This invention relates to a beverage preparation composition and package, as well as a method of preparing a beverage with the beverage preparation composition or package.
Beverages are often prepared by combining a flavored substance with water. When the flavored substance is soluble in water, beverage preparation consists of dissolving the flavored substance in water. When the flavored substance is insoluble in water (e.g., ground coffee beans or tea leaves), various methods can be used to impart flavor from the substance to the water. Although it is known to use microwave ovens to prepare hot beverages from flavored substances that are insoluble in water (e.g., ground coffee bean and tea leaves) such beverages often lack pleasing organoleptic properties. When imparting flavor from coffee grounds in the microwave, the beverage fails to become the typical opaque black/brown of brewed coffee.
This disclosure relates to beverage preparation compositions, beverage preparation packages, and methods of preparing beverages with the beverage preparation compositions and packages.
In a first general aspect, a beverage preparation composition includes a particulate beverage precursor and a microwave susceptor. The microwave susceptor and the particulate beverage precursor are combined to form the beverage preparation composition.
Implementations of the first general aspect may include one or more of the following features.
The particulate beverage precursor is insoluble in water. The particulate beverage precursor includes plant-based material, such as coffee beans, tea leaves, herbs, fruit, or a portion or combination thereof. The beverage preparation composition can include a mixture of the particulate beverage precursor and the microwave susceptor in particulate form. The particulate beverage precursor, the microwave susceptor, or both, have a regular shape.
The microwave susceptor can include a magnetic, paramagnetic, or ferromagnetic material. In some cases, the microwave susceptor includes a metal (e.g., a metal oxide, such as an iron oxide, including ferrite, magnetite, hematite, or any combination thereof). Suitable metals include iron, aluminum, and stainless steel. In some cases, the microwave susceptor includes a ceramic. In certain cases, the microwave susceptor includes one or more of a carbonate, hydroxide, nitrate, silicate, and or sulfide.
The microwave susceptor typically has an electromagnetic radiation absorption coefficient of greater than about 60 m−1 (1.5 in−1) at standard ambient temperature and pressure at a microwave radiation frequency of 2,450 MHz. A weight ratio of the particulate beverage precursor to a particulate microwave susceptor is in a range of 1:1 to 1:40.
In a second general aspect, a beverage preparation package includes a container defining a multiplicity of openings and the beverage preparation composition of the first general aspect positioned in the container.
Implementations of the second general aspect can include one or more of the following features.
A shape of the openings is uniform, nonuniform, or a combination thereof. The container is a porous nonwoven material, woven material, or mesh.
In a third general aspect, preparing a beverage includes contacting water with the beverage preparation package including the beverage preparation composition of the first general aspect, and irradiating the water with microwave radiation to vaporize at least a portion of the water, thereby imparting a flavor from the beverage preparation composition to the water to yield the beverage.
The beverage, brewed coffee, or tea infusion has pleasing organoleptic properties which can vary in strength and flavor. Advantages of the beverage preparation compositions, beverage preparation packages, and resulting beverages result at least in part from water flow proximate to the beverage precursor during beverage preparation. This water flow is due at least in part to the temperature differential created by preferential heating of the microwave susceptor relative to the water, and at least in part to water vapor generated on the susceptor escaping upwards drawing fresh water in to replace the volume of water vapor lost. The direct thermal conductive contact between susceptor and beverage precursor and proximate water flow imparts noticeable flavor improvements over similar beverages prepared in the absence of a microwave susceptor, in which beverage precursors are subject to relatively even heating and little proximate fluid flow.
The details of one or more embodiments of the subject matter of this disclosure are set forth in the accompanying drawings and the description. Other features, aspects, and advantages of the subject matter will become apparent from the description, the drawings, and the claims.
This disclosure describes beverage preparation compositions, beverage preparation packages, and methods of preparing beverages with beverage preparation compositions and packages. These beverage preparation compositions and packages can be used to prepare infused beverages from insoluble plant material, such as coffee beans, tea leaves, and herbs, with microwave radiation. In one example, the beverage preparation compositions and packages can be used to prepare brewed coffee and tea with a microwave oven to yield beverages with pleasing organoleptic properties.
A beverage preparation composition includes a beverage precursor and a microwave susceptor. The beverage precursor, the microwave susceptor, or both can be in particulate form. The beverage preparation composition is typically a mixture of the beverage precursor and the microwave susceptor.
The beverage precursor includes a plant-based material (e.g., a material originating from a plant or a product made from a plant) that is insoluble in water, such as coffee beans, tea leaves, herbs, fruit, other plant-based materials suitable for human ingestion, or any form or combination of these materials. The plant-based materials are referred to as being in “particulate” form, which includes whole, ground, cut, shredded, chopped, powdered, or any combination thereof. Particles of a particulate beverage precursor can be generally uniform in size (e.g., ground coffee) or include a various range of sizes (e.g., whole leaf tea and cut tea).
The microwave susceptor is a food grade material selected to absorb microwave radiation in the range of 300 MHz to 10,000 MHz, or from microwave ovens, which typically emit microwave radiation at a frequency of 915 MHz or 2,450 MHz. As such, the susceptor is heated by the microwave radiation. The microwave susceptor can be selected to have a microwave susceptibility at 2,450 MHz at standard ambient temperature and atmospheric pressure. The microwave susceptor typically exceeds the microwave susceptibility of the beverage precursor by at least a factor of 1.5, such that heat is transferred from the microwave susceptor by conduction, convection, or infrared radiation to the beverage precursor when the beverage preparation composition is irradiated with microwave radiation. In some cases, the microwave susceptor has an electromagnetic radiation absorption coefficient of greater than about 60 m−1 (1.5 in−1) at standard ambient temperature and pressure (25° C. and 100 kPa, 77° F. and 1 atm) for 2,450 MHz microwaves.
The microwave susceptor typically includes one or more metals or metal oxides. Suitable examples of metal oxides include hematite, magnetite, and ferrite. The microwave susceptor can include a magnetic, paramagnetic, or ferromagnetic material, or a combination of two or more of these materials. Suitable examples of metals include but are not limited to iron, aluminum, and stainless steel. In some cases, the microwave susceptor can include a ceramic, or be entirely composed of a ceramic. Also, the microwave susceptor can include a carbonate, hydroxide, nitrate, silicate, and or a sulfide (i.e., any form of rock or mineral that has microwave susceptibility in the previously described range). The susceptor material can be in the form of a particulate material, including regular shapes (e.g., spheres, cubes, or a combination thereof) and irregular shapes. Particles of the particulate material can be substantially uniform in size, with a largest dimension typically in a range of about 0.5 mm (0.02 in) to about 10.0 mm (0.4 in), but can be smaller or larger as appropriate.
A beverage preparation package includes a container defining a multiplicity of openings and a beverage preparation composition positioned in the container. The container is fabricated of material that does not readily reflect microwave radiation. In one example, the beverage preparation package can be disposed of after beverage preparation.
Flavor is imparted from the beverage precursor composition in the beverage preparation package 100 to water 200 to yield beverage 212 (e.g., brewed coffee or tea infusion). Beverage 212 is typically a hot beverage. Imparting the flavor occurs when vaporized water (steam), heated water, or both contact the beverage precursor. Imparting the flavor to the water may be understood as infusing the flavor in the water or brewing the beverage. The combination of heat and fluid flow allow the beverage to fully infuse or brew. In some cases, as depicted in
The beverage, brewed coffee, or tea infusion has pleasing organoleptic properties and significant color change due at least in part to heating of the beverage precursor with the microwave susceptor.
Although this disclosure contains many specific embodiment details, these should not be construed as limitations on the scope of the subject matter or on the scope of what may be claimed, but rather as descriptions of features that may be specific to particular embodiments. Certain features that are described in this disclosure in the context of separate embodiments can also be implemented, in combination or in a single embodiment. Conversely, various features that are described in the context of a single embodiment can also be implemented in multiple embodiments, separately, or in any suitable sub-combination. Moreover, although previously described features may be described as acting in certain combinations and even initially claimed as such, one or more features from a claimed combination can, in some cases, be excised from the combination, and the claimed combination may be directed to a sub-combination or variation of a sub-combination.
Particular embodiments of the subject matter have been described. Other embodiments, alterations, and permutations of the described embodiments are within the scope of the following claims as will be apparent to those skilled in the art. While operations are depicted in the drawings or claims in a particular order, this should not be understood as requiring that such operations be performed in the particular order shown or in sequential order, or that all illustrated operations be performed (some operations may be considered optional), to achieve desirable results.
Accordingly, the previously described example embodiments do not define or constrain this disclosure. Other changes, substitutions, and alterations are also possible without departing from the spirit and scope of this disclosure.
Number | Name | Date | Kind |
---|---|---|---|
2187417 | Doble | Jan 1940 | A |
3302632 | Fichtner | Feb 1967 | A |
3420675 | Costas | Jan 1969 | A |
3615713 | Stevenson et al. | Oct 1971 | A |
3701872 | Levinson | Oct 1972 | A |
3777099 | Levinson | Dec 1973 | A |
3865301 | Pothier et al. | Feb 1975 | A |
3936626 | Moore | Feb 1976 | A |
4013798 | Goltsos | Mar 1977 | A |
4190757 | Turpin et al. | Feb 1980 | A |
4230924 | Brastad et al. | Oct 1980 | A |
4267420 | Brastad | May 1981 | A |
4268738 | Flautt et al. | May 1981 | A |
4283427 | Winters et al. | Aug 1981 | A |
4434197 | Petriello et al. | Feb 1984 | A |
4676857 | Scharr et al. | Jun 1987 | A |
4775771 | Pawlowski et al. | Oct 1988 | A |
4865921 | Hollenberg et al. | Sep 1989 | A |
4876423 | Tighe et al. | Oct 1989 | A |
4943456 | Pollart et al. | Jul 1990 | A |
5002826 | Pollart et al. | Mar 1991 | A |
5079396 | Katz et al. | Jan 1992 | A |
5118747 | Pollart et al. | Jun 1992 | A |
5260537 | Beckett | Nov 1993 | A |
5294765 | Archibald et al. | Mar 1994 | A |
RE34683 | Maynard et al. | Aug 1994 | E |
5545879 | Brotz | Jan 1996 | A |
5864123 | Keefer | Jan 1999 | A |
6414290 | Cole et al. | Jul 2002 | B1 |
6436457 | Poss | Aug 2002 | B1 |
6586715 | Watkins | Jul 2003 | B2 |
6645537 | Sweeney et al. | Nov 2003 | B2 |
6677563 | Lai | Jan 2004 | B2 |
6903320 | Cutler et al. | Jun 2005 | B2 |
7235764 | Poss | Jun 2007 | B2 |
8158913 | Zeng et al. | Apr 2012 | B2 |
8900648 | Bunke et al. | Dec 2014 | B2 |
10106422 | Shalev | Oct 2018 | B2 |
20030080121 | Watkins | May 2003 | A1 |
20040067324 | Lazarev et al. | Aug 2004 | A1 |
20170079325 | Mironov | Mar 2017 | A1 |
20180206295 | Duffield et al. | Jul 2018 | A1 |
20190075851 | Mironov | Mar 2019 | A1 |
Number | Date | Country |
---|---|---|
1292934 | Dec 1991 | CA |
0397321 | Sep 1996 | EP |
2239335 | Sep 2005 | ES |
WO2008143671 | Nov 2008 | WO |
WO2012141864 | Oct 2012 | WO |
WO2012163719 | Dec 2012 | WO |
2016032795 | Mar 2016 | WO |
Entry |
---|
Dictionary definition composition, https://www.dictionary.com/browse/composition, retrieved online Jun. 13, 2020 (Year: 2020). |
Dictionary definition combine, https://www.dictionary.com/browse/combine, retrieved online Jun. 13, 2020 (Year: 2020). |
PCT International Search Report and Written Opinion in International Application No. PCT/US2019/068409, dated Mar. 12, 2020, 11 pages. |