Ship with a system for reducing casing-induced vibrations and method for constructing said ship

The ship system divides exhaust flues into independent modules with optimized elastic suspensions to reduce low-frequency vibrations, addressing the inadequacies of existing solutions and preserving ship space without increasing costs.

JP7748213B2Active Publication Date: 2025-10-02FINKANTIERI SPA
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Patent Information

Application Number
JP2021110440
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-03
Filing Date
2021-07-02
Publication Date
2025-10-02
Estimated Expiration
2041-07-02

AI Technical Summary

Technical Problem

Existing solutions for reducing casing-induced vibrations in cruise ships, such as the use of elastic suspensions, are inadequate in cutting low-frequency vibrations and often require valuable space to be converted into buffer zones, compromising the ship's usable space.

Method used

A ship system that divides exhaust flues into structurally independent modules supported by main and secondary platforms with optimized elastic suspensions, reducing low-frequency vibrations without needing buffer spaces, and maintaining manufacturing costs similar to conventional methods.

Benefits of technology

Effectively reduces low-frequency vibrations to adjacent ship structures without buffer spaces, freeing up valuable space and maintaining structural integrity while minimizing manufacturing costs.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a vessel with a system for reducing oscillation due to a casing and to provide a method for building the vessel.SOLUTION: A vessel includes: exhaust flues 30 installed inside casings 20 and provided with composition elements including concentrated mass structure elements and a mass distributed to the length; and structure bodies for supporting the composition elements inside the casings 20. The support structure bodies include main platforms respectively partitioning main supporting base units inside hollows 21, and connected to walls of the casings 20 on a deck 10 of the vessel by intervention of main elastic suspensions. The concentrated mass structure elements are arranged on each main platform. The main elastic suspensions on each main platform has a size large enough to reduce transmission of low frequency oscillation generated by an engine and transmitted inside the casing 20 by the exhaust flues 30.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The subject of the invention is a ship equipped with a system for reducing casing-induced vibrations and a method for constructing said ship.

[0002] In particular, the vessel to which this invention applies is a cruise ship. [Background technology]

[0003] As shown in Figure 1, the exhaust flue E for combustion fumes generated by engines M of a ship N is arranged inside one or more vertical cavities extending from engine room S to funnel F and passing through all of the decks P of the ship. Each of these cavities has a typically rectangular cross section and is bounded around the ends of the cross section by a closure structure C suitable for isolating said cavity from the rest of the ship. This closure structure C, whose technical name is "engine casing" or "casing", is structurally connected to deck P of the ship. The casing C is an integral part of the ship's structure and performs an important structural function.

[0004] On cruise ships, the casing is installed amidships, surrounded by other spaces and not a separate structure or attachment as in cargo ships. Therefore, on cruise ships, the casing walls are often adjacent to the interior habitable areas of the ship.

[0005] Generally, the above-mentioned vertical cavities are also used for the passage of other ducts, such as ventilation ducts V (in particular for ventilating the engine compartment), steam lines, vent ducts, compressed air ducts, etc.

[0006] All components installed within the vertical cavity, from the exhaust flues E to the ventilation ducts, are supported within said cavity by horizontal support beams T fixed to the casing walls at each ship deck and forming a series of lattice-like platforms.

[0007] In recent years, due to the need to comply with increasingly stringent environmental standards, exhaust flues have been equipped with fume treatment plants which comprise very heavy and large components.

[0008] As shown in particular in Figures 2 and 3, the exhaust flue currently comprises, in addition to the fume passage line TE, the following components, listed in order from the engine room S: a system for controlling NOx emissions (SCR, Selective Catalytic Reduction), an exhaust gas boiler EGB for generating steam, a system SCB (or "scrubber") for controlling SOx emissions, and one or more silencers.

[0009] A system for controlling NOx emissions. The IMO's new Tier 3 regulations further restrict emission limits in ECAs (Emission Control Areas). In this case, they aim to achieve an 80% reduction in NOx emissions. The most commonly used device in the naval industry to reduce NOx is the secondary Selective Catalytic Reduction (SCR) system, placed upstream of the exhaust gas boiler as the first element in the exhaust flue. In addition to being based on a chemical process, SCR uses gas passing through an extruded honeycomb catalyst. This catalyst constitutes a barrier to the free passage of fumes and therefore a zone where energy is transferred from the fumes to the surrounding structures in the form of vibrations and sound.

[0010] Exhaust gas boiler. A part of the heat of the combustion gas is recovered in the tube bundle in the exhaust gas boiler to generate steam. The tube bundle constitutes a substantial barrier to the flow of gases necessary for the heat exchange, but generates vibrations and noise. As a result, energy is transferred to the support structure by the base of the exhaust gas boiler in the form of a large structural noise. It is therefore necessary to limit this transfer by using an appropriate elastic support.

[0011] The SCR and exhaust gas boiler are the heaviest elements in the casing. As an approximation, taking into account the size used, the weight range of a single SCR / exhaust gas boiler could range from 3.2 t for a vessel with a 10,900 GRT to 24 t for a vessel with a 134,000 GRT.

[0012] Silencer. To perform their function, silencers must also operate according to the principle of pressure drop caused by replacement with a surface made of absorbent material (resistive silencers) or by reflecting sound waves trapped in specially designed cavities (reactive silencers). The pressure drop is similar in order of magnitude to that of exhaust gas boilers and may therefore also constitute a favorable transmission point for structure-borne noise. The weight of an individual silencer depends on the size and ranges from 1 to 10 tonnes.

[0013] A system for controlling SOx emissions. Alongside the demand for reducing NOx emissions into the atmosphere, new limits for SOx exhaust gas desulfurization are continually being updated. To comply with these new rules, shipowners are increasingly relying on treatment systems consisting of fume cleaning towers known as "scrubbers." Scrubbers also transmit vibrations to the casing, although to a lesser extent than exhaust gas boilers and SCRs, as they cause little pressure drop in the fumes. Thus, they are in effect similar to part of the pipeline. However, because scrubbers are installed at the top of the casing and are significantly heavier than simple pipelines, they have a significant impact on the stability of the ship. An average scrubber weighs around 20 tons.

[0014] As already pointed out, some of the components located inside the casing transfer noise and vibrations to said casing and therefore to the structures surrounding it, so that all structures in the casing that follow the deck are potential carriers for transmitting noise radiated in the area surrounding the casing.

[0015] In particular, the exhaust stack components transmit to the casing low frequency vibrations generated by the vessel's internal combustion engine, which consist essentially of vibrations at the fundamental rotation frequency of the engine and vibrations at the engine's firing frequency.

[0016] To limit the transmission of noise and vibration from the components located inside the casing to the casing, elastic suspensions (made up of rubber bodies or rubber brackets, etc.) are currently placed where the components (scrubbers, exhaust gas boilers, SCRs, lines, etc.) are attached to the support platforms inside the casing. These solutions are employed both in fume treatment plants and pass lines.

[0017] However, in some cases, the use of elastic suspensions does not sufficiently reduce vibrations, at least in the vicinity of the casing. In particular, these elastic suspensions are unable to cut low-frequency vibrations. Therefore, at least on passenger ships, the space adjacent to the casing, which is typically valuable space due to its central location, is separated from the casing by the interposition of buffer spaces, for example used as closets and / or cupboards.

[0018] However, the arrangement of said buffer spaces is not a completely satisfactory solution, since it not only does not always guarantee an effective reduction of vibrations, but also takes away useful space from valuable zones of the ship, a problem that is even more applicable in ships of average or small tonnage.

[0019] Therefore, there remains a need to be satisfied in the naval industry, and in particular in the cruise ship sector, to further reduce the transmission of noise and vibration to the ship's structures adjacent to the casing without going through a buffer space. Summary of the Invention

[0020] The object of the present invention is therefore to eliminate or at least reduce the drawbacks of the prior art cited above by providing a ship having a system for reducing vibrations caused by a casing, which does not require the intervention of a buffer space and makes it possible to further reduce the transmission of noise and vibrations to structures adjacent to the casing.

[0021] Another object of the present invention is to provide a ship having a system for reducing casing induced vibrations that is structurally simple to manufacture, with manufacturing costs substantially similar to those of conventional solutions. [Brief explanation of the drawings]

[0022] The technical features of the present invention in accordance with the above-mentioned objects can be clearly found in the content of the claims that follow, and its advantages will become more apparent in the following detailed description given with reference to the accompanying drawings, which depict one or more embodiments thereof, purely by way of non-limiting example, and in which:

[0023] [Figure 1] A cross section of the cruise ship corresponding to the casing to highlight the exhaust flues installed in the casing. [Figure 2] Detail of FIG. 1 relating to the casing and exhaust flue only. [Figure 3] A view similar to Figure 2, showing only the exhaust flue equipment and not the associated lines. [Figure 4] 1 is a cross-sectional view of an example of a vessel having a system for reducing casing-induced vibrations according to the present invention, the cross-section being made corresponding to the casing. [Figure 5] Detail of FIG. 4 showing only the casing and the exhaust flue installed in the casing. [Figure 6] FIG. 6 is a view similar to FIG. 5, but showing only the lumped mass component of the exhaust flue and not the distributed mass component. [Figure 7] 7 is a plan view of the casing shown in FIG. 5 along the cross-sectional plane VII-VII. [Figure 8]7 is a perspective view of a first module in which the exhaust flue in the casing shown in FIGS. 4, 5, and 6 is divided; FIG. [Figure 9] 7 is a perspective view of a second module in which the exhaust flue in the casing shown in FIGS. 4, 5, and 6 is divided; FIG. [Figure 10] 7 is a perspective view of a third module in which the exhaust flue in the casing shown in FIGS. 4, 5, and 6 is divided; FIG. [Figure 11] 7 is a perspective view of fourth and fifth modules in which the exhaust flue is divided within the casing shown in FIGS. 4, 5, and 6. FIG. [Figure 12] 5, but showing only the structure for supporting the lumped mass component. [Figure 13] Diagram of a vibration isolation device with one degree of freedom. [Figure 14] Graph showing the trend of the frequency ratio f / f0 versus the transmissibility T as a function of the value of the damping ratio ζ. [Figure 15] Diagram of a two-stage vibration isolation device. [Figure 16] Schematic showing the operating range of a certain type of passive suspension based on the type of decoupling device used.

[0024] Elements or parts of elements that are common to the embodiments described below are designated by the same reference numerals. DETAILED DESCRIPTION OF THE INVENTION

[0025] The subject of the invention is a ship equipped with a system for reducing casing-induced vibrations, and a method for constructing said ship.

[0026] In particular, the vessel to which the present invention is directed may be a cruise ship.

[0027] With reference to the accompanying drawings, the number 1 indicates, as a whole, a vessel according to the invention.

[0028] According to a general embodiment of the invention shown in FIG. 4, the vessel 1 comprises:

[0029] Hull 2.

[0030] A plurality of decks 10 are arranged inside the hull 2.

[0031] At least one engine casing 20 defining a cavity 21 extending vertically across the plurality of decks 10 from an engine room 22 to a funnel 23.

[0032] and at least one exhaust flue 30 for fumes generated by one or more internal combustion engines 24 located in said engine compartment 22 .

[0033] In particular, the internal combustion engine 24 may be a diesel engine or a diesel / gas engine.

[0034] The exhaust flue 30 is located inside the casing 20 and comprises a plurality of lumped mass components 31, 32, 33, 34 and a plurality of components 35, 36 having mass distributed along their length.

[0035] "Lumped mass component" means a component of the exhaust flue 30 that has a significant mass relative to the system, the mass being supported by one or more contact points within a limited area where the relative weight is applied.

[0036] In particular, components having a mass / volume ratio of 100 kg / m3 or greater may be classified as lumped mass components.

[0037] In particular, the lumped mass components of the exhaust flue 30 include:

[0038] At least one SCR (Selective Catalytic Reduction) system 31, which is a catalyst system for controlling NOx emissions.

[0039] and / or at least one exhaust gas boiler 32 for producing steam.

[0040] and / or at least one fume washing tower or scrubber 33, which is a system for controlling SOx emissions.

[0041] and / or at least one silencer 34 .

[0042] As shown in Figure 5, the exhaust flue 30 preferably comprises one or more SCR (Selective Catalytic Reduction) systems 31, one or more exhaust gas boilers 32 for generating steam, one or more fume cleaning towers or scrubbers 33, and one or more silencers 34.

[0043] As an approximation, an SCR may have an average mass / volume ratio of about 220 kg / m3, an exhaust gas boiler may have an average mass / volume ratio of about 650 kg / m3, a fume scrubber may have an average mass / volume ratio of about 130 kg / m3, and a silencer may have an average mass / volume ratio of 100 to 220 kg / m3.

[0044] By "components having mass distributed over their length" is meant components of the exhaust flue 30 that have a modest mass, even in the context of the system having an extended extension in the length direction.

[0045] In particular, sections of ducts or pipelines may be classified as components with a mass distributed over their length. More particularly, line components with a mass / volume ratio of less than 50 kg / m3 may be classified as components with a mass distributed over their length.

[0046] In particular, the component having a mass distributed over its length is the portion of the pipeline 35 of the exhaust flue 30 that fluidly connects the various concentrated mass components of the exhaust flue to one another, thus forming the necessary fluid continuity from the engine exhaust to the funnel.

[0047] In particular, the cavity 21 defined by the casing 20 may be a single cavity from the engine compartment 22 to the funnel 23. More complex embodiments may also be provided. For example, as shown in Figures 4, 5 and 6, the cavity 21 may be branched at its base into two starting portions 21a and 21b that join upstream at a single upper portion 21c that extends to the funnel 23 (e.g., to serve two separate engine compartments).

[0048] The casing 20 may contain two or more different exhaust flues which may remain separate up to the funnel or may reconnect at a common end.

[0049] For ease of explanation, the following description will refer to one exhaust flue, but is not intended to be necessarily limited to the single exhaust flue case.

[0050] The vessel 1 may advantageously be equipped with one or more lines for the passage of service fluids, such as ventilation lines, air vent lines, lines for the passage of steam, and hydraulic lines.

[0051] Some sections of the pipeline 36 of said one or more lines for the passage of service fluids may advantageously be installed inside the casing 20. These sections of the pipeline 36 are considered to be additional components having a mass distributed over their length relative to the distributed mass component 35 of the exhaust flue 20.

[0052] As shown in particular in Figures 5, 6 and 12, the vessel 1 further comprises a plurality of structures 51, 52, 53 suitable for supporting the plurality of concentrated mass components 31, 32, 33, 34 and the plurality of components 35, 36 having mass distributed over length inside the casing 20.

[0053] According to the invention, the support structure is made up of a number of main platforms 51, each defining a main support base inside the cavity 21 and connected to the wall of the casing 20 on the deck 10 of the ship by the intermediary of a main elastic suspension 61.

[0054] Each main platform 51 is preferably constructed from a framework of beams structurally interconnected one to the other to form a lattice-like structure, as particularly shown in Figures 8, 9, 10, and 11.

[0055] According to the invention, the above support structure further includes a plurality of secondary platforms 52, each of which defines a secondary support base supported directly or indirectly by only one of the main platforms 51 and which is located at a different height relative to the main support base defined by the corresponding main platform 51.

[0056] As shown particularly in Figures 7, 8, 9, 10, and 11, each sub-platform 52 is preferably constructed from a framework of beams structurally interconnected one to the other to form a lattice-like structure.

[0057] The primary platform 51 and the secondary platform 52 may have a peripheral shape that corresponds to the cross section of the casing, for example a rectangular shape. Also, embodiments may be provided in which the platforms 51 and 52 have different shapes relative to the cross section of the casing. The peripheral shape of the platforms is selected based on requirements related to the location of the components of the exhaust flue, so that the platforms do not geometrically interfere with the wall of the casing.

[0058] According to the present invention, at least one of said lumped mass components 31 , 32 , 33 , 34 of the exhaust flue 30 is arranged on each main platform 51 .

[0059] It is also possible that more than one of said lumped mass components is arranged on the main platform 51 .

[0060] The assembly Main platform 51; At least one corresponding lumped mass component 31, 32, 33, 34; one or more possible secondary platforms 52 supported by said primary platform; one or more elements 35, 36 with mass distributed over their length connected to the main platform 51 and / or the one or more possible secondary platforms 52; It is composed of Structurally independent modules 50a, 50b, 50c, 50d, and 50e are formed.

[0061] Advantageously, therefore, the exhaust flue 30 is divided into two or more structurally independent modules 50 arranged one after the other along the vertical extension of the casing 20 .

[0062] According to the embodiment shown in the accompanying drawings, three separate exhaust flues 30 are installed in the casing 20. Starting from the engine room, each exhaust flues 30 sequentially comprises an SCR system 31, an exhaust gas boiler 32, a fume cleaning tower or scrubber 33, and a silencer 34, which are connected by sections of pipeline 35. In the example shown in the figure, the three exhaust flues 30 share the same fume cleaning tower or scrubber 33. The components of the three exhaust flues 30 mentioned above are divided into five modules 50a, 50b, 50c, 50d, and 50e that are structurally independent from each other. The first module 50a includes three silencers 34 and a scrubber 33, the second module 50b includes an exhaust gas boiler 32, the third module 50c includes two exhaust gas boilers 32 and an SCR system 31, and the fourth module 50d and fifth module 50e (located in two separate parts of the casing) each include an SCR system 31.

[0063] Preferably, each exhaust flue 30 includes at least one fan (not shown in the accompanying drawings) at the top of the casing 20, near the funnel 23.

[0064] More specifically, the fan may be integrated into the first module 50a and supported by one or more secondary top platforms that, by means of an interconnecting structure, rest on the main platform of said first module 50a. Alternatively, as shown in the accompanying drawings, the fan may be located in a separate, structurally independent module 50f (end or top module) intended to close the casing at the top, the module 50f comprising its own main platform 51 (connected to the casing 20 by its own main elastic suspension 61) and one or more secondary platforms 52. In this case, the fan is treated as a secondary lumped mass component.

[0065] In particular, modules 50a, 50b, 50c, 50d, 50e may extend vertically over a distance corresponding to the spacing between two or more ship decks. Modules 50a, 50b, 50c, 50d, 50e may have different vertical extensions. The vertical extension of a module is essentially determined by the dimensions of one or more lumped mass components located within the module, as well as the longitudinal extension of the pipeline sections located within the module.

[0066] A module may include a single exhaust flue component (as in the case of module 50e in the accompanying drawings) or may include two or more different exhaust flue components passing through the same casing section 20 (for example, as in the case of modules 50a or 50d in the accompanying drawings).

[0067] According to the invention, said main elastic suspensions 61 of each main platform 51 are dimensioned to reduce the transmission from each of the modules 50a, 50b, 50c, 50d, 50e to the casing 20 of low frequency vibrations generated by the engine and transmitted into the casing 20 by the exhaust duct 30. Said main elastic suspensions 61 reduce said low frequency vibrations by taking advantage of the high total mass of each of the modules 50a, 50b, 50c, 50d, 50e.

[0068] Advantageously, reducing vibration reduces the troublesome structural noise caused by vibration, by which is meant noise transmitted through the structure of the vessel caused by causes that cause the structure to vibrate.

[0069] 6, in particular, each module 50a, 50b, 50c, 50d, 50e is supported in relation to its respective main platform 51 and / or within the casing 20 on a plurality of projections 25 that project into the casing and are structurally integrated with the deck of the vessel. The entire set of projections 25 is sized to discharge the weight of the entire module 50a, 50b, 50c, 50d, 50e from the projections to the casing and / or the deck of the vessel. Each projection 25 has one of the main elastic suspensions 61 disposed thereon, and thus the main elastic suspension 61 is interposed between the module 50a, 50b, 50c, 50d, 50e and the respective projection 25.

[0070] Compared to prior art solutions, the present invention achieves two results that work synergistically to reduce or eliminate the transmission of low and infrasonic vibrations from the exhaust flue to the casing:

[0071] A reduction in the points where the support structure connects to the casing, i.e. the exhaust flues are no longer connected at every ship deck, but only at the ship deck located at the height of the main platform.

[0072] The high mass of the exhaust flue and the mass of the support structures 51, 52, 53 distributed over several modules 50a, 50b, 50c, 50d, 50e are grouped together to define a higher mass (with greater inertia) that can be utilized to increase the reduction of low and very low frequency vibrations, which in particular also makes it possible to use an elastic suspension with high efficiency and low frequency as the main elastic suspension.

[0073] In other words, by designing the exhaust flue and the relative support structures as several structurally independent modules 50a-e, it is possible to take advantage of the high mass involved to reduce the natural frequency f0 of the system intended as a single structurally independent module 50a, 50b, 50c, 50d, 50e so that the characteristic frequencies, the fundamental and firing frequencies caused by the operation of the engine, fall into the zone of greatest possible damping, thereby maximizing the effect of reducing the vibrations transmitted to the ship's structure.

[0074] Preferably, taking into account the masses involved, efficient and low-frequency main elastic suspensions are used, developed for large plants such as main engines, to be able to suspend several such critical systems in terms of mass (i.e., structurally independent modules 50a, 50b, 50c, 50d, 50e consisting of plant, lines, main platform and secondary platform). These suspensions, which have the necessary functionality, are optimized to ensure a very low stiffness k, unlike those used in the prior art to suspend individual lumped mass components, which results in a very low natural frequency (up to 4 / 5 Hz) of the elastic components, which, together with the mass m of the modules, makes it possible to keep the natural frequency f0 of the system very low and decouple it from the exciting frequencies (main and launch frequencies), thereby effectively reducing them.

[0075] In particular, low frequency vibrations generated by the engine and transmitted to the interior of the casing 20 by the exhaust flue 30 include:

[0076] Vibrations at the fundamental rotational frequency of the engine, i.e., at a frequency related to the rotation of the drive shaft.

[0077] and vibrations at the engine firing frequency, i.e., the frequency at which the engine cylinders fire.

[0078] Preferably, the fundamental rotational frequency of the engine is between 7 and 30 Hz, while the firing frequency of the engine is preferably between 40 and 150 Hz.

[0079] Preferably, the primary elastic suspension 61 of each module 50a, 50b, 50c, 50d, 50e has a natural frequency of less than 7 Hz.

[0080] More specifically, each module 50a-e can be considered as a system with one degree of freedom, which has a natural resonant frequency that depends on both the stiffness k of the main elastic suspension 61 and the mass m of the oscillator (suspended module), according to the following equation:

[0081]

number

[0082] where m is the suspended mass and k represents the stiffness of the elastic suspension.

[0083] For conceptual clarity, it is useful to consider the transmissibility T, which represents the ratio between the force F transmitted to the foundation (the ship's structure or casing 20) and the force F0, i.e., the exiting force.

[0084] The particular cases considered by the present invention relate to the transfer from the engines by SCRs, exhaust gas boilers, silencers and scrubbers, which obtain energy from the exhaust gases by interacting with the exhaust gas flow and discharge it into the ship's structure via suspension points.

[0085] According to the invention, the mass m is constituted by the entire module (lumped and distributed mass components, primary and secondary platforms).

[0086] It is also known that transmissibility may be expressed by the following equation:

[0087]

number

[0088] where X=f / f0, f is the excitation frequency, and C is the damping coefficient.

[0089] Therefore, the amplitude of a system with one degree of freedom depends on the mass m, stiffness k, and damping coefficient.

[0090] From the above equation for T, it may be shown that:

[0091] As X tends to 0, the transmissibility T tends to 1, and thus the ratio is controlled by the stiffness k.

[0092] As X tends to values ​​greater than 1, the transmissibility T tends to 0, and the ratio is controlled by the mass m.

[0093] Figure 14 shows the trend of the frequency ratio f / f0 versus the transmissibility T as a function of the value of the damping ratio ζ, which corresponds to the ratio C / Cc, where Cc is the critical damping coefficient. When ζ<0, the transient response of the system is periodic; when ζ>=1, the system response is no longer periodic. When ζ=0, the system is undamped. The case for ζ=0 comes from the equation of motion for an oscillator with one degree of freedom, my''+Cy''+ky=F(t), and is obtained when the natural undamped frequency f0 of a system with one degree of freedom is F(t)=C=0. Typical values ​​of ζ are 0.05-0.1 for rubber and 0.005-0.01 for steel.

[0094] Referring now to Figure 14, it can be seen that at values ​​below resonance (f / f = 1), there is not only no isolation but also no amplification, but near resonance (f / f = 1), there is amplification, and above 1.4X, the presence of the isolation element significantly increases the isolation. Thus, when the system frequency f is at least 1.4 times smaller than the excitation frequency, the presence of elasticity is effective.

[0095] Therefore, considering the above relevant frequencies, which have a minimum value of about 7 Hz, it is preferable to have a primary elastic suspension with a very low natural frequency (about 5 Hz, low k) to maximize the isolation effect. Furthermore, as expressed by the transmissibility equation T, in addition to resonance, the response is controlled by the mass, therefore, by increasing the mass it is possible to reduce f0 and therefore increase the f / f0 ratio, with the benefit of isolating the system and consequently reducing the transmission of vibrations to the ship's structure.

[0096] Therefore, thanks to the present invention, it is possible to significantly reduce the transmission of low-frequency and very low-frequency vibrations from the exhaust flue to the casing and the ship's structures adjacent to said casing, without interfering with the casing and the structures adjacent to said casing.

[0097] In particular, it is no longer necessary to arrange buffer spaces around the casing, and in this way volumes are freed around the casing that could not be used as valuable destinations in prior art solutions due to the strength of the vibrations emanating from the casing.

[0098] Furthermore, the technical solution that is the subject of the present invention can be manufactured at substantially the same costs as conventional solutions. In particular, no interventions in the structure of the ship are necessary, only a reconfiguration of the structure within the casing is required. As will be emphasized below, the division of the structure into structurally independent modules 50a-e makes it possible to apply assembly methods that reduce assembly and installation costs.

[0099] As already emphasized above, the vessel 1 may comprise one or more lines for the passage of service fluids. Several portions of the pipelines 36 of one or more lines for the passage of said service fluids may be installed inside the casing 20. These portions of the pipelines 36 are considered to be additional components having a mass distributed over their length relative to the distributed mass components of the exhaust flue 20. Several portions of the pipelines 36 of one or more lines for the passage of said service fluids may be installed inside the casing 20.

[0100] Advantageously, several sections of the pipeline 36 of one or more lines for the passage of said service fluid installed inside the casing 20 may be connected to said support structure 51, 52, 53 as additional components with a mass distributed over their length. In this case, each structurally independent module 50a, 50b, 50c, 50d, 50e may comprise one or more sections of said pipeline 36.

[0101] Preferably, the sections of the pipeline 36 belonging to ventilation lines, air vent lines, lines for the passage of steam and hydraulic lines are connected to the support structures 51, 52, 53, while the pipelines of fire-resistant lines are attached directly to the wall of the casing 20 for safety reasons.

[0102] Preferably, the portion of the pipeline 35 for the passage of exhaust gases and, if provided, the portion of the pipeline 36 of one or more lines for the passage of service fluids, located in the first module, are fluidly connected to the portion of the pipeline of the respective line located in a second module adjacent to the first module by means of flexible connections 37. In this way, the fluid continuity of the various lines can be ensured without structurally fixing the different modules 50a-e to each other.

[0103] Preferably, as shown in the accompanying drawings, particularly Figure 12, the support structure comprises a plurality of structural interconnections 53 between the main platform 51 of a module and each of the secondary platforms 52 of the same module 50a, 50b, 50c, 50d, 50e.

[0104] In particular, these structural interconnects 53, which are preferably vertical, may connect the secondary platform 52 directly to the main platform 51 (as shown in module 50b) or may connect the secondary platform 52 indirectly to the main platform 51 via at least one intermediate secondary platform (as shown, for example, in modules 50a and 50c).

[0105] Advantageously, as shown in Figures 8 to 11, the support structures 51, 52, 53 of each module 50a, 50b, 50c, 50d, 50e form a structurally integrated support frame, in particular in the form of a cage, inside which the concentrated mass components belonging to said module and the components with mass distributed over the length are arranged.

[0106] The secondary platforms 52 of one module may be located above and / or below the respective primary platform 51 .

[0107] Preferably, all secondary platforms 52 of a module may be located above the main platform 51, as provided in modules 50a, 50b, and 50c. In this case, the structural interconnects 53 operate primarily under compression. However, embodiments may be provided in which one or more secondary platforms 52 may be located below the main platform 51, as provided in modules 50d and 50e. In this case, some structural interconnects 53 may also operate under tension.

[0108] Preferably, each secondary platform 52 of a module is constructed from a structure that is thinner and lighter than the structure that makes up the respective primary platform 51 .

[0109] More specifically, the primary platform 51 of the module is structurally sized to support the entire weight of the respective entire module 50a, 50b, 50c, 50d, 50e. The secondary platform 52 instead performs a secondary structural function and is therefore substantially suitable for:

[0110] To ensure support for the line (a lighter component with mass distributed over its length).

[0111] It is possible to travel along the entire vertical extension of the casing and to ensure that there is access to the plant for maintenance purposes.

[0112] For these reasons, the structure forming the secondary platform 52 can be reduced to a much thinner and lighter structure compared to prior art solutions which, on the contrary, provide a platform inside a casing on each vessel deck having a structure similar to that of the vessel deck.

[0113] This preferred configuration allows for significant weight savings for the supporting structures within the casing. For example, in a 20-deck vessel, assuming the exhaust flues are divided into four modules, this means, in direct terms, that the weight can be reduced by approximately 16 decks. In general, the impact of this reduction on the overall weight of the structures within the casing can be estimated to be on the order of at least 40%.

[0114] Preferably, the sum of the mass of each main platform 51 and the mass of at least one lumped mass component 31, 32, 33, 34 (or the mass of two or more lumped mass components, if present) in each module 50a, 50b, 50c, 50d, 50e constitutes 50% or more of the total mass of the module, and more preferably constitutes 75% to 90% of the total mass of the module.

[0115] Preferably, each module 50a, 50b, 50c, 50d, 50e is configured so that its center of gravity is located close to the respective main platform 51. In other words, each module is configured so that its center of gravity is located as close as possible to a plane passing through the main elastic suspension 61. This further promotes the stability of said modules 50a, 50b, 50c, 50d, 50e within the casing. In this way, it is therefore possible to increase the vertical extension of the modules without having to use stabilizing elements connecting the modules to the casing at different heights relative to the main platform in order to damp any vibrations induced in said modules by the movements of the vessel.

[0116] Advantageously, as shown in the accompanying drawings, in the case of module 50c, the main platform 51 may extend over several planes in order to arrange several concentrated mass components at different heights inside said module, in other words the main platform 51 may comprise portions that are not coplanar with one another.

[0117] Preferably, each module 50a, 50b, 50c, 50d, 50e is structurally independent from the other modules and is mechanically connected to the casing 20 only by the main elastic suspension 61 described above.

[0118] Preferably, the primary resilient suspensions 61 of each primary platform 51 are symmetrically positioned about the center of gravity of the respective module.

[0119] According to a preferred embodiment, one or more of the lumped mass components 31, 32, 33, 34 and / or one or more of the length-distributed mass components 35, 36 may be connected to the support structures 51, 52, 53 by one or more sub-elastic suspensions 62. Preferably, as shown in particular in Figures 5 and 6, the lumped mass components 31, 32, 33, 34 are connected to the support structures 51, 52, 53 by one or more of the sub-elastic suspensions 62, while the length-distributed mass components 35, 36 are connected directly to the support structures 51, 52, 53.

[0120] In operation, the action of the secondary elastic suspension 62 sums with the action of the primary elastic suspension to further reduce the transmission of vibration and noise from the exhaust flue 30 to the casing and hence to the ship structure adjacent to said casing. Thus, a dual suspension system is formed which can be considered similar to the two-stage insulator shown diagrammatically in Figure 15.

[0121] Preferably, dual suspensions are used either when the efficiency of a single suspension is not suitable or when it is necessary to attenuate not only very low frequencies but also other frequencies, which is precisely the case in diesel engines where both the main frequency and the firing frequency are taken into account.

[0122] More specifically, as shown diagrammatically in Figure 15, a dual suspension with two degrees of freedom actually has two natural frequencies involving two masses, m1 and m2, where in the present invention m1 is an intermediate mass consisting of the sum of the mass of the main platform plus the mass of the secondary platform and the mass (distributed mass) of all rigidly connected pipelines. This mass m1 should be as large as possible compared to the mass m2 of each suspended lumped mass component, and may reach 70% of it if necessary.

[0123] Thus, in this particular case, there are two frequencies associated with the system: a lower fl and an upper fb, which are combinations of the resonant frequencies f1 and f0.

[0124] f1 is the resonant frequency of mass m1 with mass m2 considered fixed.

[0125] f0 is the resonant frequency of the system with one degree of freedom of mass m2, without taking into account mass m1.

[0126] The combination of the two frequencies to describe the system allows for calculations.

[0127] f1 is always less than f1 or f0.

[0128] For the higher frequency fb, there are two frequencies, and fb is always greater than f1 or f0.

[0129] Preferably, the above-mentioned main elastic suspension 61 and, if present, the above-mentioned secondary elastic suspension 62 are constituted by passive elastic suspensions. In particular, these passive elastic suspensions preferably comprise a decoupling component consisting of a body made of an elastomeric material, in particular rubber or silicone, a metal spring, an elastic component with a metal matrix, and / or an air spring. Figure 16 shows schematically the operating range of several types of passive suspensions, based on the type of decoupling device used.

[0130] According to a particular embodiment, the primary elastic suspension 61 and, if present, the secondary elastic suspension 62 may be constituted by:

[0131] A semi-active elastic suspension consisting of a mass damper.

[0132] or active elastic suspension.

[0133] In particular, "active elastic suspension" refers to an active vibration isolation system (AVC) that includes a suspension as well as a feedback loop consisting of a sensor (e.g., a piezoelectric accelerometer or geophone), a controller, and an actuator. The signals obtained by the highly sensitive vibration sensors are analyzed by an electronic circuit that drives an electrodynamic actuator, which instantaneously generates a counter force that compensates for the vibration. This active vibration isolation system has no resonance and no amplification of vibration at any frequency.

[0134] Advantageously, embodiments may be provided in which a combination of passive, semi-active and active elastic suspensions may be used within the same module.

[0135] In accordance with a preferred embodiment of the present invention, each module 50a, 50b, 50c, 50d, 50e is a self-supporting structure that is preferably assembled off-board. In operation, each module 50a, 50b, 50c, 50d, 50e is completely formed off-board for installation into the casing from above.

[0136] A method for constructing the vessel 1 according to the invention will now be described.

[0137] For the sake of simplicity, the overall description of the vessel 1 will not be repeated again, but reference will be made to the description provided above.

[0138] The method for building the vessel 1 according to the invention comprises at least the following operating steps: a) constructing a hull (2) having a plurality of decks (10) arranged inside the hull and having at least one casing (20) defining a cavity (21) extending vertically across the plurality of decks (10) from at least one engine room (22) to a funnel (23); b) Installing inside the casing 20 at least one exhaust flue 30 for fumes generated by one or more internal combustion engines 24 arranged in the at least one engine compartment 22, the exhaust flue 30 comprising a plurality of concentrated mass components 31, 32, 33, 34 and a plurality of components 35; 36 having mass distributed over their length, supported inside the casing by a plurality of structures 51, 52, 53.

[0139] According to the invention, the support structures 51, 52, 53 described above comprise:

[0140] a plurality of main platforms 51 each defining a main support base inside said cavity 21 and connected to the wall of the casing 20 on the deck 10 of the vessel by the interposition of a main elastic suspension 61;

[0141] A plurality of secondary platforms 52, each of which is supported directly or indirectly by only one of the main platforms 51 and defines a secondary support base located at a different height relative to the main support base defined by the corresponding main platform 51.

[0142] In the above installation step, step b), the support structures 51, 52, 53 and exhaust duct components 31, 32, 33, 34 and 35; 36 are brought together to form structurally independent modules 50a, 50b, 50c, 50d, 50e.

[0143] Each structurally independent module comprises a main platform 51, at least one concentrated mass component 31, 32, 33, 34 arranged on the main platform, one or more possible secondary platforms 52 supported by the main platform, and one or more components 35; 36 having mass distributed over their length connected to the main platform 51 and / or the one or more possible secondary platforms 52.

[0144] The main elastic suspension 61 of each main platform 51 is sized to utilize the total mass of the respective module 50a, 50b, 50c, 50d, 50e to reduce the transmission of low frequency vibrations generated by the engine and transmitted into the casing 20 by the exhaust flue 30 from the respective module 50a, 50b, 50c, 50d, 50e to the casing 20.

[0145] In accordance with a preferred embodiment of the present invention, each module 50a, 50b, 50c, 50d, 50e is a self-supporting structure that is preferably assembled off-board. In operation, each module 50a, 50b, 50c, 50d, 50e is fabricated entirely off-board for installation into the casing from above.

[0146] The present invention makes it possible to obtain many of the advantages set out herein.

[0147] The present invention also makes it possible to significantly reduce the transmission of low frequency and infrasonic vibrations from the exhaust flue to the casing and therefore to the ship's structure adjacent to the casing, without interfering with the casing or the ship's structure adjacent to the casing.

[0148] In particular, it is no longer necessary to arrange buffer spaces around the casing, thus freeing up the volume around the casing that in prior art solutions was withdrawn from valuable destinations (e.g. communal areas, restaurants, etc.) due to the strength of the vibrations emanating from the casing and the structural noise generated by the vibrations.

[0149] In addition, the technical solution that is the subject of the present invention can be implemented at substantially the same cost as conventional solutions, in particular without the need to interfere with the structure of the ship, but only by reconfiguring the structures within the casing.

[0150] Advantageously, the present invention, in particular the support structure within the casing and the division of the exhaust flue into modules, allows the design of the exhaust flue greater freedom by being less constrained to the deck of the vessel.

[0151] According to a preferred embodiment, the internal structure of the casing is constructed as structurally dependent modules, which reduces onboard weight and reduces the centre of gravity height, benefiting the stability of the vessel.

[0152] By dividing the structure within the casing into structurally independent modules, assembly methods can be applied that reduce assembly and installation costs.

[0153] The invention thus conceived therefore achieves the set objectives.

[0154] Of course, when put into practice, the invention may assume embodiments and configurations other than those illustrated above, without thereby departing from the present scope of protection.

[0155] Furthermore, all details may be substituted with technically equivalent elements and any dimensions, shapes and materials may be used according to requirements.

Claims

1. The hull (2) and a plurality of decks (10) disposed inside the hull (2); at least one casing (20) defining a cavity (21) extending vertically across said plurality of decks (10) from at least one engine compartment (22) to a funnel (23); At least one exhaust flue (30) for fumes generated by one or more internal combustion engines (24) arranged in the at least one engine compartment (22), the exhaust flue (30) being installed inside the casing (20) and comprising a plurality of components (31, 32, 33, 34) having concentrated mass and a plurality of components (35, 36) having mass distributed over a length; a plurality of support structures (51, 52, 53) suitable for supporting, inside the casing (20), the plurality of components (31, 32, 33, 34) having concentrated mass and the plurality of components (35, 36) having length-distributed mass; Equipped with The support structure includes: a plurality of main platforms (51), each defining a main support base inside said cavity (21) and connected to the wall of said casing (20) on the deck (10) of the vessel by the interposition of a main elastic suspension (61); a plurality of secondary platforms (52) each defining a secondary support base that is supported directly or indirectly by only one of the primary platforms (51) and that is positioned at a different height relative to the primary support base defined by the corresponding primary platform (51); The present invention is characterized by comprising: At least one of the lumped mass components (31, 32, 33, 34) is disposed on each main platform (51); an assembly consisting of a main platform (51), a corresponding at least one of said lumped mass components (31, 32, 33, 34), one or more secondary platforms (52) supported by said main platform, and one or more components (35; 36) with a mass distributed over length connected to said main platform (51) and / or one or more secondary platforms (52) constitutes a structurally independent module (50a, 50b, 50c, 50d, 50e); The main elastic suspension (61) of each main platform (51) is sized to utilize the total mass of each module (50a, 50b, 50c, 50d, 50e) to reduce transmission of low-frequency vibrations generated by the internal combustion engine and transmitted to the interior of the casing (20) by the exhaust flue (30) from each module (50a, 50b, 50c, 50d, 50e) to the casing (20).

2. the vibrations comprise vibrations at a fundamental rotational frequency of the internal combustion engine and vibrations at a firing frequency of the internal combustion engine; 2. The watercraft of claim 1, wherein the fundamental rotational frequency of the internal combustion engine is between 7 and 30 Hz and the firing frequency of the internal combustion engine is between 40 and 150 Hz.

3. At least one module (50a, 50c) comprises two or more lumped mass components (31, 32, 33, 34); 3. A vessel according to claim 1 or 2, wherein the two or more lumped mass components are arranged on the main platform (51) of the module.

4. 4. A vessel according to any one of claims 1 to 3, wherein the main platform (51) of a module (50c) may comprise non-coplanar portions.

5. The marine vessel of any one of claims 1 to 4, wherein the plurality of lumped mass components of the exhaust flue include at least one SCR device (31).

6. 6. The marine vessel of any one of claims 1 to 5, wherein the plurality of lumped mass components of the exhaust flue comprise at least one exhaust gas boiler (32).

7. 7. The marine vessel of claim 1, wherein the plurality of lumped mass components of the exhaust flue include at least one scrubber (33).

8. 8. The marine vessel of any one of claims 1 to 7, wherein the plurality of lumped mass components of the exhaust flue include at least one silencer (34).

9. 9. A vessel according to any one of claims 1 to 8, wherein the plurality of components having a mass distributed over the length of the exhaust flue comprise portions of a pipeline (35) for the passage of exhaust gases.

10. one or more lines for the passage of a service fluid; 10. A ship according to any one of claims 1 to 9, wherein portions of the one or more lines of pipeline (36) for the passage of the service fluid are installed inside the casing (20) and connected to the support structure (51, 52, 53) as additional components having a mass distributed over their length.

11. A vessel as described in claim 10, wherein each module (50a, 50b, 50c, 50d, 50e) comprises one or more portions of the pipeline (36).

12. 12. A ship according to claim 10 or 11, wherein the portion of the pipeline (35) for the passage of exhaust gases and the portion of the pipeline (36) of one or more lines for the passage of the service fluid, located in a first module, are fluidly connected by flexible connections (37) to the portion of the pipeline of the respective line, located in a second module adjacent to the first module.

13. 13. The vessel according to any one of claims 1 to 12, wherein the main elastic suspensions (61) of each main platform (51) are arranged symmetrically with respect to the centre of gravity of the respective module (50a, 50b, 50c, 50d, 50e).

14. the support structure comprises a plurality of structural interconnections (53) between the main platform (51) of a module and each of the secondary platforms (52) of the same module (50a, 50b, 50c, 50d, 50e); 14. The vessel of any one of claims 1 to 13, wherein the structural interconnection (53) is vertical and connects the secondary platform (52) directly to the main platform (51) or indirectly to the main platform (51) via at least one intermediate secondary platform.

15. 15. A vessel according to any one of the preceding claims, wherein the secondary platforms (52) of a module are arranged above and / or below the respective main platform (51).

16. 16. A vessel according to any one of claims 1 to 15, wherein each of the secondary platforms (52) of a module is constructed of a structure that is thinner and lighter than the support structure that constitutes the respective main platform (51).

17. 17. The watercraft of any one of claims 1 to 16, wherein in a module (50a, 50b, 50c, 50d, 50e), the sum of the mass of each main platform (51) and the mass of at least one lumped mass component (31, 32, 33, 34) constitutes 50% or more of the total mass of the module (50a, 50b, 50c, 50d, 50e).

18. 18. A vessel according to any one of the preceding claims, wherein the centres of gravity of the modules are located near the respective main platforms (51).

19. 19. A vessel according to any one of the preceding claims, wherein one or more of the lumped mass components (31, 32, 33, 34) and / or one or more of the components (35; 36) with mass distributed over length are connected to the support structure (51, 52, 53) by one or more secondary elastic suspensions (62).

20. 20. The vessel according to any one of claims 1 to 19, wherein the main elastic suspension (61) comprises a decoupling component made of a body made of elastomeric material or silicone, a metal spring, an elastic component with a metal matrix, and / or a passive elastic suspension consisting of an air spring.

21. A vessel as described in claim 20, which cites claim 19, wherein the secondary elastic suspension (62) comprises a passive elastic suspension consisting of a decoupling component made of a body made of an elastomeric material or silicone, a metal spring, an elastic component having a metal matrix, and / or an air spring.

22. 20. A vessel according to any one of the preceding claims, wherein the main elastic suspension (61) comprises a semi-active elastic suspension.

23. A vessel as described in claim 22, which cites claim 19, wherein the secondary elastic suspension (62) comprises a semi-active elastic suspension.

24. 20. A vessel according to any one of the preceding claims, wherein the main elastic suspension (61) comprises an active elastic suspension.

25. A vessel as described in claim 24, which cites claim 19, wherein the secondary elastic suspension (62) comprises an active elastic suspension.

26. 26. A vessel according to any one of claims 1 to 25, wherein each module (50a, 50b, 50c, 50d, 50e) is structurally independent of the other modules and is mechanically connected to the casing (20) only by the main elastic suspension (61).

27. (a) constructing a hull (2) having a plurality of decks (10) disposed within the hull (2) and at least one casing (20) defining a cavity (21) extending vertically across the plurality of decks (10) from at least one engine room (22) to a funnel (23); (b) providing, inside said casing (20), at least one exhaust flue (30) for fumes generated by one or more internal combustion engines (24) disposed in said at least one engine compartment (22); Equipped with The exhaust flue (30) comprises a plurality of components (31, 32, 33, 34) having concentrated mass and a plurality of components (35, 36) having mass distributed over length, the components being supported within the casing by a plurality of support structures (51, 52, 53); The support structure (51, 52, 53) a plurality of main platforms (51), each defining a main support base inside said cavity (21) and connected to the wall of said casing (20) on the deck (10) of the vessel by the interposition of a main elastic suspension (61); a plurality of secondary platforms (52) each defining a secondary support base that is supported directly or indirectly by only one of the primary platforms (51) and that is positioned at a different height relative to the primary support base defined by the corresponding primary platform (51); The present invention is characterized by comprising: In the installation step (b), the support structure (51, 52, 53) and the exhaust flue components (31, 32, 33, 34; 35; 36) are aggregated to form structurally independent modules (50a, 50b, 50c, 50d, 50e), Each structurally independent module comprises a main platform (51), at least one lumped mass component (31, 32, 33, 34) arranged on said main platform, optionally one or more secondary platforms (52) supported by said main platform, and one or more components (35; 36) with a mass distributed over length connected to said main platform (51) and / or optionally to said one or more secondary platforms (52), 1. A method for constructing a ship (1), wherein the main elastic suspensions (61) of each main platform (51) are sized to utilize the total mass of each module (50a, 50b, 50c, 50d, 50e) to reduce transmission from each module (50a, 50b, 50c, 50d, 50e) to the casing (20) of low frequency vibrations generated by the internal combustion engine and transmitted to the interior of the casing (20) by the exhaust flue (30).

28. The method described in claim 27, wherein each module (50a, 50b, 50c, 50d, 50e) is a self-supporting structure assembled outside the ship.

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