1. (canceled)
2. The method of claim 16 wherein the Brix value of said first birch sap is adjusted to form said second birch sap, and if the water is used to add (added water) to said first birch sap in order to adjust said Brix value of said first birch sap, said added water is selected from (a) drinking water, (b) distilled water; (c) de-ionized water; (d) sterile water; and (e) birch water derived from birch tree sap.
3. The method of claim 2 wherein the birch water of claim 2(e) is derived from
(a) a reverse osmosis process from
(i) said first birch sap or
(ii) a second birch sap or
(b) a process of converting said second birch sap into
(i) a concentrated birch sap or
(ii) a birch syrup; or
(c) converting concentrated birch sap into birch syrup; or
(d) converting any of said second birch sap, said concentrated birch sap, and said birch syrup into another birch product.
4. (canceled)
5. The method of claim 16 having a micro-organism load at the time of being packaged by said aseptic packaging after said Ultra-High Temperature pasteurization of not more that 0 CFUml.
6. (canceled)
7. The method of claim 16 having a micro-organism load after being packaged by said aseptic packaging and being subjected to said Ultra-High Temperature pasteurization and having been stored at 4\xb0 C. for a period of 24 months of not more than 10 CFUml.
8. The method of claim 16 having a micro-organism load after being packaged by said aseptic packaging and being subjected to said Ultra-High Temperature pasteurization and having been stored at ambient temperature of from about 20 to about 25\xb0 C. for a period of 9 months of not more than 0 CFUml.
9. The method of claim 8 having a micro-organism load after being packaged by said aseptic packaging and being subjected to said Ultra-High Temperature pasteurization and haying been stored at 21\xb0 C. for a period of 24 months of not more than 0 CFUml.
10. The method of claim 16 having a shelf life of at least 6 months after being packaged by said aseptic packaging and subjected to said Ultra-High Temperature pasteurization.
11. The method of claim 16 having a shelf life of at least 24 months after being packaged by said aseptic packaging and subjected to said Ultra-High Temperature pasteurization.
12. The method of claim 16 wherein the second birch sap has a Brix value of 1.4 to 2.2.
13. The method of claim 16 wherein the Ultra-High Temperature pasteurization is conducted at a temperature of at least 135\xb0 C. up to 145\xb0 C. for a period of from 2 to 6 seconds.
14. The method of claim 16 wherein the Ultra-High Temperature pasteurization is conducted at a temperature of at least 135\xb0 C. up to 140\xb0 C. for a period of from 1 to 10 seconds.
15. The method of claim 14 wherein the Ultra-High Temperature is conducted at a temperature of at least 137\xb0 C. up to 139\xb0 C. for a period of from 2 to 4 seconds.
16. A method of making a birch sap beverage product having a Brix value of about 0.1 to about 15 comprising a first birch sap comprising water,
said first birch sap having a sap Brix value in the range of about 0.1 to about 2.5; or a second birch sap comprising water wherein said second birch sap is said first birch sap which has had its Brix value adjusted to have a predefined Brix value in the range of from about 0.1 to about 15.0, and upon having been subjected to an Ultra-High Temperature pasteurization (UHT) and packaging under aseptic conditions, at the time of said packaging and said UHT, said birch sap product having a micro-organism load of not more than 10 colony forming unitsml (CFUml) and after 9 months of storage at 4\xb0 C. a micro-organism load of not more than 10 CFUml;
said method consisting essentially of
A) obtaining said first birch sap;
B) optionally filtering the first birch sap in one or more filtration steps;
C) optionally exposing the first birch sap to a first partial sterilization process selected from
(i) ultraviolet (UV) sterilization,
(ii) low temperature pasteurization, and
(iii) one or more of micro and nano filtration;
(D) optionally adjusting said first birch sap to a predefined Brix value in the range of about 0.1 to about 15 defining a second birch sap;
(E) optionally adding one or more additional flavorings;
(F) optionally adding or one or more additional sweeteners;
the results of said step A) and optionally any of said optional steps B) through F) resulting in a pre-UHT, prior to being packaged product; and
(G) subjecting said pre-UHT, prior to being packaged product to either of
(a) said Ultra-High Temperature pasteurization step followed by said packaging under aspetic conditions; or
(b) using said septic conditions to package said pre-UHT, prior to being packaged product followed by using said UHT as a terminal sterilization step;
wherein said optional step D) and optional step E) and optical step F) can each independently be done at any point after obtaining said first birch sap until after said step G), provided that if one or more of steps D), E) and F) are performed after step G), that the respective materials used therein and the conditions of carrying out such steps carried out after step G) be aseptic and conducted under aseptic conditions
whereby said birch beverage product at the time of packaging but after said UHT having a micro-organism load of not more than 10 CFUml and after 9 months of storage at 4\xb0 C. a micro-organism load of not more than 10 CFUml.
17. The method of claim 16 consisting essentially of
A) obtaining said first birch sap;
B) filtering said first birch sap in one or more filtration steps to yield a filtered first birch sap;
C) exposing said filtered first birch sap to an ultraviolet (UV) sterilization to yield a UV exposed birch sap;
D) optionally adjusting said UV exposed birch sap to said predefined Brix value;
E) optionally adding one or more additional flavorings;
F) optionally adding one or more additional sweeteners;
the result of steps A)-C) and any additional steps D) through F) resulting in a pre-UHT, prior to being packaged product;
G) subjecting the pre-UHT, prior to being packaged product to an Ultra-High Temperature pasteurization step to result in a final product; and
H) packaging the final product in an aspetic package under aseptic conditions;
wherein said optional step D), optional step E), and optional step F) can each independently be done at any point after obtaining the first birch sap until after said step G), provided that if one or more of said optional steps D), E), and F) are performed after step G), that the respective materials used therein and the conditions of carrying out such steps carried out after step G) be aseptic and conducted under aseptic conditions.
18. The method of claim 16 wherein said filtering in step B) is conducted in 1 or more steps and includes at least one filter in the range of 1 micron to 10 micron pore size.
19. The method of claim 16 wherein said UHT is conducted at a temperature of about 130\xb0 C. to about 150\xb0 C.
20. The method of claim 19 wherein said UHT is conducted at a temperature of about 135\xb0 C. to about 145\xb0 C.
21. The method of claim 16 wherein said UHT is conducted for a period of about 1 second to about 10 seconds.
22. The method of claim 21 wherein said UHT is conducted for a period of about 2 seconds to about 6 seconds.
23. A method of making a cooking andor flavoring birch sap product having a product Brix value in the range of about 0.1 to about 15.0 for use in cooking, andor flavoring of other products, comprising a first birch sap comprising water,
said first birch sap having a sap Brix value in the range of about 0.1 to about 2.5; or a second birch sap comprising water wherein said second birch sap is said first birch sap which has had its Brix value adjusted to have a predefined Brix value in the range of from about 0.1 to about 15.0, and upon having been subjected to an Ultra-High Temperature pasteurization (UHT) and packaging under aseptic conditions, at the time of said packaging and said UHT, said birch sap product having a micro-organism load of not more than 10 colony forming unitsml (CFUml) and after 9 months of storage at 4\xb0 C. a micro-organism load of not more than 10 CFUml;
said method consisting essentially of
A) obtaining said first birch sap;
B) optionally filtering, the first birch sap in one or more filtration steps;
C) optionally exposing the sap to said first partial sterilization process selected from
(i) said ultraviolet (UV) sterilization,
(ii) low temperature pasteurization, and
(iii) one or more of micro and nano filtration;
D) optionally adjusting said first birch sap to said pre-defined Brix value;
E) optionally adding one or more of additional flavorings;
F) optionally adding one or more of additional sweeteners;
the results of said step A) and optionally any of said optional steps B) through F) resulting, in said pre-UHT, prior to being packaged product; and
G) subjecting the pre-UHT, prior to being packaged product to either of
(a) an Ultra-High Temperature pasteurization (UHT) step followed by aseptic packaging; or
(b) using aseptic conditions to package said pre-UHT, prior to being packaged product followed by using UHT as a terminal sterilization step;
wherein said optional step D), said optional step E) and said optional step F) can each independently be done at any point after obtaining, the sap until after said step G), provided that if one or more of steps D), E) and F) are performed after step G), that the respective materials used therein and the conditions of carrying out such steps carried out after step G) be aseptic and conducted under aseptic conditions
whereby said birch sap product at the time of packaging, but after said UHT having a micro-organism load of not more than 10 colony forming unitsml and after 9 months of storage at 4\xb0 C. a micro-organism load of not more than 10 colony forming unitsml.
24. A method of cooking andor flavoring other products comprising utilizing the birch sap product resulting from claim 23 in a step of cooking or flavoring said other products.
25. The process of claim 16 resulting in a product having a micro-organism load after being packaged by said aseptic packaging and being subjected to said Ultra-High Temperature pasteurization and having been stored at 4\xb0 C. for a period of 9 months of not more than 5 CFUml.
26. The process of claim 15 having a micro-organism load after being packaged by said aseptic packaging and being subjected to said Ultra-High Temperature pasteurization and having been stored at 4\xb0 C. for a period of 6 months of not more than 3 CFUml.
27. The process of claim 23 resulting in a product having a micro-organism load after being packaged by said aseptic packaging and being subjected to said Ultra-High Temperature pasteurization and having, been stored at 4\xb0 C. for a period of 9 months of not more than 5 CFUml.
28. The process of claim 23 having a microorganism road after being packaged by said aseptic packaging and being subjected to said Ultra-High Temperature pasteurization and having been stored at 4\xb0 C. for a period of 6 months of not more than 3 CFUml.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A connector for connecting components of a subsea system, the connector comprising male and female components, a guide member provided on the female component for assisting preliminary orientation of the male component within the female component and an abutment surface on the female component which is selectively vertically moveable within the female component for drawing the male component into the female component and a latch member for securing the male component within the female component.
2. A connector according to claim 1, wherein the guide member comprises a tapered surface provided on the female component.
3. A connector according to claim 2, wherein the tapered surface is a cone provided on one end of the female component.
4. A connector according to claim 3, wherein the surface of the cone is smooth to prevent any damage to the male component during initial contact with the surface.
5. A connector according to claim 1, wherein the guide member comprises a cone on the male component to assist in the initial guidance of the male component into the female component.
6. A connector according to claim 1, wherein the male component comprises an abutment surface which co-operates with the abutment surface of the female component when the male component is inserted into the female component.
7. A connector according to claim 6, wherein the abutment surfaces are annular.
8. A connector according to claim 1, wherein a hydraulic member is provided for raising and lowering the female abutment surface.
9. A connector according to claim 6, wherein a radial force applicator is provided to mechanically grip the male component within the female component before drawing the male component into the female component.
10. A connector according to claim 9, wherein the radial force applicator is a hydraulic piston.
11. A connector according to claim 1, wherein the male and female components are provided with cooperating surfaces for establishing connection of hydraulic, electric or optical devices across the connector.
12. A connector according to claim 11, wherein the cooperating surfaces are annular.
13. A connector according to claim 11, wherein hydraulic, electric or optical coupling devices are provided on the female component, said devices being actuable to extend through the cooperating surface of the female component into the cooperating surface of the male component to establish a connection across the connector.
14. A connector according to claim 11, wherein hydraulic, electric or optical coupling devices are provided on the male component, said devices being actuable to extend through the cooperating surface of the male component into the cooperating surface of the female component to establish a connection across the connector.
15. A connector according to claim 1, wherein a frame is provided around the female component to allow for visual inspection of the component and ROV manipulation of the component.
16. A connector according to claim 1, wherein the latch member comprises one or more locking members on the female component which are extendable into one or more detents in the male component.
17. A subsea system incorporating a connector according to claim 1.
18. A method of connecting components of a subsea system together comprising the steps of guiding a male component of the connector into a female component of the connector by bringing the male component into contact with a guide member provided on the female component in a preliminary orientation and subsequently operating a selectively vertically moveable abutment surface within the female component to draw the male component into the female component before locking the male component into position within the female component thereby creating full bore access axially through the connector.
19. A method according to claim 18, wherein an abutment surface of the male connector is brought into contact with the abutment surface of the female connector and the male component is coupled to the female component.
20. A method according to claim 19, wherein the abutment surface of the female component is lowered within the female component to draw the male component coupled thereto into a locking position.