Silencer for an exhaust gas section of a fuel cell system
The silencer addresses moisture-related noise issues in fuel cell systems by integrating a water separator and sound-absorbing chamber with a flow guide, ensuring effective dehumidification and noise reduction in a compact, cost-effective design.
Patent Information
- Application Number
- PCT/EP2025/065813
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2025-06-05
- Filing Date
- 2025-06-06
- Publication Date
- 2025-12-11
AI Technical Summary
Existing silencers for fuel cell systems face issues with moisture condensation leading to noise generation and functional impairment, requiring complex designs with large volumes and high costs.
A silencer design featuring a water separator and sound-absorbing chamber with a flow guide device that includes a widening element and backflow channel, combined with a labyrinthine path and sound-absorbing material, to dehumidify exhaust gas and reduce noise effectively.
The silencer achieves reliable noise reduction while preventing moisture-related impairments, simplifying design and reducing installation space and costs by efficiently separating and draining condensate.
Smart Images

Figure EP2025065813_11122025_PF_FP_ABST
Abstract
Description
[0001] Description
[0002] Silencer for an exhaust system of a fuel cell system
[0003] The present invention relates to a silencer for an exhaust system of a fuel cell system with the features of claim 1. The invention further relates to a fuel cell system with the features of claim 15.
[0004] A fuel cell converts the chemical reaction energy of a continuously supplied fuel, such as hydrogen, and an oxidant, such as oxygen, into electrical energy. Fuel cells are used, for example, in fuel cell vehicles to directly convert the generated electrical energy into motion via an electric drive or to temporarily store it in a traction battery. Besides hydrogen, fuel cells can also use other fuels, particularly methanol, butane, or natural gas.
[0005] Several mechanical devices are used in a fuel cell system to supply the fuel and oxidizer. These devices generate noise during operation, which can be perceived as disturbing. To reduce the noise generated in the fuel cell system, silencers are installed within the system, for example, in the exhaust system.
[0006] The silencers used in this context can be based on the reflection principle or the absorption principle. A reflection silencer consists of one or more chambers in which the sound can propagate. The sound waves can be reflected at changes in cross-section and at open pipe or duct ends, resulting in a loss of some sound energy. One type of reflection silencer, for example, can have several chambers of different sizes connected to each other, e.g., by a perforated pipe running through the chambers. The sound waves are reflected within the chambers. The coupling of the individual chambers creates so-called resonators, in which the sound waves are reflected, partially cancel each other out according to the interference principle, and are thus attenuated.Individual chambers can be adapted to a specific frequency range to be attenuated by their size and / or the perforation pattern in the pipe. Generally, the greater the number of chambers, the more efficient the attenuation. Another type of reflection silencer can consist of several pipes nested within each other, with the annular gaps between the pipes forming a labyrinthine propagation path for the sound waves, along which some of the sound energy is dissipated. An absorption silencer typically has only one chamber containing a perforated pipe. The chamber is filled with a sound-absorbing material, such as long-fiber mineral wool. The sound waves penetrate the perforated pipe and enter the sound-absorbing material, where they are converted into heat through friction.The achieved damping depends on the material used, the packing density, the length and layer thickness of the chamber.
[0007] The exhaust gas produced during the power generation reaction in a hydrogen-oxygen fuel cell, which is primarily discharged from the fuel cell's cathode, contains water (mostly in the form of water vapor and water droplets) and has an exhaust gas temperature of around 80 °C. Because the exhaust gas temperature is below the boiling point of water, the water is difficult to evaporate and remove. However, if excessively moist exhaust gas enters the silencer, the water vapor condenses, particularly on the silencer's surfaces, negatively impacting its function—regardless of whether it operates on the reflection or absorption principle. In unfavorable cases, the moisture accumulated in the silencer can generate additional noise, which is perceived as unpleasant.
[0008] To counteract this problem, US Patent 2013 175114 A1 proposes a hybrid silencer in which a dehumidification chamber, essentially completely filled with a water-absorbing material, is placed upstream of a sound-absorbing device based on the reflection principle. However, to ensure adequate dehumidification, the dehumidification chamber must have a significantly larger volume than the silencer device. Nevertheless, the exhaust gas can only be dehumidified to a certain extent in the dehumidification chamber, so the condensate that continues to form in the silencer device must be absorbed by a portion of the water-absorbing material that extends into the silencer device. Furthermore, the water absorbed by the water-absorbing material cannot be easily discharged but usually has to be pumped out.Overall, this results in a relatively complex design for the hybrid silencer, which takes up a relatively large amount of installation space and is expensive to manufacture and operate.
[0009] The object of the present invention is therefore to provide a silencer for the exhaust system of a fuel cell system, with which a reliable reduction of the noise associated with the operation of the fuel cell system can be achieved while at least partially avoiding the disadvantages of the prior art. At the very least, an alternative to existing solutions should be provided. Furthermore, it is an object of the present invention to provide a fuel cell system with such a silencer.
[0010] This problem is solved by a silencer having the features of claim 1 and a fuel cell system having the features of claim 15. Preferred features are the subject of the dependent claims. Further advantages and features can be found in the general description and the exemplary embodiments.
[0011] The silencer according to the invention for an exhaust stream of a fuel cell system has a cavity through which an exhaust gas flow from the fuel cell system can flow along a flow path from an inlet opening of the cavity to an outlet opening of the cavity. Furthermore, the silencer has a sound-absorbing device arranged within the cavity for reducing noise from the exhaust gas flow. The sound-absorbing device has a sound-absorbing chamber extending longitudinally and radially bounded by an inner wall of the housing, through which the exhaust gas flow can flow from an inlet opening to an outlet opening of the sound-absorbing chamber. A flow guide device is arranged within the sound-absorbing chamber, which has a widening element arranged downstream of the inlet opening for radially widening at least a portion of the exhaust gas flowing through the inlet opening towards the inner wall.Furthermore, the flow guide forms a backflow channel downstream of the expansion element, within which a flow path is provided for the exhaust gas stream, the flow direction of which runs opposite to the main flow direction. The silencer also has a water separator for separating water from the exhaust gas stream. The water separator has at least one water separation chamber and is also arranged within the cavity and upstream of the silencer, so that the exhaust gas stream flowing in through the inlet opening must first pass through the water separator, in particular the entire water separator, before the exhaust gas stream flows into the silencer.
[0012] The exhaust gas stream, which is drawn off, for example, from the cathode of a fuel cell in the fuel cell system and fed directly or indirectly to the silencer, can flow into the water separation chamber through the cavity's inlet opening. Specifically, the cavity's inlet opening simultaneously serves as the inlet opening of the water separation chamber. The exhaust gas stream is dehumidified in the water separation chamber, thus reducing or completely preventing any impairment of the downstream silencer's function due to excessively moist exhaust gas. Depending on the silencer's installation position, the condensed water collects by gravity in a known area of the water separation chamber and can be easily drained from there, either actively or passively.
[0013] A "water separator" is understood to be a device primarily used to separate water (and / or another liquid) from the exhaust gas. A soundproofing device is therefore not considered a water separator, even if some condensation and moisture removal also occur in the soundproofing chamber.
[0014] Due to its design, the sound-absorbing device acts as a reflection silencer. The flow guide creates a labyrinthine path for the exhaust gas flow, along which the exhaust gas flow is deflected at least twice, thereby absorbing some of its sound energy. Preferably, the expansion element is aligned with the inlet opening. The expansion element can be perforated or non-perforated.
[0015] The terms upstream and downstream always refer to the main flow direction.
[0016] In a preferred embodiment of the silencer according to the invention, the flow guide device has a first pipe section arranged upstream of the outlet opening of the sound-absorbing chamber, which opens into the outlet opening. This simple design allows the flow path for the exhaust gas stream to be easily extended. The first pipe section preferably has a length corresponding to one-third to two-thirds of the total length of the sound-absorbing chamber.
[0017] In a further preferred embodiment of the silencer according to the invention, the expansion element is connected on its downstream side to a second pipe section of the flow guide device, wherein the second pipe section is configured to define an annular gap on its outer surface for the portion of the exhaust gas flow expanded by the expansion element. With this simple design, a particularly circumferential outer flow channel can be formed, which guides the exhaust gas flow close to the inner wall of the housing. In this way, a space is created behind the expansion element and within the pipe section in which the exhaust gas flow can be directed in the opposite direction to the main flow direction. In particular, the first pipe section and / or the second pipe section have a constant or variable diameter along the longitudinal direction.Preferably, the first pipe section and / or the second pipe section are arranged coaxially to each other.
[0018] In a further preferred embodiment of the silencer according to the invention, the second pipe section at least partially surrounds the first pipe section, such that the backflow channel is formed in a longitudinal section of the sound attenuation chamber between the pipe sections. The backflow channel can be an annular gap bounded by an outer surface of the first pipe section and an inner surface of the second pipe section.
[0019] Preferably, the sound attenuation chamber, the expansion element, the backflow channel, the first pipe section and / or the second pipe section extend rotationally symmetrically around a common longitudinal center axis of the silencer. In this way, a particularly compact design can be achieved.
[0020] In a further preferred embodiment of the silencer according to the invention, the inner wall bounding the sound-absorbing chamber is lined with a layer of sound-absorbing material. This creates a silencer that combines the absorption and reflection principles in a compact design. Upon entering the sound chamber, the exhaust gas flow is directed by the expansion element to the sound-absorbing material, where it can interact. The distance over which the exhaust gas flow interacts with the sound-absorbing material can be further extended by the aforementioned second pipe section, which guides the exhaust gas flow close to the inner wall. The layer of sound-absorbing material can be held in the immediate vicinity of the inner wall by a fluid-permeable support structure comprising one or more support elements.In one embodiment, the layer of sound-absorbing material can be arranged between the inner wall and a perforated tube as a holding structure. In an alternative embodiment, the layer of sound-absorbing material can be held in place near the inner wall by a grid structure or wire mesh. The layer of sound-absorbing material preferably extends along the entire length of the sound-absorbing chamber, completely surrounding the flow guide device.
[0021] In a further preferred embodiment of the silencer according to the invention, the expansion element has a perforated area that is aligned with the inlet opening. This allows a small portion of the exhaust gas flow to pass through the expansion element, thus reducing the flow resistance of the flow guide device. Preferably, a further layer of sound-absorbing material is arranged downstream of the perforated area. In this way, the portion of the exhaust gas flowing through the expansion element can interact with sound-absorbing material. Preferably, the layer of sound-absorbing material is aligned with the perforated area. In particular, the layer of sound-absorbing material borders directly on the perforated area.
[0022] In a further preferred embodiment of the silencer according to the invention, the silencer device has, downstream of the silencer chamber, a further silencer chamber extending along the longitudinal direction and radially bounded by the inner wall of the housing, through which the exhaust gas flow can flow from an inlet opening to an outlet opening of the further silencer chamber, wherein a further flow guide device is arranged within the further silencer chamber, wherein the further flow guide device has a further expansion element arranged downstream of the inlet opening for radially expanding at least a part of the exhaust gas flow flowing through the inlet opening in the direction of the inner wall, wherein the further flow guide device forms a further backflow channel downstream of the further expansion element, within which a further flow path for the exhaust gas flow is provided.whose flow direction is opposite to the main flow direction. The additional flow guide device enhances sound attenuation according to the reflection principle, which contributes to excellent noise reduction.
[0023] The additional flow guide device can be designed similarly to the flow guide device described above in order to achieve the corresponding advantages.
[0024] In a further preferred embodiment of the silencer according to the invention, the further flow guide device has a first pipe section arranged upstream of the outlet opening of the further sound-absorbing chamber, which opens into the outlet opening. The first pipe section preferably has a length corresponding to one-third to two-thirds of the total length of the further sound-absorbing chamber.
[0025] In a further preferred embodiment of the silencer according to the invention, the expansion element of the further flow guide device is connected on its downstream side to a second pipe section of the further flow guide device, wherein the second pipe section is designed to limit an annular gap for the part of the exhaust gas flow expanded by the expansion element from the inside with its outer surface.
[0026] In a further preferred embodiment of the silencer according to the invention, the first pipe section and / or the second pipe section of the further silencer device have a constant or variable diameter along the longitudinal direction. Preferably, the first pipe section and / or the second pipe section of the further silencer device are arranged coaxially to each other.
[0027] In a further preferred embodiment of the silencer according to the invention, the second pipe section of the further silencer device at least partially surrounds the first pipe section of the further silencer device, such that the backflow channel is formed in a longitudinal section of the further silencer chamber between the pipe sections. The backflow channel can be an annular gap bounded by an outer surface of the first pipe section and an inner surface of the second pipe section.
[0028] Preferably, the further sound damping chamber as well as the expansion element, the backflow channel, the first pipe section and / or the second pipe section of the further sound damping device extend rotationally symmetrically around the common longitudinal center axis of the silencer.
[0029] In a further preferred embodiment of the silencer according to the invention, the inner wall bounding the further sound-absorbing chamber is lined with a layer of sound-absorbing material. Upon entering the further sound chamber, the exhaust gas flow is guided by the expansion element to the sound-absorbing material, where it can interact. The distance over which the exhaust gas flow interacts with the sound-absorbing material can be further extended by the aforementioned second pipe section, which guides the exhaust gas flow close to the inner wall. The layer of sound-absorbing material can be held in the vicinity of the inner wall by a fluid-permeable retaining structure comprising one or more support elements. In one embodiment, the layer of sound-absorbing material can be arranged between the inner wall and a perforated pipe as a retaining structure.In an alternative embodiment, the layer of sound-absorbing material can be held in place near the inner wall by a grid structure or wire mesh. The layer of sound-absorbing material preferably extends along the entire length of the additional sound-absorbing chamber, completely surrounding the additional flow guide. This design, with at least two sound-absorbing chambers lined with sound-absorbing material, directs the exhaust gas flow over a longer distance along the absorbing material, resulting in optimal noise reduction.
[0030] In a further preferred embodiment of the silencer according to the invention, the expansion element of the additional silencer device has a perforated area that is aligned with the inlet opening. This allows a small portion of the exhaust gas flow to pass through the expansion element, thus reducing the flow resistance of the flow guide device. Preferably, a further layer of sound-absorbing material is arranged downstream of the perforated area. In this way, the portion of the exhaust gas flowing through the expansion element can interact with sound-absorbing material. Preferably, the layer of sound-absorbing material is aligned with the perforated area. In particular, the layer of sound-absorbing material borders directly on the perforated area.
[0031] In a further preferred embodiment of the silencer according to the invention, the water separator device has a baffle element arranged in the water separator chamber for radially widening an exhaust gas flow entering through the inlet opening, and a funnel-shaped guide element downstream of the baffle element for radially narrowing the exhaust gas flow widened by the baffle element.
[0032] In the water separation chamber, the exhaust gas flow is first widened by the baffle element and then narrowed again by the downstream funnel-shaped guide element before being directed to the silencer. This ensures that the exhaust gas flow is guided along the largest possible surface area within the water separation chamber, allowing any water contained in the exhaust gas to condense. The water can condense on the baffle element, the funnel-shaped guide element, and on a wall bordering the water separation chamber, particularly a wall of the silencer housing. This results in a high degree of dehumidification, thus reducing or completely preventing any impairment of the downstream silencer's function caused by excessively moist exhaust gas.The design of the water separation chamber eliminates the need for water-absorbing material, thus simplifying the construction of the silencer. Preferably, the baffle element has a cross-section that increases continuously from its upstream end to its downstream end. This results in a gradual radial expansion of the exhaust gas flow at the outer surfaces of the baffle element. To promote a uniform and quiet flow, the baffle element can be at least partially rotationally symmetrical. The baffle element can have a conical, frustoconical, or paraboloid shape. The upstream end of the baffle element can be designed as a rounded tip. Preferably, the baffle element is hollow – e.g.,in the form of a cap with its tip aligned towards the inlet opening, which reduces the material costs and weight of the silencer.
[0033] The funnel-shaped guide element defines a flow channel from its upstream end to its downstream end, with a flow cross-section that decreases continuously. In this way, the exhaust gas flow, which has been widened by the baffle element, is recaptured, and the funnel shape reduces or even prevents the formation of turbulence, such as that which often occurs in the vicinity of sharp corners. This reduces pressure loss in the silencer. Furthermore, water that condenses on the funnel-shaped guide element can slide along its surface due to gravity and thus be discharged, for example, to a drain opening in the water separation chamber. To promote a laminar and low-noise flow, the funnel-shaped guide element can be rotationally symmetrical.In particular, the funnel-shaped guide element has a concave surface along which the exhaust gas flow can pass. This promotes a laminar and low-noise flow and increases the available condensation surface. Specifically, the baffle element and the funnel-shaped guide element are spaced apart from each other in the longitudinal direction of the silencer, i.e., in the main flow direction of the exhaust gas stream.
[0034] In a preferred embodiment of the silencer according to the invention, the cross-section of the baffle element at its downstream end is larger than the flow cross-section of the inlet opening. In this way, the exhaust gas flow is expanded into a large volume and can be guided along a large condensation surface.
[0035] In a further preferred embodiment of the silencer according to the invention, the baffle element is designed to generate a swirl in the exhaust gas flow. Preferably, the baffle element has one or more guide elements, e.g., in the form of guide vanes, which, by their shape, cause the exhaust gas flow along the baffle element to swirl around an axis of rotation parallel to the longitudinal direction of the silencer or to the main flow direction of the exhaust gas flow. The swirl motion curves and thus lengthens the flow path of the exhaust gas flow, thereby further promoting dehumidification. Alternatively or additionally, the baffle element can also have one or more recesses as guide elements.
[0036] Preferably, the funnel-shaped guide element is designed to direct the constricted exhaust gas flow to the silencer device. This allows for a particularly compact silencer design, eliminating the need for additional exhaust gas flow guide structures.
[0037] In a further preferred embodiment of the silencer according to the invention, the funnel-shaped guide element forms a partition between the water separation chamber and the sound attenuation chamber and / or the sound attenuation pre-chamber. In this way, the two chambers are separated at least partially, preferably completely, by one and the same structure, which makes a particularly compact design of the silencer possible, especially with a direct transition from the water separation chamber to the sound attenuation chamber.
[0038] In a further preferred embodiment of the silencer according to the invention, the silencer has a condensation screen that divides or separates the water separation chamber into two sub-chambers. In this way, the exhaust gas flow is forced to pass through the condensation screen arranged in the water separation chamber. The water contained in the exhaust gas flow can condense on the screen material, thereby further increasing the dehumidification efficiency of the water separation device. In particular, the screen material consists of a mesh, wire mesh, wire grid, and / or perforated sheet metal. Preferably, the condensation screen has a mesh size of at least 160 µm, more preferably at least 300 µm, particularly preferably at least 500 µm, and a maximum of 1000 µm, preferably a maximum of 900 µm. Surprisingly, it has been found that good dehumidification results can be achieved with such mesh sizes.Preferably, the condensation screen is arranged downstream of the baffle element, so that the exhaust gas flow is already expanded and guided along the largest possible condensation surface before it encounters the condensation screen. Particularly preferably, the condensation screen is arranged at least partially within the funnel-shaped guide element. In this way, the exhaust gas flow is directed by the funnel-shaped guide element onto the condensation screen and compressed before passing through it, thus reducing pressure loss due to the flow resistance of the condensation screen. Preferably, the condensation screen has a cylindrical shape. This simple design allows the condensation screen to be optimally positioned in the water separation chamber between the baffle element and the funnel-shaped guide element.Preferably, the condensation screen is mounted on a support structure that separates the baffle element from the funnel-shaped guide element. The support structure can have one or more support elements (e.g., in the form of support struts) extending longitudinally along the silencer or in the main flow direction of the exhaust gas stream. Preferably, the silencer has at least one heating element for heating the condensation screen. This ensures that the fine-mesh condensation screen does not freeze at low ambient temperatures. To provide efficient heating, the at least one heating element for heating the condensation screen is preferably arranged on or within the support structure on which the condensation screen is mounted. Preferably, the funnel-shaped guide element has a bypass that provides a flow path from the water separation chamber to the sound attenuation chamber, bypassing the condensation screen.The bypass is preferably dimensioned so that, in the event that the condensation screen is clogged (e.g. by frozen condensate), it provides an alternative channel for the exhaust gas flow.
[0039] In a further preferred embodiment of the silencer according to the invention, the silencer device has a silencer pre-chamber downstream of the water separation chamber and upstream of the silencer chamber. This improves noise reduction by providing an additional opportunity for the reflection, expansion, and absorption of sound waves. Preferably, the silencer pre-chamber is separated from a flow channel, through which the exhaust gas entering the silencer from the water separation device is directed, by means of a fluid-permeable perforated pipe section. The size of the silencer chamber and / or the perforation pattern in the pipe section can be adapted to a specific frequency range to be attenuated.In particular, an upstream end of the pipe section is connected to the funnel-shaped guide element such that the pipe interior is in fluid-conducting communication with the water separation chamber. Preferably, a downstream end of the pipe section opens into the sound-absorbing chamber. The sound-absorbing pre-chamber can be designed as either a reflection silencer or an absorption silencer. Preferably, the sound-absorbing pre-chamber is a reflection silencer. This allows for simple supplementary dehumidification within the sound-absorbing device by condensation of the water contained in the exhaust gas on the surfaces of the walls of the sound-absorbing chamber.
[0040] In a further preferred embodiment of the silencer according to the invention, the silencer device has a funnel-shaped condensation element arranged in the silencer chamber and / or in the further silencer chamber. The portion of the exhaust gas flow, expanded by the expansion element, can condense on the surface of this condensation element before being directed into the return flow channel. The funnel-shaped condensation element preferably has a flow cross-section that decreases continuously from its upstream end to its downstream end. The funnel shape reduces or even prevents the formation of turbulence, such as that which often occurs in the area of sharp corners. This reduces pressure loss in the silencer. To promote laminar and low-noise flow, the funnel-shaped condensation element can be rotationally symmetrical.In particular, the funnel-shaped condensation element has a concave surface along which the exhaust gas stream can flow. This promotes a laminar and quiet flow and increases the available condensation surface.
[0041] In a further preferred embodiment of the silencer according to the invention, the cavity extends along a longitudinal central axis and, in particular, rotationally symmetrically about the longitudinal central axis, wherein the water separator and the sound-absorbing device are arranged centered on the longitudinal central axis. Thus, the exhaust gas flow only needs to change its direction slightly when transitioning from the water separator to the sound-absorbing device, thereby promoting a uniform and quiet exhaust gas flow. Furthermore, a compact silencer design can be achieved in this way. In particular, the inlet and outlet openings are arranged centered on the longitudinal central axis. Preferably, the cavity is at least partially, and more preferably completely, cylindrical or composed of several coaxially aligned cylindrical sub-cavities.
[0042] In a further preferred embodiment of the silencer according to the invention, the silencer has a housing that at least partially delimits the cavity, wherein the housing delimits at least the outer surface(s) of the cavity, wherein the silencer has a structure that can be assembled from modules or formed in one piece and can be inserted into the housing as a whole, wherein the structure together with the housing forms the water separator and the sound attenuation device. The housing can provide at least one insertion opening through which the structure can be inserted into the housing. The insertion opening can be closed by means of a separate cover. Alternatively, a part of the structure can form the cover and close the insertion opening when the structure is inserted into the housing. In particular, the structure comprises the impact element, the funnel-shaped guide element, and the flow guide device. The structure can, for example,a support structure that attaches the impact element to the funnel-shaped guide element at a distance from the funnel-shaped guide element and / or attaches the flow guide device to the funnel-shaped guide element.
[0043] Preferably, the housing and / or structure consists predominantly of a material that is a thermoplastic.
[0044] In a further preferred embodiment of the silencer according to the invention, the silencer has a water collection chamber that at least partially surrounds the water separation chamber. This water collection chamber is connected to the water separation chamber via a drain opening in such a way that water separated from the exhaust gas stream can flow out of the water separation chamber, particularly by gravity, into the water collection chamber and be collected there. In this way, the separated water is removed from the water separation chamber, thus preventing water accumulation in the water separation device, which could otherwise negatively affect dehumidification. Furthermore, this prevents the accumulated water from being transported by the exhaust gas stream towards the silencer and impairing its function.Reliable water drainage from the water separation chamber is crucial for the silencer's function, as approximately 0.5 liters of water can be separated from the exhaust gas during full-load operation of a 100 kW fuel cell. The water collected in the water collection chamber can be easily drained, either actively (e.g., via a pump) or passively (e.g., by gravity) through a discharge opening. The water collection chamber only needs to surround a small portion of the water separation chamber—for example, a section located at the bottom relative to gravity. Therefore, the water collection chamber can have a significantly smaller internal volume than the water separation chamber. Preferably, the cavity and the water collection chamber are separated by a cavity wall, resulting in a compact silencer design.
[0045] The silencer can be oriented in an installation position relative to the direction of gravity such that its main flow direction or longitudinal axis runs either perpendicular or parallel to the direction of gravity, which may necessitate different designs for the water separation chamber. If the silencer is intended for an installation position in which the main flow direction runs parallel to the direction of gravity, it is preferred that the main flow direction runs against the direction of gravity. This can result in improved dehumidification properties, as any condensate that forms flows back towards the inlet opening of the silencer or towards the water separation chamber and does not accumulate in the soundproofing chamber(s).In this case, it is further preferred that certain internal components of the silencer are provided with openings at suitable positions to allow the unimpeded flow of the separated or condensed water from the silencer chamber(s) into the water separation chamber. To aid condensate drainage, the inner wall of the housing can be designed with a structured surface, e.g., a textured and / or ribbed structure. The structured surface ensures that a small gap remains between the inner wall and any sound-absorbing material present, through which the condensed water can drain more easily in the direction of gravity. The ribs of a ribbed structure preferably run parallel to the direction of gravity.In a further preferred embodiment of the silencer according to the invention, the water collection chamber also surrounds the sound-absorbing chamber at least partially and is connected to the sound-absorbing chamber via an opening such that water condensed from the exhaust gas stream can flow from the sound-absorbing chamber into the water collection chamber, particularly by gravity. In this way, the separated water is drained from the sound-absorbing chamber, thus preventing water accumulation in the silencer, which could otherwise negatively affect noise reduction. Preferably, the water collection chamber extends along at least half, and preferably at least two-thirds, of the total length of the cavity. This increases the water collection capacity of the chamber. Furthermore, a compact design of the silencer can be achieved.
[0046] In a further preferred embodiment of the silencer according to the invention, the silencer has a heating element for heating at least a portion of a wall bounding the water collection chamber. This ensures drainage of the water even at low ambient temperatures, where freezing of the condensate is to be expected. The heating element can extend along at least half, preferably at least two-thirds, of the total length of the water collection chamber. Preferably, the heating element is embedded in a region of the wall bounding the water collection chamber surrounding the discharge opening.
[0047] In a further preferred embodiment of the silencer according to the invention, the silencer has a further condensation screen to assist dehumidification, dividing or separating the sound-absorbing chamber or the further sound-absorbing chamber into two sub-chambers. Preferably, the further condensation screen is arranged in the chamber furthest downstream. The further condensation screen can be designed essentially like the condensation screen described above. In particular, a mesh, wire fabric, wire grid, and / or perforated sheet forms the screen material of the further condensation screen. Preferably, the further condensation screen has a mesh size of at least 160 pm, more preferably at least 300 pm, particularly preferably at least 500 pm, and a maximum of 1000 pm, more preferably a maximum of 900 pm. Preferably, the further condensation screen is located between the first and the second pipe section of the sound-absorbing chamber or the further condensation screen.The condensation screen is arranged between the first and second pipe sections of the sound-absorbing chamber and between the first and second pipe sections of the second sound-absorbing chamber. In this way, the exhaust gas flow is forced to pass through the condensation screen located in the sound-absorbing chamber and the second sound-absorbing chamber, respectively. The water contained in the exhaust gas flow can condense on the screen material, further increasing the dehumidification efficiency of the water separator. Preferably, the second condensation screen is cylindrical in shape. Preferably, the second condensation screen is mounted on a support structure that separates the first pipe section from the second pipe section. Preferably, the silencer has at least one additional heating element for heating the second condensation screen. This ensures that the fine-mesh second condensation screen does not freeze at low ambient temperatures.In order to provide favorable heating performance, at least one additional heating element for heating the further condensation screen is preferably arranged on or in the support structure on which the further condensation screen is mounted.
[0048] The silencer can be provided with a nozzle in the area of the inlet opening and in the area of the outlet opening, to which an exhaust pipe section of the exhaust system can be attached.
[0049] As described above and below, the problem set out at the beginning is also solved by a fuel cell system with the features of claim 15.
[0050] The fuel cell system according to the invention comprises a fuel cell, an exhaust stream leading from the fuel cell, and a silencer according to the invention installed in the exhaust stream. The advantages of the silencer described above and below are thus realized for the fuel cell system.
[0051] Laboratory tests comparing the relative humidity and temperature at the inlet and outlet openings have shown that the silencer according to the invention is capable of removing approximately 75% to 80% of the moisture from the exhaust gas stream. It is expressly pointed out that the embodiments of the invention described above can each be combined individually or in any technically feasible combination with one another, as well as with the subject matter of the independent claims.
[0052] Variations and embodiments of the invention, as well as further advantages and details of the invention, can be found in the following description and the drawings. The schematic figures show:
[0053] Fig. 1 shows an embodiment of a fuel cell system according to the invention;
[0054] Fig. 2 shows a first embodiment of a silencer according to the invention in a sectional view;
[0055] Fig. 3 shows a detail of the silencer according to the invention from Fig. 2 in a sectional view;
[0056] Fig. 4 shows a second embodiment of a device according to the invention.
[0057] Silencer in a sectional view;
[0058] Fig. 5 shows a detail of the silencer according to the invention from Fig. 4 in a sectional view;
[0059] Fig. 6 shows a third embodiment of a silencer according to the invention in a sectional view; and
[0060] Fig. 7 shows a fourth embodiment of a silencer according to the invention in a sectional view.
[0061] Parts with identical or similar effects are provided with identical reference numerals, where appropriate. Individual technical features of the embodiments described below can also be combined with previously described embodiments and the features of the independent claims and any further claims to form articles according to the invention.
[0062] Fig. 1 shows an embodiment of a fuel cell system 2 according to the invention. Hydrogen 5 and oxygen-containing air 6 are supplied to a fuel cell 3, in this case a hydrogen-oxygen fuel cell. A compressor is often used to supply the air 6, the operation of which is accompanied by considerable noise. A silencer 1 according to the invention is arranged in the exhaust system 4 of the fuel cell system 2. An exhaust gas inlet 4a conveys an exhaust gas flow S from the fuel cell 1 to the silencer 1, while an exhaust outlet 4a conveys the dehumidified and noise-reduced exhaust gas flow S away from the silencer 1 – e.g., to an end pipe of the exhaust system 4.
[0063] Fig. 2 shows a first embodiment of a silencer 1 according to the invention for an exhaust stream 4 of a fuel cell system 2 in a sectional view. The silencer 1 has a cavity 10 through which an exhaust stream S of the fuel cell system can flow from an inlet opening 11 to an outlet opening 12. The position of the inlet opening 11 and the outlet opening define a main flow direction R, which in this case runs parallel to the longitudinal center axis A and to the longitudinal direction L of the silencer 1. A sound-absorbing device 20 is arranged inside the cavity 10 to reduce noise from the exhaust stream S. Furthermore, a water separator 30 is arranged inside the cavity 10 upstream of the sound-absorbing device 20 to separate water from the exhaust stream S, the water separator 30 having a water separation chamber 31.Within the water separation chamber 31, a baffle element 32 is arranged to radially widen the exhaust gas flow S entering through the inlet opening 11. Downstream of the baffle element 32, a funnel-shaped guide element 33 is arranged to radially narrow the exhaust gas flow S widened by the baffle element 32.
[0064] The exhaust gas stream S can be directed from the fuel cell 3 into the cavity 10 via an exhaust gas inlet 4a (Fig. 1) of the exhaust system 4, which can be attached to the inlet nozzle 16 of the silencer 1. In the water separation chamber 31, the exhaust gas stream S is widened by the baffle element 32 and can thus be guided along an inner surface of a wall bounding the water separation chamber 31 before the exhaust gas stream S is narrowed again by the downstream funnel-shaped guide element 33. The exhaust gas stream S is thereby guided along the largest possible surface area where water contained in the exhaust gas can condense. The exhaust gas stream S is thus largely dehumidified before being fed to the silencer 20. The function of the silencer 20 is therefore not impaired by excessive amounts of moisture.Furthermore, noise generation caused by moisture accumulating in the sound-absorbing device 20 is prevented. The dehumidified and noise-free exhaust gas can be routed away from the silencer 1 via an exhaust outlet 4b (Fig. 1) of the exhaust system 4, which can be attached to the outlet nozzle 17 of the silencer 1.
[0065] The shape of the baffle element 32, i.e., its cross-section which increases continuously from its upstream end 321 to its downstream end 322, causes a gradual radial widening of the exhaust gas flow S at the outer surfaces of the baffle element 32. To achieve sufficient radial widening of the exhaust gas flow S, the cross-section of the baffle element 32 at its downstream end 322 is larger than the flow cross-section of the inlet opening 11. To promote a uniform and quiet flow, the baffle element 32 is essentially rotationally symmetric and has a conical flow body with a rounded tip. The baffle element 32 is hollow to reduce its weight.
[0066] The funnel-shaped guide element 33 is bounded by its upstream location
[0067] From end 331 to its downstream end 332, a flow channel with a continuously decreasing flow cross-section is formed. In this way, the exhaust gas flow S, which has been widened by the baffle element 32, is recaptured, with the funnel shape reducing or even preventing the formation of turbulence and the associated pressure loss. In addition, condensed water can slide along the surface of the guide element 33 due to gravity, e.g., towards the outlet opening 41, and thus be discharged more effectively. To promote a laminar and quiet flow, the funnel-shaped guide element 33 is rotationally symmetrical about the longitudinal central axis A. The funnel-shaped guide element 33 has a concave surface along which the exhaust gas flow S can flow. This promotes a laminar and quiet flow and increases the available condensation surface.To achieve the most compact possible design of the silencer 1, the funnel-shaped guide element 33 forms a partition between the water separation chamber 31 and a sound-absorbing chamber 21 of the silencer 30. The baffle element 32 and the funnel-shaped guide element 33 are spaced apart from each other in the longitudinal direction of the silencer 1 and in the main flow direction R of the exhaust gas stream S, respectively. The funnel-shaped guide element 33 is designed to direct the narrowed exhaust gas stream S to the silencer 20; that is, the downstream end 332 of the funnel-shaped guide element 33 connects directly to the sound-absorbing chamber 21.
[0068] The silencer 1 has a condensation screen 34 that separates the water separation chamber 31 into two sub-chambers 311 and 312. To pass from the first sub-chamber 311 to the second sub-chamber, the exhaust gas flow S must pass through the condensation screen 34, allowing the water contained in the exhaust gas flow S to condense on the screen material. The screen material can be made of a mesh, wire mesh, wire grid, and / or perforated sheet metal.
[0069] The condensation screen 34 is arranged downstream of the baffle element 32, so that the exhaust gas flow S is already expanded and guided along the largest possible condensation surface before it encounters the condensation screen 34. Furthermore, the condensation screen 34 is partially located within the funnel-shaped guide element 33. In other words, the condensation screen 34 and the funnel-shaped guide element 33 overlap in a longitudinal section. In this way, the exhaust gas flow S is directed from the funnel-shaped guide element 33 towards the condensation screen 34 and compressed before passing through it, thus reducing pressure loss due to the flow resistance of the condensation screen 34. The condensation screen 34 has a cylindrical shape and is mounted on the support structure 50, which separates the baffle element 32 from the funnel-shaped guide element 33.The funnel-shaped guide element 33 has a bypass 33a in the form of a through-hole, which bypasses the condensation screen 34 and provides a flow path from the water separation chamber 31 to the sound attenuation chamber 21. The bypass 33a is dimensioned such that, in the event that the condensation screen 34 is blocked, e.g., by frozen condensate, it provides an alternative channel for the exhaust gas flow S.
[0070] In this case, the sound attenuation device 20 forms a combination of a reflection silencer and an absorption silencer. The sound attenuation chamber 21 extends along the longitudinal direction L and is radially bounded by an inner wall 130 of the housing 13. The exhaust gas flow S can flow through the sound attenuation chamber 21 from an inlet opening 211 to an outlet opening 212. A direct flow path between the inlet opening 211 and the outlet opening 212 is blocked by a flow guide device 23 arranged within the sound attenuation chamber 21. The flow guide device 23 has a widening element 231 arranged downstream of the inlet opening 211 for radially widening at least a portion of the exhaust gas flow S through the inlet opening 211 in the direction of the inner wall 130.The flow guide 23 forms a backflow channel 230 downstream of the expansion element 231, within which a flow path is provided for the exhaust gas flow S, the flow direction SR of which is opposite to the main flow direction R. In this way, the flow guide 23 forms a labyrinthine propagation path for the exhaust gas flow S, along which the exhaust gas flow S is deflected at least twice, thereby absorbing some of its sound energy. The cavity 10 extends along the longitudinal center axis A of the silencer 1 and is rotationally symmetrical about the longitudinal center axis A. In this case, the cavity 10 is cylindrical. The water separator 30 and the silencer 20 are arranged centered on the longitudinal center axis A.This promotes a uniform and quiet exhaust gas flow, since, in particular, a change in the main flow direction R (flow reversal) is avoided during the transition from the water separator to the sound attenuation device. The advantageous flow characteristics are further enhanced by the fact that the inlet opening 11 and the outlet opening 12 are arranged centered on the longitudinal axis A.
[0071] The silencer 1 has a housing 13 that defines the outer surface of the cylindrical cavity 10. In this case, the housing 13 also defines an inlet-side end face of the cavity 10, while an outlet-side end face is defined by a separate cover 15. Due to the design of the silencer 1, particularly the rotational symmetry of its individual components about the longitudinal axis A, manufacturing is especially simple. The silencer 1 can have a modular or one-piece structure 14, which can be inserted as a whole into the housing 13. The structure 14, together with the housing 13, forms the water separator 30 and the sound-absorbing device 20. In this case, the housing 13 provides an insertion opening on the outlet side for the structure 14, which can be closed with the cover 15.The cover 15 can also be attached to the structure 14 or formed integrally with it. The structure 14 can, for example, comprise the impact element 32, the funnel-shaped guide element 33, and the flow guide device 23. The structure 14 can, for example, comprise one or more support structures 50a, 50b, 50c, 50d (see Fig. 3) that space the impact element 32, the funnel-shaped guide element 33, and the parts of the flow guide device 23 apart and attach them to one another. In some applications, it can also be advantageous to divide the structure 14 into individual modules at at least one cross-sectional plane. These individual modules can be held together by the end faces of the housing 13 when the silencer 1 is assembled.
[0072] The flow guide device 23 has a first pipe section 232 arranged upstream of the outlet opening 212 of the sound attenuation chamber 21, which opens into the outlet opening 212. The first pipe section 232 preferably has a length L1 that corresponds to one-third to two-thirds of the total length L2 of the sound attenuation chamber 21.
[0073] The expansion element 231 is connected on its downstream side to a second pipe section 233 of the flow guide device 23, the second pipe section 233 being configured with its outer surface 233a to internally define an annular gap 202 for the portion Sa of the exhaust gas flow S expanded by the expansion element 231. The second pipe section 233 partially surrounds the first pipe section 232, such that the backflow channel 230 is formed in a longitudinal section 210 of the sound attenuation chamber 21 between the pipe sections 232 and 233. The backflow channel 230 is an annular gap bounded by an outer surface of the first pipe section 232 and an inner surface of the second pipe section 233.
[0074] The flow guide 23 directs the expanded portion Sa of the exhaust gas stream S close to the inner wall 130. This inner wall 130 is lined with a layer 22 of a sound-absorbing material that can interact with the expanded portion Sa of the exhaust gas stream S. The layer 22 of sound-absorbing material can be held in the immediate vicinity of the inner wall 130 by a fluid-permeable retaining structure (not shown) comprising one or more support elements. The layer 22 of sound-absorbing material extends completely around the flow guide 23 along the length L2 of the sound-absorbing chamber.
[0075] The expansion element 231 has a perforated area 231a which is aligned with the inlet opening 211. This allows a small portion of the exhaust gas flow S to pass through the expansion element 231 to the downstream layer 22a made of sound-absorbing material, e.g., long-fiber mineral wool, and interact with it. The further layer 22a of sound-absorbing material is aligned with and directly adjacent to the perforated area 231a.
[0076] The silencer 1 has a water collection chamber 40 that partially surrounds the water separation chamber 31. This chamber is connected to the water separation chamber via a drain opening 41 in such a way that water separated from the exhaust gas stream S in the water separation chamber 31 flows into the water collection chamber 40 under its own weight due to gravity and is collected there. Thus, the separated water can drain optimally from the water separation chamber 31. The shape of the baffle element 32 and the shape of the funnel-shaped guide element 33 promote a directed flow of the separated water towards the drain opening 41.
[0077] The water collected in the water collection chamber 40 can be easily discharged from the water collection chamber or the silencer, either actively (e.g., by a pump) or passively (e.g., by gravity) via a discharge opening 42. The water collection chamber 40 only needs to surround a small area of the water separation chamber 31—for example, an area located at the bottom with respect to the direction of gravity G, which, viewed from a direction parallel to the longitudinal center axis A, can be situated approximately between a "5 o'clock position" and a "7 o'clock position." The water collection chamber 40 can therefore have a significantly smaller internal volume than the water separation chamber 31. The cavity 10 and the water collection chamber 40 are separated by a wall of the cavity 10, resulting in a compact design for the silencer 1.A wall bounding the water collection chamber 40 can also be part of the housing 13 and, in particular, can be formed integrally with it. In this case, a partition wall that can be inserted into the housing 13 can be provided, separating the water separation chamber 31 from the water collection chamber 40. The water collection chamber 40 also surrounds the sound-absorbing chamber 21 and is in fluid-conducting communication with the sound-absorbing chamber 21 via openings 41a, 41b, 41c, 41d such that water condensed from the exhaust gas stream S in the sound-absorbing chamber 21 can flow away from the sound-absorbing chamber 21 into the water collection chamber 40 by gravity. In this way, water accumulation in the sound-absorbing device 20, which could otherwise negatively affect noise reduction, is avoided.
[0078] To provide sufficient intake capacity, the water collection chamber 40 extends essentially along the entire length of the cavity 10.
[0079] The silencer 1 has a heating element 43 for heating at least part of a wall bounding the water collection chamber 40. This ensures drainage of the water even at low ambient temperatures where freezing of the condensate is to be expected. The heating element 43 is embedded in the wall and extends along at least half of the total length L of the water collection chamber 40. Alternatively, the heating element 43 can be embedded in a region of the wall bounding the water collection chamber 40 surrounding the discharge opening 42. Multiple heating elements 43 can also be provided.
[0080] Fig. 4 shows a second embodiment of a silencer 1 according to the invention for an exhaust stream 4 of a fuel cell system 2 in a sectional view. The silencer 1 of the second embodiment is essentially constructed like the silencer 1 of the first embodiment, wherein the sound attenuation device 20 additionally comprises a further sound attenuation chamber 51 with a further flow guide device 53 downstream of the sound attenuation chamber 21. The sound attenuation chamber 21 and the further sound attenuation chamber 51 are separated by a partition 24 of the sound attenuation device 20. The first pipe section 232 of the flow guide device 23 opens into the further sound attenuation chamber 51. The further sound attenuation chamber 51 extends along the longitudinal direction L and is radially bounded by the inner wall 130 of the housing 13.The exhaust gas flow S exiting the outlet opening 212 of the soundproofing chamber 21 flows into an inlet opening 511 of the further soundproofing chamber 51 and can flow further to an outlet opening 512 of the further soundproofing chamber 51. In particular, the outlet opening 212 of the soundproofing chamber 21 forms the inlet opening 511 of the further soundproofing chamber 51. Within the further soundproofing chamber 51, the further flow guide device 53 is arranged, which has a further expanding element 531 arranged downstream of the inlet opening 511 for radially expanding at least a part of the exhaust gas flow S flowing through the inlet opening 511 in the direction of the inner wall 130.Downstream of the further widening element 531, the further flow guide device 53 forms a further backflow channel 530, within which a further flow path is provided for the exhaust gas flow S, the flow direction SR of which runs opposite to the main flow direction R.
[0081] The further flow guide device 53 is essentially constructed in the same way as the flow guide device 23. The further flow guide device 53 has a first pipe section 532 arranged upstream of the outlet opening 512 of the further sound attenuation chamber 51, which opens into the outlet opening 512. The first pipe section 532 preferably has a length L3 that corresponds to one-third to two-thirds of the total length L4 of the further sound attenuation chamber 51.
[0082] The expansion element 531 is connected on its downstream side to a second pipe section 533 of the further flow guide device 53, the second pipe section 533 being configured with its outer surface 533a to internally define an annular gap 502 for the portion Sa of the exhaust gas flow S expanded by the expansion element 531. The second pipe section 533 partially surrounds the first pipe section 532, such that the backflow channel 530 is formed in a longitudinal section 510 of the further sound attenuation chamber 51 between the pipe sections 532 and 533. The backflow channel 530 is an annular gap bounded by an outer surface of the first pipe section 532 and an inner surface of the second pipe section 533.
[0083] The further flow guide 53 directs the expanded portion Sa of the exhaust gas stream S close to the inner wall 130. The inner wall 130 is lined with a layer 22 of a sound-absorbing material that can interact with the expanded portion Sa of the exhaust gas stream S. The layer 22 of sound-absorbing material can be held in the immediate vicinity of the inner wall 130 by a fluid-permeable retaining structure (not shown here) comprising one or more support elements. The layer 22 of sound-absorbing material extends along the entire length L4 of the sound-absorbing chamber around the further flow guide 53.
[0084] The expansion element 531 has a perforated area 531a, which is aligned with the inlet opening 511. This allows a small portion of the exhaust gas flow S to pass through the expansion element 531 to the downstream layer 52a made of sound-absorbing material, e.g., long-fiber mineral wool, and interact with it. The further layer 52a of sound-absorbing material is aligned with and directly adjacent to the perforated area 531a.
[0085] The silencer 1 can have a modular or monolithic structure 14 (see Fig. 5) which can be inserted as a whole into the housing 13, the structure 14 together with the housing 13 forming the water separator 30 and the sound attenuation device 20. In this case, the housing 13 provides an insertion opening for the structure 14 on the outlet side, which can be closed with the cover 15. The cover 15 can also be attached to the structure 14 or formed integrally with it. The structure 14 can, for example, have the baffle element 32, the funnel-shaped guide element 33, the flow guide device 23, and the further flow guide device 53. The structure 14 can, for example, have one or more support structures 50a, 50b, 50c, 50d, 50e, 50f (see Fig. 5).5), which spaces apart and fastens the impact element 32, the funnel-shaped guide element 33, the parts of the flow guide device 23, and the parts of the further flow guide device 52. In some applications, it may also be advantageous to divide the structure 14 into individual modules on at least one cross-sectional plane. These individual modules can be held together by the end faces of the housing 13 when the silencer 1 is assembled.
[0086] Fig. 6 shows a third embodiment of a silencer 1 according to the invention for an exhaust stream 4 of a fuel cell system 2 in a sectional view. The silencer 1 of the third embodiment is essentially constructed like the silencer 1 of the second embodiment, except that the main flow direction R runs parallel to the direction of gravity G. Due to this orientation, water separated or condensed from the exhaust stream S will flow against the main flow direction R due to gravity. Preferably, the water collection chamber 40 is arranged on the lower side of the silencer 1 with respect to the direction of gravity G. In the present case, the water separation chamber 31 and the water collection chamber 40 are not structurally separated from each other by a wall, but could alternatively be separated, for example, by a partition wall with openings.It is further preferably provided that certain components – such as the funnel-shaped guide element 33, the flow guide device 23, the partition 24 and / or the further flow guide device 53 – are provided with openings at suitable positions (not shown) to allow the unimpeded flow of the separated or condensed water from the sound-absorbing chamber 21 and / or the further sound-absorbing chamber 51 into the water separation chamber 31. The water collection chamber 40 can be heated by means of a heating element 43, as in other embodiments.
[0087] To prevent water accumulation in the impact element 32, the impact element 32 has at least one drainage line 323 extending radially outwards from its upstream end 321. In this case, two opposing tubular drainage lines 323 extend from the upstream end 321 of the impact element 32, their outlet openings being arranged in relation to the water collection chamber 40 such that condensate exiting the outlet openings can flow into the water collection chamber 40 by gravity. The impact element 32 can also be provided with openings at suitable positions (not shown) to allow the unimpeded flow of the separated or condensed water from the second sub-chamber 312 into the first sub-chamber 311.
[0088] The silencer 1 shown in Fig. 6 further comprises, to aid dehumidification, an additional condensation screen 54 which divides or separates the further soundproofing chamber 51 into two sub-chambers. The further condensation screen 54 has essentially the same features and properties as the condensation screen 34 arranged in the water separation chamber 31. The further condensation screen 54 is cylindrical in shape and is arranged between the first pipe section 532 and the second pipe section 533 of the further soundproofing chamber 51. In this way, the exhaust gas flow S can be dehumidified once more before it can leave the silencer 1 via the outlet opening 512.
[0089] The silencer 1 shown in Fig. 6 further comprises a funnel-shaped condensation element 55 arranged in the additional silencer chamber 51, on the surface of which the portion Sa of the exhaust gas flow S, expanded by the expansion element 53, can condense before being directed into the return flow channel 530. The funnel-shaped condensation element 55 has a flow cross-section that decreases continuously from its upstream end to its downstream end.
[0090] To facilitate the drainage of condensate, the inner wall 130 of the housing 13 can be designed with a structured surface, e.g., a studded and / or ribbed structure. The structured surface ensures that a small gap remains between the inner wall 130 and the sound-absorbing material 22, through which the condensed water can drain more easily in the direction of gravity G. Fig. 7 shows a fourth embodiment of a silencer 1 according to the invention for an exhaust stream 4 of a fuel cell system 2 in a sectional view. The silencer 1 of the fourth embodiment is essentially constructed like the silencer 1 of the first embodiment, except that the sound-absorbing device 20 has a sound-absorbing pre-chamber 213 downstream of the water separation chamber 31 and upstream of the sound-absorbing chamber 21.The sound attenuation pre-chamber 213 is separated from a flow channel by means of a fluid-permeable perforated pipe section 214. The exhaust gas flow S entering the sound attenuation device 20 from the water separator 30 is guided through this channel. A downstream end of the pipe section 214 opens into the sound attenuation chamber 21. In this case, the sound attenuation pre-chamber is designed as a reflection silencer. Such a sound attenuation pre-chamber 213 can also be provided in the other embodiments.
[0091] It should also be noted that "showing" does not exclude any other elements or steps and "a" or "an" does not exclude a multitude.
[0092] The scope of protection of the present invention is defined by the patent claims and is not limited by the features explained in the description or shown in the figures.
[0093]
[0094] 1 silencer
[0095] 2 Fuel cell system
[0096] 3 Fuel cell
[0097] 4 Exhaust system
[0098] 4a Exhaust gas supply line of the exhaust system
[0099] 4b Exhaust gas discharge of the exhaust system
[0100] 5 Hydrogen
[0101] 6 air
[0102] 10 Cavity of the silencer
[0103] 11 Inlet opening of the cavity
[0104] 12 Cavity outlet opening
[0105] 13 Silencer housing
[0106] 130 Inner wall of the housing
[0107] 14 Structure of the silencer
[0108] 15. Silencer cover
[0109] 16 Inlet nozzles of the silencer
[0110] 17 Exhaust nozzles of the silencer
[0111] 20. Silencing device of the silencer
[0112] 21 Sound damping chamber of the sound damping device
[0113] 210 Longitudinal section of the sound-absorbing chamber
[0114] 211 Inlet opening of the soundproof chamber
[0115] 212 Outlet opening of the sound attenuation chamber
[0116] 213 Soundproofing pre-chamber
[0117] 214 perforated pipe section
[0118] 22, 22a Layers of sound-absorbing material
[0119] 23 Flow guide device of the sound damping device
[0120] 230 Return flow channel
[0121] 231 Expansion element
[0122] 231a Perforated area of the expansion element
[0123] 232 first pipe section
[0124] 233 second pipe section
[0125] 233a Outer surface of the second pipe section
[0126] 24 partition wall
[0127] 30 Water separator device
[0128] 31 Water separation chamber of the water separation device
[0129] 311 First sub-chamber of the water separation chamber 312 Second sub-chamber of the water separation chamber 32 Impact element of the water separation device 321 Upstream end of the impact element 322 Downstream end of the impact element 323 Drainage line 33 Funnel-shaped guide element of the water separation device 33a Bypass in the funnel-shaped guide element 331 Upstream end of the funnel-shaped guide element
[0130] 332 downstream end of the funnel-shaped guide element 34 condensation screen of the water separator
[0131] 40 Water collection chamber of the silencer
[0132] 41 Drainage opening of the water collection chamber 41a-d Openings of the water collection chamber
[0133] 42 Drainage opening of the water collection chamber
[0134] 43 Heating element of the silencer 50a-f Support structures 51 Further sound-absorbing chamber of the sound-absorbing device 510 Longitudinal section of the further sound-absorbing chamber 511 Inlet opening of the further sound-absorbing chamber 512 Outlet opening of the further sound-absorbing chamber 52a Layer of sound-absorbing material
[0135] 53 additional flow guide devices of the sound damping device
[0136] 54 further condensation screen 55 funnel-shaped condensation element 530 return flow channel 531 expansion element 531a perforated area of the expansion element 532 first pipe section 533 second pipe section
[0137] 533a Outer surface of the second pipe section A Longitudinal center axis of the silencer G Direction of gravity L Longitudinal direction of the silencer L1 Length of the first pipe section of the flow guide device L2 Length of the sound attenuation chamber L3 Length of the first pipe section of the further flow guide device
[0138] L4 Length of the additional soundproofing chamber R Main flow direction of the exhaust gas stream
[0139] S Exhaust gas flow
[0140] Sa widened part of the exhaust stream
[0141] SR Flow direction
Claims
Patent claims 1. Silencer (1), in particular for an exhaust system (4) of a fuel cell system (2), with - a cavity at least partially bounded by a housing (13) (10), through which an exhaust gas flow (S) of the fuel cell system (2) passes along a main flow direction (R) from an inlet opening (11 ) can flow to an outlet opening (12) of the cavity (10), - a sound-absorbing device (20) arranged within the cavity (10) for reducing noise of the exhaust gas flow (S), wherein the sound-absorbing device (20) has a sound-absorbing chamber (21) extending along a longitudinal direction (L) and radially bounded by an inner wall (130) of the housing (13), through which the exhaust gas flow (S) can flow from an inlet opening (211) to an outlet opening (212) of the sound-absorbing chamber (21), wherein a flow-guiding device (23) is arranged within the sound-absorbing chamber (21), wherein the flow-guiding device (23) has a widening element (231) arranged downstream of the inlet opening (211) for radially widening at least a part of the exhaust gas flow (S) flowing through the inlet opening (211) in the direction of the inner wall (130), wherein the flow-guiding device (23) downstream of the widening element (231) forms a backflow channel (230),within which a flow path is provided for the exhaust gas flow (S), the flow direction (SR) of which is opposite to the main flow direction (R), and, - a water separator device (30) arranged within the cavity (10) upstream of the sound damping device (20) for separating water from the exhaust gas stream (S), wherein the water separator device (30) has at least one water separation chamber (31 ).
2. Silencer (1 ) according to claim 1 , wherein the flow guide device (23) has a first pipe section (232) arranged upstream of the outlet opening (212) of the soundproofing chamber (21 ) which opens into the outlet opening (212).
3. Silencer (1 ) according to claim 1 or 2, wherein the expansion element (231 ) is connected on its downstream side to a second pipe section (233) of the flow guide device (23), wherein the second pipe section (233) is configured with its outer surface (233a) to limit an annular gap (202) for the part (Sa) of the exhaust gas flow (S) expanded by the expansion element (231 ) from the inside.
4. Silencer (1 ) according to claims 2 and 3, wherein the second pipe section (233) at least partially surrounds the first pipe section (232) such that the return flow channel (230) is formed in a longitudinal section (210) of the sound attenuation chamber (21 ) between the pipe sections (232, 233).
5. Silencer (1 ) according to one of the preceding claims, wherein the inner wall (130) defining the sound-absorbing chamber (21 ) is lined with a layer (22) of a sound-absorbing material.
6. Silencer (1) according to one of the preceding claims, wherein the expansion element (231) has a perforated area (231a) which is aligned with the inlet opening (211).
7. Silencer (1 ) according to claim 6, wherein a further layer (22a) of sound-absorbing material is arranged downstream of the perforated area (231 a).
8. Silencer (1) according to one of the preceding claims, wherein the silencer device (20) is located downstream of the silencer chamber (21) a further soundproof chamber (51) extending along the longitudinal direction (L) and radially bounded by the inner wall (130) of the housing (13), through which the exhaust gas flow (S) can flow from an inlet opening (511) to an outlet opening (512) of the further soundproof chamber (51), wherein a further flow guide device (53) is arranged within the further soundproof chamber (51), wherein the further flow guide device (53) has a further expansion element (531) arranged downstream of the inlet opening (511) for radially expanding at least a part of the exhaust gas flow (S) flowing through the inlet opening (511) in the direction of the inner wall (130), wherein the further flow guide device (53) forms a further backflow channel (530) downstream of the further expansion element (531), within which a further Flow path for the exhaust gas flow (S) is provided,whose flow direction (SR) runs opposite to the main flow direction (R).
9. Silencer (1) according to one of the preceding claims, wherein the water separator device (30) has a baffle element (32) arranged in the water separator chamber (31) for radially widening the exhaust gas flow (S) entering through the inlet opening (11) and a funnel-shaped guide element (33) downstream of the baffle element (32) for radially narrowing the exhaust gas flow (S) widened by the baffle element (32).
10. Silencer (1) according to one of the preceding claims comprising a condensation screen (34) separating the water separation chamber (31) into two sub-chambers (311, 312).
11. Silencer (1) according to one of the preceding claims, wherein the cavity (10) extends along a longitudinal central axis (A) and in particular rotationally symmetric about the longitudinal central axis (A), wherein the The water separator device (30) and the sound damping device (20) are arranged centered on the longitudinal central axis (A).
12. Silencer (1) according to claim 11, wherein the cavity (10) is cylindrical or is formed from several coaxially aligned cylindrical partial cavities, wherein the housing (13) at least limits the lateral surface(s) of the cavity (10), wherein the silencer (1) has a structure (14) that can be assembled from modules or formed in one piece and that can be inserted as a whole into the housing (13), wherein the structure (14) together with the housing (13) forms the water separator device (30) and the sound attenuation device (20).
13. Silencer (1) according to one of the preceding claims with a water collection chamber (40) at least partially surrounding the water separation chamber (31), which is in fluid-conducting communication with the water separation chamber (31) via a drain opening (41) such that water separated from the exhaust gas stream (S) can flow out of the water separation chamber (31), in particular due to gravity, into the water collection chamber (40) and be collected there.
14. Silencer (1 ) according to claim 13, wherein the water collection chamber (40) further surrounds the sound absorption chamber(s) (21 , 51 ) at least partially and is in fluid-conducting communication with the sound absorption chamber(s) (21 , 51 ) via an opening (41 a, 41 b, 41 c, 4d) such that water condensed from the exhaust gas stream (S) can flow from the sound absorption chamber(s) (21 , 51 ) into the water collection chamber (40), in particular by gravity.
15. Fuel cell system (2) comprising a fuel cell (3), an exhaust stream (4) leading from the fuel cell (3) and a silencer (1) installed in the exhaust system (4) according to one of the preceding claims.
Citation Information
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