Horizontal discharge storage tank for products via a membrane, and vehicle, in particular hydro-jetting vehicle, equipped with such a tank.

The tank design with a flexible membrane and pressurization/depressurization system addresses inefficiencies in emptying and cleaning by allowing horizontal emptying and complete membrane removal, ensuring safe and efficient tank operations.

FR3159601B1Active Publication Date: 2026-01-30ORTEC EXPANSION
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Patent Information

Application Number
FR2024001917
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-02-27
Publication Date
2026-01-30
Estimated Expiration
2044-02-27

AI Technical Summary

Technical Problem

Existing product storage tanks, such as those used in hydro-jetting trucks, face inefficiencies in emptying and cleaning due to tilting or movable partitions, leading to potential overturning and incomplete emptying on unstable ground.

Method used

A tank design featuring a flexible, gas- and liquid-tight membrane with a system for pressurization and depressurization, allowing horizontal emptying and complete removal of the membrane for thorough emptying and cleaning, facilitated by a niche and vacuum generation for efficient drainage.

Benefits of technology

Enables safe, quick, and complete emptying of the tank without tipping, reducing overturning risks and enhancing cleaning efficiency while supporting stable transport and operation on uneven ground.

✦ Generated by Eureka AI based on patent content.

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Abstract

- Horizontal discharge product storage tank via a membrane, and vehicle, in particular hydro-jetting vehicle, equipped with such a tank.- The tank (1) for storing products, in particular semi-liquid, pasty or powdery solid products, comprises a shell (2) having an opening (5) and a door (7) adapted to close this opening (5), a flexible membrane (9) that is gas- and liquid-tight, intended to receive the products to be stored, said membrane (9) having an opening (10), being arranged inside the tank (1) so that its opening (10) is at the level of the opening (5) of the shell (2), and being fixed by means of an annular fixing zone to the inner face of the shell (2) around its opening (10) so as to create a closed free space (15), and a system (16) adapted to generate pressurization and depressurization of this free space (15) as well as depressurization of an internal space (11) of the membrane (9), rapid and complete emptying of the tank (1) being possible thanks to to said membrane (9) and said system (16).Figure for the summary: Fig. 1.
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Description

Title of the invention: Horizontal discharge product storage tank via a membrane, and vehicle, in particular hydrojetting vehicle, equipped with such a tank. technical field

[0001] The present invention relates to a product storage tank with horizontal discharge via a membrane, and a vehicle, in particular a hydro-jetting truck, equipped with such a tank. State of the art

[0002] The present invention applies to any type of tank (or cistern), mobile or fixed, which is intended for the storage of products and in particular semi-liquid products, pasty products or powdery solids.

[0003] Although not exclusively applicable, the present invention applies more particularly to a tank of a waste collection vehicle, and especially to a sewage or industrial hydro-jetting truck. A sewage hydro-jetting truck is intended, in particular, to carry out cleaning and pumping operations on wastewater networks and sanitation structures, and an industrial hydro-jetting truck is intended for cleaning industrial equipment and installations.

[0004] Generally, emptying a hydrojetting tank is carried out either by tilting the tank (or cistern), usually at 40°, or by means of a movable partition that is able to move in both directions, thanks to the generation of pressure on either side of the partition. However, each of these two common solutions has drawbacks.

[0005] A tank for storing products, which overcomes the drawbacks of conventional solutions (tilting or movable partition), is known from document FR2107423. To this end, this tank (comprising a shell with an opening at one rear longitudinal end and a door adapted to close this opening) includes, in particular: - a flexible, gas- and liquid-tight membrane intended to receive the products to be stored, said membrane being provided with an opening, being arranged inside the tank so that its opening is opposite the opening of the shell, and being fixed according to an annular fixing zone to the inner face of the shell around its opening so as to create a so-called free, closed space between the membrane and the tank; and - a system to generate a pressurization and a depressurization of the free space between the tank and the membrane.

[0006] The use of the flexible membrane makes it possible to obtain an efficient and lightweight drainage system, which overcomes the drawbacks of conventional solutions. Furthermore, the tank can be emptied horizontally (without tipping), thus reducing the risk of the carrier and its equipment overturning when emptying the tank on unstable ground.

[0007] To facilitate the pumping of products into the membrane, a vacuum is created inside the membrane. To do this, the membrane is fixed at a distance from the rear of the shell, in order to allow access to the membrane to implement the vacuum.

[0008] Such an arrangement is not an optimal solution, because the tank is not completely emptied by the inversion and removal of the membrane. Furthermore, tank cleaning is not optimized.

[0009] One of the objectives of the present invention is to improve this membrane tank, in particular to remedy these drawbacks. Description of the invention

[0010] The present invention relates to a tank for storing products, in particular semi-liquid, pasty or powdery solid products, said tank comprising: - a ferrule provided with a rear opening at a rear longitudinal end and a door capable of closing this opening; - a flexible, gas- and liquid-tight membrane, intended to receive the products to be stored, said membrane being provided with an opening, being arranged inside the tank and being fixed along an annular fixing zone to the inner face of the shell so as to create a so-called closed free space between the membrane and the tank; and - a system for generating pressurization and depressurization of the free space between the tank and the membrane, said system comprising a vacuum generator configured to generate depressurization of an internal space within the membrane, the membrane being configured for: - to be able to be completely pressed against the inner face of the ferrule under the effect of a vacuum generated by said system; and - be able to be turned over and removed from the tank, through said open door, under the effect of a pressure generated by said system.

[0011] According to the invention: - the tank is provided with a niche which is formed inside and at the rear of the ferrule, which is arranged between the ferrule and the membrane and which opens, via a rear outlet, into the rear opening of the ferrule; - the ferrule is provided with at least one through orifice opening into the inside of the niche, the vacuum generator being connected externally to said orifice; - the membrane is fixed to the rear longitudinal end of the ferrule so that its opening coincides substantially with the rear opening of the ferrule; and - a passage is formed from said orifice to the internal space of the membrane, via on one side the niche and on the other side a space between the rear of the membrane and the door which is bulging towards the rear, said passage allowing said vacuum generator to generate a depressurization of the internal space of the membrane for the purpose of pumping products into said membrane.

[0012] Thus, thanks to the use of the flexible membrane, an efficient and lightweight drainage system is obtained. Furthermore, the tank can be emptied safely, quickly, and horizontally (without tipping), which reduces the risk of the carrier and its equipment overturning when emptying the tank on unstable ground.

[0013] Furthermore, thanks to the arrangement of the membrane at the rear end of the shell, the membrane can be completely removed when the free space is pressurized. Thus, all the products that were stored in the membrane are evacuated when the membrane is inverted and (completely) removed from the tank, which allows the tank to be completely emptied and overcomes the aforementioned drawback.

[0014] Furthermore, the arrangement of the membrane at the rear end of the ferrule also allows: - to protect the entire ferrule; and - to be able to easily and completely rinse the membrane when it is turned over and completely removed.

[0015] Furthermore, thanks to the passage formed from said orifice in the ferrule (to which the vacuum generator is linked) to the internal space of the membrane, it is possible, despite the arrangement of the membrane at the rear end of the ferrule, to generate a vacuum in this internal space of the membrane for the purpose of pumping products into the membrane.

[0016] In a preferred embodiment, the niche has, at its rear exit, a biconvex shape with two opposite convex surfaces of the same radius of curvature (i.e. two surfaces of the same shape and the same radius of curvature), so that the distance allocated to the fixing of the membrane (of circular cross-section) corresponds to the length of its perimeter, which in particular avoids the appearance of false folds in the membrane.

[0017] Advantageously, the niche is formed from at least one added piece that is welded to the inner face of the ferrule, which makes it easy to manufacture. Furthermore, advantageously, the niche is closed and watertight, except at its rear opening. and the orifice.

[0018] Furthermore, in a particular embodiment, the tank includes a suction cup that is fixed to the outer wall of the shell around the orifice. Advantageously, the suction cup is also equipped with an anti-overflow ball, which prevents products from being drawn into the vacuum generator when the internal space of the membrane is depressurized during product pumping.

[0019] In a particular embodiment: - the front face of the membrane is essentially flat; - the membrane is of such a length that, when pressed against the inner face of the ferrule, its front end is located longitudinally at the same level as the front end of the ferrule; and - the tank includes a front bottom which is convex towards the front.

[0020] In addition, advantageously, the tank includes a pressure limiting device configured to be able to limit the pressure in the free space between the tank and the membrane.

[0021] Furthermore, advantageously, the tank includes at least two support tubes, capable of being brought from a retracted position to an extended position towards the rear of the tank when the membrane is taken out of the tank, and, in the extended position, the tubes are positioned substantially parallel to the longitudinal axis of the shell so as to be able to support the membrane during the pressure-vacuum movement.

[0022] In the context of the present invention, the membrane can be attached to the inner face of the tank in various ways. However, in a preferred embodiment, the membrane is attached by clamping it between, on the one hand, at least one (crown-shaped) plate fixed to the rear end of the tank on the inner face of the shell and on the recess, and on the other hand, at least one counter-plate. This allows the membrane to be attached to the tank easily, quickly, and efficiently.

[0023] Furthermore, advantageously, the membrane is made of a (relatively thin) composite material comprising various superimposed layers, formed respectively of at least a waterproof (airtight and condensation watertight) fabric, a material (providing the necessary mechanical resistance) and an antistatic skin (made of polytetrafluoroethylene), mechanically resistant to impacts and abrasion from solid waste and chemically resistant to attack from acids, bases, hydrocarbons, ...

[0024] The present invention also relates to a vehicle, in particular a hydro-jetting vehicle, which includes at least one tank such as that described above.

[0025] The present invention also relates to several methods for using said tank.

[0026] First, it includes a method for filling the tank, said method of filling comprising at least the following steps, consisting of: - close the tank door; - generate a vacuum in the free space between the tank and the membrane, using the vacuum system, so as to press the membrane against the inner face of the tank; - to create a negative pressure in the internal space using the vacuum generator so that atmospheric pressure pushes the products into this internal space, through a filling orifice, inside the membrane; and - when filling is complete, stop maintaining the negative pressure in the internal space.

[0027] Secondly, it also includes a method for emptying the tank, said emptying method comprising at least the following steps, consisting of: - open the tank door; - to generate pressurization of the free space between the tank and the membrane, using the pressurization system, so as to push the membrane back and displace it, this displacement causing a complete inversion of the membrane and ejection of the products through the open door; and - when the draining is complete, stop pressurizing the free space.

[0028] Thirdly, it further comprises a process for dewatering products from the tank, said dewatering process comprising at least the following steps, consisting of: - with the tank door closed, pressurize the free space between the tank and the membrane using the pressurization system to push the membrane back and move it; this movement compresses the products in the tank, causing a separation of the juices, which are then discharged through an open drain (or decantation) port; and - when the spin cycle is finished, stop pressurizing the free space and close the drain opening. Brief description of the figures

[0029] The accompanying figures will clearly illustrate how the invention can be implemented. In these figures, identical reference numerals designate similar elements.

[0030] Fig. 1 is a schematic cross-sectional view of a product storage tank in an open position.

[0031] Fig. 2 is a schematic cross-sectional view of the product storage tank in a closed position.

[0032] Fig. 3 is a view similar to that of Fig. 1, in an open position, with the membrane completely out.

[0033] Figures 4A to 4C are schematic cross-sectional views of a storage tank products, illustrating different successive stages of movement of the membrane from a position pressed against the tank to a fully deployed position, during a tank emptying.

[0034] Fig. 5 is a partial rear view of the tank's ferrule, which has a niche.

[0035] Figure 6 is a partial schematic cross-sectional view of an embodiment preferred over a flexible and waterproof membrane.

[0036] Fig. 7 is a plan view of an example of a hydrojetting unit equipped in particular with a product storage tank.

[0037] Fig. 8 is a perspective view of an anti-overflow ball. Detailed description

[0038] Tank 1, illustrating the invention and shown schematically in [Fig. 1], is intended to receive and store products, for example, for transport. Tank 1 is suitable for storing various types of products. It is particularly well-suited for storing products such as semi-liquids, pastes, or powdered solids.

[0039] Tank 1 can be used in various applications, as specified below.

[0040] The tank 1 comprises, as shown in [Fig. 1], a ferrule 2, that is to say, a hollow cylindrical part with longitudinal axis XX. In the example shown, the ferrule 2 is in the form of a straight cylinder. The tank ferrule may, however, have any other cylindrical shape within the scope of the present invention.

[0041] The ferrule 2 is closed by a bottom 3 at one longitudinal end called the front end 4 (along the longitudinal axis XX), and it is provided with an opening 5 at the other longitudinal end called the rear end 6. The terms "front" and "rear" are defined, in the following description, along the longitudinal axis XX, with "front" in the direction of an arrow F shown in Figures 1 and 2 and "rear" in the opposite direction to that of arrow F.

[0042] Of course, within the framework of the present invention, the opening 5 could also be provided at the front end and the bottom 3 at the rear end of the tank.

[0043] Furthermore, the terms "internal" and "external" are defined with respect to the longitudinal axis XX, with "external" moving away from the longitudinal axis XX, as illustrated by arrows G in Figures 1 and 2, and "internal" moving towards the longitudinal axis XX, in the opposite direction to that of the arrows G.

[0044] The tank 1 is arranged horizontally, that is to say, it is arranged so that its longitudinal axis XX is substantially parallel to the horizontal illustrated by a double arrow H in figures 1 and 2.

[0045] The vertical direction is illustrated by an arrow Z. The term "up" is defined in the direction of the arrow Z and the term "down" is defined in the opposite direction to that of arrow Z.

[0046] Tank 1 also includes a standard type door 7, located at the rear end 6 of tank 1 and configured to be able to: - completely free the opening 5 in an open position PI as shown in [Fig. 1]; and - close the opening 5 in a closed position P2 as shown in [Fig.2]

[0047] To do this, the door 7 is linked, by means of conventional hinges 8 shown schematically, to the tank 1, and it includes, for its operation, conventional means not described further and not shown.

[0048] The ferrule 2, the bottom 3 and the door 7 of the tank 1 can be made of different metallic or composite materials, and in particular of stainless steel.

[0049] The tank 1 further comprises a membrane 9 which is both flexible and impermeable to gases and liquids. This membrane 9 (with an inner face 9A) defines an internal space 11 (or storage space) intended to receive the stored products.

[0050] To this end, said membrane 9 is provided with an opening 10 (at the rear). The membrane 9 is a completely closed pocket (or envelope) except for the opening 10, and it is arranged inside the tank 1 so that this opening 10 is opposite the opening 5 of the ferrule 2, which is provided with the door 7.

[0051] The membrane 9 is fixed by its so-called open end 9C (at the level of the opening 10) on the inner face 12A of the ferrule 2 of the tank 1, all around its periphery, that is to say according to an annular fixing zone 27 so as to create a so-called free space 15, closed, between the membrane 9 and the tank 1. The membrane 9 is fixed to the rear of the ferrule 2, so that its opening 10 coincides substantially with the opening 5 of the ferrule 2, that is to say that the two openings 5 ​​and 10 are located in the same position longitudinally (along the axis XX).

[0052] Membrane 9 is configured to: - to be able to be completely pressed against the inner face 12A of the ferrule 2 under the effect of a vacuum generated by a system 16 as shown in [Fig. 2]; and - able to be turned over and removed from tank 1, through the open door 7, under the effect of a pressure generated by system 16, as shown in [Fig.3].

[0053] Thus, thanks to the use of the flexible membrane 9, an efficient and lightweight drainage system is obtained. Furthermore, the tank 1 can be emptied safely, quickly, and horizontally (without tipping), which reduces the risk of the carrier and its equipment overturning when emptying the tank on unstable ground.

[0054] Furthermore, thanks to the arrangement of the membrane 9 at the rear end of the ferrule 2, The membrane 9 can be completely removed when the free space 15 is pressurized. In addition, all the products that were stored in the membrane 9 are evacuated when the membrane 9 is reversed and (completely) removed from the tank 1, as described below, which allows the tank 1 to be completely emptied.

[0055] The arrangement of the membrane 9 at the rear end of the ferrule 2 also allows: - to protect the entire ferrule 2; and - to be able to easily and completely rinse membrane 9 when it is turned over and completely out.

[0056] By way of non-limiting illustration, the membrane 9 has, for example, a thickness between 2 and 8 millimeters.

[0057] Furthermore, the tank 1 also includes the system 16 for generating a pressurization or a depressurization of the free space 15 between the tank 1 and the membrane 9. In a particular embodiment, the system 16 includes a compressed air generator 25 and a vacuum generator 26, as specified below.

[0058] In a preferred embodiment, the system 16 comprises a single piece of equipment which can implement both functions (pressurizing and depressurizing), namely either a vacuum pump which can be adapted for use as a compressor, or a hydro-ejector which can produce a pressure of 500 grams.

[0059] In addition: - the tank 1 is provided with a niche 36 which is formed inside and at the rear of the ferrule 2, which is arranged between the ferrule 2 and the membrane 9 and which opens, via a rear outlet 37, into the rear opening 5 of the ferrule 2, as shown in figures 1 to 3; and - the ferrule 2 is provided with at least one orifice 38 through the wall of the ferrule 2, which opens into the interior of the niche 36, the vacuum generator 26 being connected externally to said orifice 38 (via a suction pot 44, as specified below).

[0060] Thus, a passage 39, illustrated by arrow J in [Fig. 2], is formed from said orifice 38 (to which the vacuum generator 26 is connected) to the internal space 11 of the membrane 9, via, on the one hand, the niche 36 and, on the other hand, a space 40 between the rear of the membrane 9 and the gate 7, which is convex towards the rear. This passage 39 allows said vacuum generator 26, despite the arrangement of the membrane 9 at the rear end of the ferrule 2, to have a path to generate a vacuum in the internal space 11 of the membrane 9 during the pumping of products into said membrane 9, in order to facilitate pumping.

[0061] In a preferred embodiment, the niche 36 has, at its rear exit 37, a biconvex shape as shown in [Fig. 5]. This biconvex shape is consisting of two opposing convex surfaces 41 and 42 with the same radius of curvature, that is, two surfaces 41 and 42 of the same shape and radius of curvature. Surface 41 corresponds to the inner surface of a circular arc of the ferrule 2, and surface 42 corresponds to the outer surface of an added part 43. These surfaces 41 and 42 have the same length in cross-section. Thus, the distance allocated for attaching the membrane 9 (with a circular cross-section) to the rear of the ferrule 2, along the ferrule 2 and the recess 36, is equal to its perimeter. This prevents the formation of a crease in the membrane 9 when it is attached at its rear end and allows the use of a cylindrical membrane, which is simple to manufacture and less expensive.

[0062] Preferably, the niche 36 is formed of at least one added part 43 (Figures 1 to 3) which is welded to the inner face 12A of the ferrule 2, thus making the niche 36 easy and inexpensive to manufacture. Furthermore, the niche 36 is closed and sealed, except at its rear outlet 37 and the orifice 38.

[0063] Furthermore, in a particular embodiment, the tank 1 also includes a suction pot 44. This suction pot 44, to which the vacuum generator 26 is linked, is fixed on the external wall 12B of the ferrule 2 around the orifice 38, as schematically represented in figures 1 to 3.

[0064] The suction pot 44 is provided with an anti-overflow ball 45 shown in [Fig.8]. This anti-overflow ball 45 prevents products from being drawn towards the vacuum generator 26 when the internal space 11 of the membrane 9 is depressurized during product pumping.

[0065] The overflow ball 45 is mounted in a support 46. This support 46 comprises an upper ring 47, to which are attached four legs 48, evenly distributed around the periphery of the ring 47 and fixed orthogonally to it. Each leg 48 is provided with a foot 49 curved inwards. These feet 49 retain the overflow ball 45. This overflow ball 45 is capable of floating and, if necessary, of pressing itself against the ring 47 so as to close its opening 50 to block suction and prevent products from being drawn towards the vacuum generator 26.

[0066] The anti-overflow ball 45 is further connected by a spring 51 and a bracket 52 to the ring 47 to create electrical continuity, these parts being metallic. This has the particular advantage of preventing the generation of an electric arc during pumping in an ATEX-type atmosphere.

[0067] Furthermore, in a particular embodiment, as shown in [Fig.2] - the front face 30 of the membrane 9 is substantially flat; - the membrane 9 has a length such that, when it is pressed against the inner face 12A of the ferrule 2, its front end (or front face 30) is located longitudinally at the level of the front end of the ferrule 2; and - the front bottom 3 of the tank 1 is convex towards the front.

[0068] This embodiment allows a space 23 ([Fig.2]) to be maintained between the front face 30 of the membrane 9 and the front bottom 3 of the tank 1 when the membrane 9 is pressed against the inner face 12A of the ferrule 2. This space 23 is advantageous for aspiration and positioning of the membrane 9 against the inner face 12A of the ferrule 2.

[0069] Furthermore, the tank 1 includes a pressure limiting device 31 which is isolated by a valve and which is configured to be able to limit the pressure in the free space 15 between the tank 1 and the membrane 9, through an orifice 53 provided in the upper part of the front bottom 3.

[0070] Within the framework of the present invention, the membrane 9 can be fixed in different ways to the inner face 12A of the tank 1.

[0071] However, in a preferred embodiment, the membrane 9 is fixed by clamping, which in particular facilitates maintenance operations. To this end, a metal plate 13, in the shape of a ring, is fixed, preferably welded, to the inner face 12A of the tank 1 all around the periphery of the tank 1, at the level of the fixing area 27 at the rear of the tank 1. The open end 9C of the membrane 9 is wedged and retained between this plate 13 and one or more fixing counter-plates 17, which are screwed onto the ring 13. For the sake of simplicity in the drawing, only sections of the plate 13 and the counter-plate 17 are shown in [Fig. 5].

[0072] Furthermore, in a preferred embodiment, the membrane 9 is made of a composite material 18 comprising different superimposed layers having various properties to enable the membrane 9 to have the desired characteristics.

[0073] Preferably, the membrane 9 comprises, as schematically shown in [Fig. 6], at least one impermeable fabric 19 (or gas- and liquid-tight), a fabric 20 providing mechanical resistance to the membrane 9, and a skin 21, preferably made of antistatic polytetrafluoroethylene PTFE. The skin 21, which is provided on the inner face 9A of the membrane 9 intended to come into contact with the products, provides resistance to mechanical shocks, the chemical aggressiveness of the products, and product adhesion. A membrane 9 thus constructed exhibits appropriate flexibility and resistance to various types of aggression, enabling it to effectively perform its various intended functions. It also protects the shell 2 of the tank 1 against various potential aggressions, and since the membrane 9 is arranged at the rear of the shell 2, it allows for protect the entire inner face 12A of the ferrule 2.

[0074] Furthermore, the system 16 for generating pressurization and depressurization includes an orifice 24 formed in the ferrule 2 and provided with conventional conduit connection means (not shown). The orifice 24 is formed on the top of the ferrule 2 at the front end 4 opposite the rear end 6 which is provided with the opening 5.

[0075] In the particular embodiment shown in Figures 1 and 2, the tank 1 comprises, as a pressurization element, the compressed air generator 25 and, as a depressurization element, the vacuum generator 26.

[0076] Within the scope of the present invention: - the compressed air generator 25 can be any type of conventional generator suitable for blowing compressed air into the free space 15 through the orifice 24, as illustrated by an arrow E1 in [Fig. 1]; and - The vacuum generator 26 can be any type of conventional vacuum generator, preferably pneumatic (but not exclusively), capable of generating a vacuum in the free space 15 through the orifice 24, as illustrated by an arrow E2 in [Fig. 2].

[0077] In a preferred embodiment, the system 16 comprises a single piece of equipment that can perform both functions (pressurizing and depressurizing), namely, either operate as a compressed air generator 25 or operate as a vacuum generator 26, as required.

[0078] In an alternative embodiment (not shown), two orifices can be provided, one of which is intended for pressurization and the other for depressurization.

[0079] Pressurizing the free space 15 allows the membrane 9 (which is turned around and removed from the tank as shown in [Fig.3]) to be pushed back and the products contained in the tank 1 to the rear, in order to evacuate them through the open door 7, as described below with reference to figures 4A to 4C.

[0080] Depressurizing the free space 15 allows the membrane 9 to be pressed against the inner face 12A of the tank 1, bringing it into a so-called "container" position to allow its internal storage space 11 to be filled through a filling orifice as specified below. The membrane 9 then conforms to the shape of the inner face 12A of the tank 1, as shown in particular in [Fig. 2].

[0081] The vacuum generator 26 is also configured to generate a vacuum in the internal space 11 inside the membrane 9 for the purpose of pumping products into said membrane, as detailed below. To do this, the vacuum generator 26 is capable of generating a vacuum in the space 11 (via the passage 39) through the orifice 38, as illustrated by an arrow E3 in [Fig. 2].

[0082] In one embodiment, it is possible to provide two vacuum generators, for example such as the vacuum generator 26, one of which is intended for the application of depression of free space 15 and the other of which is intended for the depression of internal space 11.

[0083] Furthermore, in a particular embodiment, at least two support tubes (or bars) 35 are provided, arranged at the rear of the tank 1 (Figures 4A to 4C). These tubes 35 are arranged at the bottom of the tank 1, on either side of it. They are adapted to be held and to slide in rings (or guides) 36 mounted on the tank 1.

[0084] These tubes 35 are configured to be able to be brought into a retracted position (Figures 4A and 4B) or into a rearward extended position in which the tubes 35 are out, as shown in [Fig. 4C]. The tubes 35 are then oriented horizontally. The tubes 35 are brought into the extended position by being pulled rearward by an operator. These tubes 35 support the diaphragm 9 when it is fully extended and no longer subjected to expulsion pressure, namely, more precisely, during the transition from pressurization of the free space 15 to depressurization (or depressurization) of said free space 15.

[0085] Furthermore, the door 7 of the tank 1 is provided, in a lower part, with at least one discharge (or draining or settling) port 28, fitted with a valve and a removable plug 29 capable of closing the port 28 when it is in place (Figures 1 and 3) and of releasing the port 28 when it is removed ([Fig. 2]). The filling and / or discharge port 28 also includes means for connecting a conduit (not shown).

[0086] The door 7 of the tank 1 is also provided with a pipe 34 equipped with all the usual equipment to allow the filling of the tank 1, as shown only on [Fig.2] for reasons of simplification of the drawing.

[0087] In an alternative embodiment (not shown), the tank 1 may have a single opening in the lower part, intended for both filling and evacuation (or emptying or decantation).

[0088] The tank 1, as described above, can be filled or loaded using a filling (or loading) process described below, with reference to [Fig.2].

[0089] To do this, the door 7 is closed, and brought into the closed position P2.

[0090] Then, an appropriate vacuum is generated in the free space 15 (between the tank 1 and the membrane 9), using the vacuum generator 26 by vacuum pulling (as illustrated by arrow E2), so as to press the membrane 9 against the inner face 12A of the tank 1. Next, the vacuum is created in the internal space 11 through the orifice 38 using the vacuum generator 26 (as illustrated by arrow E3).

[0091] In this closed position P2, as shown in [Fig. 2], the products to be pumped, located outside the tank 1, are pushed under atmospheric pressure in the internal space 11 (in which the vacuum is created), using conventional pumping means (not shown), through a filling orifice provided in the tank 1, via the filling pipe 34, as illustrated by an arrow Bl. The products enter the inside of the membrane 9, into the internal storage space 11.

[0092] When the filling is complete, the depression generated in the internal space 11 is stopped using the vacuum generator 26.

[0093] If the tank 1 is not completely filled, it is possible to hold the products in position (or to secure them), in particular to reduce the movement of the liquid mass. To do this, appropriate pressure is generated in the free space 15 using the compressed air generator 25 to move the membrane 9 and adapt the volume of the storage space 11 to the volume of product contained inside the membrane 9. This securing is particularly advantageous when moving the tank, especially when it is mounted on a vehicle, by preventing unwanted movement of the liquids contained in the products during transport.

[0094] The tank 1, as described above, is also suitable for carrying out a dewatering of semi-liquid products, in particular sludge, contained in the internal storage space 11.

[0095] To do this, the rear door 7 of the tank 1 is closed, as shown in [Fig.2]. The free space 15 between the inner face 12A of the tank 1 and the outer face 9B of the membrane 9 is pressurized using the compressed air generator 25. This pressurization compresses the semi-liquid products so as to generate a separation of the water and the juices which end up in the upper part of the tank 1 and which can be discharged through the orifice 28 provided in the lower part of the door 7, as illustrated by a dashed arrow B2 (the valve being open and the plug 29 being of course removed in this case).

[0096] Furthermore, the tank 1, as described above, can be emptied (or unloaded) while remaining horizontal, using an emptying (or unloading) method described below with reference to Figures 4A to 4C.

[0097] To carry out the draining, starting from the closed position P2 of [Fig.4A] with the membrane 9 in a position Al in contact with the inner wall of the tank 1, the door 7 is opened, as shown by an arrow I, and it is brought into its open position PI ([Fig.4B]).

[0098] The free space 15, between the inner face 12A of the tank 1 and the outer face 9B of the membrane 9, is pressurized (controlled) using the system 16 to generate a pressurization, as illustrated by the arrow EL

[0099] Pressurization allows the membrane 9 to be pushed back and moved, as illustrated by an arrow K on [Fig.4B].

[0100] More specifically, pressurization allows the membrane 9 to move between the position A1 (shown in [Fig.4A]) in which it is pressed against the inner face 12A of the tank 1 and a position A2 (shown in [Fig.4C]) in which it is completely turned around and deployed towards the rear.

[0101] For pressurization, a pressure of compressed air is injected into the free space 15. This compressed air can, for example, be stored in a 300-litre bottle at 10 bars.

[0102] In the tank 1 filling position, the membrane 9 remains pressed against the inner part of the tank 1. During emptying, the membrane 9 turns around, expelling the products stored inside the membrane 9 to the outside of the tank 1. This allows for a rapid, efficient and complete evacuation of the products.

[0103] The movement of the membrane 9 therefore allows the products contained in the tank 1 to be pushed back, and to be evacuated (or ejected) through the open door 7, as illustrated by an arrow D on [Fig.4B].

[0104] The support tubes 35 are brought into the extended position (with an orientation substantially parallel to the axis of revolution of the ferrule 2) when the membrane 9 is removed from the tank 1, as shown in [Fig. 4C]. The tubes 35 support the membrane 9 when it is fully extended and no longer subjected to expulsion pressure, but is again drawn into the tank 1 by the generation of a vacuum in the free space 15, as illustrated by arrow E2 in [Fig. 4C].

[0105] One advantage of tank 1 is that it provides a better guarantee against the production of ATEX that would be released by the vacuum pump during specific pumping operations, such as pumping 5,000 liters from a 10,000-liter capacity. Once these 5,000 liters have been pumped, the liquid can be blocked at the rear with the membrane. To pump the next 5,000 liters, it is simply a matter of pumping again from the side with the membrane, thus recreating the vacuum without pumping ATEX, since the airtight membrane separates the vacuum. It is no longer necessary to degas tank 1 to repeat several pumping operations.

[0106] The tank 1, as described above, can correspond to any type of tank (or cistern) intended for the storage of products, and in particular semi-liquid products, pasty products, or powdered solids. The tank can be installed in a fixed position or mounted on a mobile machine (or vehicle), in particular a rolling vehicle.

[0107] In a preferred application, the tank 1 is a tank of a waste collection vehicle, and more particularly of a hydro-jetting truck 32, as shown in [Fig. 7]. The hydro-jetting truck 32 is intended, in particular, to carry out cleaning and pumping operations on wastewater or industrial waste networks (gasoline, fuel oil, oils, etc.) and sanitation structures. The hydro-jetting truck 32 is equipped with the necessary means for filling and emptying of tank 1 and in particular of the pressurization and depressurization system.

[0108] Because the tank 1 is emptied horizontally, without needing to tilt it, the overall size is reduced, and many of the equipment components 33 of the hydro-jetting unit 32 can be arranged on or near the tank 1. This allows the hydro-jetting unit to be constructed in two modules: the tank and components attached to it, and an equipment module including a pumping system. These two modules are easily removable and adaptable from one carrier chassis to another. This equipment mobility, enabling the interchangeability of the carrier, is a significant advantage in light of current environmental developments in carriers.

[0109] Tank 1, as described above, has many advantages. First, the proposed solution has the following advantages: - to completely empty tank 1 when membrane 9 is turned over and (completely) removed from tank 1; - to protect the entire internal surface of the ferrule 2 of the metal tank 1, using the membrane 9; and - to be able to easily and completely rinse membrane 9 when it is turned over and completely out.

[0110] Tank 1, as described above, also has other advantages, including: - to maximize the transport volume; - to be a lightweight solution, with a payload gain of approximately 500 kilograms, in application to a hydro-jetting truck; - to be able to empty the contents of tank 1 horizontally, without tipping (or dumping), which eliminates the usual static or mobile devices used to generate emptying, particularly by gravity; - to be able to carry out a safe, quick and complete emptying of tank 1; - to be able to block liquids during the transport phase; - to be able to transport all types of products and in particular aggressive products, thanks to membrane 9 which can be made unalterable in particular to petroleum or acidic products; - to have a reduced footprint; - to reduce the cost of construction and operation (compared to a standard articulated device); - to be able to secure emptying operations (by eliminating the instability of trucks with a tipping tank) and transport operations (by eliminating the movement of the liquid mass of waste in the tank); and - to increase productivity, for example, by dewatering the sludge by compression, in cases where water can be returned to the tank filling site.

Claims

Demands

1. Tank for storing products, in particular semi-liquid, pasty or powdery solid products, said tank (1) comprising: - a shell (2) having a rear opening (5) at a rear longitudinal end (6) and a door (7) suitable for closing this opening (5); - a flexible membrane (9) that is gas and liquid sealed, intended to receive the products to be stored, said membrane (9) having an opening (10), being arranged inside the tank (1) and being fixed along an annular fixing zone (27) to the inner face (12A) of the shell (2) so as to create a closed free space (15) between the membrane (9) and the tank (1);and - a system (16) for generating pressurization and depressurization of the free space (15) between the tank (1) and the membrane (9), said system (16) comprising a vacuum generator (26) configured to generate depressurization of an internal space (11) inside the membrane (9), the membrane (9) being configured to:; - to be able to be completely pressed against the inner face (12A) of the ferrule (2) under the effect of a vacuum generated by said system (16); and - able to be turned over and removed from the tank (1), through said open door (7), under the effect of a pressure generated by said system (16), characterized in that: - the tank (1) is provided with a niche (36) which is formed inside and at the rear of the ferrule (2), which is arranged between the ferrule (2) and the membrane (9) and which opens, by a rear outlet (37), into the rear opening (5) of the ferrule (2); - the ferrule (2) is provided with at least one through orifice (38) opening into the interior of the niche (36), the vacuum generator (26) being connected externally to said orifice (38); - the membrane (9) is fixed to the rear longitudinal end (6) of the ferrule (2) so that its opening (10) coincides substantially with the rear opening (5) of the ferrule (2); and - a passage (39) is formed from said orifice (38) to the internal space (11) of the membrane (9), via on the one hand the niche (36) and on the other hand a space (40) between the rear of the membrane (9) and the gate (7) which is bulging towards the rear, said passage (39) allowing said vacuum generator (26) to generate a depressurization of the internal space (11) of the membrane (9) for the purpose of pumping products into said membrane (9).

2. Tank according to claim 1, characterized in that the niche (36) has, at its rear outlet (37), a biconvex shape with two opposite convex surfaces (41, 42) of the same radius of curvature.

3. Tank according to any one of claims 1 and 2, characterized in that the niche (36) is formed of at least one added piece (43) which is welded to the inner face (12A) of the ferrule (2).

4. Tank according to any one of the preceding claims, characterized in that the niche (36) is closed and sealed, except at the rear outlet (37) and the orifice (38).

5. Tank according to any one of the preceding claims, characterized in that it comprises a suction pot (44) which is fixed on the outer wall (12B) of the ferrule (2) around the orifice (38).

6. Tank according to claim 5, characterized in that the suction pot (44) is provided with an anti-overflow ball (45).

7. Tank according to any one of the preceding claims, characterized in that: - the front face (30) of the membrane (9) is substantially flat; - the membrane (9) has a length such that, when pressed against the inner face (12A) of the ferrule (2), its front end is located longitudinally at the same level as the front end of the ferrule (2); and - the tank (1) comprises a front bottom (3) which is convex towards the front.

8. Tank according to any one of the preceding claims, characterized in that it comprises a pressure limiting device (31) configured to be able to limit the pressure in the free space (15) between the tank (1) and the membrane (9).

9. A tank according to any one of the preceding claims, characterized in that it comprises at least two support tubes (35) adapted to be brought from a retracted position to an extended position towards the rear of the tank (1) when the membrane (9) is removed from the tank (1), and in that, in the extended position, the tubes (35) are positioned substantially parallel to the longitudinal axis of the shell (2) so as to be able to support the membrane (9).

10. Tank according to any one of the preceding claims, characterized in that the membrane (9) is fixed by pinching between, on the one hand, at least one plate (13) fixed to the rear end of the tank (1) on the inner face (12A) of the ferrule (2) and on the niche (36), and on the other hand, at least one counter-plate (17).

11. Tank according to any one of the preceding claims, characterized in that the membrane (9) is made of a composite material (18) comprising different superimposed layers, formed at least of a waterproof fabric (19), a fabric (20) and a skin (21) of polytetrafluoroethylene.

12. Vehicle, in particular a hydro-jetting vehicle, characterized in that it comprises at least one tank (1) according to any one of claims 1 to 11.

13. A method for filling the tank (1) according to any one of claims 1 to 11, characterized in that it comprises at least the following steps, consisting of: - closing the door (7) of the tank (1); - generating a vacuum in the free space (15) between the tank (1) and the membrane (9), using the vacuum system (16), so as to press the membrane (9) against the inner face (12A) of the tank (1); - generating a vacuum in the internal space (11) using the vacuum generator (26) so that atmospheric pressure pushes the products into this internal space (11), through a filling orifice (28), inside the membrane (9); and - when the filling is finished, stopping the vacuum in the internal space (11).

14. A method for emptying the tank (1) according to any one of claims 1 to 11, characterized in that it comprises at least the following steps, consisting of: - opening the door (7) of the tank (1); - generating pressurization of the free space (15) between the tank (1) and the membrane (9), using the pressurization system (16), so as to push back the membrane (9) and move it, this movement causing a complete reversal of the membrane (9) and an ejection products through the door (7) in the open position (PI); and - when the draining is finished, stop pressurizing the free space (15).

15. A method for dewatering products from the tank (1) according to any one of claims 1 to 11, characterized in that it comprises at least the following steps, consisting of: - with the door (7) of the tank (1) closed, pressurize the free space (15) between the tank (1) and the membrane (9) using the pressurization system (16) so as to push back and displace the membrane (9), this displacement compressing the products present in the tank (1) so as to generate a separation of the juices which are discharged through an open discharge orifice (28); and - when the spin cycle is finished, stop pressurizing the free space (15) and close the drain orifice (28).