This application claims priority under 37 CFR 1.78 (a)(5) from my copending provisional application Ser. No. 09/580,379, which was filed May 26, 2000, under 37 CFR 1.53 (b) and which has been converted to a provisional application under 37 CFR 1.53 (c) (2).
This invention relates to the packaging of bananas.
Respiring biological materials consume oxygen (O2) and produce carbon dioxide (CO2) at rates which depend upon temperature and the stage of their development. Ideally, a respiring material should be stored in a container whose permeability to O2 and CO2 is correlated with (i) the atmosphere outside the package, (ii) the rates at which the material consumes O2 and produces CO2, and (iii) the temperature, to produce the desired atmosphere within the container. This is the principle behind the technology of controlled atmosphere packaging (CAP) and modified atmosphere packaging (MAP), as discussed, for example, in U.S. Pat. No. 3,450,542, (Badran), Pat. No. 3,450,544 (Badran et al.), Pat. No. 3,798,333 (Cummin et al. Pat. No. 4,734,324 (Hill), Pat. No. 4,830,863 (Jones), Pat. No. 4,842,875 (Anderson), Pat. No. 4,879,078, (Antoon) Pat. No. 4,910,032, (Antoon) Pat. No. 4,923,703, (Antoon), 5,045,331, (Antoon), Pat. No. 5,160,768 (Antoon), Pat. No. 5,254,354 (Stewart) and Pat. No. 6,013,293 (De Moor), copending commonly assigned U.S. patent application Ser. Nos. 08/759,602 (Clarke et al.) and 09/121,082 (Clarke et al.), International Publication Numbers WO 94/12040 (Fresh Western), WO 96/38495 (Landec) and WO 00/04787 (Landec), and European Patent Applications Nos. 0,351,115 and 0,351,116 (Courtaulds). The disclosure of each of these patents, applications and publications is incorporated herein by reference.
A serious disadvantage of the conventional procedure is the need to harvest the bananas a good while before they are fully grown. It would be desirable to harvest the bananas at a later time, when they are larger. However, the later the bananas are picked, the greater the propensity for their climacteric to be triggered by small concentrations of ethylene, and experience has shown that if the bananas are harvested later than the presently established timetables, this results in prematurely ripe bananas when the bananas are shipped in vented bags, and in so-called “green-ripe” bananas when the bananas are shipped in sealed bags. Green-ripe bananas soften, but remain green, and have an unpleasant flavor.
Another serious disadvantage of the conventional procedure is that, in order to ripen the green bananas by exposing them to ethylene, it is necessary to open each of the shipping bags if, as in most cases, the bags have been sealed during shipping.
Another serious disadvantage of the conventional procedure is that the bananas, once ripened, must be sold within a few days, or scrapped.
Another serious disadvantage of the conventional procedure is that the heat generated by the ripening of the bananas is generated over a relatively short period of time, which heats the bananas to an extent that causes dehydration of the bananas and/or increases the demand on the refrigeration equipment used to keep the bananas cool.
The present invention mitigates or overcomes one or more of these disadvantages by packaging bananas in a bag (or other container) having designed permeabilities to oxygen (O2) and carbon dioxide (CO2), and in many aspects of the invention, also to ethylene. Some embodiments of the invention make it possible to maintain bananas, before and/or after their climacteric in a packaging atmosphere which enables storage and/or ripening of green bananas in a controlled fashion. Other embodiment of the invention make it possible to store bananas, after their climacteric, within a desired range of color stages (e.g. within the range most attractive for retail sale) for a longer period than is possible under conventional practice.
The containers used in the present invention preferably, but not necessarily, include at least one atmosphere control member which provides a pathway for O2 and CO2, and which comprises a gas-permeable membrane comprising
(1) a microporous film, and
(2) a polymeric coating on the microporous film.
The atmosphere control member is preferably a control member as described in one or more of copending, commonly assigned U.S. patent application Ser. Nos. 08/759,602 and 09/121,082 and U.S. Pat. No. 6,013,293 incorporated by reference herein. Different aspects of the invention make it possible to ripen bananas in a sealed container, for example in a conventional ripening room or while the bananas are being transported; and/or to harvest bananas at a later time than is now possible; and/or to preserve bananas in a satisfactory ripened state for longer than is now possible.
In a first aspect, this invention provides a container which is suitable for packaging bananas and which has at least one, and preferably both, of the following characteristics
In a second aspect, this invention provides a package which comprises
In a third aspect, this invention provides a method of ripening green bananas which comprises
In a fourth aspect, this invention provides a method of ripening green bananas which comprises
In a fifth aspect, this invention provides a method of storing green bananas which comprises
In a sixth aspect, this invention provides a package which is stored in air and which comprises
(1) a microporous film, and
(2) a polymeric coating on the microporous film; and
the packaging atmosphere containing at least 0.8%, preferably 1.5 to 6%, especially 1.5 to 3%, of O2, and less than 15%, preferably less than 7%, of CO2, with the total quantity of O2 and CO2 being less than 16%, preferably less than 10%.
In a seventh aspect, this invention provides a package which comprises
In an eighth aspect, this invention provides a method of ripening green bananas which comprises
In a ninth aspect, this invention provides a method of ripening green bananas which comprises
In a tenth aspect, this invention provides a method of storing green bananas which comprises
In an eleventh aspect, this invention relates to the use, in packaging bananas, of a container including at least one permeable control member which provides a pathway for O2 and CO2, and which comprises a gas-permeable membrane comprising
In the Summary of the Invention above and in the Detailed Description of the Invention, the Examples, and the Claims below, reference is made to particular features of the invention. It is to be understood that the disclosure of the invention in this specification includes all appropriate combinations of such particular features. For example, where a particular feature is disclosed in the context of a particular aspect or embodiment of the invention, or a particular claim, that feature can also be used, to the extent appropriate, in the context of other particular aspects and embodiments of the invention, and in the invention generally.
In describing and claiming the invention below, the following abbreviations, definitions, and methods of measurement are used. OTR is O2 permeability. COTR is CO2 permeability. EtTR is ethylene transmission rate. OTR, COTR and EtTR values are given in ml/m2.atm.24 hrs; in some cases, the equivalent in cc/100 inch2.atm.24 hrs is given in parentheses. OTR and COTR values referred to herein can be measured using a permeability cell (supplied by Millipore) in which a mixture of O2, CO2 and helium is applied to the sample, using a pressure of 0.7 kg/cm2 (10 psi) except where otherwise noted, and the gases passing through the sample were analyzed for O2 and CO2 by a gas chromatograph. The cell could be placed in a water bath to control the temperature. The abbreviation P10 is used to denote the ratio of the oxygen permeability at a first temperature T1° C. to the oxygen permeability at a second temperature T2, where T2 is (T1-10)° C., T1 being 10° C. and T2 being 0° C. unless otherwise noted. The abbreviation R or R ratio is used to denote the ratio of CO2 permeability to O2 permeability, both permeabilities being measured at 20° C. unless otherwise noted. Pore sizes given in this specification are measured by mercury porosimetry or an equivalent procedure. Parts and percentages are by weight, except for percentages of gases, which are by volume; temperatures are in degrees Centigrade, and molecular weights are weight average molecular weights expressed in Daltons. For crystalline polymers, the abbreviation To is used to denote the onset of melting, the abbreviation Tp is used to denote the crystalline melting point, and the abbreviation ΔH is used to denote the heat of fusion. To, Tp and ΔH are measured by means of a differential scanning calorimeter (DSC) at a rate of 10° C./minute and on the second heating cycle. To and Tp are measured in the conventional way well known to those skilled in the art. Thus Tp is the temperature at the peak of the DSC curve, and To is the temperature at the intersection of the baseline of the DSC peak and the onset line, the onset line being defined as the tangent to the steepest part of the DSC curve below Tp.
Where reference is made herein to sealing bags containing bananas, it is to be understood that the sealing can be, but generally is not, hermetic sealing. Conventional methods for sealing bags of bananas can conveniently be used in this invention. Such conventional methods include, for example, the use of a cable tie to seal the neck of the bag. A seal made by conventional methods is not a hermetic seal, and has the advantage that it permits equilibration of the pressures inside and outside the bag. If the bag is sealed hermetically, it will generally be desirable to include one or more pinholes in the bag, to achieve such equilibration.
Control Members
As noted above, this invention preferably makes use of an atmosphere control member comprising (a) a microporous polymeric film, and (b) a polymeric coating on the microporous film. The microporous polymeric film preferably comprises a network of interconnected pores having an average pore size of less than 0.24 micron, with at least 70% of the pores having a pore size of less than 0.24 micron. Preferably the pores in the microporous film constitute 35 to 80% by volume of the microporous film. Preferred microporous films comprise a polymeric matrix comprising (i) an essentially linear ultrahigh molecular weight polyethylene having an intrinsic viscosity of at least 18 deciliters/g, or (ii) an essentially linear ultrahigh molecular weight polypropylene having an intrinsic viscosity of at least 6 deciliters/g, or (iii) a mixture of (i) and (ii). The microporous film may contain 30 to 90% by weight, based on the weight of the film, of a finely divided particulate substantially insoluble filler which is distributed throughout the film. A preferred process for preparing suitable microporous films comprises
The polymeric coating on the control member preferably comprises a crystalline polymer having a peak melting temperature Tp of −5 to 40° C., e.g. 0 to 15° C., or 10 to 20° C., an onset of melting temperature T. such that ( Tp-To) is less than 10° C., and a heat of fusion of at least 5 J/g. The polymer preferably comprises a side chain crystalline polymer moiety comprising, and optionally consisting of, units derived from (i) at least one n-alkyl acrylate or methacrylate (or equivalent monomer, for example an amide) in which the n-alkyl group contains at least 12, preferably at least 14, for example 16-50, preferably 16-22, carbon atoms, for example in amount 35-100%, preferably 50-100%, often 80-100%, and (ii) one or more comonomers selected from acrylic acid, methacrylic acid, and esters of acrylic or methacrylic acid in which the esterifying group contains less than 10 carbon atoms. The polymer can be a block copolymer in which one of blocks is a crystalline polymer as defined and the other block(s) is crystalline or amorphous. Preferred block copolymers comprise polysiloxane polymeric blocks, and (ii) crystalline polymeric blocks having a Tp of −5 to 40° C. Such a polymer can be prepared by copolymerizing a mixture of reactants which comprises (i) at least one n-alkyl acrylate or methacrylate in which the n-alkyl group contains at least 12 carbon atoms and (ii) a polysiloxane having a copolymerizable group at one end thereof.
Other polymers which can be used to the coat the microporous film include cis-polybutadiene, poly (4-methylpentene), polydimethyl siloxane, and ethylene-propylene rubber.
The gas-permeable membrane preferably has one or more of the following properties
In one embodiment, the control member comprises
the gas permeable membrane having, in the absence of the apertured cover member,
The permeability of the container, whether or not it includes an atmosphere control member, can be influenced by perforating the container in order to make a plurality of pinholes therein.
Ripening Bananas in an Ethylene Atmosphere
In the third and eight aspects of the invention, green bananas are ripened while in a sealed container. This method can be carried out in a conventional ripening room containing ethylene, typically but not necessarily at a concentration of 500 to 1000 ppm. It was surprising to discover that, when using suitable containers, it was unnecessary to follow the conventional practice of opening the bags, and that the bananas would ripen satisfactorily in this way. An important advantage of this method of ripening bananas is that the ripening takes place in a more controlled fashion, resulting in lower peak temperatures in the bananas, which in turn results in reduced dehydration of the bananas and reduced demand upon the refrigeration equipment when the ripening is carried out at temperatures below room temperature.
The temperature at which ripening is carried out and the concentration of ethylene in the atmosphere influence the rate at which ripening takes place. In general, slower ripening results in bananas which remain in a desired range of color stage for a longer period. On the other hand, this must be balanced against delivery dates required by retail outlets and inventory constraints. Generally the ethylene-containing atmosphere will be maintained at the temperature less than 22° C., preferably less than 20° C., for example 16-21° C.
The atmosphere within the bags will change substantially during the ripening process, as the bananas consume O2 and generates CO2. Preferably, the packaging atmosphere, for at least part of the period before the bananas reach their climacteric, contains at least 10% preferably at least 12%, particularly 14 to 19%, of O2, and less than 10%, preferably less than 4%, of CO2, with the total quantity of O2 and CO2 being less than 20%, preferably less than 17%. For at least part of the period after the bananas have passed their climacteric, the packaging atmosphere preferably contains at least 0.8%, preferably 1.5 to 6%, especially 1.5 to 3%, of O2, and less than 15%, preferably less than 7%, of CO2, with the total quantity of O2 and CO2 being less than 16%, preferably less than 10%.
Ripening Bananas Using a Source of Ethylene within the Container
In the third and ninth aspects of the invention, green bananas are ripened by means of a source of ethylene placed with the bananas in the sealed container. This aspect of the invention is particularly useful for ripening bananas while they are being transported, for example on a ship. The ripening process can be controlled so that the bananas are at a desired color stage when the bananas reach their destination. During the ripening process, there is no need to alter the normal atmosphere in which the bags of bananas are being transported (though the invention does not exclude the possibility that a controlled atmosphere is used). The source of ethylene can make ethylene available immediately after packaging the bananas, or after a desired delay.
In these aspects of the invention, relatively slow ripening of the bananas is generally desired, and in consequence the temperature around the bags of bananas is generally controlled, during at least part of the ripening process, at a temperature less than 18° C., preferably less than 16° C., for example at 14-15° C.
Any convenient source of ethylene can be used. I have obtained good results using 2-chloroethyl phosphonic acid, which is often referred to herein as 2CPA. 2CPA can be used in the form of an aqueous solution, for example of concentration 3-4%. The rate at which 2CPA generates ethylene increases with increasing pH of the aqueous solution, which can be adjusted, for example to more than 4, particularly more than 7, by the addition of suitable materials, for example buffer solutions and/or sodium bicarbonate solutions. In one embodiment, a 2CPA solution and any pH adjuster are adsorbed on the same or different absorbent pads, e.g. paper pads, and the pad(s) placed in the bottom of the bag and covered with a polymeric sheet before the bananas are placed in the bag. In another embodiment, a solution of 2CPA is applied to the green bananas, for example by dipping or spraying, before the bananas are placed in the bag.
As in the aspects of the invention which involve ripening in an ethylene-containing atmosphere, the atmosphere within the sealed bags containing the source of ethylene will change during the ripening process. The atmospheres in the bag, for at least part of the periods before and after the climacteric, are preferably as stated above when the bananas are ripened in an ethylene-containing atmosphere.
Quantities of Bananas
The invention can in principle be used for any quantity of bananas. However, when the invention is used for ripening bananas, or for storing green bananas, it is particularly valuable when relatively large quantities are involved. Thus it is generally preferred that the sealed container contains at least 4 kg, preferably least 15 kg, especially 16 to 22 kg of bananas. However, in the sixth aspect of the invention, much smaller quantities (1 to 2.5 kg (2 to 5 lb.) are used in order to increase the shelf life of the bananas at a desired color stage.
The invention is illustrated in the following Examples, a number of which are comparative Examples, designated by the letter C before the number of the example. The bananas, bags and control members used in the Examples were as follows.
Bananas
The bananas were Cavendish bananas, from Ecuador in Examples 1 A-B, C11 -12, 2, C2, 4A-B and C41-42, from Costa Rica in Examples 5 A-C and C5, and from Colombia in the other Examples.
Bags
The large bags were about 0.96 m (38 in.) wide and about 1.2 m (50 in.) long, and were made from polyethylene film about 0.056 mm (2.2 mil) thick (available from Roplast Industries under the tradename RA 3030). The polyethylene film had an OTR at 13° C. of about 2915 (188) and at 22° C. of about 4,650 (300), and EtTR at 13° C. of about 11,400 (735) and at 22° C. of about 18,100 (1,170), an R ratio of about 4.5, and a P10 ratio (between 0 and 10° C.) of about 1.76. The small bags were about 0.3 m (12 in.) wide and about 0.46 m (18 in.) long, and were made from the same polyethylene film.
Control Members
The Type S control members were as described in copending commonly assigned U.S. application Ser. No.09/121,082 and corresponding International Publication No. WO 00/04787 and comprised a microporous polyethylene film coated with a polysiloxane/SCC block copolymer. The Type S members had an OTR at 13° C. of about 3,803,850 (245,410) and at 22° C. of about 5,000,000 (324,000), an EtTR at 13 ° C. of about 16,280,000 (1,050,300) and at 22° C. of about 19,500,000 (1,260,000), an R ratio of about 3.8, and a P10 ratio (between 0 and 10° C.) of about 1.8. The microporous polyethylene film contained 50-60% silica, had a thickness of about 0.18 mm (0.007 inch), a tear strength of about 90 g, a porosity of about 65%, an average pore size of about 0.1 micron and a largest pore size of 4-10 microns (available from PPG industries under the tradename Teslin SP 7). The block copolymer was prepared by the reaction of a polydimethyl siloxane terminated one end only by a methacryloxypropyl group (available from Gelest under the tradename MCR M 17), 40 parts, dodecyl acrylate, 26.8 parts and tetradecyl acrylate, 33.2 parts, as described in Example A7 of U.S. application Ser. No. 09/121,082 and corresponding International Publication No. WO 00104787.
The Type A control members were as described in copending commonly assigned U.S. application Ser. No. 08/759,602 and corresponding International Publication No. WO 96/38495, and comprised the same microporous polyethylene film coated with an SCC polymer of dodecyl acrylate, 42 parts, tetradecyl acrylate, 53 parts, and acrylic acid, 5 parts. The Type A members had an OTR at 22° C. of about 1,705,000 (110,000), an R ratio of about 4, and a P10 ratio (between 0 and 10° C.) of about 1.4.
In each Example, the control member was secured to a portion of the bag in which one or more round holes had been cut. The effective area of the control member is about equal to the area of the hole or holes in the portion of the bag to which the control member is attached. However, in Examples 1A-B, C11-12, 2, C2, 3A-D and C31-33, the periphery of the control member was heat sealed to the interior of the bag, thus creating a control member of the kind described in U.S. Pat. No. 6,013,293. In the other Examples, the control member was secured to the exterior of the bag by means of a layer of a pressure sensitive adhesive on the peripheral margin of the control member.
The color stages referred to in the Examples are those accepted by the industry and as shown below.
Bananas are preferably at color stage 3.5 to 5 when put on retail sale.
Many of the Examples are summarized in Tables 1-8 below. In the Tables, when more than one result is given for a particular Example, this reflects the fact that more than one test was carried out under the same conditions.
Each of these Examples uses a large bag. In Examples C11,1 A-B and 2, each bag has one S-type control member placed under two or more holes in the bag. In Example C11, the control member had an area of 1935 mm2 (3 in2) and was placed under two holes, each of diameter 20.6 mm (0.81 in.). In Example 1A, the control member had an area of 6450 mm2 (10 in2) and was placed under 6 holes, each of diameter 20.6 mm (0.81 in.). In Examples 1 B and 2, the control member had an area of 12,900 mm2 (20 in2) and was placed under 6 holes, each of diameter 28.7 mm (1.13 in). Each bag was packed with about 20 kg (44 lb) of green bananas. The bananas had been harvested at week 11 and maintained at 13-14° C. for about 11 days after harvest before being packed. Except in Examples C12 and C2, excess air was extracted from the bags using a vacuum pump, and the bags were then sealed using tie wraps. In Examples C12 and C2, the bags were left open. The bags were maintained at 13° C. for an extended time, Examples 1A, 1B, C11 and C12 being terminated at day 62, and Examples 2 and C2 being terminated at day 40. The results are given in Table 1 below. In Example 2, traces of ethylene (generated by the ripening of the bananas) remained in the test chamber from Example 1 and caused the bananas to ripen more rapidly than in the otherwise substantially identical Example 1B. This demonstrates the desirability of excluding ethylene when long storage periods are needed (and conversely, the ability to accelerate ripening when desired).
Each of these Examples uses a large bag. In Examples C31-33 and 3, each bag has one S-type control member placed under one or more holes in the bag. In Example C31, the control member had an area of 967 mm2 (1.5 in2) and was placed under a single hole of diameter 20.6 mm (0.81 in.). In Example C32, the control member had an area of 1935 mm2 (3 in2) and was placed under 2 holes, each of diameter 20.6 mm (0.81 in.). In Example C33, the control member had an area of 3225 mm2 (5 in2) and was placed under 4 holes, each of diameter 19 mm (0.75 in.). In Example 3, the control member had an area of 12,900 mm2 (20 in2) and was placed under 6 holes, each of diameter 25 mm (1 in.). In Example C34, the bag did not have a control member. Each bag was packed with about 18.1 kg (40 lb) of green bananas. The bananas had been harvested at week 13, and maintained at 13-14° C. for about 11 days after harvest before being packed. Except in Example C34, excess air was extracted from the bags using a vacuum pump, and then securely tied (the bags were not, however, as completely sealed as in Examples 1 and 2). In Example C34, the bags were left open. The sealed bags were cooled to about 13° C. and shipped to Gulfport, Miss., and then to San Francisco, Calif., maintaining the temperature at about 13° C. In San Francisco, 36 days after packing, half the bags in each Example were opened, and the other half left intact. All the bags were then exposed to ethylene (500-1000 ppm) in a commercial ripening room for about 24 hours. The bananas in the opened bags ripened rapidly in the expected way; thus by day 43, their color was 6, by day 46 their color was greater than 7, and by day 49, they were overripe. The bags which were still sealed were opened on day 49. The results for the bags opened on day 49 are shown in Table 2 below. These Examples demonstrate that bananas harvested at 13 weeks can be transported in a suitably designed bag, and can be ripened into an excellent product by exposure to ethylene, either through the bag or after opening the bag.
Each of these Examples uses a small bag. In Examples 4A-B, each bag has one A-type control member placed over four or five holes in the bag. In Example 4A, the control member had an area of 145 mm2 (5.7 in2) and was placed over four holes each of diameter 19 mm (0.75 in.). In Example 4B, the control member had an area of 4516 mm2 (7 in2) and was placed over 5 holes, each of diameter 19 mm (0.75 in.). In Example C41, the control member and the holes under it were as in Example 4A, except that the control member was an uncoated microporous film. In Example C42, the bag was intact except for 200 pinholes each about 0.5 mm (26 gauge) in diameter. Each bag was packed with about 1.35 kg (3 lb) of green bananas which had been maintained at 13-14° C. for about 11 days after harvest. Except in Example C42, excess air was extracted from the bags using a vacuum pump, and the bags were then securely tied. In Example C42, the bags were left open. After three days, to allow the packaging atmosphere to equilibrate, the bags were exposed to ethylene (500-1000 ppm) in a ripening room. The results are shown in Table 3 below. These Examples demonstrate that small quantities of bananas can be ripened in a suitably designed bag, and can remain in the bag in excellent condition for several days longer than bananas exposed to the air.
uncoated micropouour film
These Examples show that the bananas generate heat more evenly when ripened in a container including an atmosphere control member. In each Example, a large bag was packed with about 18.1 kg (40 lb.) of green bananas. The green bananas had been harvested 13 days previously and had been stored at 13-14° C. since harvest. A temperature sensor (available from Sensitech, Beverly, Mass., under the tradename Temptale P) was inserted into one banana in each bag. In each of Examples 5A, 5B and 5C, the bag had two S-type control members, each having an area of 11,300 mm2 (17.5 in2). Each control member was placed over a single hole in the bag, the hole having an diameter of 70 mm (2.75 in.) in Example 5A, 74.4 mm (2.93 in.) in Example 5B, and 78.7 mm (3.1 in.) in Example 5C. In Example C5, the bag was perforated so that the bananas were surrounded by air. The bags were then sealed with rubber bands. The sealed bags were placed in a refrigerated room at about 13° C. After about 84 hours, the temperature of the room was raised to about 16.7° C. and after about 12 hours, an ethylene generator was used to provide an initial ethylene concentration in the room of 500-1000 ppm. About 24 hours after the generation of ethylene had begun, the room was vented. The temperature of the bananas was monitored for about 15 days, and reached a peak at about 60 hours after the generation of ethylene had begun. At that time, the concentration of O2 and CO2 was measured. The results are shown in Table 4 below. It will be seen that the peak temperature was substantially lower in the bags containing control members than in the perforated bag.
Each of these Examples uses a large bag having two S-type control members, each control member having an area of 11,300 mm2 (17.5 in2). Each control member was placed over seven holes in the bag, each hole of diameter 25.4 mm (1 in). A paper pad about 300×400 mm (12×16 in.) impregnated with an aqueous solution of 2CPA (3.9%) was placed in the bottom of each bag and covered with a sheet of polyethylene. The amount of the solution varied from Example to Example, and is shown in Table 5 below. About 18.1 kg (40 lb.) of green bananas were then placed in each bag, and the bags were sealed with rubber bands. The green bananas had been maintained at 13-14° C. for about 11 days after harvest. The sealed bags were left in a cold room at 13-14° C. The color stage of the bananas was monitored, and Table 5 below shows the time in days taken to reach color stages 4 and 5.5.
The procedure of Example 6 was followed except for the changes noted below.
Examples 8A-J and C 81-83 followed the same procedure as Examples 7A-C and C71-74 except for the changes noted below.
The procedure of Example 6 was followed, except for the changes noted below.
Table 9 below shows, for each of the bags in Examples 5A-C, 6A-E and 7A-E, the permeability of the bag to O2 and to ethylene (“Et” in Table 9), and the respective contributions of the control member and the remainder of the bag. For this calculation, the size of the bag, after sealing, was assumed to be 0.96×1.04 m (38 in.×41 in.), i.e. to have a total area of 2 m2 (3115 in2).
Number | Name | Date | Kind |
---|---|---|---|
2278571 | Skinner | Apr 1942 | A |
2611709 | Plagge et al. | Sep 1952 | A |
3102777 | Bedrosian et al. | Sep 1963 | A |
3360380 | Bedrosian | Dec 1967 | A |
3423212 | Purcell et al. | Jan 1969 | A |
3450543 | Badran et al. | Jun 1969 | A |
3450544 | Badran et al. | Jun 1969 | A |
3459116 | McDonnell | Aug 1969 | A |
3507667 | Magnen | Apr 1970 | A |
3574642 | Weinke | Apr 1971 | A |
3620765 | McDonnell et al. | Nov 1971 | A |
3625876 | Fitko | Dec 1971 | A |
3630759 | Rumberger | Dec 1971 | A |
3681092 | Titchenal et al. | Aug 1972 | A |
3683788 | McDonnell et al. | Aug 1972 | A |
3706410 | Baker | Dec 1972 | A |
3795749 | Cummin et al. | Mar 1974 | A |
3798333 | Cummin | Mar 1974 | A |
3804961 | Cummin et al. | Apr 1974 | A |
3844865 | Elton et al. | Oct 1974 | A |
3903234 | Ikeda et al. | Sep 1975 | A |
3932692 | Hirata et al. | Jan 1976 | A |
3951610 | Freebairn et al. | Apr 1976 | A |
3975455 | Falender et al. | Aug 1976 | A |
4049837 | Freebairn | Sep 1977 | A |
4055672 | Hirsch et al. | Oct 1977 | A |
4153659 | Recktenwald | May 1979 | A |
4176148 | Magder et al. | Nov 1979 | A |
4209538 | Woodruff | Jun 1980 | A |
4219965 | Freebairn et al. | Sep 1980 | A |
4224347 | Woodruff | Sep 1980 | A |
4256770 | Rainey | Mar 1981 | A |
4322465 | Webster | Mar 1982 | A |
4347844 | Ohki et al. | Sep 1982 | A |
4350655 | Hoge | Sep 1982 | A |
4386129 | Jacoby | May 1983 | A |
4394930 | Korpman | Jul 1983 | A |
4400291 | Freebairn et al. | Aug 1983 | A |
4423080 | Bedrosian et al. | Dec 1983 | A |
4461420 | Horvath | Jul 1984 | A |
4472328 | Sugimoto et al. | Sep 1984 | A |
4485133 | Ohtsuka et al. | Nov 1984 | A |
4487791 | Komatsu et al. | Dec 1984 | A |
4513015 | Clough | Apr 1985 | A |
4515266 | Myers | May 1985 | A |
4528235 | Sacks et al. | Jul 1985 | A |
4536409 | Farrell et al. | Aug 1985 | A |
4576014 | Miller et al. | Mar 1986 | A |
4613544 | Burleigh | Sep 1986 | A |
4657610 | Komatsu et al. | Apr 1987 | A |
4698372 | Moss | Oct 1987 | A |
4704238 | Okuyama et al. | Nov 1987 | A |
4705812 | Ito et al. | Nov 1987 | A |
4705813 | Ito et al. | Nov 1987 | A |
4759444 | Barmore | Jul 1988 | A |
4759935 | Toshitsugu | Jul 1988 | A |
4769262 | Ferrar et al. | Sep 1988 | A |
4821489 | MacLeod et al. | Apr 1989 | A |
4833172 | Schwarz et al. | May 1989 | A |
4840823 | Chigami et al. | Jun 1989 | A |
4847145 | Matsui | Jul 1989 | A |
4856650 | Inoue | Aug 1989 | A |
4861644 | Young et al. | Aug 1989 | A |
4863788 | Bellairs et al. | Sep 1989 | A |
4876146 | Isaka et al. | Oct 1989 | A |
4877679 | Leatherman et al. | Oct 1989 | A |
4879078 | Antoon | Nov 1989 | A |
4883674 | Fan | Nov 1989 | A |
4885086 | Miura | Dec 1989 | A |
4886372 | Greengrass et al. | Dec 1989 | A |
4892779 | Leatherman et al. | Jan 1990 | A |
4923650 | Antoon et al. | May 1990 | A |
4923703 | Antoon | May 1990 | A |
4937115 | Leatherman | Jun 1990 | A |
4939030 | Tsuji et al. | Jul 1990 | A |
4943440 | Armstrong | Jul 1990 | A |
4956209 | Isaka et al. | Sep 1990 | A |
4960639 | Oda et al. | Oct 1990 | A |
4962777 | Bell | Oct 1990 | A |
4973625 | Deyrup | Nov 1990 | A |
4996071 | Bell | Feb 1991 | A |
5006342 | Cleary et al. | Apr 1991 | A |
5008296 | Antoon et al. | Apr 1991 | A |
5011698 | Antoon et al. | Apr 1991 | A |
5026591 | Henn et al. | Jun 1991 | A |
5032450 | Rechlicz et al. | Jul 1991 | A |
5035933 | Ilenda et al. | Jul 1991 | A |
5039565 | Deyrup | Aug 1991 | A |
5066683 | Dillon et al. | Nov 1991 | A |
5110677 | Barmore et al. | May 1992 | A |
5126197 | Schinkel et al. | Jun 1992 | A |
5153039 | Porter et al. | Oct 1992 | A |
5164258 | Shida et al. | Nov 1992 | A |
5165947 | Colucci et al. | Nov 1992 | A |
5176953 | Jacoby et al. | Jan 1993 | A |
5196262 | Schwarz et al. | Mar 1993 | A |
5221571 | Cammiss et al. | Jun 1993 | A |
5254074 | Landers et al. | Oct 1993 | A |
5254401 | Kelch et al. | Oct 1993 | A |
5256473 | Kotani et al. | Oct 1993 | A |
5260360 | Mrozinski et al. | Nov 1993 | A |
5271976 | Kondo et al. | Dec 1993 | A |
5275854 | Maier et al. | Jan 1994 | A |
5279843 | Zomorodi | Jan 1994 | A |
5300570 | Ilenda et al. | Apr 1994 | A |
5316778 | Hougham | May 1994 | A |
5317035 | Jacoby et al. | May 1994 | A |
5322726 | Dew | Jun 1994 | A |
5332617 | Mills et al. | Jul 1994 | A |
5339602 | Landers et al. | Aug 1994 | A |
5348752 | Gorlich | Sep 1994 | A |
5352513 | Mrozinski et al. | Oct 1994 | A |
5362531 | Samuel et al. | Nov 1994 | A |
5411351 | Lasch et al. | May 1995 | A |
5427807 | Chum et al. | Jun 1995 | A |
5429833 | Wyslotsky | Jul 1995 | A |
5443851 | Christie et al. | Aug 1995 | A |
5458899 | Floyd et al. | Oct 1995 | A |
5460841 | Herdman | Oct 1995 | A |
5516539 | Walsh et al. | May 1996 | A |
5532053 | Mueller | Jul 1996 | A |
5560947 | Bell | Oct 1996 | A |
5565230 | Bailey | Oct 1996 | A |
5575418 | Wu et al. | Nov 1996 | A |
5658607 | Herdman | Aug 1997 | A |
5667827 | Breen et al. | Sep 1997 | A |
5688509 | Radwan et al. | Nov 1997 | A |
5711978 | Breen et al. | Jan 1998 | A |
5730311 | Curtis | Mar 1998 | A |
5747082 | Floyd et al. | May 1998 | A |
5759650 | Raines et al. | Jun 1998 | A |
5799495 | Gast et al. | Sep 1998 | A |
5811142 | DelDuca et al. | Sep 1998 | A |
5820955 | Brander | Oct 1998 | A |
5832699 | Zobel | Nov 1998 | A |
5840235 | Yagi et al. | Nov 1998 | A |
5849127 | Kuo | Dec 1998 | A |
5865335 | Farrell et al. | Feb 1999 | A |
5866172 | Parks | Feb 1999 | A |
5866184 | Gorlich et al. | Feb 1999 | A |
5866649 | Hong et al. | Feb 1999 | A |
5908649 | Floyd et al. | Jun 1999 | A |
5916614 | Gorlich | Jun 1999 | A |
5932497 | Morman et al. | Aug 1999 | A |
5935681 | Paulett | Aug 1999 | A |
5954067 | Brown et al. | Sep 1999 | A |
5958319 | Brant | Sep 1999 | A |
6050412 | Clough et al. | Apr 2000 | A |
6060136 | Patrick et al. | May 2000 | A |
6063505 | Kuratsuji et al. | May 2000 | A |
6085930 | Curtis | Jul 2000 | A |
6152295 | Brander et al. | Nov 2000 | A |
6189299 | Brown et al. | Feb 2001 | B1 |
6210724 | Clarke et al. | Apr 2001 | B1 |
6248380 | Kocher et al. | Jun 2001 | B1 |
6376032 | Clarke et al. | Apr 2002 | B1 |
6548132 | Clarke et al. | Apr 2003 | B1 |
Number | Date | Country |
---|---|---|
0311423 | Dec 1989 | EP |
752378 | Jan 1997 | EP |
63-087941 | Apr 1988 | JP |
02-157232 | Jun 1990 | JP |
08-103212 | Apr 1996 | JP |
WO 9500030 | Jan 1995 | WO |
Number | Date | Country | |
---|---|---|---|
20020090425 A1 | Jul 2002 | US |