US20030099752A1 - Liquid coffee concentrates - Google Patents

Liquid coffee concentrates Download PDF

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Publication number
US20030099752A1
US20030099752A1 US10/272,968 US27296802A US2003099752A1 US 20030099752 A1 US20030099752 A1 US 20030099752A1 US 27296802 A US27296802 A US 27296802A US 2003099752 A1 US2003099752 A1 US 2003099752A1
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United States
Prior art keywords
coffee
seconds
ratio value
concentrate
furfuryl acetate
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Abandoned
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US10/272,968
Inventor
Glenn Dria
Jerry Young
Raul Nunes
Jianjun Li
Donald Patton
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
EKONOMON ADAM ESQ
Folger Coffee Co
Procter and Gamble Co
Original Assignee
Procter and Gamble Co
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Application filed by Procter and Gamble Co filed Critical Procter and Gamble Co
Priority to US10/272,968 priority Critical patent/US20030099752A1/en
Assigned to PROCTER & GAMBLE COMPANY, THE reassignment PROCTER & GAMBLE COMPANY, THE ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: LI, JIANJUN JUSTIN, PATTON, DONALD RAY, YOUNG, JERRY DOUGLAS, DRIA, GLENN JAMES, NUNES, RAUL VICTORINO
Publication of US20030099752A1 publication Critical patent/US20030099752A1/en
Priority to US11/048,202 priority patent/US7833561B2/en
Assigned to FOLGERS COFFEE COMPANY, THE, EKONOMON, ADAM, ESQ., KNUDSEN, JEANNETTE L. reassignment FOLGERS COFFEE COMPANY, THE ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MILLER, STEVEN W. - ASSISTANT SECRETARY ON BEHALF OF THE PROCTER & GAMBLE COMPANY
Abandoned legal-status Critical Current

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Classifications

    • AHUMAN NECESSITIES
    • A23FOODS OR FOODSTUFFS; TREATMENT THEREOF, NOT COVERED BY OTHER CLASSES
    • A23FCOFFEE; TEA; THEIR SUBSTITUTES; MANUFACTURE, PREPARATION, OR INFUSION THEREOF
    • A23F5/00Coffee; Coffee substitutes; Preparations thereof
    • A23F5/24Extraction of coffee; Coffee extracts; Making instant coffee
    • A23F5/243Liquid, semi-liquid or non-dried semi-solid coffee extract preparations; Coffee gels; Liquid coffee in solid capsules

Definitions

  • the present invention relates to liquid coffee concentrates, methods of producing and assessing the quality of liquid coffee concentrates and products containing said concentrates.
  • Applicant's invention relates to a liquid coffee concentrate having a furfuryl acetate to 4-ethyl guaiacol ratio value that is from about 50% to about 210% of the furfuryl acetate to 4-ethyl guaiacol ratio value of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate.
  • Applicants also claim methods of producing and assessing the quality of coffee concentrates and products containing said concentrates.
  • the term “coffee product” includes, but is not limited to coffee concentrates, coffee extracts and fresh brewed coffee.
  • the term “coffee concentrate” means a coffee extract that has undergone additional processing, such as thermal treatment.
  • pyridine to 5-methyl-2-furfurylfuran ratio value refers to the number that is obtained when a coffee product's pyridine and 5-methyl-2-furfurylfuran peak area values are determined according to Applicants' analytical test and said resulting pyridine's peak area value is divided by said 5-methyl-2-furfurylfuran's peak area value.
  • furfuryl acetate to 4-ethyl guaiacol ratio value refers to the number that is obtained when a coffee product's furfuryl acetate and 4-ethyl guaiacol peak area values are determined according to Applicants' analytical test and said resulting furfuryl acetate's peak area value is divided by said 4-ethyl guaiacol's peak area value.
  • unit operation includes, but is not limited to, equipment used to transfer heat such as heaters and coolers; holders; and transfer lines.
  • Embodiments of Applicants' coffee concentrate have a ratio value of furfuryl acetate to 4-ethyl guaiacol that is from about 50% to about 210% of the ratio value of furfuryl acetate to 4-ethyl guaiacol of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate.
  • Other embodiments of Applicants' coffee concentrate have a ratio value of furfuryl acetate to 4-ethyl guaiacol that is from about 65% to about 150% of the ratio value of furfuryl acetate to 4-ethyl guaiacol of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate.
  • Still other embodiments of Applicants' coffee concentrate have a ratio value of furfuryl acetate to 4-ethyl guaiacol that is from about 80% to about 120% of the ratio value of furfuryl acetate to 4-ethyl guaiacol of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate.
  • Coffee extracts that can be thermally processed according to Applicants' process can be prepared by any suitable process used to produce a coffee extract.
  • said coffee extracts are non-hydrolysed liquids having pyridine to 5-methyl-2-furfurylfuran ratio values of from about 3:1 to about 25:1 and solids contents of from about 2.3% to about 25% by weight.
  • Other preferred non-hydrolysed liquid coffee extracts include those extracts having a pyridine to 5-methyl-2-furfurylfuran ratio value of from about 4:1 to about 20:1 and a solids content of from about 3.5% to about 10% by weight; and those extracts having a pyridine to 5-methyl-2-furfurylfuran ratio value of from about 4.5:1 to about 15:1 and a solids content of from about 3.5% to about 8% by weight.
  • Suitable methods of producing a coffee extract include, but are not limited to, extracting said concentrate from roasted and ground, caffeinated or decaffeinated coffee using a continuous flow column.
  • Said columns are typically stainless steel vertical columns having a height-to-diameter ratio greater than or equal to 6:1 and a perforated top and bottom retainer to permit the transport of feed water while simultaneously keeping coffee granules between the retainers.
  • Suitable columns can be obtained from Niro A/S of Soeborg, Denmark.
  • Suitable extraction conditions include, but are not limited to, operating the extraction process at a temperature less than 149° C. and achieving a flow rate ratio of kilograms water per minute to kilograms of coffee from about 0.1:1 to about 0.5:1, a water front speed of from about 5 cm to about 25 cm per minute, a draw-off ratio of mass of extract to mass of coffee from about 4:1 to about 10:1; and a yield of from about 17% to about 35%.
  • Other suitable extraction conditions include operating the extraction process at a temperature less than 149° C.
  • a flow rate ratio of kilograms water per minute to kilograms of coffee from about 0.25:1 to about 0.36: 1, a water front speed of from about 12.5 cm to about 15.2 cm per minute, a draw-off ratio of mass of extract to mass of coffee from about 6.5:1 to about 7:1; and a yield of from about 23% to about 27.5%.
  • Still other suitable extraction conditions include operating the extraction process at a temperature range of from about 65° C. to about 99° C. or from about 82° C. to about 93° C. and achieving any set of flow rate, water front speed, draw-off ratio and yield parameters detailed previously.
  • Suitable thermal processing equipment includes but is not limited to, a MicroThermics model 25DH UHTIHTST unit. Said equipment can be obtained from MicroThermics Inc. Raleigh, N.C. U.S.A. Regardless of the thermal processing equipment that is employed to thermally process a coffee extract, said equipment must be operated such that the extract is heat treated for an equivalent time from about 15 seconds to about 35 seconds at an equivalent temperature of from about 115° C. to about 149° C.; preferably said equipment must be operated such that the extract is heat treated for an equivalent time from about 16.5 seconds to about 30 seconds at an equivalent temperature of from about 126° C.
  • the resultant coffee concentrate used may be used immediately, in the same manner as conventional coffee concentrates, to form coffee containing products or may be packaged according to known methods for later use.
  • Step (a) Interpolate the time and temperature data obtained in Step (a) above using the Cubic Spline Interpolation Method found on pages143 to 150 of Numerical Analysis, by Richard L. Burden, J. Douglas Faires, Sixth Edition, 1997 Brooks/Cole Publishing Company, ISBN 0-534-95532-0 to obtain a time/temperature profile.
  • Ea (50, 70, 90, 110, 130, 150, 170, 190, 210, 230, 250, 270, 290, 310, 330)
  • Equivalent_Time 10 intercept(Ea, log(G Total ))
  • Equivalent_Temperature - 1000 R ⁇ l ⁇ n ( 10 ) ⁇ slope ( Ea , log ( G Total ) ) - 273.15
  • Fresh brewed coffee is made using the same coffee used to produce the coffee concentrate of interest.
  • Mr. Coffee® model AccelTM automatic drip coffee brewer [0050] iii.) Mr. Coffee® model AccelTM automatic drip coffee brewer.
  • Step (b)(ii) After completing Step (b)(ii), separate the brewed coffee into 2 aliquots. Immediately freeze one aliquot, and use the second aliquot to determine, according to Method No. 2 above, the % solids, by weight, of the coffee.
  • Thermostated container capable of being thermostated to at least 5° C.
  • Digital magnetic stirrer capable of a stirring speed of at least 300 rpm.
  • a clean modified trap consisting of a 1-ml syringe barrel with a threaded glass tip packed with deactivated glass wool as described on page 204 of S. Maeno and P. A. Rodriguez, “Simple and versatile injection system for capillary gas chromatographic columns performance evaluation of a system including mass spectrometric and light-pipe Fourier-transform infrared detection”, J. Chromatogr. A 1996, 731, 201-215.
  • GC Gas Chromatograph
  • HP Hewlett Packard
  • the GC is modified to accommodate the trap of (5) above as described on page 203 of S. Maeno and P. A. Rodriguez, “Simple and versatile injection system for capillary gas chromatographic columns performance evaluation of a system including mass spectrometric and light-pipe Fourier-transform infrared detection”, J. Chromatogr. A 1996, 731, 201-215.
  • GC column Durabond-5® Mass Spectrometer (30 meters in length, 0.252 mm column ID and 1.0 ⁇ m film thickness) obtained from J&W Scientific of Folsom, Calif., USA.
  • Carrier gas capable of being delivered at a 2 ml/min. flow rate.
  • Model HP 5973 Mass Selective Detector obtained from Hewlett Packard, Santa Clarita, Calif., USA having a source temperature of about 230° C., and a MS Quad temperature of about 150° C.
  • Chemstation software obtained from Hewlett Packard, Santa Clarita, Calif., USA and computer capable of running said software.
  • Step (6) After Step (6) above is completed, remove the TwisterTM bar from the 100 ml sample vial and rinse the bar with 4 mls of chilled (5° C.) Milli-QTM water, and then blott the bar dry with KimwipesTM.
  • Step (9) the GC-MS analysis is run as follows. The following temperature program is used:
  • This extract is filtered through a 10 micron pleated glass filter cartridge to remove sediment and then heat treated for an equivalent time of 21.2 seconds at an equivalent temperature of 145° C. using a MicroThermics model 25DH UHT/HTST unit to produce a concentrate.
  • Pre-thermal treatment and post thermal treatment samples of the concentrate are tested according to Applicants' analytical methods.
  • the pre-thermal treatment sample is found to have a pyridine to 5-methyl-2-furfurylfuran ratio value of 9.4, and the samples are found to have ratio values of furfuryl acetate to 4-ethyl guaiacol listed below.
  • Pre-thermal treatment and post thermal treatment samples of the concentrate are tested according to Applicants' analytical methods.
  • the pre-thermal treatment sample is found to have a pyridine to 5-Methyl-2-Furfurylfuran ratio value of 10.2, and the samples are found to have ratio values of furfuryl acetate to 4-ethyl guaiacol listed below.
  • Pre-thermal treatment and post thermal treatment samples of the concentrate are tested according to Applicants' analytical methods.
  • the pre-thermal treatment sample is found to have a pyridine to 5-Methyl-2-Furfurylfuran ratio value of 12.7, and the samples are found to have ratio values of furfuryl acetate to 4-ethyl guaiacol listed below.

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  • Life Sciences & Earth Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Food Science & Technology (AREA)
  • Polymers & Plastics (AREA)
  • Tea And Coffee (AREA)

Abstract

Improved liquid coffee concentrates that have furfuryl acetate to 4-ethyl guaiacol ratio values that approach the furfuryl acetate to 4-ethyl guaiacol ratio values of fresh brewed coffees brewed with the same coffees used to produce said coffee concentrates are disclosed. Methods of evaluating and adjusting a liquid coffee concentrate's furfuryl acetate to 4-ethyl guaiacol ratio value are also disclosed.

Description

    CROSS REFERENCE TO RELATED APPLICATIONS
  • This application claims priority to U.S. Provisional Application No. 60/345,234, filed Oct. 19, 2001.[0001]
  • TECHNICAL FIELD
  • The present invention relates to liquid coffee concentrates, methods of producing and assessing the quality of liquid coffee concentrates and products containing said concentrates. [0002]
  • BACKGROUND OF THE INVENTION
  • Consumers produce the traditional “pot of coffee” by extracting the desired components of roast and ground coffee using an automatic drip coffee maker (ADC) or other form of brewer. Although the flavor and aroma of such a coffee beverage is highly desired and appreciated, the inconvenience of the brewing process has lead to the development of instant coffee and coffee concentrate products that allow the consumer to quickly make a single cup of coffee. Unfortunately, the production processes used to produce such coffee products result in finished products having ratios of flavor and aroma components that are different from fresh brewed coffee. As a result, coffee beverages produced from such concentrated products do not have the highly desired flavor and aroma of fresh brewed coffee. [0003]
  • Since the flavor and aroma of fresh brewed coffee is especially desired by consumers, attempts have been made to improve the flavor and aroma of products made from coffee concentrates. Such attempts include incorporating volatile aroma flavor components into the finished concentrates, and the intensification of such components by the application of thermal energy. While such attempts are appreciated, there remains a need for a liquid coffee concentrate having the same ratios of flavor and aroma components as that of fresh brewed coffee brewed from the same coffee used to produce the coffee concentrate. [0004]
  • SUMMARY OF THE INVENTION
  • Applicant's invention relates to a liquid coffee concentrate having a furfuryl acetate to 4-ethyl guaiacol ratio value that is from about 50% to about 210% of the furfuryl acetate to 4-ethyl guaiacol ratio value of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate. Applicants also claim methods of producing and assessing the quality of coffee concentrates and products containing said concentrates. [0005]
  • DETAILED DESCRIPTION
  • A. Definitions [0006]
  • As used herein, the term “coffee product” includes, but is not limited to coffee concentrates, coffee extracts and fresh brewed coffee. [0007]
  • As used herein, the term “coffee concentrate” means a coffee extract that has undergone additional processing, such as thermal treatment. [0008]
  • As used herein, the term “pyridine to 5-methyl-2-furfurylfuran ratio value” refers to the number that is obtained when a coffee product's pyridine and 5-methyl-2-furfurylfuran peak area values are determined according to Applicants' analytical test and said resulting pyridine's peak area value is divided by said 5-methyl-2-furfurylfuran's peak area value. [0009]
  • As used herein, the term “furfuryl acetate to 4-ethyl guaiacol ratio value” refers to the number that is obtained when a coffee product's furfuryl acetate and 4-ethyl guaiacol peak area values are determined according to Applicants' analytical test and said resulting furfuryl acetate's peak area value is divided by said 4-ethyl guaiacol's peak area value. [0010]
  • As used herein, the term “unit operation” includes, but is not limited to, equipment used to transfer heat such as heaters and coolers; holders; and transfer lines. [0011]
  • All percentages and ratios are calculated by weight unless otherwise indicated. [0012]
  • As used herein, the articles a and an, when used in a claim, are understood to mean at least one of the components that are claimed or described. [0013]
  • Publications, patents, and patent applications are referred to throughout this disclosure. All references cited herein are hereby incorporated by reference in their entirety. [0014]
  • B. Coffee Concentrate Characteristics and Preparation [0015]
  • The quality of any ready-to-use coffee product, made from a coffee concentrate, is dependent on the properties of the concentrate. Although coffee concentrates contain innumerable aroma and flavor components, Applicants discovered that the flavor and aroma of products made from concentrate approaches that of fresh brewed coffee when the concentrate's ratio value of furfuryl acetate to 4-ethyl guaiacol approaches the furfuryl acetate to 4-ethyl guaiacol ratio value of fresh brewed coffee brewed from the same coffee used to produce the concentrate. [0016]
  • In addition to discovering the correlation between the ratio value of furfuryl acetate to 4-ethyl guaiacol, and flavor and aroma, Applicants discovered that a coffee concentrate's ratio of furfuryl acetate to 4-ethyl guaiacol can be adjusted by the application of thermal energy to the concentrate. While evaluating the suitability of thermal processing, Applicants discovered that the entire, rather than just the hold tube portion, of a time and temperature profile must be considered. Applicants also recognized that the suitability of any set of thermal processing conditions is not only time and magnitude dependent but rate dependent as well. As a result, more common thermal processing descriptors such as Fo are insufficient to describe the thermal processing conditions that will result in the flavor and aroma improvements of Applicants' invention. Thus, Applicants' processing conditions are described in terms of equivalent times and temperatures, as thermal processing conditions that are time, magnitude and rate dependent can be effectively and efficiently described by these descriptors. [0017]
  • A detailed description of Applicants' coffee concentrate and processes of making said concentrate is set forth in detail below. [0018]
  • 1. Coffee Concentrate [0019]
  • Embodiments of Applicants' coffee concentrate have a ratio value of furfuryl acetate to 4-ethyl guaiacol that is from about 50% to about 210% of the ratio value of furfuryl acetate to 4-ethyl guaiacol of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate. Other embodiments of Applicants' coffee concentrate have a ratio value of furfuryl acetate to 4-ethyl guaiacol that is from about 65% to about 150% of the ratio value of furfuryl acetate to 4-ethyl guaiacol of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate. Still other embodiments of Applicants' coffee concentrate have a ratio value of furfuryl acetate to 4-ethyl guaiacol that is from about 80% to about 120% of the ratio value of furfuryl acetate to 4-ethyl guaiacol of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate. [0020]
  • 2. Process of Making Coffee Concentrate [0021]
  • Coffee extracts that can be thermally processed according to Applicants' process can be prepared by any suitable process used to produce a coffee extract. Preferably, said coffee extracts are non-hydrolysed liquids having pyridine to 5-methyl-2-furfurylfuran ratio values of from about 3:1 to about 25:1 and solids contents of from about 2.3% to about 25% by weight. Other preferred non-hydrolysed liquid coffee extracts include those extracts having a pyridine to 5-methyl-2-furfurylfuran ratio value of from about 4:1 to about 20:1 and a solids content of from about 3.5% to about 10% by weight; and those extracts having a pyridine to 5-methyl-2-furfurylfuran ratio value of from about 4.5:1 to about 15:1 and a solids content of from about 3.5% to about 8% by weight. [0022]
  • Suitable methods of producing a coffee extract include, but are not limited to, extracting said concentrate from roasted and ground, caffeinated or decaffeinated coffee using a continuous flow column. Said columns are typically stainless steel vertical columns having a height-to-diameter ratio greater than or equal to 6:1 and a perforated top and bottom retainer to permit the transport of feed water while simultaneously keeping coffee granules between the retainers. Suitable columns can be obtained from Niro A/S of Soeborg, Denmark. [0023]
  • Suitable extraction conditions include, but are not limited to, operating the extraction process at a temperature less than 149° C. and achieving a flow rate ratio of kilograms water per minute to kilograms of coffee from about 0.1:1 to about 0.5:1, a water front speed of from about 5 cm to about 25 cm per minute, a draw-off ratio of mass of extract to mass of coffee from about 4:1 to about 10:1; and a yield of from about 17% to about 35%. Other suitable extraction conditions include operating the extraction process at a temperature less than 149° C. and achieving a flow rate ratio of kilograms water per minute to kilograms of coffee from about 0.2:1 to about 0.4: 1, a water front speed of from about 12.5 cm to about 25 cm per minute, a draw-off ratio of mass of extract to mass of coffee from about 5.5:1 to about 8:1; and a yield of from about 17% to about 30%; and operating the extraction process at a temperature less than 149° C. and achieving a flow rate ratio of kilograms water per minute to kilograms of coffee from about 0.25:1 to about 0.36: 1, a water front speed of from about 12.5 cm to about 15.2 cm per minute, a draw-off ratio of mass of extract to mass of coffee from about 6.5:1 to about 7:1; and a yield of from about 23% to about 27.5%. Still other suitable extraction conditions include operating the extraction process at a temperature range of from about 65° C. to about 99° C. or from about 82° C. to about 93° C. and achieving any set of flow rate, water front speed, draw-off ratio and yield parameters detailed previously. [0024]
  • After a suitable extract is obtained, said extract is thermally processed. Suitable thermal processing equipment includes but is not limited to, a MicroThermics model 25DH UHTIHTST unit. Said equipment can be obtained from MicroThermics Inc. Raleigh, N.C. U.S.A. Regardless of the thermal processing equipment that is employed to thermally process a coffee extract, said equipment must be operated such that the extract is heat treated for an equivalent time from about 15 seconds to about 35 seconds at an equivalent temperature of from about 115° C. to about 149° C.; preferably said equipment must be operated such that the extract is heat treated for an equivalent time from about 16.5 seconds to about 30 seconds at an equivalent temperature of from about 126° C. to about 149° C.; and most preferably said equipment must be operated such that the extract is heat treated for an equivalent time from about 18 seconds to about 28 seconds at an equivalent temperature of from about 137° C. to about 149° C. Additionally, when an extract is heat treated for an equivalent time and temperature combination such that the following mathematical relationship is true, the resulting concentrate is sufficiently sterile to be aseptically packaged. [0025] Log ( Equivalent Time ) log ( 10.1 ) - ( Equivalent Temperature - 135 ° C . ) 10.5
    Figure US20030099752A1-20030529-M00001
  • The resultant coffee concentrate used may be used immediately, in the same manner as conventional coffee concentrates, to form coffee containing products or may be packaged according to known methods for later use. [0026]
  • Analytical Methods
  • 1. Method For Calculating Equivalent Time and Temperature [0027]
  • a.) Obtain time and temperature data for the thermal process of interest. This data must include at least 10 (time, temperature) data points for each unit operation that is part of said thermal process. [0028]
  • b.) Interpolate the time and temperature data obtained in Step (a) above using the Cubic Spline Interpolation Method found on pages143 to 150 of [0029] Numerical Analysis, by Richard L. Burden, J. Douglas Faires, Sixth Edition, 1997 Brooks/Cole Publishing Company, ISBN 0-534-95532-0 to obtain a time/temperature profile.
  • c.) Evaluate G[0030] Total using the following equation and numerical integration according to the Romberg Method found on pages 209 to 213 of Numerical Analysis, Richard L. Burden, J. Douglas Faires, Sixth Edition, 1997 Brooks/Cole Publishing Company, ISBN 0-534-95532-0: G Total j := 0 time final exp [ - 1 · Ea j · 1000 R · ( T emp ( t ) + 273.15 ) ] dt
    Figure US20030099752A1-20030529-M00002
  • for the following activation energies (Arrhenius model): [0031]  
  • Ea=(50, 70, 90, 110, 130, 150, 170, 190, 210, 230, 250, 270, 290, 310, 330) [0032]  
  • Where said activation energies are expressed in kJ/mol, R=8.314 J/mol. K, time is expressed in seconds and temperature is expressed in ° C. [0033]  
  • d.) Using the equation below: [0034] log ( G Total ) = log ( t E ) - 1000 R · l n ( 10 ) · T E · Ea
    Figure US20030099752A1-20030529-M00003
  • transform the (G[0035]   Total, Ea) data points into a linear equation, and then use linear regression such that:
  • Equivalent_Time:=10[0036]   intercept(Ea, log(G Total )) Equivalent_Temperature := - 1000 R · l n ( 10 ) · slope ( Ea , log ( G Total ) ) - 273.15
    Figure US20030099752A1-20030529-M00004
  • where the Equivalent Time is expressed in seconds and the Equivalent Temperature in ° C. [0037]  
  • 2. Method of Determining The Percent Solids of Fresh Brewed Coffee, Coffee Extracts and Coffee Concentrates (Analysis must be done in triplicate). [0038]
  • a.) Weigh a clean, empty vessel to the nearest 0.0001 gram. [0039]
  • b.) Place 25 ml of test sample in the vessel. [0040]
  • c.) Weigh the vessel containing the sample to the nearest 0.0001 gram. [0041]
  • d.) Place the vessel in a convection oven at 105° C. and dry to a constant weight. [0042]
  • e.) Remove the vessel from the oven and then weigh the vessel to the nearest 0.0001 gram. [0043]
  • f.) Calculate % solids by weight as follows: [0044] % Solids = [ ( DrySampleWeight + VesselWeight ) - VesselWeight ( InitialSampleWeight + VesselWeight ) - VesselWeight ] × 100
    Figure US20030099752A1-20030529-M00005
  • 3. Method of Preparing Fresh Brewed Coffee For Use In Analytical Method No. 5 below. [0045]
  • Fresh brewed coffee is made using the same coffee used to produce the coffee concentrate of interest. [0046]
  • a.) Materials and Apparatus: [0047]
  • i.) 33.3 g of the roast and ground coffee having an average particle size of 600 to 850 microns. [0048]
  • ii.) 1420 mls of distilled water. [0049]
  • iii.) Mr. Coffee® model Accel™ automatic drip coffee brewer. [0050]
  • iv.) Mr. Coffee® Model # UF100 coffee filter. [0051]
  • b.) Brewing Procedure [0052]
  • i.) Place the coffee in a filter and then place the filter in the brewer. [0053]
  • ii.) Pour the distilled water into the coffee brewer and then brew according to the Mr. Coffee® brewing directions. [0054]
  • iii.) After completing Step (b)(ii), separate the brewed coffee into 2 aliquots. Immediately freeze one aliquot, and use the second aliquot to determine, according to Method No. 2 above, the % solids, by weight, of the coffee. [0055]
  • iv) Prior to testing according to Method No. 5 below, thaw the frozen sample and dilute said sample to a concentration of 0.55% solids by weight. After thawing and diluting the sample, the sample must be analyzed according to Method No. 5 below within 30 minutes. [0056]
  • 4. Method of Preparing Coffee Extracts And Concentrates For Use In Analytical Method No. 5 below. [0057]
  • a.) Within 30 minutes after an extract or concentrate is produced, two aliquots of the extract or concentrate must be obtained. One aliquot is immediately packaged in a glass container that is then sealed and frozen. The % solids, by weight, of the second aliquot is immediately determined according to Method No. 2 above. [0058]
  • b.) Prior to testing according to Method No. 5 below, thaw the frozen sample and dilute said sample to a concentration of 0.55% solids by weight. After thawing and diluting the sample, the sample must be analyzed according to Method No. 5 below within 30 minutes. [0059]
  • 5. Method For Determining Furfuryl Acetate:4-ethyl Guaiacol Ratio Values And Pyridine:5-Methyl-2-Furfurylfuran Ratio Values (Analysis Must Be Done In Triplicate). [0060]
  • Apparatus: [0061]
  • 1. 100 ml headspace sampling vial cleaned with distilled water and heated in a muffle furnace at 500° C. for 24 hours. [0062]
  • 2. Thermostated container capable of being thermostated to at least 5° C. [0063]
  • 3. Digital magnetic stirrer capable of a stirring speed of at least 300 rpm. [0064]
  • 4. A clean 1 cm Twister™ bar having a coating thickness of 0.5 mm (stir bar coated with polydimethylsiloxane) supplied by the Gerstel GmbH & Co. KG of Mülheim an der Ruhr, Germany. [0065]
  • 5. A clean modified trap consisting of a 1-ml syringe barrel with a threaded glass tip packed with deactivated glass wool as described on page 204 of S. Maeno and P. A. Rodriguez, “Simple and versatile injection system for capillary gas chromatographic columns performance evaluation of a system including mass spectrometric and light-pipe Fourier-transform infrared detection”, J. Chromatogr. A 1996, 731, 201-215. [0066]
  • 6. Gas Chromatograph (GC): Hewlett Packard (HP) model 6890: the GC is modified to accommodate the trap of (5) above as described on page 203 of S. Maeno and P. A. Rodriguez, “Simple and versatile injection system for capillary gas chromatographic columns performance evaluation of a system including mass spectrometric and light-pipe Fourier-transform infrared detection”, J. Chromatogr. A 1996, 731, 201-215. [0067]
  • 7. GC column: Durabond-5® Mass Spectrometer (30 meters in length, 0.252 mm column ID and 1.0 μm film thickness) obtained from J&W Scientific of Folsom, Calif., USA. [0068]
  • 8. Carrier gas, helium, capable of being delivered at a 2 ml/min. flow rate. [0069]
  • 9. Model HP 5973 Mass Selective Detector obtained from Hewlett Packard, Santa Clarita, Calif., USA having a source temperature of about 230° C., and a MS Quad temperature of about 150° C. [0070]
  • 10. Chemstation software obtained from Hewlett Packard, Santa Clarita, Calif., USA and computer capable of running said software. [0071]
  • 11. MS spectral libraries of John Wiley & Sons and the National Institute of Standards and Technology (NIST), purchased and licensed through Hewlett Packard. [0072]
  • Procedure: [0073]
  • 1. Thermostat the container (Apparatus # 2) to 5° C. [0074]
  • 2. Add 50 mls of the sample solution (prepared according to Methods 3 or 4 above) into the 100 ml headspace vial. [0075]
  • 3. Add 50 μls of an internal standard solution (2-heptanone, 500 ppm in water) to the 100 ml headspace vial. [0076]
  • 4. Place the Twister™ bar into the 100 ml headspace vial and seal the vial with a crimp seal. [0077]
  • 5. Place the 100 ml headspace vial from Step (4) above into the thermostated container [0078]
  • 6. Place the thermostated container containing the 100 ml headspace vial on to the digital magnetic stirrer and stir at 300 rpm for 45 minutes. [0079]
  • 7. After Step (6) above is completed, remove the Twister™ bar from the 100 ml sample vial and rinse the bar with 4 mls of chilled (5° C.) Milli-Q™ water, and then blott the bar dry with Kimwipes™. [0080]
  • 8. After Step (7) above is completed place the Twister™ bar into the trap (Apparatus 5). [0081]
  • 9. Start sequence of sample loading and analysis. [0082]
  • i) cool the pre-column to a temperature equal to or less than −90° C. [0083]
  • ii) next, connect the trap to a helium flow having a flow rate of 15 ml/min [0084]
  • iii) then heat the trap to 200° C. for 8 minutes to desorb the trapped flavor compounds. [0085]
  • 10. After Step (9) is complete, the GC-MS analysis is run as follows. The following temperature program is used: [0086]
  • i) an initial temperature of 50° C. which is held for 1 minute, [0087]
  • ii) increase the initial temperature at a rate of 4° C./min until a temperature of 250° C. is reached, [0088]
  • iii) hold at 250° C. for 1 minute. [0089]
  • 11. Identify the peaks corresponding to furfuryl acetate, 4-ethyl guaiacol, pyridine and 5-methyl-2-furfurylfuran using the MS spectral libraries of John Wiley & Sons and the National Institute of Standards and Technology (NIST), purchased and licensed through Hewlett Packard. [0090]
  • 12. Integrate the chromatographic peaks corresponding to the ions (listed below) for each identified compound using the Chemstation software obtained from Hewlett Packard, Santa Clarita, Calif., USA. [0091]
  • i.) Pyridine (PYR) ion having a mass to charge ratio of 52 [0092]
  • ii.) Furfuryl Acetate (FA) ion having a mass to charge ratio of 140 [0093]
  • iii.) 5-Methyl-2-Furfurylfuran (5MFF) ion having a mass to charge ratio of 162 [0094]
  • iv.) 4-Ethyl Guaiacol (EG) ion having a mass to charge ratio of 137 [0095]
  • 13. For a test sample obtain the ratio values of furfuryl acetate to 4-ethyl guaiacol and pyridine to 5-methyl-2-furfurylfuran as follows: [0096]
  • i) ratio value of FA:EG=peak area FA ion/peak area EG ion [0097]
  • ii) ratio value of PYR:5MFF=peak area PYR ion /peak area 5MFF ion [0098]
  • REFERENCES
  • 1. E. Baltussen, P. Sandra, F. David and C. Cramers, “Stir Bar Sorptive Extraction (SBSE), a Novel Extraction Technique for Aqueous Samples: Theory and Principles”, J. Microcolumn Separations, 11(10), 737-747, 1999. [0099]
  • 6. Color Measurement (Analysis Must Be Done In Triplicate). [0100]
  • a.) Apparatus [0101]
  • i) Hunter D25L-9000 colorimeter with a DP9000 processor supplied by Hunter Associates Laboratory Inc. of Reston, Va. U.S.A. [0102]
  • ii) Straight edge [0103]
  • iii) Aluminum sample cup 2.5 cm high and having an outside diameter of 12.4 cm. The cup contains a cavity having a depth of 1.9 cm and an inside diameter of 11.8 cm. [0104]
  • b.) Procedure [0105]
  • i) Place a sufficient amount of coffee, having an average particle size of 600 to 850 microns, in the sample cup to overfill the sample cup. [0106]
  • ii) Level the coffee in the sample cup, using the straight edge, such that the coffee sample is uniformly even with the top of the cup. [0107]
  • iii) Place the cup in the Hunter D25L-9000 calorimeter and operate the instrument according to the manufacturer's instructions. [0108]
  • iv) Record the L color value.[0109]
  • EXAMPLES
  • The following examples are illustrative of the present invention but are not meant to be limiting thereof. [0110]
  • Example 1
  • 3.9 Kg of an all Arabica coffee French roasted and ground is blended with 2.57 Kg of a French roasted and ground Arabica/Robusta blend. This coffee is loaded into an extraction column about 6 inches in diameter and four and a half feet tall. The cap, which includes an exit port with a screen to contain the R&G coffee, is placed on the column. Nitrogen gas is used to flush air from the extraction system. Deaerated distilled water heated to 82° C. is pumped counter-currently through the bed of coffee at about 1.9 liter/minute. 45.2 Kg of extract containing 3.89% solids is obtained and cooled to about 29° C. This extract is filtered through a 10 micron pleated glass filter cartridge to remove sediment and then heat treated for an equivalent time of 21.2 seconds at an equivalent temperature of 145° C. using a MicroThermics model 25DH UHT/HTST unit to produce a concentrate. [0111]
  • Pre-thermal treatment and post thermal treatment samples of the concentrate are tested according to Applicants' analytical methods. The pre-thermal treatment sample is found to have a pyridine to 5-methyl-2-furfurylfuran ratio value of 9.4, and the samples are found to have ratio values of furfuryl acetate to 4-ethyl guaiacol listed below. [0112]
    Furfuryl Acetate:4-Ethyl Guaiacol
    Sample Ratio Value
    Fresh Brewed Standard 0.62
    Pre-thermal treatment sample 1.75
    Post thermal treatment sample 0.60
  • Example 2
  • 3.6 Kg of an all Arabica roasted and ground coffee having roast color of 15.5 L is extracted as in Example 1 at a flow rate of about 1.8 liters/minute, yielding 26 Kg of concentrate containing 3.59% solids. The extract is heat treated for an equivalent time of 26.5 seconds at an equivalent temperature of 141° C. using a MicroThermics model 25DH UHT/HTST unit to produce a concentrate. [0113]
  • Pre-thermal treatment and post thermal treatment samples of the concentrate are tested according to Applicants' analytical methods. The pre-thermal treatment sample is found to have a pyridine to 5-Methyl-2-Furfurylfuran ratio value of 10.2, and the samples are found to have ratio values of furfuryl acetate to 4-ethyl guaiacol listed below. [0114]
    Furfuryl Acetate:4-Ethyl Guaiacol
    Sample Ratio Value
    Fresh Brewed Standard 0.83
    Pre-thermal treatment sample 3.06
    Post thermal treatment sample 1.44
  • Example 3
  • 6.64 Kg of a roasted and ground decaffeinated Arabica and Robusta coffee blend having roast color of 18.1 L is extracted as in Example 1 at a flow rate of about 1.8 liters/minute, yielding 44.4 Kg of extract containing 3.56% solids. The extract is heat treated for an equivalent time of 25.6 seconds at an equivalent temperature of 141° C. using a MicroThermics model 25DH UHT/HTST unit to produce a concentrate. [0115]
  • Pre-thermal treatment and post thermal treatment samples of the concentrate are tested according to Applicants' analytical methods. The pre-thermal treatment sample is found to have a pyridine to 5-Methyl-2-Furfurylfuran ratio value of 12.7, and the samples are found to have ratio values of furfuryl acetate to 4-ethyl guaiacol listed below. [0116]
    Furfuryl Acetate:4-Ethyl Guaiacol
    Sample Ratio Value
    Fresh Brewed Standard 0.47
    Pre-thermal treatment sample 1.12
    Post thermal treatment sample 0.42

Claims (26)

What is claimed:
1. A coffee concentrate, said coffee concentrate being a liquid and having a furfuryl acetate to 4-ethyl guaiacol ratio value that is from about 50% to about 210% of the furfuryl acetate to 4-ethyl guaiacol ratio value of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate.
2. The coffee concentrate of claim 1 wherein said furfuryl acetate to 4-ethyl guaiacol ratio value is from about 65% to about 150% of the furfuryl acetate to 4-ethyl guaiacol ratio value of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate.
3. The coffee concentrate of claim 2 wherein said furfuryl acetate to 4-ethyl guaiacol ratio value is from about 80% to about 120% of furfuryl acetate to 4-ethyl guaiacol ratio value of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate.
4. A product comprising the coffee concentrate of claim 1.
5. A product according to claim 4 wherein said coffee concentrate's furfuryl acetate to 4-ethyl guaiacol ratio value is from about 65% to about 150% of furfuryl acetate to 4-ethyl guaiacol ratio value of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate.
6. A product according to claim 4 wherein said coffee concentrate's furfuryl acetate to 4-ethyl guaiacol ratio value is from about 80% to about 120% of furfuryl acetate to 4-ethyl guaiacol ratio value of fresh brewed coffee brewed with the same coffee used to produce said coffee concentrate.
7. A process for producing an improved coffee concentrate, said process comprising the steps of:
a.) providing a liquid coffee extract; and
b.) subjecting said liquid extract to heat treating for an equivalent time of from about 15 seconds to about 35 seconds at an equivalent temperature of from about 115° C. to about 149° C.
8. The process of claim 7 wherein said liquid extract is subjected to heat treating for an equivalent time of from about 16.5 seconds to about 30 seconds at an equivalent temperature of from about 126° C. to about 149° C.
9. The process of claim 8 wherein said liquid extract is subjected to heat treating for an equivalent time of from about 18 seconds to about 28 seconds at an equivalent temperature of from about 137° C. to about 149° C.
10. The process of claim 7 wherein said liquid extract is a non-hydrolysed liquid having a pyridine to 5-methyl-2-furfurylfuran ratio value of from about 3:1 to about 25:1 and a solids content, by weight, of from about 2.3% to about 25%.
11. The process of claim 10 wherein said liquid extract is subjected to heat treating for an equivalent time of from about 16.5 seconds to about 30 seconds at an equivalent temperature of from about 126° C. to about 149° C.
12. The process of claim 11 wherein said liquid extract is subjected to heat treating for an equivalent time of from about 18 seconds to about 28 seconds at an equivalent temperature of from about 137° C. to about 149° C.
13. The process of claim 10 wherein said liquid extract is a non-hydrolysed liquid having a pyridine to 5-methyl-2-furfurylfuran ratio value of from about 4:1 to about 20:1 and a solids content, by weight, of from about 3.5% to about 10%.
14. The process of claim 13 wherein said liquid extract is subjected to heat treating for an equivalent time of from about 16.5 seconds to about 30 seconds at an equivalent temperature of from about 126° C. to about 149° C.
15. The process of claim 14 wherein said liquid extract is subjected to heat treating for an equivalent time of from about 18 seconds to about 28 seconds at an equivalent temperature of from about 137° C. to about 1490 C.
16. The process of claim 13 wherein said liquid extract is a non-hydrolysed liquid having a pyridine to 5-methyl-2-furfurylfuran ratio value of from about 4.5:1 to about 15:1 and a solids content, by weight, of from about 3.5% to about 8%.
17. The process of claim 16 wherein said liquid extract is subjected to heat treating for an equivalent time of from about 16.5 seconds to about 30 seconds at an equivalent temperature of from about 126° C. to about 149° C.
18. The process of claim 17 wherein said liquid extract is subjected to heat treating for an equivalent time of from about 18 seconds to about 28 seconds at an equivalent temperature of from about 137° C. to about 149° C.
19. The process of claim 7 wherein the step of providing said liquid extract comprises producing a coffee extract using an extraction process that is operated at:
a.) a flow rate ratio of kilograms water per minute to kilograms of coffee from about 0.1:1 to about 0.5:1;
b.) a water front speed of from about 5 cm to about 25 cm per minute;
c.) a draw-off ratio of mass of extract to mass of coffee from about 4:1 to about 10:1; and
d.) a yield of from about 17 to about 35%.
20. The process of claim 19, said process being operated at less than 149° C.
21. The process of claim 20, said process being operated at a temperature of from about 65° C. to about 99° C.
22. The process of claim 21, said process being operated at a temperature of from about 82° C. to about 93° C.
23. The process of claim 19, said processing being operated to achieve a draw-off ratio of mass of extract to mass of coffee from about 5.5:1 to about 8: 1, and a yield of from about 17 to about 30%.
24. The process of claim 23, said processing being operated to achieve a draw-off ratio of mass of extract to mass of coffee from about 6.5:1 to about 7:1, and a yield of from about 23 to about 27.5%.
25. A method assessing the quality of a coffee concentrate, said method comprising the steps of:
a.) providing a coffee concentrate;
b.) providing a fresh brewed coffee brewed from the same coffee used to produce the concentrate; and
c.) determining the furfuryl acetate to 4-ethyl guaiacol ratio value of the coffee concentrate and the furfuryl acetate to 4-ethyl guaiacol ratio value of the fresh brewed coffee.
26. The method of claim 25, comprising the further step of comparing the furfuryl acetate to 4-ethyl guaiacol ratio value of the coffee concentrate and the furfuryl acetate to 4-ethyl guaiacol ratio value of the fresh brewed coffee.
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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140322397A1 (en) * 2013-04-27 2014-10-30 David F. Mamo Aseptic hot-brewed packaged coffee or espresso beverage
US12053000B1 (en) 2020-10-31 2024-08-06 Jot Labs, LLC Beverage extract from collected fractions

Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6759072B1 (en) 1999-08-14 2004-07-06 The Procter + Gamble Co. Methods and systems for utilizing delayed dilution, mixing and filtration for providing customized beverages on demand
CN1507825A (en) 1999-08-14 2004-06-30 Method and system for providing required various new instant coffee by using delayed mixing
WO2006064756A1 (en) * 2004-12-13 2006-06-22 Suntory Limited Process for producing coffee beverage using extract solution having undergone filtration
US8277864B2 (en) * 2009-06-10 2012-10-02 Kraft Foods Global Brands Llc Liquid coffee concentrates and methods of making thereof
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JP7155448B1 (en) 2022-03-02 2022-10-18 サントリーホールディングス株式会社 packaged coffee drinks

Citations (60)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2098961A (en) * 1934-07-03 1937-11-16 Coffee Products Corp Manufacture of concentrated coffee extract
US2149876A (en) * 1934-06-15 1939-03-07 Coffee Products Corp Soluble coffee product and method of preparing same
US3089772A (en) * 1960-07-25 1963-05-14 Gen Foods Corp Coffee extraction process
US3554761A (en) * 1968-02-07 1971-01-12 Standard Brands Inc Coffee concentrate and process of producing the same
US3620758A (en) * 1970-01-20 1971-11-16 Gen Foods Corp Process for obtaining an aromatized coffee extract
US3628345A (en) * 1970-08-19 1971-12-21 Alfred T King Ice-liquid separation column
US3630353A (en) * 1968-03-30 1971-12-28 Dravo Corp Method for separation of fines from hot broken sinter
US3702253A (en) * 1965-04-30 1972-11-07 Firmenich & Cie Flavor modified soluble coffee
US3717472A (en) * 1971-06-30 1973-02-20 Procter & Gamble Separating aroma-and flavor-bearing substrates into aroma and flavor concentrates
US3830940A (en) * 1972-06-07 1974-08-20 M Sivetz Preparation of aqueous beverage concentrate of coffee
US3900582A (en) * 1972-04-13 1975-08-19 Firmenich & Cie Flavoring agent
US3928636A (en) * 1973-04-30 1975-12-23 Gen Foods Corp Coffee extraction process
US3947603A (en) * 1972-04-13 1976-03-30 Firmenich & Cie Flavoring agent
US3997685A (en) * 1971-06-30 1976-12-14 The Procter & Gamble Company Stable aroma, flavor and aroma and flavor products from aroma- and flavor-bearing substrates
US4000328A (en) * 1972-04-13 1976-12-28 Firmenich & Cie Flavoring agent
US4005227A (en) * 1972-04-13 1977-01-25 Firmenich & Cie Flavoring agent
US4088794A (en) * 1973-10-10 1978-05-09 General Foods Corporation Process for producing coffee extract
US4158067A (en) * 1976-09-18 1979-06-12 D.E.J. International Research Company B.V. Coffee extraction
US4303689A (en) * 1965-04-30 1981-12-01 Firmenich Sa Flavoring with pyrazine derivatives
US4334640A (en) * 1977-08-08 1982-06-15 Douwe Egberts Koninklijke Tabaksfabriek-Koffiebranderijen-Theehandel B.V. Exchangeable concentrate container for beverage dispensing machines
US4349573A (en) * 1980-11-28 1982-09-14 General Foods Corporation Low density coffee process
US4378380A (en) * 1980-10-10 1983-03-29 General Foods Corporation Method for producing products enhanced with synthetic coffee grinder gas flavor
US4481224A (en) * 1983-08-08 1984-11-06 International Flavors & Fragrances Inc. Flavoring with alkylthioalkanal dialkyl mercaptals
US4571343A (en) * 1985-05-01 1986-02-18 International Flavors & Fragrances Inc. Flavoring with ortho-dioxybenzaldehyde dimethyl mercaptals
US4571339A (en) * 1985-02-07 1986-02-18 General Foods Corporation Process for efficiently concentrating an aroma stream
US4606921A (en) * 1980-06-03 1986-08-19 Nestec S. A. Process for improving the flavor and aroma of instant coffee
US4618500A (en) * 1985-08-20 1986-10-21 Fulcrum Enterprises Method for preparing an espresso-type coffee beverage
US4652682A (en) * 1985-05-01 1987-03-24 International Flavors & Fragrances Inc. Ortho-dioxybenzaldehyde dimethyl mercaptals and use thereof in augmenting or enhancing the aroma or taste of foodstuffs
US4673580A (en) * 1983-05-23 1987-06-16 Ajinomoto General Foods, Inc. Process for producing coffee extract
US4746527A (en) * 1984-02-20 1988-05-24 Nestec S.A. Drink composition
US4789553A (en) * 1985-09-23 1988-12-06 American National Can Company Method of thermally processing low-acid foodstuffs in hermetically sealed containers and the containers having the foodstuffs therein
US4794010A (en) * 1988-02-02 1988-12-27 General Foods Corporation Process for the preparation of soluble coffee
US4857351A (en) * 1986-12-19 1989-08-15 The Procter & Gamble Company Process for treating coffee beans to make a better-tasting coffee
US4938978A (en) * 1988-10-31 1990-07-03 Nestec S.A. Treatment of green coffee
US4980182A (en) * 1989-06-21 1990-12-25 Nestec S.A. Beverages containing a beverage base and milk protein
US4985271A (en) * 1986-12-19 1991-01-15 The Procter & Gamble Company Process for treating coffee beans to make a better-tasting coffee
US4988590A (en) * 1983-07-22 1991-01-29 The Procter & Gamble Company Ultrafast roasted coffee
US5079026A (en) * 1988-08-12 1992-01-07 Kraft General Foods, Inc. Oil or colloidal containing gasified coffee product and process
US5089279A (en) * 1988-12-16 1992-02-18 Conopco, Inc. Method of making a granular beverage material by means of sintering and then granulating
US5132135A (en) * 1987-11-02 1992-07-21 Jacobs Suchard Ag Process for preserving raw coffee extract
US5225223A (en) * 1990-12-03 1993-07-06 Jacobs Suchard Ag Process for the preparation of soluble coffee
US5332591A (en) * 1992-09-08 1994-07-26 Ralph Ogden Method and apparatus for making instant coffee
US5380540A (en) * 1992-05-21 1995-01-10 Takasago International Corporation Method for improving flavor of drink or food
US5478592A (en) * 1994-05-31 1995-12-26 Kingsley; I. Steven Process for preparing flavored aged coffee
US5620733A (en) * 1994-04-02 1997-04-15 Nestec S.A. Preparation of milk and coffee composition for beverage preparation
US5637343A (en) * 1991-01-17 1997-06-10 Ryan, Jr.; Gregory B. Process for making coffee concentrate
US5688545A (en) * 1996-03-04 1997-11-18 Kraft Jacobs Suchard Limited Coffee package with enhanced aroma impact
US5933384A (en) * 1996-12-27 1999-08-03 Matsushita Electric Industrial Co., Ltd. Semiconductor integrated circuit
US5958497A (en) * 1995-02-08 1999-09-28 Nestec S.A. Chicory extract powder products and extract production processes and apparatus
US5972409A (en) * 1995-02-08 1999-10-26 Nestec S.A. Soluble instant coffee prepared from extract obtained from green coffee
US5993877A (en) * 1998-02-13 1999-11-30 Unicafe Inc. Method of manufacturing coffee extract allowing long-term preservation
US6054162A (en) * 1997-02-05 2000-04-25 Kraft Foods, Inc. Stabilization of liquid coffee by treatment with alkali
US6056989A (en) * 1994-08-26 2000-05-02 Japan Tobacco, Inc. PH adjustors and drinks using the same
US6093436A (en) * 1998-02-04 2000-07-25 Nestec S.A. Beverage antioxidant system
US6120831A (en) * 1998-09-09 2000-09-19 Kraft Foods, Inc. Soluble coffee having intensified flavor and color and method of making same
US6165536A (en) * 1997-11-03 2000-12-26 Nestec S.A. Extraction product and process
US6203837B1 (en) * 1998-10-06 2001-03-20 Xcafe' Llc Coffee system
US6231907B1 (en) * 1996-03-26 2001-05-15 Pokka Corporation Method for producing high-quality drinks filled in containers
US6399136B1 (en) * 1999-06-28 2002-06-04 Arthur W. Watkins, Jr. Coffee concentrate
US6808731B1 (en) * 1999-08-14 2004-10-26 The Procter & Gamble Co. Coffee extract and process for providing customized varieties and strengths of fresh-brewed coffee on demand

Family Cites Families (40)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2360342A (en) * 1941-02-28 1944-10-17 Granular Foods Inc Solid expanded coffee corn sirup
US2457036A (en) * 1946-04-10 1948-12-21 Albert A Epstein Coffee concentrate and the process of producing it
US2515730A (en) * 1947-10-24 1950-07-18 American Home Foods Inc Coffee extraction process
US3632353A (en) 1969-05-12 1972-01-04 Struthers Scientific Int Corp Removal of tars and waxes in freeze concentration of coffee
JPS5943139B2 (en) 1980-09-08 1984-10-19 東洋製罐株式会社 Manufacturing method for bagged high-concentration black coffee
JPS5943138B2 (en) 1980-09-08 1984-10-19 東洋製罐株式会社 Bagged high concentration black coffee
JPS57163438A (en) * 1981-04-02 1982-10-07 Fuji Oil Co Ltd Preparation of sterilized coffee
CA1182328A (en) 1982-03-22 1985-02-12 Robert J. Soukup Flavoring with 4-methyl-4-mercapto-2-pentanone
JPS6135747A (en) 1984-04-24 1986-02-20 ザ、プロクタ−、エンド、ギヤンブル、カンパニ− Soluble coffee composition
EP0159754A3 (en) * 1984-04-24 1988-10-12 THE PROCTER & GAMBLE COMPANY Soluble coffee composition
DE3448500C2 (en) 1984-07-07 1994-06-01 Helmut Dallinga Heating pref. liquid food prods. while preserving aroma
JPS6121056A (en) 1984-07-11 1986-01-29 Wada Masao Production of shiitake mushroom-containing soybean curd
JPS61199776A (en) 1985-03-01 1986-09-04 Kyodo Nyugyo Kk Method for sterilizing liquid food and apparatus therefor
JPS62126935A (en) 1985-11-28 1987-06-09 Kanebo Foods Ltd Extraction of coffee
IT1189090B (en) 1986-04-18 1988-01-28 Muzetti Achille PROCEDURE FOR THE PREPARATION OF A BEVERAGE BASED ON VEGETABLE FOOD EXTRACTS AND BEVERAGE SO OBTAINED
JPH01104130A (en) 1987-10-19 1989-04-21 Morinaga & Co Ltd Preparation of coffee beverage
JPH01289450A (en) * 1988-05-16 1989-11-21 Japan Foods Kk Coffee packed into aerosol container and production thereof
DE3818035A1 (en) 1988-05-27 1989-11-30 Rey Louis Prof METHOD FOR PRODUCING COFFEE EXTRACT
CA1337024C (en) 1988-06-21 1995-09-19 Yoshie Kurihara Method for stabilizing taste-modifier
DK0438888T3 (en) 1990-01-25 1994-03-28 Gen Foods Inc Process of extracting roasted and ground coffee
JP3126041B2 (en) 1990-08-20 2001-01-22 株式会社上野製薬応用研究所 Flavor preserving agent for palatable beverage raw material and flavor preserving method
JPH0787891A (en) 1993-09-22 1995-04-04 Riken Vitamin Co Ltd Preparation of coffee drink
SE505114C2 (en) 1995-10-30 1997-06-30 Tetra Laval Holdings & Finance Method for continuous production of coffee extracts
AU715184B2 (en) 1996-02-12 2000-01-20 Societe Des Produits Nestle S.A. Aromatization of soluble beverages
EP0865735A1 (en) 1997-03-19 1998-09-23 Societe Des Produits Nestle S.A. Process for sterilising beverages
ITMI972556A1 (en) 1997-11-18 1999-05-18 B Ma S N C Di Cafano Giuseppe PROCEDURE AND MEANS OF IMPROVEMENT OF BEVERAGES IN GENERAL AS A RESULT OF THEIR EDUCATION AT THE TIME OF CONSUMPTION
JP2002530123A (en) 1997-12-22 2002-09-17 ニーロ、アクティーゼルスカブ Method of applying ultra-short-time heat treatment to liquid
US6352736B2 (en) * 1998-07-23 2002-03-05 Nestec S.A. Liquid coffee product
US6213929B1 (en) 1998-09-25 2001-04-10 Analytical Engineering, Inc. Motor driven centrifugal filter
NL1010880C2 (en) 1998-12-23 2000-06-26 Adm Cocoa B V Method for isolating flavorings from a caffeine or theobromine-containing food raw material.
JP2000201622A (en) 1999-01-14 2000-07-25 Inabata Koryo Kk Coffee and coffee beverage having delicious flavor
MY117222A (en) 1999-05-18 2004-05-31 Nestle Sa Stable coffee concentrate system
EP1059243A3 (en) 1999-05-19 2001-03-14 Cryovac, Inc. Easy open package
JP4173606B2 (en) 1999-06-18 2008-10-29 サントリー株式会社 Method for producing low acid beverage
JP2001054374A (en) * 1999-08-17 2001-02-27 Coca Cola Asia Pacific Kenkyu Kaihatsu Center:Kk Production of drink
CA2317799A1 (en) 1999-09-08 2001-03-08 Kraft Foods, Inc. Soluble coffee having intensified flavor and color and method of making same from a coffee extract
JP2001128620A (en) 1999-11-02 2001-05-15 Ogawa & Co Ltd Flavor for sterilization by membrane filtration
KR100733056B1 (en) 1999-12-17 2007-06-27 미츠노리 오노 Water-soluble bean-based extracts
US6669979B1 (en) 2000-01-11 2003-12-30 Jifu Zhao Method for promoting extraction of beneficial compounds into beverages naturally containing same, and for extending the duration of freshness of coffee
WO2000042831A2 (en) 2000-04-17 2000-07-27 Niro A/S Process for the preparation of a water soluble coffee or tea product from a non-rewetted particulate material obtained from an extract by drying

Patent Citations (63)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2149876A (en) * 1934-06-15 1939-03-07 Coffee Products Corp Soluble coffee product and method of preparing same
US2098961A (en) * 1934-07-03 1937-11-16 Coffee Products Corp Manufacture of concentrated coffee extract
US3089772A (en) * 1960-07-25 1963-05-14 Gen Foods Corp Coffee extraction process
US3702253A (en) * 1965-04-30 1972-11-07 Firmenich & Cie Flavor modified soluble coffee
US4303689A (en) * 1965-04-30 1981-12-01 Firmenich Sa Flavoring with pyrazine derivatives
US3554761A (en) * 1968-02-07 1971-01-12 Standard Brands Inc Coffee concentrate and process of producing the same
US3630353A (en) * 1968-03-30 1971-12-28 Dravo Corp Method for separation of fines from hot broken sinter
US3620758A (en) * 1970-01-20 1971-11-16 Gen Foods Corp Process for obtaining an aromatized coffee extract
US3628345A (en) * 1970-08-19 1971-12-21 Alfred T King Ice-liquid separation column
US3717472A (en) * 1971-06-30 1973-02-20 Procter & Gamble Separating aroma-and flavor-bearing substrates into aroma and flavor concentrates
US3997685A (en) * 1971-06-30 1976-12-14 The Procter & Gamble Company Stable aroma, flavor and aroma and flavor products from aroma- and flavor-bearing substrates
US3900582A (en) * 1972-04-13 1975-08-19 Firmenich & Cie Flavoring agent
US3947603A (en) * 1972-04-13 1976-03-30 Firmenich & Cie Flavoring agent
US4000328A (en) * 1972-04-13 1976-12-28 Firmenich & Cie Flavoring agent
US4005227A (en) * 1972-04-13 1977-01-25 Firmenich & Cie Flavoring agent
US3830940A (en) * 1972-06-07 1974-08-20 M Sivetz Preparation of aqueous beverage concentrate of coffee
US3928636A (en) * 1973-04-30 1975-12-23 Gen Foods Corp Coffee extraction process
US4088794A (en) * 1973-10-10 1978-05-09 General Foods Corporation Process for producing coffee extract
US4158067A (en) * 1976-09-18 1979-06-12 D.E.J. International Research Company B.V. Coffee extraction
US4334640A (en) * 1977-08-08 1982-06-15 Douwe Egberts Koninklijke Tabaksfabriek-Koffiebranderijen-Theehandel B.V. Exchangeable concentrate container for beverage dispensing machines
US4606921A (en) * 1980-06-03 1986-08-19 Nestec S. A. Process for improving the flavor and aroma of instant coffee
US4378380A (en) * 1980-10-10 1983-03-29 General Foods Corporation Method for producing products enhanced with synthetic coffee grinder gas flavor
US4349573A (en) * 1980-11-28 1982-09-14 General Foods Corporation Low density coffee process
US4673580A (en) * 1983-05-23 1987-06-16 Ajinomoto General Foods, Inc. Process for producing coffee extract
US4988590A (en) * 1983-07-22 1991-01-29 The Procter & Gamble Company Ultrafast roasted coffee
US4481224A (en) * 1983-08-08 1984-11-06 International Flavors & Fragrances Inc. Flavoring with alkylthioalkanal dialkyl mercaptals
US4748040A (en) * 1984-02-20 1988-05-31 Nestec S.A. Process for the manufacture of a frothy drink composition
US4746527A (en) * 1984-02-20 1988-05-24 Nestec S.A. Drink composition
US4571339A (en) * 1985-02-07 1986-02-18 General Foods Corporation Process for efficiently concentrating an aroma stream
US4652682A (en) * 1985-05-01 1987-03-24 International Flavors & Fragrances Inc. Ortho-dioxybenzaldehyde dimethyl mercaptals and use thereof in augmenting or enhancing the aroma or taste of foodstuffs
US4571343A (en) * 1985-05-01 1986-02-18 International Flavors & Fragrances Inc. Flavoring with ortho-dioxybenzaldehyde dimethyl mercaptals
US4618500A (en) * 1985-08-20 1986-10-21 Fulcrum Enterprises Method for preparing an espresso-type coffee beverage
US4789553A (en) * 1985-09-23 1988-12-06 American National Can Company Method of thermally processing low-acid foodstuffs in hermetically sealed containers and the containers having the foodstuffs therein
US4857351A (en) * 1986-12-19 1989-08-15 The Procter & Gamble Company Process for treating coffee beans to make a better-tasting coffee
US4985271A (en) * 1986-12-19 1991-01-15 The Procter & Gamble Company Process for treating coffee beans to make a better-tasting coffee
US5132135A (en) * 1987-11-02 1992-07-21 Jacobs Suchard Ag Process for preserving raw coffee extract
US4794010A (en) * 1988-02-02 1988-12-27 General Foods Corporation Process for the preparation of soluble coffee
US5079026A (en) * 1988-08-12 1992-01-07 Kraft General Foods, Inc. Oil or colloidal containing gasified coffee product and process
US4938978A (en) * 1988-10-31 1990-07-03 Nestec S.A. Treatment of green coffee
US5089279A (en) * 1988-12-16 1992-02-18 Conopco, Inc. Method of making a granular beverage material by means of sintering and then granulating
US4980182A (en) * 1989-06-21 1990-12-25 Nestec S.A. Beverages containing a beverage base and milk protein
US5225223A (en) * 1990-12-03 1993-07-06 Jacobs Suchard Ag Process for the preparation of soluble coffee
US5637343A (en) * 1991-01-17 1997-06-10 Ryan, Jr.; Gregory B. Process for making coffee concentrate
US5380540A (en) * 1992-05-21 1995-01-10 Takasago International Corporation Method for improving flavor of drink or food
US5332591A (en) * 1992-09-08 1994-07-26 Ralph Ogden Method and apparatus for making instant coffee
US5620733A (en) * 1994-04-02 1997-04-15 Nestec S.A. Preparation of milk and coffee composition for beverage preparation
US5824357A (en) * 1994-04-02 1998-10-20 Nestec S.A. Preparation of milk and coffee composition for beverage preparation
US5478592A (en) * 1994-05-31 1995-12-26 Kingsley; I. Steven Process for preparing flavored aged coffee
US6056989A (en) * 1994-08-26 2000-05-02 Japan Tobacco, Inc. PH adjustors and drinks using the same
US5958497A (en) * 1995-02-08 1999-09-28 Nestec S.A. Chicory extract powder products and extract production processes and apparatus
US5972409A (en) * 1995-02-08 1999-10-26 Nestec S.A. Soluble instant coffee prepared from extract obtained from green coffee
US5688545A (en) * 1996-03-04 1997-11-18 Kraft Jacobs Suchard Limited Coffee package with enhanced aroma impact
US6231907B1 (en) * 1996-03-26 2001-05-15 Pokka Corporation Method for producing high-quality drinks filled in containers
US5933384A (en) * 1996-12-27 1999-08-03 Matsushita Electric Industrial Co., Ltd. Semiconductor integrated circuit
US6054162A (en) * 1997-02-05 2000-04-25 Kraft Foods, Inc. Stabilization of liquid coffee by treatment with alkali
US6165536A (en) * 1997-11-03 2000-12-26 Nestec S.A. Extraction product and process
US6093436A (en) * 1998-02-04 2000-07-25 Nestec S.A. Beverage antioxidant system
US5993877A (en) * 1998-02-13 1999-11-30 Unicafe Inc. Method of manufacturing coffee extract allowing long-term preservation
US6120831A (en) * 1998-09-09 2000-09-19 Kraft Foods, Inc. Soluble coffee having intensified flavor and color and method of making same
US20010000145A1 (en) * 1998-10-06 2001-04-05 Kalenian Paul A. Coffee system
US6203837B1 (en) * 1998-10-06 2001-03-20 Xcafe' Llc Coffee system
US6399136B1 (en) * 1999-06-28 2002-06-04 Arthur W. Watkins, Jr. Coffee concentrate
US6808731B1 (en) * 1999-08-14 2004-10-26 The Procter & Gamble Co. Coffee extract and process for providing customized varieties and strengths of fresh-brewed coffee on demand

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140322397A1 (en) * 2013-04-27 2014-10-30 David F. Mamo Aseptic hot-brewed packaged coffee or espresso beverage
US12053000B1 (en) 2020-10-31 2024-08-06 Jot Labs, LLC Beverage extract from collected fractions

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