USE OF FERMENTED MOLASSES AS AN EMULSIFIER
Patent Information
- Application Number
- DE602022014974
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-03
- Filing Date
- 2022-06-02
- Publication Date
- 2025-05-21
- Estimated Expiration
- 2042-06-02
AI Technical Summary
Current bitumen emulsions rely on toxic amine derivatives as emulsifiers, which are environmentally harmful, and there is a need for more economical and environmentally friendly alternatives.
Utilizing fermented molasses as an emulsifier in oil-in-water emulsions, specifically fermented beet or cane molasses, which exhibit low interfacial tension with water and can form stable emulsions when mixed with an oil phase, acting as both the water phase and surfactant.
This approach provides stable, non-toxic, and environmentally friendly emulsions while valorizing a fermentation by-product, effectively reducing the viscosity of bitumen and other oils, making them suitable for various industrial applications.
Abstract
Description
[0001] Use of fermented molasses as an emulsifier
[0002] Field of invention
[0003] The present invention relates to a novel use of fermented molasses as an emulsifier.
[0004] Technical background
[0005] Bitumen emulsions are used to thin bitumen that is too thick to be poured. Typically, these emulsions consist of bitumen, water at an acidic pH, and amine derivatives as emulsifiers. However, these amine derivatives are highly toxic to the environment.
[0006] Molasses is a by-product of sugar production, typically from beet and cane in sugar refineries, or from brown sugars in refineries. The sugar production process, whether made from cane or beet, results in the production of sugar and molasses after the crystallization stage.
[0007] Although used to extract glycine betaine, which, after esterification, is used as a surfactant, beet molasses is, like cane molasses, more generally used for animal feed, mixed with straw or other cellulosic foods, but also as a binder in complete animal rations, or to encourage animals to eat unpalatable foods.
[0008] As an alternative to animal feed, molasses is also used by manufacturers to produce so-called "noble" products through fermentation processes. Indeed, through the fermentation mechanisms available to certain microorganisms, molasses can serve as a substrate and, in particular, allows the production of baker's yeast, ethyl alcohol, citric and glutamic acids, lysine, and even antibiotics.
[0009] On the other hand, the use of molasses in fermentation processes generates large quantities of liquid fermentation residues. These liquid fermentation residues correspond to so-called fermented molasses.
[0010] Having been depleted of constituents by micro-organisms, fermented molasses is generally considered to be a fermentation residue of little interest, and is mainly used in the agricultural sector as a spreading fertilizer.
[0011] Other uses have been described.
[0012] WO 2019 / 106190 relates to the use of fermented molasses as a binding and / or disintegrating agent in a compressed solid composition.
[0013] WO 02 / 063941 describes an oil / water emulsion in which the aqueous phase comprises water and an agricultural or fermentation by-product, such as molasses, vinasse and / or syrup, and the oily phase contains oil and emulsifiers.
[0014] There is a real need to provide economical and more environmentally friendly emulsifiers.
[0015] Summary of the invention
[0016] The invention relates firstly to the use of fermented molasses as an emulsifier in an emulsion.
[0017] In embodiments, the emulsion is an oil-in-water emulsion.
[0018] In embodiments, the fermented molasses is fermented beet molasses and / or fermented cane molasses.
[0019] In embodiments, the fermented molasses is fermented beet molasses.
[0020] In embodiments, the fermented molasses is demineralized fermented molasses.
[0021] In embodiments, the fermented molasses is a depotassium-fermented fermented molasses.
[0022] In embodiments, the fermented molasses is present in the emulsion in an amount of 25 to 85% by weight, preferably 25 to 60% by weight, more preferably 25 to 50% by weight, more preferably 30 to 40% by weight, relative to the total weight of the emulsion.
[0023] In embodiments, the emulsion comprises an amount of oil phase of 15 to 75% by weight, preferably 40 to 75% by weight, more preferably 50 to 75% by weight, more preferably 60 to 70% by weight, relative to the total weight of the emulsion.
[0024] In embodiments, the fermented molasses comprises a dry matter content of 50 to 90% by weight, preferably 55 to 65% by weight. In embodiments, the pH of the emulsion is from 2 to 11.
[0025] In embodiments, the emulsion is a bitumen or petroleum emulsion, preferably the emulsion is a bitumen emulsion.
[0026] In embodiments, the emulsion is at a temperature above 40°C.
[0027] In embodiments, the emulsion constitutes, or is present in, a food product, a cosmetic product, a plant protection product, a drug, a paint, a flotation medium, a detergent or cleaning product, a reaction medium, such as a polymerization medium, an enhanced oil recovery fluid, or an adhesive.
[0028] The invention also relates to an emulsion, preferably oil in water, comprising a bitumen and a fermented molasses.
[0029] The present invention makes it possible to meet the need expressed above. More particularly, it provides a system having good emulsifying properties and allowing the production of stable, non-toxic and environmentally friendly emulsions while remaining economical. In addition, the invention makes it possible to recover a by-product of molasses fermentation.
[0030] This is accomplished by using fermented molasses as an emulsifier to prepare an emulsion. It has surprisingly been discovered that fermented molasses inherently has low interfacial tension compared to water and when mixed with an oil phase it is capable of forming an emulsion, with the fermented molasses acting as both the aqueous phase and the surfactant.
[0031] Brief description of the figures
[0032] Figure 1 represents an optical microscopy image of emulsion No. 1 as described in Example 3.
[0033] Figure 2 represents an optical microscopy image of emulsion No. 2 as described in Example 3.
[0034] Figure 3 represents the rheological curves obtained for emulsion No. 1 (curve C), for emulsion No. 2 (curve D) and for pure heavy crude oil (light gray curve A) by a rheometer in plane-plane configuration and the rheological curve obtained for pure heavy crude oil by a rheometer in cone-plane configuration (dark gray curve B), as described in Example 3. The abscissa axis represents the applied shear rate (in s -1) on a logarithmic scale and the y-axis represents the dynamic viscosity of the tested composition (in Pa.s) on a logarithmic scale. Figure 4 represents an optical microscopy image of emulsion no. 3 as described in example 4.
[0035] Figure 5 represents an optical microscopy image of emulsion No. 4 as described in Example 4.
[0036] Figure 6 represents an optical microscopy image of emulsion No. 5 as described in Example 4.
[0037] Figure 7 represents the rheological curves obtained for emulsion No. 3 (curve G), for emulsion No. 4 (curve H), for emulsion No. 5 (curve F) and for pure bitumen (curve E), as described in Example 4. The abscissa axis represents the applied shear rate (in s -1) on a logarithmic scale and the y-axis represents the dynamic viscosity of the tested composition (in Pa.s) on a logarithmic scale.
[0038] Figure 8 represents the rheological curves obtained for emulsion No. 6 (curve J), and for pure bitumen (curve I), as described in example 5. The abscissa axis represents the applied shear rate (in s -1 ) on a logarithmic scale and the y-axis represents the dynamic viscosity of the tested composition (in Pa.s) on a logarithmic scale.
[0039] Figure 9 shows an optical microscopy image of emulsion No. 7 after its preparation, as described in Example 6.
[0040] Figure 10 shows an optical microscopy image of emulsion No. 8 after its preparation, as described in Example 6.
[0041] Figure 11 represents an optical microscopy image of emulsion No. 7 20 days after its preparation, as described in Example 6.
[0042] Figure 12 represents an optical microscopy image of emulsion No. 8 20 days after its preparation, as described in Example 6.
[0043] Figure 13 represents an optical microscopy image of emulsion No. 9 of pH 10 as described in Example 7.
[0044] Figure 14 represents an optical microscopy image of emulsion No. 10 of pH 3 as described in Example 7.
[0045] Figure 15 represents an optical microscopy image of emulsion No. 11 of pH 6 as described in Example 8.
[0046] Figure 16 represents an optical microscopy image of emulsion No. 12 of pH 10 as described in Example 8.
[0047] Detailed Description The invention is now described in more detail and in a non-limiting manner in the following description.
[0048] In this text, unless expressly indicated otherwise, all percentages (%) indicated are percentages by weight.
[0049] The invention relates to the use of fermented molasses as an emulsifier in an emulsion.
[0050] For the purposes of the present invention, "fermented molasses" means fermented molasses which has not undergone an esterification process (for example with a view to esterifying the glycine betaine present in fermented beet molasses).
[0051] As previously mentioned, fermented molasses is a co-product of molasses obtained after fermentation of the latter by bacteria, yeasts or fungi, said fermentation making it possible, for example, to obtain so-called "noble" products such as baker's yeast, ethyl alcohol, citric acid or even glutamic acid.
[0052] The fermented molasses used in the invention may be a fermented beet molasses or a fermented cane molasses. The fermented molasses used in the invention may alternatively be a mixture of fermented beet molasses and fermented cane molasses. For example, the mixture may comprise from 1 to 25% by weight of fermented beet molasses and from 75 to 99% by weight of fermented cane molasses, or from 25 to 50% by weight of fermented cane molasses, or from 50 to 75% by weight of fermented beet molasses and from 25 to 50% by weight of fermented cane molasses, or from 75 to 99% by weight of fermented beet molasses and from 1 to 25% by weight of fermented cane molasses. Particularly preferably, the fermented molasses according to the invention comprises from 75 to 100% by weight of fermented beet molasses and from 0 to 25% by weight of fermented cane molasses.
[0053] More preferably, the fermented molasses used is fermented beet molasses. Fermented beet molasses allows for the achievement of an interfacial tension with a lower oil phase than fermented cane molasses, and therefore has better emulsifying properties than fermented cane molasses.
[0054] Fermented cane molasses exhibits slightly shear-thinning rheological behavior (its viscosity depends on shear), while fermented beet molasses exhibits almost Newtonian rheological behavior. The more the fermented molasses exhibits shear-thinning rheological behavior, the greater the emulsion stability.
[0055] Advantageously, fermented molasses is obtained by the fermentation of molasses by yeasts.
[0056] Preferably, the fermented molasses incorporated into the emulsion comprises a dry matter content of 50 to 90% by weight, preferably 55 to 65% by weight, more preferably 58 to 62% by weight. In particular, the fermented molasses may comprise 50 to 55% by weight, or 55 to 58% by weight, or 58 to 60% by weight, or 60 to 62% by weight, or 62 to 65% by weight, or 65 to 70% by weight, or 70 to 75% by weight, or 75 to 80% by weight, or 80 to 85% by weight, or 85 to 90% by weight, of dry matter. Preferably, the remainder of the fermented molasses is water (the fermented molasses incorporated into the emulsion may thus comprise from 10 to 50% by weight of water, preferably from 35 to 45% by weight of water, more preferably from 38 to 42% by weight of water).
[0057] The fermented molasses recovered from the fermentation bath generally contains 5 to 10% by weight of dry matter (and therefore 90 to 95% by weight of water). The fermented molasses as recovered after the fermentation process may undergo concentration, in order to reduce the amount of water, or dilution, preferably with water, for example to achieve a dry matter content in one of the ranges mentioned above.
[0058] The fermented molasses incorporated into the emulsion may be demineralized fermented molasses. Demineralization may, for example, consist of precipitation of potassium sulfate (K2SO4), sodium sulfate (Na2SO4), magnesium sulfate (MgSC ) and calcium sulfate (CaSC ) salts by adding sulfuric acid. Advantageously, demineralization increases the proportion of organic matter in the fermented molasses and increases the proportion of surfactant molecules in the molasses relative to the total dry matter in the fermented molasses.
[0059] The fermented molasses incorporated into the emulsion may be a depotassium-depleted fermented molasses, for example via acidification with a sulfuric acid solution followed by neutralization with ammonia.
[0060] Alternatively, the fermented molasses used for the formation of the emulsion may be a so-called “raw” fermented molasses, i.e. it has not been subjected to any chemical or physicochemical treatment (the raw fermented molasses may, however, have been concentrated or diluted). The fermented molasses may be defined by its distribution of nitrogenous matter and by its aminogram. The fermented molasses according to the invention may thus have a distribution of nitrogenous matter as follows:
[0061] - nitrogen of total amino acids determined by the Kjeldahl method: 25% to 100% by weight of total nitrogen,
[0062] - betaine nitrogen: 0% to 50% by weight of total nitrogen,
[0063] - ammoniacal nitrogen: 0% to 30% by weight of total nitrogen.
[0064] More particularly, the fermented molasses according to the invention may have a distribution of nitrogenous materials as follows, in particular when it is a fermented beet molasses:
[0065] - nitrogen of total amino acids determined by the Kjeldahl method: 25% to 50% by weight of total nitrogen,
[0066] - betaine nitrogen: 40% to 50% by weight of total nitrogen,
[0067] - ammoniacal nitrogen: 2% to 3% by weight of the total nitrogen. Alternatively, the fermented molasses according to the invention may have a distribution of nitrogenous materials as follows, in particular when it is a fermented cane molasses:
[0068] - nitrogen of total amino acids determined by the Kjeldahl method: 70% to 100% by weight of total nitrogen,
[0069] - ammoniacal nitrogen: 0% to 30% by weight of the total nitrogen. Concerning the aminogram of the proteins of the fermented molasses according to the invention, the average amino acid contents can be as follows (the content ranges are given in g / kg of dry matter of the fermented molasses):
[0070] - aspartic acid: 6 - 8;
[0071] - threonine: 0.5 - 3;
[0072] - serine glutamic acid: 115 - 130;
[0073] - proline: 3 - 4;
[0074] - glycine: 4 - 5;
[0075] - alanine: 2.5 - 3.5;
[0076] - valine: 2.5 - 3.5;
[0077] - methionine and cysteine: 0.5 - 3;
[0078] - isoleucine: 1.5 - 2.5;
[0079] - tyrosine: 2 - 3.5;
[0080] - leucine: 3 - 4.5;
[0081] - phenylalanine: 1 - 2;
[0082] - lysine: 0.5 - 2.5;
[0083] - histidine: 0.5 - 2; and - arginine: 0.2 - 1.
[0084] The fermented molasses has a low sugar content, the latter having been consumed by the microorganisms during the fermentation process. By "low sugar content" is meant that the sugar content is less than or equal to 5% by weight, or less than or equal to 4% by weight, or less than or equal to 3% by weight, or less than or equal to 2% by weight, and preferably, less than or equal to 1% by weight, relative to the total mass of the dry extract of fermented molasses. More preferably, the fermented molasses according to the invention is free of sugars.
[0085] The fermented molasses used according to the invention may have a density of 1.10 to 1.50, preferably 1.20 to 1.40, more particularly 1.25 to 1.35. The density of the fermented molasses can be determined using a DMA® 4500M densimeter from Anton Paar at a temperature of 20°C on a 2 mL sample.
[0086] The fermented molasses used according to the invention may have a viscosity at 20°C of 50 to 6000 mPA.s, preferably of 500 to 5000 mPA.s, more preferably of 1000 to 4000 mPA.s. The viscosity may be measured using a Brookfield viscometer at a temperature of 20°C and at a shear rate of 20 s 1 .
[0087] The fermented molasses used to form the emulsion can have a pH of 2 to 12.
[0088] According to the invention, fermented molasses is used in an emulsion as an emulsifier. For this purpose, it is combined with an oil phase.
[0089] For example, the oil phase may comprise, or be, a vegetable oil, an animal oil, a mineral oil, a petroleum, a bitumen, a phytosanitary active ingredient, a therapeutic active ingredient, a pigment, a resin or combinations thereof.
[0090] Examples of vegetable oils include rapeseed oil, grape seed oil, sweet almond oil, olive oil, jojoba oil and / or sunflower oil.
[0091] Examples of animal oils include fish oils, cod liver oil, whale oil, sperm whale oil, and / or neatsfoot oil.
[0092] Advantageously, the amount of fermented molasses used in the emulsion is 25 to 85% by weight, preferably 25 to 60% by weight, more preferably 25 to 50% by weight, more preferably 30 to 40% by weight, relative to the total weight of the emulsion. In embodiments, the amount of fermented molasses in the emulsion may be 25-30 wt%, or 30-35 wt%, or 35-40 wt%, or 40-45 wt%, or 45-50 wt%, or 50-55 wt%, or 55-60 wt%, or 60-65 wt%, or 65-70 wt%, or 70-75 wt%, or 75-80 wt%, or 80-85 wt%, based on the total weight of the emulsion.
[0093] Preferably, the amount of oily phase in the emulsion is from 15 to 75% by weight, more preferably from 40 to 75% by weight, more preferably from 50 to 75% by weight, more preferably from 60 to 70% by weight, relative to the total weight of the emulsion. In embodiments, the amount of oil phase in the emulsion may be 15-20 wt%, or 20-25 wt%, or 25-30 wt%, or 30-35 wt%, or 35-40 wt%, or 40-45 wt%, or 45-50 wt%, or 50-55 wt%, or 55-60 wt%, or 60-65 wt%, or 65-70 wt%, or 70-75 wt%, relative to the total weight of the emulsion.
[0094] Preferably, the emulsion comprises at least 5% by weight, more preferably at least 10% by weight, even more preferably at least 12% by weight, more particularly at least 15% by weight, of water, relative to the total weight of the emulsion, for example from 10 to 40% by weight, or from 12 to 30% by weight, of water. In embodiments, the emulsion may comprise, relative to the total weight of the emulsion, from 5 to 10% by weight, or from 10 to 12% by weight, or from 12 to 15% by weight, or from 15 to 20% by weight, or from 20 to 25% by weight, or from 25 to 30% by weight, or from 30 to 35% by weight, or from 35 to 40% by weight, of water.
[0095] The emulsion may comprise a dry matter content of 60 to 95%, preferably 75 to 85% by weight. In particular, the emulsion may comprise a dry matter content of 60 to 65%, or 65 to 70%, or 70 to 75%, or 75 to 80%, or 80 to 85%, or 85 to 90%, or 90 to 95%, by weight (based on the total weight of the emulsion).
[0096] The emulsion may consist of the fermented molasses and the oil phase.
[0097] Alternatively, the fermented molasses and the oil phase may be combined with another aqueous solution to form the emulsion according to the invention. Examples of aqueous solutions include fruit juices, vinegars, floral waters and / or brines.
[0098] The aqueous phase of the emulsion according to the invention advantageously has a viscosity at 20°C of 50 to 6000 mPA.s, preferably of 100 to 5000 mPA.s, more preferably of 150 to 4000 mPA.s. The viscosity can be measured as indicated above. The emulsion may comprise one or more other surfactants, for example chosen from the group consisting of sorbitans and their derivatives, alkyl polyglucosides, sucro esters, glycine betaine esters, rhamnolipids, surfactins, sophorolipids, glycolipids, beet pectins, phospholipids, lecithins, quaternary amines and their derivatives, fatty amines and amides, chitosan and its derivatives, and soaps and their derivatives. These surfactants may be present in the emulsion in an amount of 0 to 10% by weight, preferably 0 to 2% by weight, or 0.5 to 2% by weight (particularly when the emulsion is a bitumen emulsion).
[0099] Advantageously, the emulsion is free of surfactants other than fermented molasses, in particular it is free of surfactants as mentioned above.
[0100] The emulsion may comprise one or more additives, in particular one or more hydrocolloids, such as xanthan gums, celluloses, pectins, alginates and / or starches. These additives may be present in the emulsion in an amount of 0 to 1% by weight, preferably 0 to 0.5% by weight.
[0101] The emulsion advantageously has a pH ranging from 2 to 11, preferably from 5 to 11. The emulsion may have a pH of 2 to 3, or 3 to 4, or 4 to 5, or 5 to 6, or 6 to 7, or 7 to 8, or 8 to 9, or 9 to 10, or 10 to 11.
[0102] Particularly advantageously, the emulsion is an oil-in-water emulsion, i.e. the continuous phase is the aqueous phase and the discontinuous phase is the oily phase.
[0103] The emulsion may be prepared by mixing the fermented molasses with at least one oil phase and optionally the other constituents of the emulsion (such as other surfactants, additives and / or one or more other aqueous solutions). The mixing may be carried out in one step (the constituents all being added into the mixture simultaneously) or in several steps (a premixing of certain constituents being first carried out before the addition of other constituents). Preferably, the oil phase is poured into the fermented molasses.
[0104] Mixing of the fermented molasses and the oil phase (and optionally the other constituents of the emulsion) can be carried out using a homogenizer or a disperser.
[0105] The mixing may be carried out for a period of 1 min to 1 h, preferably 2 to 30 min, more preferably 3 to 15 min, for example for a period of 5 min. Advantageously, before mixing it with the fermented molasses, the oily phase is heated, preferably to a temperature greater than or equal to 30°C, more preferably to a temperature greater than or equal to 35°C, even more preferably to a temperature greater than or equal to 40°C. In embodiments, the oily phase may be heated to a temperature greater than or equal to 50°C, or greater than or equal to 60°C, or greater than or equal to 70°C, or greater than or equal to 80°C.
[0106] The temperature of the fermented molasses, when mixed with the oil phase, may be room temperature (i.e. between 15 and 30°C). Alternatively, the fermented molasses may be at the temperature of the oil phase or at a temperature close to the temperature of the oil phase (e.g. within a range of + / -10°C relative to the temperature of the oil phase).
[0107] The emulsion may advantageously be at a temperature greater than or equal to 40°C. In embodiments, the emulsion may be at a temperature greater than or equal to 50°C or greater than or equal to 60°C. Alternatively, the emulsion may be at room temperature. In embodiments, the emulsion may be at a temperature of 5 to 15°C, or 15 to 30°C, or 30 to 40°C, or 40 to 50°C, or 50 to 60°C, or 60 to 70°C, or 70 to 80°C, or 80 to 90°C.
[0108] The emulsion prepared according to the invention can be used in any type of application.
[0109] The emulsion may advantageously be a bitumen emulsion, i.e. the oily phase is a bitumen. Forming a bitumen emulsion makes the bitumen more fluid and facilitates its application. The bitumens that can be used in the invention may be pure bitumen, modified bitumen or special bitumen, alone or in a mixture. They include bitumens of natural origin, those contained in deposits of natural bitumen, natural asphalt or oil sands. The bitumens according to the invention also include bitumens originating from the refining of crude oil. The bitumens originate from the atmospheric and / or vacuum distillation of oil. These bitumens may optionally be blown, visbroken and / or derived from the deasphalting process. The different bitumens obtained by the refining processes may be combined with each other. The bitumen may also be a recycled bitumen. The bitumens may be hard grade or soft grade bitumens.The bitumen according to the invention preferably has a penetrability of less than 800 tenths of a mm at 25°C, measured by the NF EN 1426 standard, for example a penetrability at 25°C measured by the NF EN 1426 standard ranging from 10 to 30 tenths of a mm, or from 30 to 50 tenths of a mm, or from 50 to 100 tenths of a mm, or from 100 to 200 tenths of a mm, or from 200 to 300 tenths of a mm, or from 300 to 400 tenths of a mm, or from 400 to 500 tenths of a mm, or from 500 to 600 tenths of a mm, or from 600 to 700 tenths of a mm, or from 700 to 800 tenths of a mm.
[0110] The bitumen emulsion preferably has a temperature greater than 40°C, preferably greater than or equal to 50°C or greater than or equal to 60°C.
[0111] Preferably, for the preparation of the bitumen emulsion, the bitumen is heated until it reaches a temperature greater than or equal to 70°C, preferably greater than or equal to 80°C, prior to mixing it with the fermented molasses.
[0112] The bitumen emulsions according to the invention can be used in various industrial applications, such as in the road industry or the roofing industry. For example, the bitumen emulsions can be used in the road industry, for the production of base layers, binder layers and / or sub-base layers for roadways. They can also be used for coating floors, in particular traffic lanes. As floors that can be coated, mention may be made of roadways, parking lot floors; pedestrian traffic lanes, such as sidewalks or terraces; urban developments, such as skateboard tracks; floors of sports facilities or industrial sites; floors of cold rooms. The bitumen emulsions according to the invention can also be used to prepare a waterproofing coating, a membrane or an impregnation layer.Bitumen emulsions are suitable for the production of waterproofing membranes, noise reduction membranes, insulation membranes, surface coverings, carpet tiles, and impregnation layers.
[0113] In other embodiments, the emulsion may be a petroleum emulsion (i.e., the oil phase is a petroleum), for example, a heavy crude oil emulsion. Preferably, the petroleum, for example, heavy crude, is heated to a temperature greater than or equal to 35°C, preferably greater than or equal to 40°C, prior to mixing with the fermented molasses.
[0114] The emulsion according to the invention can be used in a large number of other industries or sectors, for example in the food industry, in the cosmetics industry, in the phytosanitary industry, in the pharmaceutical industry, in the paint and coatings industry, in the metallurgical industry, in the detergent and cleaning products industry, in the chemical industry, in the petroleum industry, in the adhesives industry, etc.
[0115] Thus, the emulsion can be used as, or be present in, a food product, such as a salad dressing or cream.
[0116] Alternatively, the emulsion may be used as, or be present in, a cosmetic product, such as a cosmetic cream.
[0117] Alternatively, the emulsion may be used as, or be present in, a plant protection product, for example an insecticide, fungicide or herbicide product.
[0118] Alternatively, the emulsion may be used as, or be present in, a medicament, for example a medicament comprising an oily active ingredient.
[0119] Alternatively, the emulsion may be used as, or be present in, a paint, for example a paint comprising a pigment and / or a resin in an oil-in-water emulsion.
[0120] Alternatively, the emulsion may be used as, or be present in, a flotation medium.
[0121] Alternatively, the emulsion may be used as, or be present in, a detergent or maintenance product, such as a textile and / or surface cleaning product or a furniture and / or shoe polish.
[0122] Alternatively, the emulsion may be used as, or be present in, a reaction medium, such as a polymerization medium, to effect emulsion polymerization.
[0123] Alternatively, the emulsion may be used as, or be present in, an enhanced oil recovery fluid, including an enhanced oil recovery fluid comprising oil as an oil phase.
[0124] Alternatively, the emulsion can be a polymer emulsion (or latex). The emulsion then comprises at least one polymer, preferably selected from the group consisting of styrene-butadiene copolymers (SBR), polysaccharides, starches, polyvinyl acetate polymers, polyacrylates, natural rubbers (NR), styrene-butadiene-butylene-styrene copolymers (SBBS), styrene-butadiene-styrene copolymers (SBS), styrene-ethylene-butylene-styrene copolymers (SEBS), styrene-ethylene-propylene-styrene copolymers (SEPS), styrene-ethylene-ethylene-propylene-styrene copolymers (SEEPS), styrene-isoprene-butadiene-styrene copolymers (SIBS), styrene-isoprene-styrene copolymers (SIS), styrene-isoprene-styrene copolymers (SIS), styrene-isoprene-butadiene-styrene copolymers (SIBS), styrene-isoprene-styrene copolymers (SIS), styrene-isoprene ... styrene-isoprene, styrene-ethylene-butylene copolymers, styrene-ethylene-propylene copolymers, polybutadienes, polyisoprenes, and combinations thereof.The emulsion can be used as, or be present in, a glue.
[0125] The invention also relates to an emulsion comprising a bitumen and a fermented molasses. The emulsion may be as described above.
[0126] The invention also relates to an emulsion comprising a petroleum and a fermented molasses. The emulsion may be as described above.
[0127] The invention also relates to a food product comprising, or consisting of, an emulsion comprising a fermented molasses and an oil phase. The emulsion may be as described above.
[0128] The invention also relates to a cosmetic product comprising, or consisting of, an emulsion comprising a fermented molasses and an oily phase. The emulsion may be as described above.
[0129] The invention also relates to a plant protection product chosen from insecticides, fungicides and herbicides comprising, or consisting of, an emulsion comprising a fermented molasses and an oily phase. The emulsion may be as described above.
[0130] The invention also relates to a medicament comprising, or consisting of, an emulsion comprising a fermented molasses and an oil phase. The emulsion may be as described above.
[0131] The invention also relates to a paint comprising, or consisting of, an emulsion comprising a fermented molasses and an oil phase. The emulsion may be as described above.
[0132] The invention also relates to a flotation medium comprising, or consisting of, an emulsion comprising a fermented molasses and an oil phase. The emulsion may be as described above.
[0133] The invention also relates to a detergent or maintenance product comprising, or consisting of, an emulsion comprising a fermented molasses and an oily phase. The emulsion may be as described above.
[0134] The invention also relates to a reaction medium, such as a polymerization medium, comprising, or consisting of, an emulsion comprising a fermented molasses and an oil phase. The emulsion may be as described above. The invention also relates to an enhanced oil recovery fluid comprising, or consisting of, an emulsion comprising a fermented molasses and an oil phase. The emulsion may be as described above.
[0135] Examples
[0136] The following examples illustrate the invention without limiting it.
[0137] Example 1 (comparative example)
[0138] An anhydrous powder obtained after removal of water from fermented cane molasses was added in different concentrations (0.5%; 1%; 2%; 5% and 10% by weight) to a heavy crude oil.
[0139] Microscopic observation of heavy crude oil compositions comprising 5 and 10% anhydrous powder showed that the powder did not dissolve in the heavy crude oil and remained as solid particles.
[0140] The viscosity of each of the mixtures of heavy crude oil and anhydrous powder and the viscosity of a composition comprising 100% heavy crude oil were measured at 40°C as a function of the shear rate (over a range of 0.1 to 400 s -1 ) by a DHR3 rheometer from TAInstruments in cone-plate configuration (1° cone and 4 cm diameter plate).
[0141] All heavy crude oil / anhydrous powder mixtures have a viscosity that remains close to that of pure heavy crude oil. In the complete absence of water, the anhydrous extract of fermented molasses was not effective in reducing the viscosity of heavy crude oil.
[0142] Example 2 - Measurement of interfacial tension
[0143] The following compositions were tested:
[0144] - DRM 1: fermented cane molasses comprising approximately 55% by weight of dry matter;
[0145] - DRM 2: fermented beet molasses comprising approximately 60% by weight of dry matter;
[0146] - DRM 3: water containing 20 g / L of NaCI and no surfactant.
[0147] These three compositions were each blended with a light crude oil (from the supplier FAB) so as to create an interface between the composition and the light crude oil. The interfacial tension was measured at 60°C using a K100 tensiometer from Krüss equipped with a Wilhelmy plate. A second test was carried out, in which each of the three compositions DRM 1 , DRM 2 and DRM 3 was blended with xylene so as to create an interface between the composition and the xylene. The interfacial tension was measured at 25°C using the K100 Wilhelmy plate tensiometer.
[0148] The results are presented in the table below:
[0149] [Table 1]
[0150] It is observed that fermented molasses allow the obtaining of an interfacial tension, when mixed with an oily phase, lower than an aqueous solution at 20 g / L of NaCl, indicating that fermented molasses potentially have a surface activity.
[0151] It is also observed that fermented beet molasses achieves a lower interfacial tension (by a factor of almost 2) than fermented cane molasses.
[0152] Example 3 - Heavy Crude Oil Emulsions
[0153] An emulsion (Emulsion No. 1) was made using an UltraTurrax T25 homogenizer as follows. A mass of 45 g (34 mL) of the fermented molasses DRM 1 (as described in Example 2 above) was placed in a beaker. The heavy crude oil was heated to a temperature of 40°C in an oven. It was then poured using a syringe in an amount of 30 mL into the fermented molasses, while the preparation was mixed with the homogenizer set at 20,000 rpm. The mixing was carried out for 5 minutes. The emulsion comprises 47% by volume of heavy crude oil.
[0154] A second emulsion (Emulsion No. 1) was made in the same way as Emulsion No. 1, except that DRM 2 fermented molasses (as described in Example 2 above) was used instead of DRM 1 fermented molasses.
[0155] A droplet of emulsion #2 was introduced into tap water. The droplet dispersed in the water, so the emulsion is an oil-in-water emulsion. A droplet of emulsion #2 was also introduced into heptane. The droplet did not disperse in the heptane, confirming that the continuous phase of the emulsion is the aqueous phase.
[0156] Both emulsions No. 1 and No. 2 were observed by optical microscopy. The optical microscopy images are shown in Figures 1 and 2.
[0157] It is observed that both emulsions contain oil phase droplets that are rather polydisperse. The presence of fermented molasses therefore allowed the formation of an emulsion.
[0158] Rheological measurements were also carried out on emulsions No. 1 and No. 2: viscosity was measured at 40°C with a rheometer in a plane-plane configuration (rough parallel plates of 4 cm diameter) with a 750 pm air gap to limit the effect of slip. A viscosity measurement of pure heavy crude oil with the same geometry and a measurement with a cone-plane geometry were also carried out.
[0159] The results are presented in Figure 3.
[0160] It is found that fermented molasses / heavy crude oil emulsions have a viscosity much lower than that of heavy crude oil.
[0161] Example 4 - Bitumen emulsions
[0162] Tests were carried out with Esso 160200 bitumen.
[0163] An emulsion (emulsion no. 3) was prepared as follows: the bitumen was heated to a temperature of 80°C and then a volume of 51 mL of bitumen was introduced into 45 g (34 mL) of fermented molasses DRM 1 , so as to reach a quantity of bitumen of 60% by volume. The mixture was mixed for 5 minutes with an UltraTurrax homogenizer at 20,000 rpm.
[0164] A second emulsion (emulsion no. 4) was made in the same way as emulsion no. 3, except that DRM 2 fermented molasses was used instead of DRM 1 fermented molasses.
[0165] A third emulsion (emulsion no. 5) was made in the same way as emulsion no. 4, except that the quantity of bitumen introduced into the fermented molasses DRM 2 is such that the emulsion comprises 70% bitumen by volume.
[0166] Emulsions No. 3, No. 4 and No. 5 were observed by optical microscopy. The optical microscopy images are presented in Figures 4, 5 and 6. It can be seen that the oil phase droplets are rather polydisperse. The presence of fermented molasses therefore allowed the formation of bitumen emulsions.
[0167] The three emulsions No. 3, No. 4 and No. 5 are stable.
[0168] A droplet of each emulsion was introduced into water and heptane: for each emulsion, the droplet dispersed in water but not in heptane: emulsions No. 3, No. 4 and No. 5 are oil-in-water emulsions.
[0169] Rheological measurements were carried out on the three emulsions No. 3, No. 4 and No. 5 and on pure Esso 160200 bitumen. Viscosity was measured at 40°C with a rheometer in a plane-plane configuration (parallel plates of 4 cm diameter) with a Peltier plate.
[0170] The results are presented in Figure 7.
[0171] It is found that emulsions of fermented cane or beet molasses and 60% bitumen by volume (emulsions No. 3 and No. 4) have a viscosity much lower than that of pure bitumen. Fermented beet molasses allows a greater reduction in viscosity than fermented cane molasses.
[0172] Furthermore, a reduction in viscosity (compared to pure bitumen) is also observed in emulsion No. 5 comprising 70% bitumen by volume.
[0173] Example 5 - 50% by volume bitumen emulsions
[0174] A bitumen emulsion (emulsion no. 6) was made in the same way as emulsion no. 3, except that the quantity of bitumen introduced into the fermented molasses DRM 1 is 50% by volume.
[0175] Rheological measurements were carried out on this emulsion and on pure bitumen. The viscosity was measured at 40°C with a rheometer in a plane-plane configuration (parallel plates of 4 cm diameter) with a Peltier plate.
[0176] The results are presented in Figure 8.
[0177] It is found that the addition of fermented cane molasses with bitumen, to form an emulsion, allows a significant reduction in viscosity.
[0178] The emulsion was allowed to cool and a phase shift was observed when the emulsion temperature dropped back to 40°C. This could be advantageous in bitumen casting applications, where emulsion breaking is usually required after bitumen casting. Example 6 - Rapeseed Oil Emulsions
[0179] Two emulsions comprising 60% by weight of rapeseed oil and 40% by weight of fermented molasses and having a pH of 10 (emulsion No. 7) and a pH of 6 (emulsion No. 8) respectively were prepared. The fermented molasses used to prepare these emulsions is a fermented molasses comprising 80 to 90% of fermented beet molasses and 10 to 20% of fermented cane molasses, having a dry matter content of 60% and a pH of 6. To prepare emulsion No. 7, a 50% by weight aqueous solution of potassium hydroxide was added to the fermented molasses until a pH between 10 and 11 was obtained. A very slight dilution is observed when the pH of the fermented molasses is increased.
[0180] The emulsions were prepared as follows. Rapeseed oil was heated to a temperature of 60°C and then 60 g of oil was introduced in one go into 40 g of fermented molasses also heated to the same temperature, so as to reach an oil content of 60% by weight. The mixture was mixed for 1 minute with an UltraTurax homogenizer at 12,000 rpm and then poured hot into two centrifuge tubes to monitor forced stability (acceleration of phase separation by centrifugation) and stability over time (after 20 days). To force separation, one of the two tubes was centrifuged at 8,000 rpm for 10 minutes at 20°C, 2 hours after emulsion preparation.
[0181] Both emulsions No. 7 and No. 8 were observed by optical microscopy after their preparation (before centrifugation). The optical microscopy images are presented in Figures 9 and 10.
[0182] For both emulsions, monodispersed oil phase droplets are observed in the aqueous phase. An emulsion has therefore been formed. The droplets have a size close to 10 pm.
[0183] Polypropylene conical tubes containing emulsions No. 7 and No. 8 for the study of emulsion stability over time (i.e., tubes that had not undergone centrifugation) were stored at room temperature for 20 days, and then emulsions No. 7 and No. 8 were observed by optical microscopy. The optical microscopy images are shown in Figures 11 and 12.
[0184] The oil droplets are still dispersed in the aqueous phase, regarding both emulsions, and no creaming is observed: the emulsions are stable over time. The droplet size evolved towards a size close to 20 pm on average. In the emulsion at pH 10, the coalescence was lower and the droplets remained monodisperse 20 days after its preparation whereas the droplets are more polydisperse in the emulsion at pH 6 after 20 days of storage, which could indicate that the stability of the emulsion is higher at pH 10 compared to pH 6.
[0185] Example 7 - Demineralized fermented molasses emulsions
[0186] Two emulsions comprising 60% by weight of rapeseed oil and 40% by weight of diluted demineralized fermented molasses, and having respectively a pH of 10 (emulsion No. 9) and a pH of 3 (emulsion No. 10) were prepared. The fermented molasses used to prepare these emulsions are fermented molasses comprising 85 to 95% of fermented beet molasses and 5 to 15% of fermented cane molasses. They contain 70% by weight of dry matter and 30% by weight of water (the dry matter comprising before demineralization approximately 85% by weight of organic matter and 15% by weight of mineral matter). The demineralization of the fermented molasses was carried out by adding sulfuric acid and then separating the crystals obtained.Before their incorporation into the emulsions, the fermented molasses were diluted by adding 33.3 g of distilled water to 66.7 g of fermented molasses, so as to introduce into the emulsions a quantity of organic matter identical to that introduced into emulsions No. 7 and No. 8 of Example 6. To prepare emulsion No. 9, an aqueous solution of potassium hydroxide at 50% by weight was added to the demineralized fermented molasses until a pH between 10 and 11 was obtained.
[0187] Emulsions No. 9 and No. 10 were then prepared in the manner described for Emulsions No. 7 and No. 8 in Example 6.
[0188] Both emulsions No. 9 and No. 10 were observed by optical microscopy after their preparation. The optical microscopy images are shown in Figures 13 and 14.
[0189] It is observed that for both emulsions (at pH 10 and at pH 3), oil droplets are stably dispersed in the aqueous phase. Emulsions were therefore indeed obtained. In addition, the viscosity of emulsion No. 9 (at pH 10) is higher than that of emulsion No. 10 (at pH 3), increasing the pH promotes the stability of the emulsion.
[0190] Example 8 - Depotassium-depleted fermented molasses emulsions
[0191] Two emulsions comprising 60% by weight of rapeseed oil and 40% by weight of depotassium-depleted fermented molasses, and having a pH of 6 (emulsion No. 11) and a pH of 10 (emulsion No. 12) respectively, were prepared. The fermented molasses used to prepare these emulsions are fermented molasses comprising 85 to 95% of fermented beet molasses and 5 to 15% of fermented cane molasses, and having a dry matter content of approximately 60% by weight. The molasses were depotassicated by precipitating the potassium by adding sulfuric acid followed by separation of the crystals obtained, then neutralizing by adding ammonia until a pH of 6 was reached. To prepare emulsion No. 12, a 50% by weight aqueous solution of potassium hydroxide was added to the depotassicated fermented molasses until a pH of between 10 and 11 was obtained.
[0192] Emulsions No. 11 and No. 12 were then prepared in the manner described for Emulsions No. 7 and No. 8 in Example 6.
[0193] Both emulsions No. 11 and No. 12 were observed by optical microscopy after their preparation. The optical microscopy images are presented in Figures 15 and 16.
[0194] Emulsions No. 11 (at pH 6) and No. 12 (at pH 10) were observed to contain stable oil droplets dispersed in the aqueous phase. Emulsions were formed at pH 6 and pH 10.
[0195] Example 9 - Emulsions with different amounts of oil
[0196] Oil and fermented molasses emulsions were prepared in the same way as Emulsion No. 8 of Example 6, but with the proportions of rapeseed oil and fermented molasses indicated below.
[0197] Emulsions No. 13 to 15 were observed by optical microscopy after their preparation: for each of them, oil phase droplets, with a size of approximately 2 to 5 miti, are monodispersed in a stable manner in the aqueous phase.
[0198] The forced stability (by centrifugation) of these emulsions was also studied, as described in Example 6. Emulsions Nos. 13 to 15 remained stable. Example 10 - Emulsions of different oils
[0199] Two emulsions comprising 60% by weight of oil and 40% by weight of fermented molasses were prepared in the same way as Emulsion No. 8 of Example 6, except that either sunflower oil (Emulsion No. 16) or grapeseed oil (Emulsion No. 17) was used instead of rapeseed oil.
[0200] Emulsions No. 16 and 17 were observed by optical microscopy after their preparation. The emulsions comprise monodispersed oil phase droplets in the aqueous phase and are stable. The droplets of emulsion No. 16 are about 3 to 8 microns in size, and those of emulsion No. 17 are about 4 to 8 microns in size.
[0201] These emulsions were also tested for their forced stability (via centrifugation), as described in Example 6. These emulsions remained stable.
Claims
Demands 1. Use of fermented molasses as an emulsifier in an emulsion.
2. Use according to claim 1, wherein the emulsion is an oil-in-water emulsion.
3. Use according to claim 1 or 2, wherein the fermented molasses is fermented beet molasses and / or fermented cane molasses.
4. Use according to any one of claims 1 to 3, wherein the fermented molasses is fermented beet molasses.
5. Use according to any one of claims 1 to 4, wherein the fermented molasses is demineralized fermented molasses.
6. Use according to any one of claims 1 to 5, wherein the fermented molasses is depotassiumized fermented molasses.
7. Use according to any one of claims 1 to 6, wherein the fermented molasses is present in the emulsion in an amount of 25 to 85% by weight, preferably 25 to 60% by weight, more preferably 25 to 50% by weight, more preferably 30 to 40% by weight, relative to the total weight of the emulsion.
8. Use according to any one of claims 1 to 7, wherein the emulsion comprises an amount of oil phase of 15 to 75% by weight, preferably 40 to 75% by weight, more preferably 50 to 75% by weight, more preferably 60 to 70% by weight, relative to the total weight of the emulsion.
9. Use according to any one of claims 1 to 8, wherein the fermented molasses comprises a dry matter content of 50 to 90% by weight, preferably 55 to 65% by weight.
10. Use according to any one of claims 1 to 9, wherein the pH of the emulsion is from 2 to 11.
11. Use according to any one of claims 1 to 10, wherein the emulsion is a bitumen or petroleum emulsion, preferably the emulsion is a bitumen emulsion.
12. Use according to any one of claims 1 to 11, wherein the emulsion is at a temperature above 40°C.
13. Use according to any one of claims 1 to 12, wherein the emulsion constitutes, or is present in, a food product, a cosmetic product, a plant protection product, a medicinal product, a paint, a flotation medium, a detergent or maintenance product, a reaction medium, such as a polymerization medium, an enhanced petroleum recovery fluid, or an adhesive.
14. Emulsion, preferably oil-in-water, comprising bitumen and fermented molasses.