UV-C system and wine preservation process in draining tanks
The UV-C system addresses wine preservation issues in partially emptied tanks by continuous disinfection, maintaining wine quality and preventing microbiological degradation without requiring sealed tanks, thus offering a practical and economical solution.
Patent Information
- Application Number
- FR2024008697
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-08-06
- Publication Date
- 2026-02-13
AI Technical Summary
Existing methods for preserving wine during partial emptying of tanks are inadequate, leading to microbiological contamination and deterioration due to air exposure, and existing solutions like sulfur wicks, nitrogen use, and floating-lid tanks are either temporary, costly, or prone to seal failure.
A UV-C system is used to continuously disinfect the headspace of partially emptied wine tanks using a robust, stainless steel chassis-encased UV-C lamp suspended within the headspace, ensuring homogeneous UV-C radiation and maintaining organoleptic properties without the need for hermetically sealed tanks.
The UV-C system effectively prevents microbiological contamination and maintains wine quality for several months without acetaldehyde or acetic acid formation, abnormal SO2 consumption, and preserves organoleptic characteristics.
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Abstract
Description
Title of the invention: UV-C system and method for preserving wine in emptying tanks technical field
[0001] The present invention relates to a method for preserving food liquids and a UV-C system. In particular, the invention proposes to continuously disinfect the headspace of emptying tanks using a UV-C system, thereby preventing the degradation of the food liquid during its storage in the presence of air. The invention is particularly relevant to the preservation of wine and a UV-C system specifically designed for the oenological and food industries. STATE OF THE ART
[0002] Due to their germicidal activity (destruction or inactivation of microorganisms), UV-C is used in an increasing number of applications, for example in medical and hospital settings to sterilize instruments, work surfaces, etc. They are also used in wastewater treatment plants, air conditioning systems, swimming pools, aquariums, as well as at various stages of certain food and beverage manufacturing processes.
[0003] However, their introduction to the world of oenology has not yet been successful. Work by the French Wine and Vine Institute (IFV) has nevertheless demonstrated their potential for the microbiological stabilization of wines (François DAVAUX et al., UV-C: an alternative to the microbiological stabilization of musts and wines, Conference Paper, June 2011). This work demonstrates the effectiveness of UV-C radiation in significantly reducing the microbial load in wine, suggesting potential for improving the microbiological stabilization of wines without the use of chemicals. In particular, the wine is exposed to UV-C radiation by circulating it through a turbulator consisting of a corrugated stainless steel tube into which a UV-C generator tube is inserted within a quartz sheath, thus creating a wine treatment chamber in the space between the UV-C generator tube and the corrugated stainless steel tube.The wine flows through the turbulator in a continuous stream, allowing UV-C radiation to act directly on the moving liquid. The results suggest that exposing wines to controlled doses of UV-C radiation inactivates yeasts, molds, and bacteria, which are often responsible for wine spoilage and alterations in its organoleptic characteristics. However, this method of treating wines in flow with UV-C has not been approved by regulatory authorities (OIV) and therefore remains an unauthorized practice in European wine production.
[0004] Wine preservation has long been a problem, as wines require protection from air exposure to maintain their quality over time. Various techniques and processes have been developed to meet this major challenge, the basic rule being to match the volume of wine to the capacity of the storage container. However, at multiple stages in the wine's life (end of fermentation, awaiting malolactic fermentation, during blending, following racking), it is common to have to store wine under conditions conducive to oxidation, particularly when tanks are partially emptied. One of the most widespread solutions involves the use of sulfur wicks. Sulfur reacts with oxygen gas, thus providing temporary protection for the wine. However, the duration of this protection is quite variable, and it is impossible to know how long the wine will remain protected.This solution also leads to an increase in the total sulfur dioxide (SO2) content in wines. Furthermore, the harmful effects on the user mean that its use is becoming less and less common. Consequently, while sulfur wicks may offer a temporary solution, they are not ideal for the long-term preservation of wine. This underscores the ongoing demand for more effective and reliable wine preservation methods.
[0005] Preserving wine using nitrogen is another possible method, although it requires the use of hermetically sealed tanks, generally involving stainless steel or steel tanks, or concrete tanks with excellent lid sealing. This technique requires a specific investment, as well as significant nitrogen consumption, making it suitable for a limited number of tanks, typically those used for direct sales over the tap, where the volume of wine decreases steadily.
[0006] The Vinifair winemaking balloons illustrate an attempt to solve the problem of empty space in wine tanks. This method consists of inserting a plastic balloon into the tank and inflating it to fill the missing volume. However, this technique has not been widely adopted, mainly due to the difficulty of handling the balloons, which are bulky and prone to wear out quickly. Furthermore, adapting these balloons to different tanks is not easy, and cleaning them is complex, particularly because of the creases that can form once the balloon is deflated, thus increasing the risk of introducing microorganisms into the tank and compromising the preservation of the wine.
[0007] The widely adopted solution for wine storage is the floating-lid tank, where a movable lid adjusts to the volume of wine and an inflatable air chamber ensures a tight seal. However, friction on the chamber during the lid's movements frequently leads to damage, thus compromising the seal. These incidents are among the most common causes of wine deterioration during storage. While daily pressure monitoring can mitigate this problem, it does not completely solve it.
[0008] In addition, this method requires considerable investment, often made when creating or renewing winemaking facilities, because it involves replacing existing equipment.
[0009] There is therefore a real need for new solutions for preserving wine during emptying. Description of the invention
[0010] The present invention relates to a new method for preserving food liquids, such as wine, said method comprising a step of storing a food liquid in a partially emptied or filled tank, and in which the following is carried out:
[0011] -a disinfection step of a headspace of said tank by irradiation with UV-C light using a UV-C system, and in which the headspace is irradiated continuously and substantially throughout a duration of said storage step.
[0012] Advantageously, continuous irradiation of the headspace prevents microbiological contamination of the food liquid and preserves its organoleptic properties, without the need for a hermetically sealed tank or low-temperature storage. In the case of wine preservation, tests show that this process can maintain wine for up to several months in emptying tanks without the formation of acetaldehyde or acetic acid (volatile acidity), without abnormal SO2 consumption, without microbiological changes during storage with the device in place, and without significant loss of the wine's organoleptic characteristics.
[0013] In particular, the UV-C system is introduced and kept in suspension at the headspace during the disinfection step, and preferably positioned at an intermediate level within the headspace. The UV-C system is thus positioned to distribute UV-C radiation homogeneously throughout the headspace, and to achieve an optimal disinfection effect.
[0014] The invention also proposes a UV-C system specially designed for the implementation of the preservation process of the invention, and said disinfection step during storage.
[0015] This UV-C system includes, in particular, a protective chassis, a UV-C lamp, and a waterproof electrical connector, and is special in that:
[0016] -the UV-C lamp is integrated in a sealed manner inside the chassis, and
[0017] -the chassis is made of a non-transparent material, such as stainless steel, and
[0018] -the chassis has a substantially cylindrical shape and open faces to allow UV-C radiation to pass through the chassis.
[0019] This UV-C system has been specially designed to be robust and allow for safe use in a humid environment. The UV-C lamp is therefore integrated and connected to a power source in a sealed manner. Furthermore, the UV-C lamp is protected from physical shocks by the chassis. The chassis acts as a kind of cage surrounding the UV-C lamp, but allows the UV-C rays to pass through it to disinfect the headspace. It is thus possible to manufacture the chassis from a durable and easy-to-clean material, such as stainless steel, a material that is otherwise opaque to UV-C radiation.
[0020] In one embodiment, the chassis is formed by two plates connected to each other by rods, said plates preferably having a polygonal shape with at least three sides and comprising perforations. This polygonal shape facilitates the stable placement of the lamp on a support surface, preferably this shape being hexagonal.
[0021] Regarding the integration of the UV-C lamp into the chassis, the latter has an opening for inserting said UV-C lamp on a proximal side of the chassis, and a mounting bracket on an opposite, distal side of the chassis. Said UV-C lamp is inserted into a transparent protective sleeve received in said bracket and connected to the waterproof electrical connector on one side of the opening, such that the UV-C lamp is kept centered within the chassis. In one embodiment, the chassis opening is provided with a threaded wall onto which said electrical connector is screwed.
[0022] The UV-C system further comprises a suspension means made of stainless material, preferably a stainless steel chain, and the frame includes a suspension element configured to maintain the UV-C lamp in a horizontal position when suspended. The suspension element is, for example, a hanging ring for the chain.
[0023] Finally, in one embodiment, the UV-C system of the invention comprises a ballast through which the electrical connector is wired to a power source. The ballast incorporates an operating sensor configured to measure the operating time of the UV-C lamp and to signal when the remaining lifespan of the UV-C lamp is less than a pre-configured time. Preferably, the ballast also incorporates an operating indicator, a malfunction indicator, and a reset button for the operating sensor. As a separate component from the UV-C lamp, the ballast can be placed in a safe and easily accessible location for maintenance, while providing a stable and secure power supply to the UV-C lamp. Designed with an operating sensor, it allows monitoring of the UV-C lamp's lifespan and predicting replacements before the UV- It does not reach the end of its useful life. Similarly, it incorporates proactive signaling functions, visual indicators and easy reset to ensure that the UV-C lamp can emit germicidal UV-C light.
[0024] Other features and advantages of the invention will become apparent from the following description of a non-limiting example of an embodiment of the invention with reference to the accompanying drawings. LIST OF FIGURES
[0025] Fig. 1 schematically illustrates a method of preserving a food liquid in a partially emptied tank by irradiation of UV-C light in the headspace of the tank according to the invention.
[0026] Figure [Fig. 2] illustrates a perspective view of a UV-C system according to a preferred embodiment of the invention.
[0027] Fig. 3 illustrates an exploded view of the UV-C system of Fig. 2. DETAILED DESCRIPTION OF THE INVENTION
[0028] The present invention relates to a novel use of UV-C radiation in a method for preserving food liquids, particularly wine. Specifically, the invention proposes using UV-C light to prevent the microbiological degradation of wine when it is stored in partially emptied tanks, and is therefore exposed to a large volume of air conducive to its deterioration. The invention also finds application for the tank preservation of any food liquid, such as oils, fruit juices, milk, etc.
[0029] The invention notably proposes a method for preserving food liquids in a partially emptied or filled tank. This method is schematically illustrated in [Fig. 1], showing a tank 2 containing a food liquid 1, here wine, which has been partially emptied from tank 2. An empty volume is therefore present above a surface higher than the level of the food liquid, and is referred to as the headspace 3. In order to prevent the growth of microorganisms responsible for wine spoilage, the invention proposes introducing a UV-C system 10 into the headspace 3 and implementing a UV-C light irradiation step to disinfect the headspace.
[0030] In particular, the invention proposes to irradiate the headspace continuously throughout the wine's storage period. For example, until bottling or under optimal storage conditions. Tests have shown that the process of the invention is capable of maintaining wine for up to several months in draining tanks with non-airtight closures, without the formation of acetaldehyde or acetic acid (volatile acidity), without abnormal SO2 consumption, and without microbiological evolution. during storage with the device in place, there is no significant loss of the organoleptic characteristics of the wine.
[0031] Figures [Fig. 2] and [Fig. 3] illustrate one embodiment of a UVC 10 system Specifically designed to be robust, hygienic, and suitable for use in humid environments, this UV-C system is optimal for use in the process of the invention. The UV-C system comprises a protective frame 20 constructed of a robust and easy-to-clean material, such as stainless steel. The frame is formed of two polygonal plates 21a, 21b connected by parallel rods 23, creating a longitudinal cage-like structure with open faces 22 that allow UV-C radiation to pass through.
[0032] A UV-C lamp 12 is integrated in the center of the chassis within a transparent quartz tubular sheath 13, which protects the lamp without interfering with UV-C diffusion. The UV-C lamp is inserted into the sheath 13 through an opening 15 on the first plate 21a on a proximal side of the chassis and is secured by a mounting bracket 14 on the opposite plate 21b on a distal side of the chassis. An O-ring 16b ensures a watertight seal at the mounting bracket 14 and at an ovoid end of the sheath 13. On the other side of the chassis, the opening has a threaded wall onto which a watertight electrical connector 17 is screwed. This connector is closed by a female plug 17b, which has an O-ring on one side and a cable gland on the other. This configuration ensures safe operation in humid environments and easy access to the lamp for replacement or maintenance.To enhance system safety, the chassis can also incorporate an earth connection (not shown) on the chassis.
[0033] In addition, the system includes a suspension element 25, in particular a ring 25 on one of the chassis rods positioned to hold the lamp in a horizontal position when suspended, preferably in a horizontal position by means of a stainless steel chain.
[0034] The UV-C lamp is a low-pressure mercury vapor lamp (non-ozone-generating) with a power rating of approximately 20 W. This lamp is connected by a wire to a power supply via a ballast, ensuring proper power supply and operation. The ballast is a separate housing from the lamp (not shown), connected on one side to the lamp's electrical connector by means of a pin for connecting to removable connectors to facilitate handling of the UV-C system, and by a standard power cable on the other side for connection to the mains electricity supply.
[0035] The UV-C lamp in the system has a lifespan of approximately 1 year, after which its germicidal effectiveness will decrease. The ballast therefore incorporates an operating sensor to monitor the number of days the lamp has been in operation. The ballast is configured to signal the user when it is necessary to change the lamp. It also includes a power indicator, a malfunction indicator, and a reset button for the power sensor. Preferably, the ballast is also provided with an earth connection for connection to the chassis earth terminal 20.
[0036] The invention is distinguished by its innovative approach, which allows for continuous disinfection of the tank's headspace, preventing the growth of microorganisms throughout the storage period and preserving the organoleptic properties of wine, or any other food liquid, without gas consumption. It offers a practical and economical solution, requiring no sealed tank and easily implemented in existing installations. The robust design and stainless steel chassis protect the UV-C lamp and facilitate cleaning, while the sealed electrical connector system ensures safe operation even in the humid environments typical of wine cellars.In addition, the ballast with operating sensor not only measures the operating time of the lamp, but also allows, thanks to a reset button, simplified maintenance management, signaling when the remaining lamp life is below a predefined threshold, which contributes to the durability and ease of monitoring of the system.
Claims
Demands
1. A method for preserving food liquids (1) in a tank (2) such as wine, said method comprising a step of storing a food liquid (1) in a partially emptied or filled tank (2), and in which: -a disinfection step of a headspace (3) of said tank is carried out by irradiation with UV light using a UV-C system (10), and in which the headspace (3) is irradiated continuously and throughout a duration of said storage step.
2. A method according to claim 1, wherein the UV-C system (10) is introduced and kept in suspension at the level of the headspace (3) during the disinfection step, and preferably said UV-C system is positioned at an intermediate level of the headspace (3).
3. A method according to any one of the preceding claims, wherein the UV-C system comprises a protective chassis (20), a UV-C lamp (12), a sealed electrical connector (17), and wherein: -the UV-C lamp (12) is hermetically integrated inside the chassis (20), and -the chassis (20) is made of a non-transparent material, such as stainless steel, and -the chassis (20) has a cylindrical shape and open faces to allow UV-C radiation to pass through the chassis (20).
4. Method according to claim 3, wherein the frame is formed by two plates (21a, 21b) connected to each other by rods (23), said plates (21a, 21b) preferably having a polygonal shape on at least three sides and comprising openings (24).
5. A method according to any one of claims 3 to 4, wherein the chassis (20) has an opening (15) for the insertion of said UV-C lamp (12) on a so-called proximal side of the chassis (20) and a mounting bracket (14) on an opposite and distal side of the chassis, said lamp being inserted into a transparent protective sleeve (13) received in said bracket, and connected to the sealed electrical connector (17) on one side of the opening (15), and such that the UV-C lamp (12) is kept centered in the chassis.
6. A method according to any one of claims 3 to 6, wherein the UV-C system (10) comprises a suspension means made of stainless material, preferably selected from a stainless steel chain, and the chassis (20) includes a suspension element (25) configured to hold the lamp in a horizontal position when suspended.
7. A method according to any one of the preceding claims, wherein the UV-C system comprises a ballast detached from the UV-C lamp, and by means of which the electrical connector is connected to a power source by wire, said ballast incorporating an operating sensor configured to measure the operating time of the UV-C lamp and to signal when the remaining life of the UV-C lamp is less than a pre-configured time, and preferably an operating indicator, a malfunction indicator, and a reset button for said operating sensor.
8. UV-C system for preserving food liquids in draining tanks, such as wine, said system comprising a protective frame (20), a UV-C lamp (12), a sealed electrical connector (17), and, characterized in that: - the UV-C lamp (12) is integrated in a sealed manner inside the frame (20), and - the frame (20) is made of a non-transparent material, such as stainless steel, and - the frame (20) has a cylindrical shape and open faces (22) to allow UV-C radiation to pass through the frame (20).
9. UV-C system according to claim 8, wherein the frame (20) is formed by two plates (21a, 21b) connected to each other by parallel rods (23), said plates (21a, 21b) preferably having a polygonal shape with at least 3 sides and comprising perforations (24).
10. UV-C system according to any one of claims 8 to 9, wherein the chassis (20) has an opening (15) for the insertion of said UV-C lamp (12) on a said proximal side of the chassis and a mounting bracket (14) on an opposite and distal side of the chassis, said UV-C lamp (12) being inserted into a transparent sheath (13) received in said bracket (14), and connected to the sealed electrical connector (17) on one side of the opening (15), and such that the lamp is held centered in the chassis.
11. UV-C system according to claim 10, wherein the opening (15) of the chassis (20) is provided with a threaded wall on which said electrical connector (17) is screwed.
12. UV-C system according to any one of claims 8 to 11, wherein the lamp comprises a suspension means made of stainless material, preferably selected from a stainless steel chain, and the chassis comprises a suspension element (25) configured to maintain the UV-C lamp (12) in a horizontal position when suspended.
13. UV-C system according to any one of claims 8 to 12, said UV-C system further comprising a ballast detached from the UV-C lamp (12), and by means of which the electrical connector is connected to a power source by wire, said ballast incorporating an operating sensor configured to measure the operating time of the UV-C lamp (12) and to signal when the remaining life of the UV-C lamp (10) is less than a pre-configured time, and preferably comprising an operating indicator, a malfunction indicator, and a reset button for said operating sensor.
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