Composition for relieving hangover and improving liver function and preparation method therefor

A mineral-based composition forms ionic and covalent bonds with harmful substances in liver cells to address hangovers and liver damage, providing rapid alcohol metabolism and liver function improvement without side effects.

WO2025159444A1PCT designated stage Publication Date: 2025-07-31KIM CHEON GUN
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Patent Information

Application Number
PCT/KR2025/000922
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-01-24
Filing Date
2025-01-15
Publication Date
2025-07-31

AI Technical Summary

Technical Problem

Existing remedies for hangovers and liver damage from alcohol consumption are ineffective and often carry side effects, failing to significantly reduce blood alcohol concentration or address the root causes of liver disease.

Method used

A composition comprising a mixture of at least five minerals that have lost at least one electron, combined with organic acids and far-infrared emitting elements, forms ionic and covalent bonds with harmful substances in liver cells to remove them, thereby reducing blood alcohol concentration and improving liver function without side effects.

Benefits of technology

The composition effectively reduces blood alcohol concentration and improves liver function by removing harmful substances through ionic and covalent bonds, offering rapid relief and prevention of liver disease without adverse effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

Disclosed is a composition for relieving hangover and improving liver function. The composition for relieving hangover and improving liver function contains, as active ingredients, at least five types of minerals that have lost at least one electron, which are selected from germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfide (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs).
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Description

Composition for relieving hangovers and improving liver function and method for producing the same

[0001] The present invention relates to a composition for relieving hangovers and improving liver function and a method for producing the same, and more particularly, to a composition for relieving hangovers and improving liver function and a method for producing the same, which improves liver function without side effects by removing various harmful substances that accumulate in liver cells and cause hangovers and weaken liver function through ionic bonds and covalent bonds.

[0002] The information contained in this background section is intended to enhance understanding of the background of the invention and may include matters that are not prior art already known to a person of ordinary skill in the art to which this technology pertains.

[0003] Drinking alcohol to the point of intoxication can lead to toxicity from alcohol and its intermediate metabolite, acetaldehyde, liver damage due to dehydration and malabsorption, and nutrient deficiencies (blood sugar, mineral, and vitamin deficiencies). These effects can vary significantly, depending on individual factors (e.g., genetic makeup) and environmental factors (e.g., nutritional status, exercise status, dehydration, health status, etc.).

[0004] Alcohol is oxidized to acetaldehyde by alcohol dehydrogenase (ADH) and the coenzyme NAD+ in the liver, and acetaldehyde is broken down into acetic acid by aldehyde dehydrogenase (ALDH) and NAD+. It is also oxidized to acetaldehyde by cytochrome P-450 type 2E1 (CYP2E1) and catalase. Acetaldehyde and acetic acid are known to cause cytotoxicity, headaches or abdominal pain, and dehydration due to changes in osmotic pressure through lipid peroxidation reactions. In addition, excessive alcohol consumption can cause liver damage, and in severe cases, can lead to cirrhosis or liver cancer.

[0005] In particular, frequent alcohol consumption, coupled with social stress, often leads to serious liver damage and liver disease. Therefore, numerous medications and health functional foods are being marketed to improve these conditions. Efforts are primarily focused on lowering blood alcohol concentrations by activating ADH and ALDH. However, research on the promotion of alcohol metabolism or the prevention of liver disease associated with alcohol consumption remains limited.

[0006] Meanwhile, dried pollack soup and bean sprout soup have long been popular hangover remedies. Bean sprout roots are rich in aspartic acid, known to promote alcohol breakdown and protect the liver. Commercially available hangover relief drinks include Condition, which uses extracts of astragalus membranaceus, lotus seed, and rice germ, and Yeomyeong808, which uses extracts of alder tree and macadamia berry.

[0007] Previous patent documents using natural substances related to hangover relief include mugwort, wolfberry, health, tangerine peel, lotus root, citronella chinensis, mulberry, Schisandra chinensis (Patent No. 512912), astaxanthin, aspartic acid (Patent No. 520985), tangerine peel, Poria cocos, ginseng, galangal, galangal (Patent No. 500373), radish, Artemisia capillaris, kudzu, persimmon leaf, Sambakcho (Patent No. 451013), citronella chinensis, citronella chinensis, mixture of raisin tree, galangal, Baekhasuo, yam, peony (Patent No. 446061), citronella chinensis, citronella thistle seed, taurine, turmeric (Patent No. 392876), naringin, naringenin (Patent No. 375047), cotton thistle (Patent Publication No. 2007-13989), Acanthopanax, green tea There are extracts (Patent Publication No. 2005-100890), etc., but it is difficult to find drinks or foods that use the above ingredients to relieve hangovers that are significantly effective.

[0008] The purpose of the present invention is to provide a composition for relieving hangovers and improving liver function, which can significantly reduce the blood alcohol concentration of a test group within a short period of time when the composition is administered, compared to a control group that is not administered the composition, and a method for producing the same.

[0009] The present invention aims to provide a composition for relieving hangovers and improving liver function, and a method for producing the same, which can be very usefully used as a health functional food or pharmaceutical composition for relieving hangovers and improving liver function because it is very safe for the human body.

[0010] A composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), It contains as an active ingredient a mineral that has lost at least one electron from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs), and the number of said minerals is at least five.

[0011] Here, the effective ingredient is mixed with germanium (Ge).

[0012] Additionally, the amount of the germanium (Ge) is 0.05 to 30 wt% of the amount of the mineral.

[0013] Additionally, the above effective ingredient is mixed with organic acid to adjust the pH to 5 to 12.

[0014] In addition, the above effective ingredient is added to any of purified water, water, beverage or oil. -12 ~10 -9 It dissolves in m.

[0015] Additionally, the above effective ingredient is mixed with organic acid to adjust the pH to 5 to 12.

[0016] Additionally, the content of the mineral is 0.1 to 50 wt% based on the total weight of the composition.

[0017] In addition, at least one of a nutrient, a hardener, a solubilizer, an oil, a preservative, a thickener, a refreshing agent, or a fragrance is added to the above-mentioned effective ingredient.

[0018] A method for manufacturing a composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises: germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), A method for producing a mineral having lost at least one electron, comprising: a first step of applying heat of 900° C. or higher to a mineral selected from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs); and a second step of mixing the mineral having lost at least one electron and purified water in a weight ratio of 1:1 to 1:2,500 to obtain a strongly alkaline composition, wherein the minerals are of at least five types.

[0019] Here, a step of mixing an organic acid into the strong alkaline composition to adjust the pH to 5 to 12 is further included.

[0020] According to the present invention, when the composition is administered, the test group can significantly reduce the blood alcohol concentration within a short period of time compared to the control group to which the composition is not administered.

[0021] According to the present invention, since it is very safe for the human body, it can be very usefully used as a health functional food or pharmaceutical composition for relieving hangovers and improving liver function.

[0022] Figure 1 is a flow chart of a method for manufacturing a composition for relieving hangovers and improving liver function according to one embodiment of the present invention.

[0023] FIG. 2 is a test result showing a decrease in the size of water molecule clusters when a mineral that has lost at least one electron and purified water are added at a ratio of 1:100 wt% according to one embodiment of the present invention.

[0024] Figure 3 is a schematic diagram illustrating ionic bonding according to one embodiment of the present invention.

[0025] Figure 4 is a schematic diagram illustrating a covalent bond according to one embodiment of the present invention.

[0026] Figure 5 is a schematic diagram showing the classification of light and the range of far-infrared rays according to one embodiment of the present invention.

[0027] Figure 6 is an animal experiment graph comparing blood alcohol concentrations when the composition according to one embodiment of the present invention was not administered and when it was administered.

[0028] Figure 7 is a clinical trial graph comparing blood alcohol concentrations when the composition according to one embodiment of the present invention was not taken and when it was taken.

[0029] The advantages and features of the present invention, and methods for achieving them, will become clearer with reference to the embodiments described below, along with the accompanying drawings. However, the present invention is not limited to the embodiments disclosed below and may be implemented in various different forms. These embodiments are provided solely to ensure that the disclosure of the present invention is complete and to fully convey the scope of the invention to those skilled in the art. The present invention is defined solely by the scope of the claims.

[0030]

[0031] Among the 60 or so minerals, magnesium (Mg) treats muscle weakness, iron (Fe) treats anemia, zinc (Zn) treats acne, and calcium (Ca) treats osteoporosis. Furthermore, calcium deficiency not only causes osteoporosis, but also a staggering 147 different diseases.

[0032] Thus, minerals are essential nutrients, each used to prevent and treat specific diseases. Minerals, one of the five major nutrients with remarkable efficacy in preventing and treating various diseases, are metallic elements and are typically difficult to digest and absorb.

[0033] However, if you consume it as an unstable mineral that has lost one or more electrons, it has the additional effect of doubling the therapeutic effect because almost 90% or more of it is absorbed by the human body.

[0034] In addition, when a mineral that has lost one or more electrons and has become unstable is mixed in an appropriate amount with water or oil, the clusters of water or oil are reduced to a size that can be absorbed by liver cells, so the composition of the present invention is absorbed into liver cells and removed through ionic and covalent bonds with harmful substances accumulated in liver cells.

[0035] And, all nutrients that enter the body, as well as various harmful substances that cause liver disease, must become unstable elements that have lost at least one electron due to gastric acid and intestinal metabolites in order to be absorbed into the body. Substances that have not lost electrons due to gastric acid and intestinal metabolites are not absorbed into the body and are all excreted in the feces.

[0036] In this way, various harmful substances that cause liver disease, which have lost one or more electrons and entered the body, become unstable and become stable by forming ionic or covalent bonds with proteins, which are components of human cells including liver cells.

[0037] In this way, various harmful substances attached to liver cells through ionic or covalent bonds prevent the liver cells from functioning properly and reduce their ability to eliminate alcohol. When the amount of harmful substances attached to liver cells is small, the immune system can suppress the stimulation of these substances, so there is no irritation and no symptoms of liver disease. However, when the amount of harmful substances accumulated exceeds the immune system's ability to suppress the stimulation, the patient develops liver disease.

[0038] However, when a mineral element that has lost one or more electrons and has become unstable, with a stronger bond than the bond with the protein, approaches a harmful substance that is ionic or covalently bonded to the protein of the liver cell, the harmful substance will form an ionic or covalent bond with the mineral element. When the harmful substance that is ionic or covalently bonded to the liver cells forms an ionic or covalent bond with the mineral, the harmful substance can no longer attach to the liver cell and falls off. The harmful substances that fall off the cell are excreted through urine along with water. In this way, only when the root cause of the liver disease is removed can the liver disease be completely cured.

[0039] This is the clear medical and scientific mechanism of this composition, which can completely cure liver disease, which is absolutely incurable even with the use of all of the existing modern medical treatment theories and the world's most advanced modern medical techniques, by removing the root cause of the liver disease very simply and without side effects, in a short period of time.

[0040] When iron ore is placed in a blast furnace and heated to temperatures exceeding 1250°C, the element iron (Fe) loses one or more electrons, becoming an unstable element. Physics explains this as the change in properties of a metallic substance when heated to 1250°C.

[0041] For this reason, minerals that are exposed to heat below 1250℃ have very little effect in treating liver disease because most of them do not lose electrons.

[0042] Therefore, in order to cure liver disease and various nasal diseases, when manufacturing the minerals used in the composition, a high temperature of 900℃ (preferably 1250℃) or higher must be applied so that all minerals lose at least one electron.

[0043] In this way, when an unstable element loses one or more electrons, it becomes a stable element by forming ionic or covalent bonds with substances that are friendly to it. Therefore, iron (Fe) does not have affinity with other substances, including dirt in iron ore, so it does not form ionic or covalent bonds with them, but only forms ionic bonds with other iron (Fe) that are friendly to it. This is how the iron sticks together (ionic bonds) in the furnace and comes out as molten iron, and when this molten iron cools, it becomes a lump of iron.

[0044] However, when oxygen, which has a stronger bonding force than the ionic bonding force between iron (Fe) elements, comes into contact with the iron lump, the iron (Fe) element cannot maintain its ionic bond with iron and forms a covalent bond with oxygen, so it cannot stick to the iron lump.

[0045] Likewise, rust is said to occur when iron combines with oxygen and breaks away from its iron-metal bond (iron lump). Similarly, when harmful substances, the root cause of liver disease, accumulate in liver cells through ionic or covalent bonds with proteins and are removed through ionic or covalent bonds with minerals that have entered the liver cells, liver disease can be cured.

[0046] In addition, by causing harmful substances accumulated through ionic or covalent bonds with proteins of liver cells to fall off through ionic or covalent bonds with this composition, which has a stronger binding force than the binding force with proteins, the root cause of liver disease is eliminated and treated.

[0047] And, since the type of mineral that binds to the type of underlying substance that causes liver disease is different, the type of mineral was included accordingly, and the amount of mineral was adjusted to a similar ratio to the amount of harmful substances accumulated in liver cells to create a preventive agent that treats liver disease.

[0048] Organic minerals are minerals that are excreted from the body even if they are used and left over, so they are organic minerals that have no side effects even if they are absorbed in large quantities by the body.

[0049] Organic minerals are components of plants or animals. When these minerals are used by losing one or more electrons, they are completely absorbed by the human body and there are no side effects even if absorbed in large quantities.

[0050] Inorganic minerals are naturally occurring minerals that are not bound to amino acids or proteins. When consumed in large quantities, these minerals, unbound by any other means, form strong ionic and covalent bonds. Therefore, large amounts bind to proteins in blood vessels before reaching the cells, potentially causing arteriosclerosis and other diseases such as gallstones and kidney stones.

[0051] These inorganic minerals are absorbed by plants and combined with amino acids or proteins to form plant components. These minerals, which are plant components, are called organic minerals. Humans consume these plants to provide essential nutrients (such as body components). Unlike inorganic minerals, organic minerals do not cause adverse effects even when consumed in large quantities.

[0052] However, these organic minerals are stabilized minerals that do not lose electrons, but only about 30% of them lose one or more electrons due to gastric acid or intestinal metabolites, so only about 30% of them are absorbed into the small or large intestine. Therefore, to ensure good absorption by liver cells, they are made into unstable minerals that have lost one or more electrons from the mineral element. In addition, unstable minerals that have lost one or more electrons also cannot be absorbed through the skin if they are clumped together, so they are made into nano-sized (10 -9 ~10 -6 Pico units (10 m) are much smaller than -12 ~10 -9 m) to be dissolved.

[0053] However, when you are young, if you consume organic minerals that make up plants and animals, the acid in your stomach and intestines has good digestive power to make you lose at least one electron, so the mineral absorption rate is 60-80%. However, as you get older, the acid in your stomach and intestines has a lower ability to lose electrons, so the mineral absorption rate drops significantly to less than 30%.

[0054] So, in young people, the ability to absorb minerals that remove harmful substances bound to proteins is high, so liver disease can be cured on its own, but as they age, the ability to absorb minerals that remove harmful substances bound to proteins and attached to liver cells decreases, making it impossible to treat liver disease.

[0055] Since each type of harmful substance has different minerals that bond ionicly or covalently depending on the characteristics of the substance, the type of mineral that bonds with the type of harmful substance that bonds ionicly or covalently with liver cells is also included accordingly.

[0056] In this way, since the type of mineral that binds to the type of harmful substance accumulated in the liver cells also varies, a composition that treats liver disease can be created only when the type of mineral is included in a variety of ways.

[0057] For this reason, it is nearly impossible to completely cure liver disease with just four minerals, even if they have lost at least one electron. Therefore, the composition of the present invention contains at least five minerals that have lost electrons as active ingredients.

[0058] There is not just one type of harmful substance that causes liver disease by forming ionic or covalent bonds with the proteins of liver cells, but at least five types of harmful substances are attached to liver cells, and in many cases, hundreds of types or more can be attached.

[0059] Therefore, it is impossible to cure liver disease with only 1 to 4 minerals that have lost at least one electron through ionic or covalent bonds. In order to completely cure liver disease, at least 5 types, and ideally 10 types or more, of various minerals must be contained.

[0060] This composition contains various elements beneficial to the human body in addition to minerals that bind to various harmful substances that cause liver disease, so it is excellent for treating and preventing liver disease without any side effects.

[0061] This composition contains a mineral that causes harmful substances, which are the root cause of liver disease, to lose one or more electrons with a stronger bond than the bond with the protein of the body cells, and by forming an ionic bond or covalent bond, the harmful substances, which are the root cause of liver disease, are removed from the protein of the liver cells, thereby completely curing even severe liver diseases in a short period of time without any side effects.

[0062] In this way, a liver disease treatment composition can be implemented by adjusting the type and amount of minerals that are combined with the types and amounts of various harmful substances that have accumulated by combining with liver cells and somatic cell proteins in an appropriate ratio.

[0063] However, since the minerals contained in this composition are unstable minerals that have lost at least one electron, they are absorbed by the intestines by more than 90%, making them very effective in treating liver diseases.

[0064]

[0065] Meanwhile, the minerals, which are the active ingredients of the composition for hangover relief and liver function improvement (hereinafter, "the composition") according to one embodiment of the present invention, may be either organic or inorganic minerals. Preferably, they are minerals obtained from living organisms such as plants or animals, but are not limited thereto.

[0066] It is preferable to use the present composition in liquid form, but it is not limited thereto.

[0067] A hangover is a condition caused by the accumulation of alcohol or acetaldehyde in the body after being extremely intoxicated. Typical symptoms include one or more of the following: nausea, dizziness, vomiting, thirst, weakness, headache, muscle pain, indigestion, abdominal pain, and diarrhea. Furthermore, hangover symptoms include, but are not limited to, nausea, vomiting, abdominal pain, and dizziness.

[0068] The present composition promotes the decomposition of alcohol and acetaldehyde in the blood and increases the activity of aldehyde dehydrogenase. The active ingredient is preferably manufactured in any one formulation selected from the group consisting of powder, granules, pills, tablets, capsules, candy, syrup, and beverage, but is not limited thereto.

[0069] The composition may further include ingredients commonly added and food-scientifically acceptable when manufactured as a food. For example, when manufactured as a beverage, one or more ingredients, such as citric acid, high-fructose corn syrup, sugar, glucose, acetic acid, malic acid, citric acid, or fruit juice, may be additionally included in addition to the composition.

[0070] The amount of the active ingredient in this composition can be appropriately selected based on the age, sex, weight, condition, and disease symptoms of the person seeking a health functional food for hangover relief and the prevention or improvement of liver damage. Preferably, it should be included in an amount of 0.01 to 10.0 g per day for adults. Consuming a food containing such an amount can provide hangover relief and the prevention or improvement of liver damage.

[0071] In addition, the present composition can be used for relieving hangovers and preventing or treating liver damage, as it contains minerals as active ingredients.

[0072] The pharmaceutical composition may further comprise one or more suitable carriers, excipients, and diluents conventionally acceptable in the manufacture of pharmaceutical compositions. These pharmaceutical compositions may be formulated and used in the form of oral dosage forms such as powders, granules, tablets, capsules, suspensions, emulsions, syrups, and aerosols, as well as topical preparations, suppositories, and sterile injectable solutions, each according to conventional methods.

[0073] Various compounds or mixtures may be used as carriers, excipients and diluents that may be included in the pharmaceutical composition, including lactose, dextrose, sucrose, sorbitol, mannitol, xylitol, erythritol, maltitol, starch, acacia gum, alginate, gelatin, calcium phosphate, calcium silicate, cellulose, methyl cellulose, microcrystalline cellulose, polyvinyl pyrrolidone, water, methyl hydroxybenzoate, propyl hydroxybenzoate, talc, magnesium stearate and mineral oil.

[0074] When formulated, they are usually prepared using diluents or excipients such as fillers, bulking agents, binders, wetting agents, disintegrating agents, and surfactants. Solid preparations for oral administration include tablets, pills, powders, granules, and capsules, and these solid preparations can be prepared by mixing starch, calcium carbonate, sucrose or lactose, gelatin, etc. In addition to simple excipients, lubricants such as magnesium stearate and talc can also be used. Liquid preparations for oral administration include suspensions, oral solutions, emulsions, and syrups, and in addition to commonly used simple diluents such as water and liquid paraffin, various excipients such as wetting agents, sweeteners, fragrances, and preservatives can be included. Formulations for parenteral administration include sterile aqueous solutions, non-aqueous solutions, suspensions, emulsions, lyophilized preparations, and suppositories.

[0075] Non-aqueous solvents and suspending agents that can be used include propylene glycol, polyethylene glycol, vegetable oils such as olive oil, and injectable esters such as ethyl oleate.

[0076] Suppository bases that can be used include witepsol, macrogol, tween 61, cocoa butter, laurin butter, and glycerogelatin.

[0077] The pharmaceutical composition may be administered in a pharmaceutically effective amount, whereby a "pharmaceutically effective amount" means an amount sufficient to prevent or treat a disease at a reasonable benefit / risk ratio applicable to medical prevention or treatment. The effective dosage level may be determined based on factors including the severity of the disease, the activity of the drug, the patient's age, weight, health, and sex, the patient's sensitivity to the drug, the time of administration, route of administration, and excretion rate of the composition used, the duration of treatment, drugs combined with or concurrently used with the composition used, and other factors well known in the medical field.

[0078] The pharmaceutical composition may be administered as an individual therapeutic agent or in combination with other therapeutic agents, and may be administered sequentially or simultaneously with conventional therapeutic agents. Furthermore, it may be administered singly or in multiple doses.

[0079] Taking all of the above factors into account, it is important to administer the minimum amount that will achieve the maximum effect without side effects.

[0080] The frequency of administration of this composition is not particularly limited, but may be administered once daily or in divided doses administered multiple times. The dosage does not limit the scope of the present invention in any way.

[0081] The pharmaceutical composition may be administered via any common route as long as it reaches the target tissue. Furthermore, the pharmaceutical composition may be administered via oral or rectal routes, but is not particularly limited thereto. Depending on the intended purpose, other routes may also be used.

[0082] Nutrients that emit far-infrared rays, which are 1,950 times more potent than tocopherol, the most recognized anti-aging agent, have a longer lifespan effect than any other longevity product. Because far-infrared light has a long wavelength and cannot be seen with the naked eye, it has remarkable effects on curing illnesses and promoting longevity. However, most people ignore these substances. This is believed to be the reason why no research is being conducted on utilizing far-infrared light to relieve hangovers.

[0083] Far infrared rays, which are called "growth rays" because they have the most beneficial wavelengths for the human body and have been proven to be effective in treating diseases, have very strong resonance and resonance effects, so they activate cells by microscopically shaking the water and proteins that make up cells 2,000 times per minute.

[0084] Also, while near-infrared and mid-infrared rays with short wavelengths are well reflected, far-infrared light has a long wavelength and is not reflected, but penetrates deep into the material, about 80 times deeper than heat from sources such as fire.

[0085] Body parts exposed to far-infrared rays experience a rise in body temperature. This rise in body temperature dilates capillaries, improving blood circulation and delivering a sufficient supply of oxygen and other nutrients to cells. This activates cells in those areas, enabling them to function fully and boosting immunity.

[0086] For this reason, when substances that emit far-infrared rays enter the liver, the liver cells are able to function fully, rapidly breaking down alcohol. Therefore, adding nutrients that emit far-infrared rays is more effective in relieving hangovers than supplementing with five or more minerals that have lost at least one electron.

[0087]

[0088] Meanwhile, a composition for relieving hangover and improving liver function according to one embodiment of the present invention can be composed in various ways as follows.

[0089]

[0090] 1) A composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), It contains as an active ingredient a mineral (or inorganic substance, mineral) that has lost at least one electron from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs), and there are at least five types of minerals.

[0091] Minerals that have lost one or more electrons can be made by mixing one or more minerals extracted from various minerals containing a large amount of inorganic minerals, as well as from bovine bones, foods, herbal medicines, seaweed, raw materials for burdock, and raw materials for cassia seeds containing a large amount of organic minerals.

[0092] When applying heat below 900℃ to mineral raw materials to create minerals that have lost electrons, only a very small number of specific minerals lose one or more electrons, and almost all other minerals do not lose electrons, so the therapeutic effect is minimal.

[0093] For this reason, in order to create the minerals in this composition, which help relieve hangovers and improve liver function by causing all minerals to lose electrons, high heat of over 1250℃ must be applied. Furthermore, the reason for applying the high heat of over 1250℃ to cause all minerals to lose at least one electron is to ensure maximum absorption of the minerals into the body's cells and complete removal of impurities.

[0094] The reason why at least five minerals are required to have lost at least one electron is because with fewer than five minerals, it's difficult to remove all the various harmful substances accumulated in the body. Preferably, at least 15 minerals are required, with the greater number of minerals having lost at least one electron. The greater the number of minerals, the more effective they are at removing various harmful substances accumulated in the body, including the liver.

[0095] Since this composition is very safe for the human body, it can be very useful for relieving hangovers and improving liver function.

[0096]

[0097] 2) A composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), A mineral having lost at least one electron from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs) is contained as an active ingredient, and at least five types of minerals are used, and the active ingredient may be mixed with an element that emits far infrared rays (InfraRed, IR), such as germanium (Ge).

[0098] Regarding minerals, it is as described in 1) above.

[0099] Because far-infrared rays have a longer wavelength than visible light, they convert to heat when irradiated on the human body. This characteristic of far-infrared rays causes organs, including liver cells, to be exposed to far-infrared light, which is converted into heat and dilates blood vessels, increasing blood flow to all tissues and delivering increased oxygen and nutrients.

[0100] Because of this, far-infrared rays are widely used around us and are also used in the medical field for various disease treatments because they promote cellular metabolic activity, improve liver function quickly, and reduce side effects of disease treatments.

[0101] Far infrared heat expands blood vessels and promotes blood circulation, relieving pain and is used to treat conditions such as muscle relaxation, muscle pain, joint pain, tendonitis, sprains and post-sprain rehabilitation, and chronic pain management.

[0102] In addition, the heat of far infrared rays accelerates wound healing and promotes liver cell activation and restoration, which helps relieve hangovers and improve liver function.

[0103] To ensure that far-infrared radiation components, which have been shown to have various disease-treating effects and reduce the side effects of various disease-modifying drugs, are well absorbed by liver cells, the far-infrared radiation component is made to lose at least one electron. The amount of far-infrared radiation-emitting elements, such as germanium (Ge), is maintained at 0.05-30% by weight of the mineral.

[0104] The active ingredient of this composition contains elements that emit far-infrared rays, such as germanium (Ge), which can enhance hangover relief and liver function improvement, and reduce unexpected side effects.

[0105] At this time, if the amount of elements that emit far-infrared rays, such as germanium (Ge), is less than 0.05% of the amount of minerals, the effect is minimal, and even if the amount of elements that emit far-infrared rays, such as germanium (Ge), exceeds 2% of the amount of minerals, the effect does not increase further.

[0106] Additionally, the active ingredient may be added with at least one of a nutrient, a hardener, a solubilizer, an oil, a preservative, a thickener, a refreshing agent, or a fragrance.

[0107]

[0108] 3) A composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), A composition comprising at least one electron-loss mineral from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs) as an active ingredient, wherein the minerals are at least five kinds, and the active ingredient may be adjusted to have a pH of 5 to 12 useful to liver cells by mixing in an organic acid.

[0109] Regarding minerals, it is as described in 1) above.

[0110] The minerals in this composition, which are the active ingredients and have lost at least one electron, are highly alkaline with a pH of 12 or higher, and thus, if used as is, can damage liver cells. Therefore, to lower the pH with organic acid, adding an amount equal to the mineral content of the composition will result in a neutral pH. Adding less organic acid than the mineral content will result in an alkaline pH. Furthermore, adding more organic acid than the mineral content will result in an acidic pH.

[0111] It is best to mix minerals and organic acids in a 1:1 ratio to create a slightly alkaline pH suitable for liver cells.

[0112] When a mineral loses at least one electron, the pH rises above 12, which can damage liver cells. To lower the pH to a level suitable for human cells, sulfuric acid or hydrochloric acid can be used. However, these are toxic substances that damage human cells, so they should not be used unless absolutely necessary.

[0113] Thus, we discovered organic acids, which are beneficial nutrients for the human body while lowering the pH without damaging human cells. When it comes to adjusting the pH of minerals, which have lost electrons and become strongly alkaline with a pH of 12 or higher, to a pH suitable for liver cells, nothing is more effective than organic acids. Organic acids are beneficial nutrients that cause no harm to these cells.

[0114] Therefore, the present composition can supply necessary nutrients to human cells without any damage by adjusting the pH to 5 to 12, which is suitable for liver cells, by mixing an appropriate amount of organic acid with the effective ingredient.

[0115] Organic acid refers to an organic compound that is acidic. Organic acid corresponds to inorganic acid, distinguishing acids derived from minerals from those derived from plants and animals as organic acids.

[0116] Since most naturally occurring organic acids are carboxylic acids, such as acetic acid, oxalic acid, tartaric acid, and benzoic acid, classical literature sometimes used the term "organic acid" to mean the same thing as other names for carboxylic acids. However, even among organic acids known since ancient times, there are non-carboxylic acids, such as uric acid. Now, with the vast number of organic compounds known, "organic acid" in a broad sense is a general term for all organic compounds possessing acidic properties.

[0117] When dissolved in water, they produce hydrogen ions in aqueous solutions, like inorganic acids, and turn blue litmus red. However, many organic acids are insoluble in water. All of these organic acids react with alkali hydroxides to form water-soluble salts. In particular, sodium salts readily dissolve in water, so organic acids that are insoluble or not very soluble in water also react with sodium hydroxide aqueous solutions, forming sodium salts and dissolving.

[0118] From a practical standpoint in organic chemistry experiments, it is convenient to treat compounds that dissolve in a 5-10% aqueous sodium hydroxide solution as acids. Organic compounds with such acidity include compounds with functional groups such as carboxylic acid RCOOH, sulfonic acid RSO3H, sulfinic acid RSO2H, phenol ArOH, enol RCH=C(OH)R', thiophenol ArSH, imide RCONHCOR', oxime RCH=NOH, aromatic sulfonamides ArSO2NH2, ArSO2NHR, and primary and secondary nitro compounds RCH2NO2, R2CHNO2.

[0119]

[0120] 4) A composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), It contains minerals that have lost at least one electron from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs) as active ingredients, and there are at least five types of minerals, and the active ingredient is mixed with an element that emits far-infrared rays, such as germanium (Ge), and an organic acid can be mixed to adjust the pH to 5 to 12, which is suitable for liver cells.

[0121] Regarding minerals, it is as described in 1) above, and for the mixture of elements that emit far-infrared rays, such as germanium (Ge), and the mixture of organic acids in the effective ingredients, it is as described in 2) and 3) above, respectively.

[0122]

[0123] 5) A composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), Contains as an active ingredient a mineral that has lost at least one electron from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs), and the minerals are at least 5 kinds, and the active ingredient is 10 times more than any one of purified water, water, beverage, or oil. -12 ~10 -9 It can be dissolved in m.

[0124] Regarding minerals, it is as described in 1) above.

[0125] Minerals that have lost one or more electrons are present in purified water, water, beverages, or oils. -12 ~10 -9 It can be implemented by being made to be dissolved in m, and 10 -12 ~10 -9 When dissolved in m, it is absorbed in large quantities into liver cells, so hangover relief and improvement of liver function are surprisingly fast.

[0126]

[0127] 6) A composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), It contains minerals that have lost at least one electron from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs) as active ingredients, and there are at least five types of minerals, and the active ingredient is a mixture of elements that emit far-infrared rays such as germanium (Ge), and is added to any one of purified water, water, beverages, or oils at a concentration of 10 -12 ~10 -9 It can be dissolved in m.

[0128] As for minerals, it is as described in 1) above, and the active ingredient is a mixture of elements that emit far-infrared rays, such as germanium (Ge) and 10 -12 ~10 -9 As for what is made of m, it is as described in 2) and 5) above.

[0129]

[0130] 7) A composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), It contains as an active ingredient a mineral that has lost at least one electron from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs), and the minerals are at least 5 kinds, and the active ingredient is 10 times more than any one of purified water, water, beverage, or oil. -12 ~10 -9 It can be dissolved in m and adjusted to have a pH of 5 to 12 suitable for human liver cells by mixing organic acids.

[0131] Regarding minerals, it is as described in 1) above, and the effective ingredient is 10 -12 ~10 -9 Regarding the dissolution of m and the mixing of organic acids, they are as described in 5) and 3) above, respectively.

[0132]

[0133] 8) A composition for relieving hangover and improving liver function according to one embodiment of the present invention comprises germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), It contains as an active ingredient a mineral that has lost at least one electron from among technetium (Tc), platinum (Pt), niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs), and the minerals are at least five kinds, and an element that emits far-infrared rays, such as germanium (Ge), is mixed in, and can be dissolved in any one of purified water, water, a beverage, and oil, and can be adjusted to have a pH suitable for human cells by mixing in an organic acid.

[0134] As for minerals, it is as described in 1) above, and the active ingredient is a mixture of elements that emit far-infrared rays, such as germanium (Ge), 10 -12 ~10 -9 Regarding the dissolution in m and the mixing of organic acids, they are as described in 2), 5), and 3) above, respectively.

[0135]

[0136] Meanwhile, with respect to the total weight of the composition described above, the content of minerals may be 0.04 to 50 wt%.

[0137] When the mineral content is less than 0.04% by weight, the hangover relief and liver function improvement effects are minimal. When the mineral content exceeds 50% by weight, the hangover relief and liver function improvement effects do not increase with increasing mineral content, resulting in ineffectiveness and formulation stability.

[0138] Therefore, the effect of relieving hangover and improving liver function can be obtained only when the content of minerals is 0.04 to 50 wt%, and as the content of minerals increases, the effect of relieving hangover and improving liver function increases, making it efficient and ensuring stability in the formulation.

[0139]

[0140] Meanwhile, below we will look at the manufacturing method of the composition for relieving hangovers and improving liver function discussed above.

[0141] FIG. 1 is a flow chart of a method for manufacturing a composition for relieving hangovers and improving liver function according to an embodiment of the present invention, and FIG. 2 is a test report measuring a decrease in the size of water molecule groups (clusters) by adding a mineral that has lost at least one electron and purified water in a ratio of 1:100 wt% according to an embodiment of the present invention.

[0142] Referring to Fig. 1, the method for manufacturing a composition for relieving hangover and improving liver function may include S100 to S400.

[0143] First, germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfate (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), technetium (Tc), platinum (Pt), A mineral selected from niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs) is heated to 900°C or higher to cause the mineral to lose at least one electron (S100). Preferably, the heat applied to the mineral is 1250°C or higher. This is because a temperature of 1250°C is required for all minerals to lose at least one electron. There are at least five types of minerals.

[0144] Here, when heated below 1250℃, only a few heat-sensitive minerals lose one or more electrons. When heated above 1250℃, all minerals lose one or more electrons, eliminating virtually all harmful substances through ionic and covalent bonds. This makes it a perfect mineral for rapid hangover relief and improved liver function, enhancing its therapeutic effects.

[0145] The various harmful substances that accumulate in liver cells and cause various liver diseases each have different mineral components that bind ionicly or covalently, depending on their individual properties. Therefore, preparing various minerals appropriate for each of the various harmful substances and toxic components accumulated in liver cells may be necessary before performing S100.

[0146] After S100, at least five kinds of minerals that have lost at least one electron and purified water are mixed in a weight ratio of 1:1 to 1:2,500 to obtain an alkaline composition (S200).

[0147] Here, if at least 5 kinds of minerals that have lost at least one electron are mixed with purified water in the weight ratio of S200 and then an appropriate amount of organic acid is added while stirring well, most of the at least 5 kinds of minerals that have lost at least one electron are 10 -12 ~10 -9 Not only does it dissolve into the minerals of m, it is also split into water clusters with frequencies below 60 Hz, allowing them to enter cells at frequencies as high as 120 Hz (see Figure 2). This means that the water clusters (H2O clusters) are reduced to a level where they can be readily absorbed by liver cells.

[0148] Although minerals that have lost at least one electron can be mixed with purified water at a 1:1 weight ratio, this composition has poor stability and is highly ineffective because its liver cell therapeutic effect is similar to that of compositions mixed at a weight ratio of 1:50 to 1:100. While a 1:1,000 weight ratio of minerals that have lost at least one electron to purified water is also therapeutically effective, the liver cell treatment period is significantly increased, making it highly ineffective.

[0149] After S200, the pH is adjusted to 5-12 by mixing organic acid in a ratio of 3:1 to 3:100 with a strong alkaline composition having a pH of 12 or higher (S300). The organic acid is mixed to lower the pH. If the amount of organic acid added is equal to the mineral content contained in the composition, the pH becomes neutral, and if the amount of organic acid added exceeds the mineral content, the pH becomes acidic. In other words, a pH of 7 is neutral, a pH of 7 or higher is alkaline, and a pH of 7 or lower is acidic.

[0150] In order to adjust the pH to a weak alkaline range of 7 to 10 by mixing organic acid into a strongly alkaline composition of pH 12 or higher, the organic acid should be mixed in an amount 10 to 20% less than the mineral content.

[0151] After S300, the components that have settled by combining with minerals and organic acids are filtered out (S400). This is because the settled components are 10 -12 ~10 -9 Because it does not dissolve in water and is not well absorbed into the body, its liver cell treatment effect is reduced. Furthermore, if the settled components are not filtered out, they may be mistaken for impurities or spoilage.

[0152]

[0153] Figure 3 is a schematic diagram illustrating ionic bonding according to one embodiment of the present invention.

[0154] Referring to Figure 3, an ionic bond refers to a bond formed by the exchange of electrons between atoms. Sodium (Na) has only one electron in its outermost shell, while chlorine (Cl) has seven electrons in its outermost shell. According to the octet rule, atoms tend to maintain a minimum number of electrons in their outermost shell of eight.

[0155] When sodium (Na) and chlorine (Cl) approach each other, sodium (Na) tries to donate one of its remaining electrons to chlorine (Cl), and chlorine (Cl) tries to receive one of its missing electrons from sodium (Na).

[0156] When sodium (Na) donates one electron to chlorine (Cl), sodium (Na) becomes positively charged and chlorine (Cl) becomes negatively charged. An attractive force occurs between the positive and negative charges, and as a result, the two atoms combine. This is how sodium chloride (NaCl) is created.

[0157]

[0158] Figure 4 is a schematic diagram illustrating a covalent bond according to one embodiment of the present invention.

[0159] Referring to Figure 4, a covalent bond is not a bond in which an atom unilaterally gives electrons to another atom, but rather a bond that is formed when two atoms release electrons from each other to form an electron pair and share it.

[0160] Two chlorine atoms each donate one electron to create an electron pair, which they then share to form a bond.

[0161] A bond that is electrically neutral and shares electrons to form a stable electron configuration is called a covalent bond.

[0162]

[0163] Figure 5 is a schematic diagram showing the classification of light and the range of far-infrared rays according to one embodiment of the present invention.

[0164] Referring to Figure 5, light is classified into gamma rays, X-rays, ultraviolet rays, visible light, infrared rays, microwaves, and radio waves in order of shortest wavelength.

[0165] Among these, visible light has red, orange, yellow, green, blue, indigo, and violet, and infrared light has near infrared, mid infrared, and far infrared in order of shortest wavelength.

[0166] Near-infrared and mid-infrared light with short wavelengths are easily reflected, but far-infrared light has a long wavelength and is not reflected, so it penetrates deep into the material, about 80 times deeper than heat from sources such as fire.

[0167] Body parts exposed to far-infrared rays experience a rise in body temperature. This rise in body temperature dilates capillaries, improving blood circulation and delivering a sufficient supply of oxygen and other nutrients to cells. This activates cells in those areas, enabling them to function fully and boosting immunity.

[0168]

[0169] Meanwhile, in order to prove the superiority and reliability of the composition for relieving hangovers and improving liver function according to one embodiment of the present invention, the effects were measured through Examples 1 and 2.

[0170]

[0171] [Example 1]

[0172] Table 1 shows the results of an animal experiment showing the hangover relief effect after administering the composition (containing germanium (Ge), iron (Fe), strontium (Sr), calcium (Ca), copper (Cu), manganese (Mn), magnesium (Mg), zinc (Zn), potassium (K), silicon (Si), and sodium (Na) having lost at least one electron as active ingredients), and Figure 6 is a graph of an animal experiment comparing the blood alcohol concentration when the composition according to one embodiment of the present invention was not administered and when it was administered.

[0173] The blood alcohol breakdown rate over time was measured for a control group that drank 250 g (250 ml) of water and a test group that drank 250 ml (250 g) of a hangover relief drink prepared by mixing 1 g of a composition containing minerals that lost at least one electron in 1 liter of water.

[0174]

[0175] [Table 1]

[0176]

[0177] Five male rats (weighing 300 g) were used as experimental animals. 3.0 ml of alcohol (35°) was administered orally, and then the composition was administered once 10 minutes later. Blood samples were collected 1 hour and 2 hours after administration of the composition to the male rats.

[0178] Referring to Figure 6, the group that was administered only water without the composition had an average blood alcohol concentration of 76.8% after 1 hour, and an average blood alcohol concentration of 53.2% after 2 hours. The group that was administered the composition had an average blood alcohol concentration of 28.2% after 1 hour, and an average blood alcohol concentration of 3.2% after 2 hours.

[0179] When the composition was administered, the average blood alcohol concentration after 1 hour was reduced by approximately 63.3%, and the average blood alcohol concentration after 2 hours was reduced by approximately 94%.

[0180] In this way, it can be confirmed that when the composition was administered in an animal experiment, the test group was able to significantly reduce the blood alcohol concentration in a short period of time compared to the control group that was not administered the composition.

[0181]

[0182] [Example 2]

[0183] Table 2 shows the results of a clinical trial showing the hangover relief effect after administering the composition (containing germanium (Ge), iron (Fe), strontium (Sr), calcium (Ca), copper (Cu), manganese (Mn), magnesium (Mg), zinc (Zn), potassium (K), silicon (Si), and sodium (Na) that have lost at least one electron as active ingredients), and Figure 7 is a clinical trial graph comparing the blood alcohol concentration when the composition according to one embodiment of the present invention was not administered and when it was administered.

[0184] The blood alcohol breakdown rate over time was measured for a control group that drank 250 g (250 ml) of water and a test group that drank 250 ml (250 g) of a hangover relief drink prepared by mixing 1 g of a composition containing minerals that lost at least one electron in 1 liter of water.

[0185] Ten male subjects (70 g in weight) were selected as experimental subjects, and 3.0 ml of alcohol (35°) was administered orally, and then the composition was administered once 10 minutes later. Blood was collected 45 minutes and 120 minutes after administration of the composition. The blood alcohol decomposition rate over time was measured for the control group that drank 250 g (250 ml) of water and the test group that drank 250 ml (250 g) of a hangover relief drink prepared by mixing 1 g of a composition containing a mineral that lost at least one electron in 1 liter of water.

[0186]

[0187] [Table 2]

[0188]

[0189]

[0190] Ten male subjects (weighing 70 g) were selected as experimental subjects. 3.0 ml of alcohol (35°) was administered orally, and then the composition was administered once 10 minutes later. Blood samples were collected 45 and 120 minutes after administration of the composition.

[0191] Referring to Figure 7, the group that was not administered the composition and only consumed water had a blood alcohol concentration of 0.18% after 45 minutes and 0.172% after 120 minutes. The blood alcohol concentration of 0.127% after 45 minutes of administration of the composition was 0.082% and after 120 minutes was 0.082%.

[0192] When the composition was administered, it was found that the blood alcohol concentration after 45 minutes decreased by approximately 29.4%, and the blood alcohol concentration after 120 minutes decreased by approximately 52.3%.

[0193] Likewise, in clinical trials, it was confirmed that the test group administered the composition was able to significantly reduce the blood alcohol concentration in a short period of time compared to the control group that was not administered the composition.

[0194]

[0195] While the embodiments of the present invention described above have been described with reference to the drawings to aid understanding, these are merely exemplary, and those skilled in the art will understand that various modifications and equivalent embodiments are possible. Therefore, the true scope of technical protection of the present invention should be defined by the appended claims.

Claims

1. Germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfur (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), technetium (Tc), platinum (Pt), A composition for relieving hangovers and improving liver function, comprising as an active ingredient at least one mineral that has lost an electron from among niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs), wherein the composition comprises at least five types of minerals.

2. In paragraph 1, The above effective ingredient is a composition for relieving hangovers and improving liver function, characterized by being mixed with germanium (Ge).

3. In paragraph 2, A composition for relieving hangovers and improving liver function, characterized in that the amount of germanium (Ge) is 0.05 to 30 wt% of the amount of the mineral.

4. In paragraph 1 or 2, A composition for relieving hangovers and improving liver function, characterized in that the above effective ingredient is adjusted to a pH of 5 to 12 by mixing organic acids.

5. In paragraph 1 or 2, The above active ingredient is added to any of purified water, water, beverage or oil. -12 ~10 -9 A composition for relieving hangovers and improving liver function, characterized by being dissolved in m.

6. In paragraph 5, A composition for relieving hangovers and improving liver function, characterized in that the above effective ingredient is adjusted to a pH of 5 to 12 by mixing organic acids.

7. In paragraph 1, A composition for relieving hangovers and improving liver function, characterized in that the content of the mineral is 0.04 to 50 wt% based on the total weight of the composition.

8. In paragraph 2, A composition for relieving hangovers and improving liver function, characterized in that the above effective ingredient comprises at least one of a nutrient, a hardener, a solubilizer, an oil, a preservative, a thickener, a refreshing agent, or a fragrance.

9. Germanium (Ge), silver (Ag), iridium (Ir), nickel (Ni), palladium (Pd), tantalum (Ta), antimony (Sb), zinc (Zn), indium (In), boron (B), astatine (At), thallium (Tl), magnesium carbonate (MgCO3), tin (Sn), iron (Fe), calcium sulfate (CaS), molybdenum (Mo), chromium (Cr), sodium (Na), tungsten (W), gallium (Ga), strontium (Sr), potassium (K), beryllium (Be), barium (Ba), magnesium (Mg), scandium (Sc), yttrium (Y), calcium (Ca), titanium (Ti), vanadium (V), hafnium (Hf), bromine (Br), zirconium (Zr), copper (Cu), manganese (Mn), rubidium (Rb), technetium (Tc), platinum (Pt), A first step of producing a mineral that has lost at least one electron by applying heat of 900°C or higher to a mineral selected from among niobium (Nb), gold (Au), phosphate (Pi), rhenium (Re), ruthenium (Ru), cobalt (Co), zinc oxide (ZnO), aluminum (Al), selenium (Se), bismuth (Bi), phosphorus (P), rhodium (Rh), silicon (Si), iodine (I), tellurium (Te), sulfur (S), lithium (Li), osmium (Os), magnesium hydroxide (Mg(OH)2), and cesium (Cs); and A second step of obtaining a strong alkaline composition by mixing the mineral that has lost at least one electron and purified water in a weight ratio of 1:1 to 1:2,500. A method for producing a composition for relieving hangovers and improving liver function, comprising at least five types of minerals.

10. In paragraph 9, A method for producing a composition for relieving hangovers and improving liver function, characterized in that it further includes a step of adjusting the pH to 5 to 12 by mixing an organic acid into the above-mentioned strong alkaline composition.

Citation Information

Patent Citations

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