The present disclosure relates to a gaseous fuel feeding system, having a fuel supply line enclosed by a barrier wall system such that the fuel supply line includes a primary flow channel for the fuel and a secondary flow channel around the primary flow channel inside the barrier wall system, the fuel supply line having a first fuel supply line section, and a second fuel supply line section and a valve coupled between the first and the second fuel supply line sections.
Also disclosed is a valve having a body and at least two coupling adapters arranged to the body, a plug element disposed in the body and a first fluid passage arranged to extend through the coupling adapters, the body, and the plug element, wherein the plug element is configured to rotate about a radial axis to block or unblock the first fluid passage.
In internal combustion piston engines, for instance in marine vessels, the output of the engines has constantly increased. In case the engine is powered by gaseous fuel, an unavoidable consequence is that the gas pressure in the fuel gas system is also increased. This has its consequences in dimensioning the fuel system components, meaning a need for increasing e.g. wall or material thicknesses to meet the demands set to the strength of the structures.
Fuel systems for feeding gaseous fuel to an internal combustion engine in a marine vessel are commonly constructed such that a fuel supply line runs inside, i.e. is enclosed by a barrier wall system, in order to prevent direct leakage to surrounding should the fuel supply line leak. Still, when the demands to enduring greater gas pressure increase, this also reflects to the demands of the barrier wall system. It is also known to provide such fuel system with a gas valve unit (GVU) before, or upstream the engine, into which certain components of the fuel system, like shut-off valves and pressure regulators, are assembled in centralized manner. Also the GVU includes a barrier wall system to controllably handle possible gas leak. The barrier wall system of the GVU can include a vent line connecting the internal space of the GVU and the surroundings so that gas leakage can be vented out of the GVU in case of failure of the fuel supply line, such as a pipe rupture. However, the gas pressure inside barrier wall system can increase too much due the fact that vent line cannot purge the pressure caused by the leaking gas, and will eventually break the fuel system.
One solution is to increase the material thicknesses of the barrier wall systems. However, this can lead to material thicknesses increasing too massive.
A gaseous fuel feeding system is disclosed, comprising: a fuel supply line enclosed by a barrier wall system such that the fuel supply line includes a primary flow channel for fuel and a secondary flow channel around the primary flow channel inside the barrier wall system, the fuel supply line having a first fuel supply line section and a second fuel supply line section; and a valve having a body and at least two coupling adapters arranged to the body, a plug element disposed in the body, and a first fluid passage arranged to extend through the coupling adapters and the plug element of the valve, wherein the plug element is configured to rotate about a radial axis to block or unblock the first fluid passage, the valve having a second fluid passage arranged to extend through the coupling adapters and the body; and wherein the valve is coupled between the first and the second fuel supply line sections, such that the primary flow channel in the first fuel supply line section is in controllable flow connection with the primary flow channel in the second fuel supply line section via the first fluid passage of the valve, and the secondary flow channel in the first fuel supply line section is in continuous flow connection with the secondary flow channel in the second fuel supply line section via the second fluid passage of the valve.
A valve is also disclosed comprising: a body; and at least two coupling adapters arranged relative to the body; and a plug element disposed in the body and a first fluid passage arranged to extend through the coupling adapters, wherein the plug element is configured to rotate about a radial axis to block or unblock the first fluid passage, the valve having a second fluid passage arranged to extend through the coupling adapters and the body.
In the following, exemplary embodiments of the invention will be described with reference to the accompanying exemplary, schematic drawings, in which:
A gaseous fuel feeding system is disclosed in which the performance can be considerably improved compared to known solutions by enhancing the pressure control during possible leakage situations.
Exemplary embodiments include a valve by which the performance of gaseous fuel feeding system can be considerably improved compared to known solutions.
A gaseous fuel feeding system as disclosed can include a fuel supply line enclosed by a barrier wall system such that the fuel supply line include a primary flow channel for the fuel and a secondary flow channel around the primary flow channel inside the barrier wall system, the fuel supply line having a first fuel supply line section, and a second fuel supply line section. The gaseous fuel feeding system is provided with a valve according to the present disclosure coupled between the first and the second fuel supply line sections. The primary flow channel in the first fuel supply line section is in controllable flow connection with the primary flow channel in the second fuel supply line section via the first fluid passage of the valve, and the secondary flow channel in the first fuel supply line section is in continuous flow connection with the secondary flow channel in the second fuel supply line section via the second fluid passage of the valve.
According to an exemplary embodiment the system includes a gas fuel tank configured to store the fuel in liquefied form, and a liquefied gas evaporation system, in which fuel feeding system the fuel supply line is arranged to extend from the tank to a gas valve unit arranged in the system, and wherein the valve is arranged to the fuel supply line between the tank and the gas valve unit.
This provides a restrictor for maximum pressure build-up in an enclosed gaseous fuel supply system which performance is considerably improved.
A valve in the gaseous fuel feeding system according to the present disclosure can include a body and at least two coupling adapters arranged to the body, by means of which the valve can be coupled to a gaseous fuel feeding system, and a plug element disposed in the body and a first fluid passage arranged to extend through the coupling adapters and the plug element, wherein the plug element is configured to rotate about a radial axis to block or unblock the first fluid passage, wherein the valve includes a second fluid passage arranged to extend through the coupling adapters and the body. The second fluid passage is fluidly separated from the first fluid passage in the valve.
According to an exemplary embodiment the second fluid passage is arranged to provide a continuous flow connection through the coupling adapters and the body of the valve.
According to an exemplary embodiment the second fluid passage is provided with a flow throttling element.
According to an exemplary embodiment coupling adapters include a circular flange arranged perpendicularly to a center axis of the first fluid passage and the first fluid passage is arranged symmetrically to the center of the flange and the second fluid passage includes at least one opening in the flange at a radial distance from the first passage.
According to an exemplary embodiment the second fluid passage includes more than one openings arranged at a radial distance from the first fluid passage angularly evenly distributed around the first fluid passage in the flange.
According to an exemplary embodiment the flange includes a first sealing rim provided with a sealing surface around the first fluid passage and a second sealing rim provided with a sealing surface circumscribing the one or more openings of the second fluid passage.
According to an exemplary embodiment the valve includes a first flow connection path which opens into the first fluid passage at its first end and into an outer side of the valve at its second end.
According to an exemplary embodiment the first flow connection path is provided with a pressure transmitter.
According to an exemplary embodiment the first flow connection path is arranged relative to the at least one of the coupling adapters of the valve.
According to an exemplary embodiment the valve includes a second flow connection path which opens into the second fluid passage at its first end and into an outer side of the valve at its second end.
According to an exemplary embodiment the second flow connection path is provided with a gas detector.
According to an exemplary embodiment the second flow connection path is arranged relative to the at least one of the coupling adapters of the valve.
According to an exemplary embodiment the body includes a first sleeve and a second sleeve, and the coupling adapters include a coupling flange wherein the first and the second sleeve is arranged to extend between the coupling flanges and the second sleeve is arranged to enclose the first sleeve, and wherein the first fluid passage is arranged inside the first sleeve and the second fluid passage is arranged between the first sleeve and the second sleeve, wherein the plug element is arranged inside the first sleeve.
According to an exemplary embodiment the coupling flanges are attached with each other by means of threaded bolts extending between the flanges in the space between the first sleeve and the second sleeve.
According to an exemplary embodiment the flow throttling element includes a removably assembled ring arranged between the first sleeve and the second sleeve, which is configured to provide a restriction to cross sectional face area in the space between the first sleeve and the second sleeve.
According to an exemplary embodiment the flow throttling element is formed by the openings of the second fluid passage arranged around the first fluid passage in the flange.
The valve can be particularly configured for use in a gaseous fuel feeding system provided with primary flow channel and a secondary flow channel enclosing the primary flow channel.
The exemplary embodiments presented in this patent application are not to be interpreted to pose limitations to the applicability of the appended claims. The verb “to comprise” is used in this patent application as an open limitation that does not exclude the existence of also unrecited features. The features recited in depending claims are mutually freely combinable unless otherwise explicitly stated. The novel features which are considered as characteristic of the invention are set forth in particular in the appended claims.
The fuel supply line 16 is provided a primary flow channel 30 for the gaseous fuel, which may be in a form of an inner pipe. The fuel supply line 16 is also provided with a barrier wall system 18 which forms a double wall surrounding the primary flow channel 30. In other words the gas is delivered from the tank 14 to the engine 12 via the inner pipe. Should the inner pipe leak the leaked gas is controllably handled by the space between the primary flow channel 30 and the barrier wall system 18. At such locations, where the fuel supply line 16 is a pipe the barrier wall system is advantageously an outer pipe around the inner pipe. The GVU 25 also includes a barrier wall system 18′ enclosing the gas handling devices inside. The space between the primary flow channel 30 and the barrier wall 18′ system forms a secondary flow channel 32 for the gas. So, the possibly leaked gas is gathered into the secondary flow channel and lead to safe handling of the leaked gas.
According to the present disclosure, the fuel supply line 16 includes successively a first line section 16.1 and a second line section 16.2 and a valve 22, which is advantageously a ball valve, coupled between the first and the second fuel supply line sections 16.1, 16.2. The fuel supply line 16 is enclosed by a barrier wall system 18 such that the fuel supply line 16 includes the primary flow channel 30 for the fuel and the secondary flow channel 32 around the primary flow channel and inside the barrier wall system 18. The primary flow channel 30 in the first fuel supply line section 16.1 is in controllable flow connection with the primary flow channel 30 in the second fuel supply line section 16.2 via a first fluid passage of the ball valve 22. The secondary flow channel 32 in the first fuel supply line section 16.1 is in continuous flow connection with the secondary flow channel 32 in the second fuel supply line section 16.2 via a second fluid passage 32′ of the ball valve 22. The operation and use of the ball valve 22 will be described later in more detailed manner.
A structure of the ball valve 22 according to an exemplary embodiment of the present disclosure is described in the following with a reference to the
The ball valve 22 includes a first fluid passage 30′ and a second fluid passage 32′. The ball valve 22 further includes coupling adapters 50 arranged to the body 40 by means of which the ball valve 22 can be attached to the fuel supply line 16. The first fluid passage 30′ of the ball valve 22 is arranged to extend through the coupling adapters 50 so as to form a controllable flow connection through the ball valve 22. The second fluid passage 32′ is arranged to extend through the coupling adapters 50 and the body 40 of the ball valve 22 so as to form a second flow connection through the ball valve 22. The second fluid passage 32′ is fluidly separated from the first fluid passage 30′.
Each one of the coupling adapters 50 include a circular flange 51 arranged perpendicularly to a center axis D of the first fluid passage 30′. The flange is arranged to the body of the ball valve such that the first fluid passage 30′ is symmetrical to the center of the flange 51. According to the embodiment shown in the
The ball valve 22 includes suitably threaded bolts 58 (see
The ball valve 22 shown in the
In the
As is shown in the lower part of the
Referring to
As described above, the primary flow channel 30 in the first fuel supply line section 16.1 is in controllable flow connection with the primary flow channel 30 in the second fuel supply line section 16.2 via the first fluid passage 30′ of the ball valve 22 (see the
Now referring back to the
In the
Returning back to the
In the
According to exemplary embodiment of the present disclosure, the ball valve 22 is advantageously arranged on the fuel supply line 16 between the tank 14 and the gas valve unit 25 GVU. The location is for example selected so that the location is close to the GVU 25, although the location can be arranged in anywhere on the fuel supply line 16 depending on the need, i.e., where the system requires protection against a pressure increase. Advantageously the ball valve 22 is integrated to the GVU 25. By means of the ball valve 22 according to the invention effects of a leak in the primary flow channel to the pressure development in the secondary flow channel due to sudden increase on the pressure is efficiently limited to a certain sections of the fuel system.
Now, referring back to the
As a further example, if there is a rupture in the primary flow channel 30 after the ball valve 22, the ball valve 22 according the embodiment of the invention will close the primary flow channel 30 of the fuel supply line 16 within a prescribed time limit calculated by maximum pressure build-up rate and allowed maximum pressure in the gas valve unit. In this way, the gas flow to the GVU 25 is cut if the pipe rupture is after the valve 22.
According to another exemplary embodiment of the present disclosure, the second fluid passage 32′ is provided with a separate flow throttling element 56 as is shown in the
While the invention has been described herein by way of examples in connection with what are, at present, considered to be the most exemplary embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but is intended to cover various combinations or modifications of its features, and several other applications included within the scope of the invention, as defined in the appended claims. The details mentioned in connection with any embodiment above may be used in connection with another embodiment when such combination is technically feasible.
Thus, it will be appreciated by those skilled in the art that the present invention can be embodied in other specific forms without departing from the spirit or essential characteristics thereof. The presently disclosed embodiments are therefore considered in all respects to be illustrative and not restricted. The scope of the invention is indicated by the appended claims rather than the foregoing description and all changes that come within the meaning and range and equivalence thereof are intended to be embraced therein.
This application claims priority as a continuation application under 35 U.S.C. § 120 to PCT/EP2017/072818 filed as an International Application on Sep. 12, 2017 designating the U.S., the entire content of which is hereby incorporated by reference in its entirety.
Number | Date | Country | |
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Parent | PCT/EP2017/072818 | Sep 2017 | US |
Child | 16817058 | US |