Other compounds of Formula 1 can be prepared from the hydrosilylation of an alkene with an organohydrogenpolysiloxane containing terminal Si-H groups or terminal and internal Si-H groups.
[0015] The viscosity and the phase change energy absorbed of the dispersion can be readily tuned to the desired levels by adjusting the proportion of the wax to the alkyl methyl silicone fluid. In general, the weight-to-weight ratio of the wax to the alkyl methyl silicone fluid is in the range of from 3∶97 or from 5∶95 or from 7∶93, to 25∶75 or to 20∶80 or to 15∶85. The wax and the alkyl methyl silicone fluid preferably comprise at least 90 or 95 or 99 or 100 percent of the composition. The composition may optionally further comprise low dielectric and low viscosity fluids such as hydrocarbon and fluorocarbon fluids.
[0016] The dispersion exhibits a phase change energy absorbed as determined by dynamic scanning calorimetric thermal analysis (DSC) of greater than 12 J / g, preferably in the range of from 12 J / g to 150 J / g or to 120 J / g or to 110 J / g. The dispersion has a phase change temperature maximum, as determined by DSC preferably in the range of from 5 ℃ to 60 ℃ for both heating and cooling cycles. FIG. 1 is a DSC of a dispersion containing 77 parts by weight (pbw) of a compound of Formula 1, where R is n-hexadecyl, m is 3, and n is 6; 18 pbw of a C18 hydrocarbon wax, and 5 pbw of a C22 hydrocarbon wax. The peak temperature of the cooling scan (10.3 ℃) , the peak temperature of the heating scan (19.9 ℃) , and the phase change energy absorbed (105.9 J / g) all exceeded the physical property requirements for the composition.
[0017] The composition of the present invention addresses a need in the art by providing compositions that have all the property advantages of fluorinated fluids without the environmental drawbacks.
[0018] Examples
[0019] The example and comparative example cooling fluids were prepared by mixing an alkyl methyl silicone fluid with one or more waxes for 30 min using a magnetic stirrer. Sample viscosities at 25 ℃, phase change temperature maxima for the cool and heating cycles, and phase change energy absorbed were measured by the following methods.
[0020] Viscosity measurements
[0021] Viscosity was measured with a DHR-III viscometer using a 25-mm parallel plate. The flow temperature was ramped from 25 ℃ to 150 ℃ at a rate of 3 ℃ / min and a shear rate of 200 s-1.
[0022] Phase Change Measurements
[0023] Phase change temperature maxima and phase change energy absorbed were measured using a DSC-Q2000 instrument as follows:
[0024] The sample was equilibrated at -80.00 ℃. Data storage was turned on and the temperature was ramped to 70.00 ℃ at a rate of 10 ℃ / min to complete the first cycle. The temperature was then decreased to 80.00 ℃ at the rate of 10 ℃ / min and maintained at this temperature for 3.00 min to complete the second cycle. Finally, the temperature was ramped to 70.00 ℃ at a rate of 10 ℃ / min to complete the third cycle.
[0025] Heat removal from a device using the two-phase immersion coolant of the present invention is accomplished in two ways. First, the alkyl methyl silicone fluid continuous phase removes heat from the hot device by virtue of having a lower temperature than the device. Second, the phase change energy absorbed by virtue of the melting of the wax disperse phase upon heating provides a second mechanism for heat removal. The higher the phase change energy absorbed, the more efficient the heat removal from the device.
[0026] Phase change energy absorbed is calculated by integrating the area under the fusion heat flow endotherm as a function of temperature (enthalpy, See FIG. 1) , then dividing the enthalpy by the mass of the test specimen.
[0027] Table 1 illustrates the properties of the immersion fluids. Silicone oil (Silicone) is a silicone fluid with a viscosity of 20 cSt. at 25 ℃. AMS-C8 refers to an alkyl methyl silicone of Formula 1 where R is n-octyl, each R1 is methyl, m is 3, and n is 6; and AMS-C16 refers to an alkyl methyl silicone of Formula 1 where R is n-hexadecyl, each R1 is methyl, m is 3, and n is 6.
[0028] The C16 hydrocarbon wax (C16 wax) had a melting point (m. p. ) of 18.2 ℃; the C18 hydrocarbon wax (C18 wax) had an m. p. of 28.18 ℃; the C22 hydrocarbon wax (C22 wax) had an m. p. of 42 ℃ to 45 ℃; and the C24-28 hydrocarbon wax (C24-28 wax) had an m. p. of 49 ℃ to 64 ℃.
[0029] η refers to the viscosity in cSt at 25 ℃; Tc max refers to the phase change maximum temperature for the cooling cycle; Th max refers to the phase change maximum temperature for the heating cycle; and Ea refers to the phase change energy absorbed in J / g. Viscosities in the range of 10 cSt. to 100 cSt., temperatures of phase change maxima in the range of 5℃ to 60 ℃, and phase change energy absorbed values of > 12 J / g were targeted properties of the immersion coolant. All amounts are weight percentages based on the weight of the composition.
[0030] Table 1-Properties of Immersion Fluids
[0031] The data show that the viscosity, the phase change maximum temperatures, and the phase change energy absorbed can be tuned to the desired targets by adjusting the relative amounts and types of waxes and alkyl methyl siloxanes. In contrast, the blend of silicone oil and wax gave unacceptably low phase change maximum cooling and heating temperatures as well as unacceptably low phase change energy absorbed.
Claims
1.A composition comprising a dispersion of a C16-C28 hydrocarbon wax in an alkyl methyl silicone fluid continuous phase of Formula 1: where R and R1 are each independently methyl or C6-C18-alkyl, with the proviso that at least one of R and R1 is C6-C18-alkyl; where m is from 1 to 20; and n is from 0 to 10; with the further proviso that when n is 0, one or both of the R1 groups is C6-C18-alkyl; where the relative amounts of the wax and the alkyl methyl silicone fluid are such that the viscosity of the dispersion is in the range of from 10 cSt to 100 cSt and the phase change energy absorbed of the dispersion is at least 12 J / g.2.The composition of Claim 1 wherein the phase change energy absorbed of the dispersion is in the range of from 12 J / g to 150 J / g; the weight-to-weight ratio of the wax to the alkyl methyl silicone fluid is in the range of from 3: 97 to 25: 75.3.The composition of Claim 2 wherein n is from 1 to 10; m is from 2 to 10; and each R1 is a methyl group, wherein the weight-to-weight ratio of the wax to the alkyl methyl silicone fluid is in the range of from 5: 95 to 25: 75; wherein the phase change energy absorbed of the dispersion is in the range of from 12 J / g to 120 J / g; and wherein at least 90 weight percent of the composition comprises the wax and the alkyl methyl silicone fluid.4.The composition of Claim 2 where n is 0; m is from 2 to 10; and each R1 is a C8-C16-alkyl group; wherein at least 95 weight percent of the composition comprises the wax and the alkyl methyl silicone fluid.5.The composition of Claim 2 where n is from 1 to 10; m is from 2 to 10; and each R1 is a C8-C16-alkyl group; and wherein the phase change energy absorbed of the dispersion is in the range of from 12 J / g to 110 J / g.6.The composition of Claim 1 wherein the dispersion has a phase change temperature maximum for both heating and cooling cycles in a dynamic scanning calorimetry thermal analysis in the range of from 5 ℃ to 60 ℃.7.A composition that consists of a dispersion of a C16-C28 hydrocarbon wax in an alkyl methyl silicone fluid continuous phase of Formula 1: where R and R1 are each independently methyl or C6-C18-alkyl, with the proviso that at least one of R and R1 is C6-C18-alkyl; where m is from 1 to 20; and n is from 0 to 10; with the further proviso that when n is 0, one or both of the R1 groups is C6-C18-alkyl; where the relative amounts of the wax and the alkyl methyl silicone fluid are such that the viscosity of the dispersion is in the range of from 10 cSt to 100 cSt and the phase change energy absorbed of the dispersion is at least 12 J / g.