Fully Miscible Antifoam Formulations
20240076573 ยท 2024-03-07
Inventors
- Vineeth Chandran Suja (Cambridge, MA, US)
- Gerald G. Fuller (Stanford, CA)
- Suzanne G. K. Calhoun (Menlo Park, CA, US)
Cpc classification
C10M169/00
CHEMISTRY; METALLURGY
C10M2203/10
CHEMISTRY; METALLURGY
International classification
C10M169/00
CHEMISTRY; METALLURGY
Abstract
Miscible antifoams are provided that do not separate out of a target liquid and that are easy to incorporate in the target liquid. A method or system involves mixing a liquid (a miscible antifoam) into a target foaming liquid. This miscible antifoam is engineered/chosen such that it has both a higher surface tension and is more volatile than the target liquid, or engineered such that it has both a lower surface tension and is less volatility than the target liquid. The miscible antifoam leads to surface tension gradients that cause bubble rupture up to 10 times faster than the target liquid without the antifoam. Further, the miscible antifoams are easy to incorporate and do not separate out from the target liquid during operationboth of which are key limitations faced by existing antifoams.
Claims
1. A miscible antifoam formulation, comprising: (a) a target liquid having a target liquid surface tension and a target liquid volatility; and (b) mixed with the target liquid an antifoam liquid having an antifoam liquid surface tension and an antifoam liquid volatility, wherein the target liquid surface tension and the target liquid volatility are both lower than the antifoam liquid surface tension and the antifoam liquid volatility, or wherein the target liquid surface tension and target liquid volatility are both higher than the antifoam liquid surface tension and antifoam liquid volatility.
2. The miscible antifoam formulation as set forth in claim 1, wherein volume concentrations for the antifoam liquid are between 0.5% and 5% and the target liquid are between 99.5% and 95%.
3. The miscible antifoam formulation as set forth in claim 1, wherein the antifoam liquid is Kerosene, Toluene, Xylene, or a combination thereof.
4. The miscible antifoam formulation as set forth in claim 1, wherein the target liquid is a lubricant or a diesel fuel.
5. A method of making a miscible antifoam formulation, comprising: (a) having a target liquid having a target liquid surface tension and a target liquid volatility; and (b) mixing with the target liquid an antifoam liquid having an antifoam liquid surface tension and an antifoam liquid volatility, wherein the target liquid surface tension and the target liquid volatility are both lower than the antifoam liquid surface tension and the antifoam liquid volatility, or wherein the target liquid surface tension and target liquid volatility are both higher than the antifoam liquid surface tension and antifoam liquid volatility.
6. The method as set forth in claim 5, wherein volume concentrations for the antifoam liquid are between 0.5% and 5% and the target liquid are between 99.5% and 95%.
7. The method as set forth in claim 5, wherein the antifoam liquid is Kerosene, Toluene, Xylene, or a combination thereof.
8. The method as set forth in claim 5, wherein the target liquid is a lubricant or a diesel fuel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
[0014]
[0015]
[0016]
DETAILED DESCRIPTION
[0017] Here the inventors disclose miscible antifoams and a method thereof leveraging the physical mechanism of evaporation induced gradients in surface tension. Gradients in surface tension can occur between the bubble apex and surrounding bulk liquid, driven by differences in solute concentration or surfactant concentrationor caused by differences in relative species concentrations in multicomponent systems. These surface tension gradients cause Marangoni flows, induced liquid flows from low to high surface tension. Evaporation can drive these surface tension gradients in multicomponent liquids with differential volatilities and surface tension, as evaporation of a higher volatility liquid creates spatial heterogeneities in species concentration. These evaporation-induced Marangoni flows have been observed stabilizing bubbles and foams, when a lower surface tension liquid evaporating from the top of the bubble induces a flow from bulk liquid toward the apex, delaying coalescence. The strength of evaporation induced flows correlates with evaporation rate and with relative volume fractions of the component liquids. However, Marangoni flows have not been engineered for destabilizing a bubble or thin film.
[0018] To overcome the limitation(s) in the art, the inventors have conceived that antifoams can be engineered to break up foams through a different physical mechanismspecies concentration induced surface tension gradients (also referred to as Marangoni flows). This different physical mechanism makes fully miscible antifoams possible.
[0019] To demonstrate this mechanism, the inventors made use of single bubble coalescence experiments on several potential foaming liquids blended with miscible antifoams having a range of surface tension differences () and viscosity ratios (
[0020] To visualize the results of the single bubble experiments, the coalescence times of single bubbles measured in the DFI (Dynamic Fluid-Film Interferometer) can be plotted versus the fraction of tested bubbles in a given sample (
[0021]
[0022] Results in
[0023] The results from the single-bubble experiments clearly illustrate that foams in mixtures with a miscible antifoam are less stable compared with the pure foaming fluid (in some cases up to 10 less stable). The stability of samples is also seen to decrease with an increasing volume fraction of miscible antifoam fluid, with this effect more pronounced in higher viscosity foaming liquids with their higher baseline propensity for foaming. Trials closed to evaporation do not experience the same extent of destabilization due to presence of a miscible antifoam (
[0024] A miscible antifoam is effective when the evaporation induced Marangoni flows are directed radially outwards. In other words, the depth averaged radial velocity (v.sub.r) of the fluid,
should be positive. Here h is the local film thickness, the bulk viscosity and r the radial coordinate with its origin at the bubble apex. The local surface tension is:
=(c(r,,t), , .sub.nv)
[0025] is the polar coordinate, =.sub.v.sub.nv is the equilibrium surface tension differential between the volatile and the non-volatile species in the system, and c is the local antifoam concentration. Upon closer inspection, Equation 1 implies that antifoams are effective if the radial surface tension gradient is positive (surface tension lowest at the bubble apex and increasing moving away from the apex):
[0026] The above criteria then give rise to the following practical condition for selection of miscible antifoams: the evaporating liquid must have a higher surface tension, to create the required gradient. For a non-volatile foaming liquid (e.g. lubricants like silicone oils), a miscible antifoam is effective if the antifoam is more volatile and has a higher surface tension than the foaming liquid. On the other hand, for a volatile foaming liquid (e.g. fuels like diesel), though found more rarely, a miscible antifoam is effective if the antifoam is relatively non-volatile and has a lower surface tension than the foaming liquid.
[0027] It is noted that designing a miscible antifoam leveraging this mechanism as discussed herein (e.g. Equation 1) has proved to be challenging in the art. The key innovation is that destabilizing Marangoni flows can be induced using miscible antifoams by choosing a target liquid and a miscible liquid having the conditions: [0028] 1. the target liquid surface tension and the target liquid volatility are both lower than the antifoam liquid surface tension and the antifoam liquid volatility, or [0029] 2. the target liquid surface tension and target liquid volatility are both higher than the antifoam liquid surface tension and antifoam liquid volatility.
[0030] In further embodiments, the invention can also be regarded as significant improvements in the art considering the language wherein the improvement comprises, a miscible antifoam formulation or method consisting essentially of, or a miscible antifoam formulation or method consisting of.