Fixed-volume injection-type aerosol product for repelling animals and animal repellant method
The metered-dose aerosol product with controlled liquid/gas ratio and particle size addresses stickiness and propellant accumulation issues, providing a high-repellent effect against animals.
Patent Information
- Application Number
- JP2024064634
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-04-12
- Publication Date
- 2025-10-24
AI Technical Summary
Existing animal repellents, such as those containing peppermint oil and camphor oil, result in sticky surfaces and propellant accumulation in narrow gaps, posing health and property risks.
A metered-dose aerosol product with a controlled liquid/gas ratio and particle size, equipped with a metered-dose valve, to minimize solvent stickiness and propellant concentration in narrow gaps.
The solution achieves a high animal repellent effect with minimal stickiness and propellant residue, effectively deterring animals without causing surface adhesion issues.
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Figure 2025161449000001_ABST
Abstract
Description
[Technical Field]
[0001] FIELD OF THE DISCLOSURE The present disclosure relates to animal repellent aerosol products and methods for repelling animals. [Background technology]
[0002] For example, rats are known to invade houses and buildings, causing various damage. For example, when rats excrete feces and urine indoors, they are left there, making the house dirty and causing unpleasant odors. Rats also transmit bacteria, which can lead to the outbreak of infectious diseases. Furthermore, rats can be infested with mites and fleas, which can pose health risks to people and pets by sucking their blood.
[0003] Rats also have sharp teeth, which can bite through electrical cords and communication cables, causing power outages, fires, communication disruptions, etc. Furthermore, rats can chew through food, furniture, electrical appliances, etc., causing economic damage.
[0004] As mentioned above, rats not only cause damage to property but can also cause damage to health, so rat repellents have been developed to prevent rats, who are the cause of this, from entering indoors. Patent Document 1 discloses an aerosol for rat and insect repellent containing peppermint oil and camphor oil. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Publication No. 08-026924 Summary of the Invention [Problem to be solved by the invention]
[0006] However, in Patent Document 1, the amount of solvent sprayed is large, which may cause the treated surface to become sticky. Also, although the method is intended for use above the ceiling or under a raised floor, if sprayed into a narrow gap, the propellant may accumulate inside and remain at a high concentration.
[0007] The present disclosure has been made in consideration of these points, and its purpose is to provide a metered-dose aerosol product for animals that is almost free of stickiness due to solvents, does not leave high concentrations of propellant behind when sprayed into narrow gaps, and exhibits a high animal repellent effect. [Means for solving the problem]
[0008] To achieve the above object, one aspect of the present disclosure can be based on an animal repellent metered-dose aerosol product for repelling animals, which contains an animal repellent component, a solvent, and a propellant in an aerosol container equipped with a metered-dose valve.
[0009] The liquid / gas ratio in the aerosol container can be set in the range of 70 / 30 to 1 / 99, preferably 50 / 50 to 1 / 99. The average particle size (D50) at a distance of 50 cm from the nozzle of the aerosol container can be set to 5 μm or more, preferably 20 μm or more, and more preferably 35 μm or more.
[0010] The animal repellent component may be a phenol. The phenol may be one or more selected from guaiacol, 3-methoxyphenol, 4-ethylguaiacol, phenol, creosol, o-cresol, m-cresol, and p-cresol. Furthermore, because it is a metered-dose aerosol, the amount of solvent sprayed can be reduced. Therefore, there is almost no stickiness, and when sprayed into a narrow gap, the propellant does not remain in high concentrations. [Effects of the Invention]
[0011] According to this embodiment, there is almost no stickiness due to the solvent, the propellant does not remain in high concentrations when sprayed into a narrow gap, and a high animal repellent effect is exhibited. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 1 is a perspective view of an animal repellent aerosol product according to an embodiment of the present invention. [Figure 2] FIG. 2 is a schematic diagram of the test equipment used in the screening test for active ingredients. [Figure 3] FIG. 3 is a schematic diagram of the test apparatus used in the spatial avoidance test. [Figure 4] FIG. 4 is a schematic diagram of the test apparatus used in the crevice repellency test. [Figure 5] Figure 5 shows the test results of the stickiness confirmation test. DETAILED DESCRIPTION OF THE INVENTION
[0013] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. Note that the following description of the preferred embodiments is merely exemplary in nature and is not intended to limit the present invention, its applications, or its uses.
[0014] FIG. 1 shows an animal repellent aerosol product 1 according to an embodiment of the present invention. The animal repellent aerosol product 1 includes an aerosol container 2 containing an animal repellent containing an animal repellent component and a solvent together with a propellant, a cap 3, a spray button 4, and a nozzle 5. The aerosol product 1 is used in an animal repellent method. Examples of propellants that can be used include liquefied petroleum gas (LPG), dimethyl ether (DME), and compressed gases (carbon dioxide, nitrogen, nitrous oxide). The propellant may contain only one arbitrarily selected type of propellant from among these, or a mixture of two or more arbitrarily selected types.
[0015] The aerosol container 2 is composed of a pressure-resistant container, and is provided with a valve mechanism and tip (not shown) on the top. The valve mechanism is operable by the spray button 4, and is equipped with a metered-amount valve that sprays a fixed amount of the contents of the aerosol container 2 and stops spraying when the spray button 4 is operated once. Therefore, by operating the spray button 4 of the aerosol container 2 once, a fixed amount of the animal repellent component and solvent can be sprayed from the aerosol container 2 by the propellant, and the spraying can be stopped. In this way, the animal repellent method can be carried out.
[0016] The cap 3 is a member attached to the top of the aerosol container 2. The nozzle 5 is integrated with the spray button 4 and is formed in a cylindrical or tubular shape to spray the contents from the aerosol container 2 via a valve mechanism. An outlet 5a opens at the tip of the nozzle 5. The structures and shapes of the aerosol container 2, cap 3, spray button 4, and nozzle 5 are examples, and structures and shapes other than those shown in the drawings can also be used. For example, the number of outlets 5a may be one, or two or more. When two or more outlets 5a are provided, the multiple outlets 5a may be arranged vertically or horizontally, or may be arranged in a matrix when viewed from the front.
[0017] The minimum inner diameter of the nozzle 5 is, for example, 0.4 mm or more, preferably 0.6 mm or more. The maximum inner diameter of the nozzle 5 is, for example, 1.2 mm or less, preferably 0.9 mm or less. The spray passage inside the nozzle 5 may be shaped to go straight, or may have an angled structure that spreads the spray particles during spraying.
[0018] The lower limit of the amount of injection per dose from a metered dose valve is set to 0.1 mL or more, preferably 0.5 mL or more, and the upper limit of the amount of injection per dose from a metered dose valve is set to 3.0 mL or less, preferably 2.0 mL or less.
[0019] The animal repellent may be sprayed from the aerosol container 2 once or multiple times. The animal repellent may be sprayed multiple times from the aerosol container 2 in one treatment, in which case the animal repellent may be sprayed intermittently at time intervals. The time interval may be, for example, 10 hours or more. The time interval may also be 40 hours or less. By repeatedly spraying the animal repellent at time intervals, animals such as rats learn that the active ingredient contained in the animal repellent has an unpleasant smell and that the propellant or solvent adhering to their bodies is unpleasant, thereby preventing animals from settling in the area.
[0020] The average particle diameter (D50) of the animal repellent sprayed from the aerosol container 2 can be 5 μm or more, preferably 20 μm or more, and more preferably 35 μm or more, at a distance of 50 cm from the nozzle 5a in the spray direction. The average particle diameter (D50) of the animal repellent sprayed from the aerosol container 2 is 65 μm or less, preferably 45 μm or less, at a distance of 50 cm from the nozzle 5a in the spray direction.
[0021] Here, we will explain the method for measuring the average particle size of the animal repellent sprayed from the aerosol container 2. Although not shown, the animal repellent is sprayed from a position where the distance between the laser beam irradiated onto the light receiving section by the laser light irradiating section of the particle size measuring device and the nozzle 50a is 50 cm, so that the animal repellent passes through the laser beam in a direction perpendicular to the direction of irradiation. Measurements are taken while the animal repellent is being sprayed, and the particle size distribution of the animal repellent is analyzed by an automatic processing device to determine the average particle size (D50). This method is well known. The measuring device used is an LDSA-SPR-1500A manufactured by Microtrac-Bell Corporation.
[0022] If the volume ratio of the animal repellent (concentrate) to the propellant (gas) contained in the aerosol container 2 is defined as the liquid-to-gas ratio (liquid / gas), the range of the liquid-to-gas ratio is 70 / 30 to 1 / 99, with a range of 50 / 50 to 1 / 99 being preferred.
[0023] When spraying the animal repellent from the aerosol container 2, it may be sprayed, for example, into space, or onto the floor or into a gap. The direction in which the animal repellent is sprayed may be upward, downward, or horizontal. It may also be sprayed upright or inverted. Furthermore, it may be sprayed while the aerosol container 2 is tilted diagonally or sideways.
[0024] When spraying animal repellents indoors, the size of the space should be less than 8 tatami mats, and more preferably less than 4 tatami mats. 3 or less, or 17.5m 3 The following is preferred:
[0025] When spraying animal repellent into a gap, the surface area of the gap to be sprayed must be 7mm 2 More than 60,000 mm 2 The gap width is preferably 3 mm or more and 50 mm or less, but the animal repellent may be sprayed in a wider space. The gap width is preferably 3 mm or more and 50 mm or less. By using the animal repellent aerosol product 1, it is possible to carry out an animal repellent method in which the animal repellent component is vaporized into the air.
[0026] Animal repellents contain phenols, essential oils, essential oil-derived components, etc. as active ingredients that have a repellent effect on animals. They may contain only one of these selected as the active ingredient, or a mixture of two or more selected as the active ingredient. They may also contain a fragrance that reproduces the odor of a natural enemy animal, such as a cat odor fragrance, as the active ingredient.
[0027] Examples of phenols that can be used as active ingredients include guaiacol (2-methoxyphenol), 3-methoxyphenol, 4-ethylguaiacol, phenol, creosol, o-cresol, m-cresol, p-cresol, etc. Only one arbitrarily selected from these may be contained as the active ingredient, or a mixture of two or more arbitrarily selected types may be contained as the active ingredient.
[0028] Examples of essential oils that can be used as active ingredients include peppermint oil, rosemary oil, lemongrass oil, lavender oil, orange oil, Ryukyu herb (shell ginger) oil, wasabi oil, pepper oil, mustard oil, etc. Only one of these may be arbitrarily selected as the active ingredient, or a mixture of two or more arbitrarily selected types may be used as the active ingredient.
[0029] Examples of essential oil-derived components that can be used as active ingredients include L-menthol, menthyl acetate, L-menthyl glyceryl ether, allyl isothiocyanate, allicin, gingerol, camphor, curcumin, piperine, citronellol, hexanal, hexyl acetate, geraniol, p-cymene, terpinene, terpineol, thymol, citronellal, geranyl formate, isoamyl formate, chili pepper extract, synthetic capsaicins, etc. Only one arbitrarily selected from these may be contained as the active ingredient, or a mixture of two or more arbitrarily selected types may be contained as the active ingredient.
[0030] Usable solvents include, for example, alcohol solvents, hydrocarbon solvents, ester solvents, glycol solvents, fluorine-containing solvents, and water.
[0031] Examples of alcohols that can be used as solvents include ethanol, propanol, isopropanol, etc. Examples of hydrocarbon solvents that can be used as solvents include paraffin, isoparaffin, kerosene, etc. Examples of ester solvents that can be used as solvents include isopropyl myristate, etc. Examples of glycol solvents that can be used as solvents include propylene glycol monomethyl ether (PGME), etc. Examples of fluorine-based solvents that can be used as solvents include hydrofluoroolefins (HFOs), etc. Examples of water that can be used as solvents include tap water, ion-exchanged water, purified water, etc. Among these, only one arbitrarily selected type may be used as the solvent, or a mixture of two or more arbitrarily selected types may be used as the solvent. When water is used as the solvent, phenols do not dissolve as they are, so alcohols are added or the solvent is solubilized with a surfactant. Examples of usable surfactants include anionic surfactants, nonionic surfactants, amphoteric surfactants, etc. Among these, only one arbitrarily selected type may be used as the surfactant, or a mixture of two or more arbitrarily selected types may be used as the surfactant.
[0032] The animal repellent may contain other ingredients in addition to the solvent. Examples of other ingredients include insecticides, disinfectants and preservatives, deodorizers, pH adjusters, fragrances, colorants, repellent enhancers, UV absorbers, antioxidants, powders, and film-forming agents. Of these, the animal repellent may contain only one arbitrarily selected ingredient as the other ingredient, or may contain a mixture of two or more arbitrarily selected ingredients as the other ingredient.
[0033] The lower limit of the concentration of the active ingredient (mg / vol % of the total solution) can be, for example, 1 or more, preferably 10 or more. The upper limit of the concentration of the active ingredient (mg / vol % of the total solution) can be 50 or less, preferably 45 or less.
[0034] The lower limit of the amount of animal repellent to be treated is 1.1 mg / m of active ingredient. 3A treatment amount of 2.3 mg / m or more is preferable. 3 The upper limit of the amount of the animal repellent to be treated is 60 mg / m of the active ingredient. 3 A treatment amount of 55 mg / m or less is preferred. 3 The processing amount can be set as follows.
[0035] Examples of animals that can be repelled by the animal repellent include small animals, such as house mice, brown rats, black rats, nutrias, weasels, and moles. The repellent effect is also exerted on other animals, such as dogs, cats, raccoons, palm civets, wild boars, and deer. Among these, the animal repellent exhibits a particularly high repellent effect on house mice, brown rats, and black rats.
[0036] Animal repellents can be used indoors or outdoors. Examples of places where they can be used include attics, ceilings, under floors, under eaves, storage sheds, warehouses, barns, closets, garages (parking lots, bicycle parking lots), entrances, kitchens, living rooms, bathrooms, toilets, bedrooms, gardens, garbage disposal areas, and holes in the walls of rooms and hallways. Animal repellents can also be used in gaps between electrical appliances such as refrigerators and walls, between electrical appliances and furniture, between furniture and walls, and between furniture and other pieces of furniture. [Example]
[0037] EXAMPLES The present invention will be explained in more detail below with reference to examples and comparative examples, but the present invention is not limited to these examples.
[0038] (Screening test for active ingredients in animal repellents) A screening test for the active ingredient of an animal repellent will be described. The temperature during the test was 25°C ± 2°C, and the humidity during the test was 40%. Examples 1 to 5 and Comparative Example 1 shown in Table 1 were prepared as test agents.
[0039] A 5-cm diameter filter paper was uniformly impregnated with 13 mg of each component from Examples 1 to 5 and placed in a petri dish. In Comparative Example 1, only the filter paper was placed in the petri dish. As shown in Figure 2, two plastic containers 60A and 60B were prepared. A hole was drilled in one side of each container 60A and 60B, and they were connected by a polyvinyl chloride pipe 61 to allow mice to move between them. One container 60A contained sawdust, a test agent, and food, and served as the treatment group. The other container 60B contained sawdust and an empty petri dish, and served as the untreated group. A single mouse was released into the untreated group, and a metal mesh lid was placed on each container 60A and 60B. The time spent by the mouse in each container 60A and 60B over one hour was measured, and the repellency rate was calculated using the following formula (1). The total time spent by the mouse in the untreated group was designated T1, and the total time spent by the mouse in the treated group was designated T2.
[0040] Repellency rate (%) = (T1-T2) / T1 x 100
[0041] [Table 1]
[0042] As shown in Table 1, when guaiacol, hexanal, geranyl formate, isoamyl formate, or 3-methoxyphenol is used as the active ingredient, the repellency rate is 70% or higher, resulting in a high level of animal repellency. Furthermore, the same repellency effect as for house mice can be achieved for small animals such as brown rats, brown rats, nutria, weasels, and moles, as well as for animals such as dogs, cats, raccoons, palm civets, wild boars, and deer. Furthermore, similar repellency can be achieved even when solvents are included.
[0043] (Animal spatial avoidance test 1) Next, we will explain the spatial avoidance test 1 for animals. The test location was an 8-tatami room (35 m 3) in a windless, constant temperature room. The temperature during the test was 25°C ± 2°C, and the humidity during the test was 40%. Examples 6 to 9 shown in Table 2 were used as test agents. Each component of the test agent was dissolved in ethanol and filled into an aerosol container together with 0.40 LPG propellant. The liquid-to-gas ratio (liquid / gas) was 30 / 70. The aerosol container was equipped with a metered valve that dispensed 1.0 mL per spray.
[0044] As shown in Figure 3, five mice were placed in the treatment area of a windless, temperature-controlled room and allowed to acclimate for four hours. Acclimation was performed by using a concrete block with a hole in it as a settlement source, and by adding water and food with the door closed. The door to the treatment area was then opened 2 cm, and the test agent contained in an aerosol container was sprayed twice through the opening. The number of mice staying in the treatment area was counted immediately after spraying, and 3, 6, 16, and 24 hours later, and the repellency rate was calculated using the following formula (2):
[0045] Repellency rate (%) = Number of mice in the untreated area (mice) / Total number of mice (mice) × 100
[0046] [Table 2]
[0047] Guaiacol, hexanal, geranyl formate, and isoamyl formate all have a high animal repellent effect. Furthermore, similar repellent effects can be obtained against small animals such as brown rats, brown rats, nutria, weasels, and moles, as well as animals such as dogs, cats, raccoons, palm civets, wild boars, and deer.
[0048] (Animal spatial avoidance test 2) Next, we will explain the spatial avoidance test 2 for animals. The test location was an 8-tatami room (35 m 3) in a windless, constant temperature room. The temperature during the test was 25°C ± 2°C, and the humidity during the test was 40%. The test agent used guaiacol as the animal repellent component, but other than that, it was the same as in Animal Spatial Repellency Test 1. The test method was the same as Animal Spatial Repellency Test 1. As shown in Examples 10 to 13 in Table 3, the agent treatment amount of guaiacol (mg / m 3 ) was changed.
[0049] [Table 3]
[0050] The guaiacol treatment dose was 1.1 mg / m 3 By setting the dosage to 1.1 mg / m or more, a high animal repellent effect was demonstrated. 3 By using the above methods, a high animal repellent effect is achieved. Furthermore, the same repellent effect as that for house mice can be obtained for small animals such as brown rats, brown rats, nutria, weasels, and moles, as well as for animals such as dogs, cats, raccoons, palm civets, wild boars, and deer.
[0051] (Animal gap repellency test) Next, we will explain the gap repellency test for animals. The test location was an 8-tatami mat (35 m) room. 3 The temperature during the test was 25°C ± 2°C, and the humidity during the test was 40%. The active ingredient of the test agent was guaiacol, and the amount of guaiacol used for the treatment was 3.8 mg / m 3 Other than that, the test was the same as in Animal Spatial Repellency Test 1. As Comparative Example 2, a rat repellent aerosol containing natural peppermint oil, Ryukyu herb fragrance, and cat odor fragrance as active ingredients was used.
[0052] Each tip was attached to the nozzle hole of the aerosol container. The tips prepared were one with four holes of 0.8 mm diameter (Example 14), one with one hole of 1.95 mm diameter (Example 15), one with one hole of 0.9 mm diameter (Example 16), and one with one hole of 0.6 mm diameter (Example 17).
[0053] As shown in Figure 4, five house mice were placed in a treatment area in a windless, temperature-controlled room and allowed to acclimate overnight. Two cardboard boxes 80 were placed side by side in one of the four corners of the room, with sawdust 81, bait 82, and water 83 placed in the gap. After acclimatization, one cardboard box 80 was placed diagonally, and sawdust 81, bait 82, and water 83 were similarly placed in the gap. The test agent was then sprayed twice. In the comparative example, the spray was performed for 0.1 seconds, and the repellency rate was confirmed after each time elapsed.
[0054] The repellency rate was calculated using the following formula (3).
[0055] Repellency rate (%) = 1 - (number of mice remaining in the gap between two cardboard boxes (mice) / total number of mice (mice)) x 100
[0056] [Table 4]
[0057] By setting the average particle diameter (D50) at a distance of 50 cm from the nozzle of the aerosol container to 35 μm or more, a high animal repellent effect was demonstrated. Furthermore, the same repellent effect as that for house mice can be obtained for small animals such as brown rats, brown rats, nutria, weasels, and moles, as well as animals such as dogs, cats, raccoons, palm civets, wild boars, and deer.
[0058] (Repeated gap repellency test) Next, we will explain the repeated gap repellency test. The test location was a 4-tatami (17.5 m) room. 3 ) in a windless, constant temperature room. The temperature during the test was 25°C ± 2°C, and the humidity during the test was 40%. Example 18 shown in Table 4 was used as the test agent. The test agent was prepared by dissolving guaiacol in propylene glycol monomethyl ether (PGME) and filling it into an aerosol container together with 0.40 LPG as a propellant. The liquid-gas ratio (liquid / gas) was 30 / 70. The aerosol container was equipped with a metered valve that dispenses 1.0 mL per spray. The drug treatment amount of guaiacol was 3.8 mg / m 3 Comparative Example 2 was also used.
[0059] The test method was the same as the animal crevice repellency test, except that the second injection was performed 40 hours after the first injection, and the third injection was performed 88 hours after the first injection.
[0060] [Table 5]
[0061] In both Example 18 and Comparative Example 2, the repellency rate dropped to 60% after 40 hours, but by spraying a second and third time, Example 18 was able to maintain a high repellency effect for up to 119 hours. On the other hand, in Comparative Example 2, the repellency rate dropped to 40% after 88 hours and remained at 40% thereafter. In this way, by spraying a fixed amount of the animal repellent component, a high and sustained repellency effect can be achieved without animals becoming accustomed to the smell.
[0062] (Animal spatial avoidance test 3) Next, we will explain the spatial avoidance test 3 for animals. The test location was an 8-tatami room (35 m 3 The test was conducted in a windless, temperature-controlled room (25°C ± 2°C) with a humidity of 40%. The test agent used was Example 18. The test method was the same as the spatial repellency test for animals. The repellency rate after spraying was confirmed up to 46 hours later.
[0063] [Table 6]
[0064] (Stickiness confirmation test) Next, we will explain the stickiness confirmation test. The test location was a 4-tatami mat (17.5 m) room. 3 The temperature during the test was 25°C ± 2°C, and the humidity during the test was 40%. The test agents used were Example 18 and Comparative Example 2.
[0065] Shoji paper was laid over the entire floor of a windless, temperature-controlled room, and the test agent was sprayed at the entrance of the room from a height of 50 cm above the floor so that it was level with the floor. Assuming a real-life use situation, Example 18 was sprayed once, and the Comparative Example was sprayed for 15 seconds. Then, the stickiness of the test agent on the shoji paper was evaluated.
[0066] As shown in Figure 5, no stickiness occurred in Example 18. On the other hand, in Comparative Example 2, a large amount of the aerosol concentrate adhered to the shoji paper, causing stickiness.
[0067] (Field Test) Next, the field test will be described. The test location was the attic of a chicken farm. The test agent was Example 18. There was one wild brown rat in a gap approximately 5 cm wide, 120 cm deep, and 140 cm high, so the test agent was sprayed once. As a result, the rat escaped from the gap immediately after the spraying, and no rats were seen in the gap for 35 hours after the spraying.
[0068] The above-described embodiments are merely illustrative in all respects and should not be construed as limiting. Furthermore, all modifications and variations within the scope of the claims are within the scope of the present invention. For example, even if the solvent is replaced with another solvent, the same repellent effect can be achieved. [Industrial Applicability]
[0069] As described above, the present disclosure can be used to repel animals such as rats. [Explanation of symbols]
[0070] 1. Animal repellent aerosol products
Claims
1. The animal repellent metered-dose aerosol product comprises an animal repellent component, a solvent, and a propellant contained in an aerosol container equipped with a metered-dose valve.
2. 2. The animal repellent metered dose aerosol product according to claim 1, wherein the liquid / gas ratio is in the range of 70 / 30 to 1 / 99.
3. 2. The animal repellent metered dose aerosol product according to claim 1, wherein the average particle diameter (D50) at a distance of 50 cm from the nozzle is 5 μm or more.
4. 2. The metered-dose aerosol product for animal repellency according to claim 1, wherein the animal repellent component is a phenol.
5. 5. The animal repellent metered dose aerosol product according to claim 4, wherein the phenol is one or more selected from the group consisting of guaiacol, 3-methoxyphenol, 4-ethylguaiacol, phenol, creosol, o-cresol, m-cresol, and p-cresol.
6. 2. The animal repellent metered-dose aerosol product according to claim 1, wherein the amount of spray per one time from the metered-dose spray valve is 0.1 ml or more.
7. The animal repellent component, the solvent, and the propellant are contained in an aerosol container equipped with a metered dose injection valve; The animal repellent method comprises operating the spray button on the aerosol container once to spray a predetermined amount of the animal repellent component and the solvent from the aerosol container using the propellant, and then stopping the spray.
Citation Information
Patent Citations
Rodent-repelling and insect-proofing agent composition for aerosol spray and rodent-repelling and insect-proofing aerosol spray can
JP1996026924A