A vehicle with a cryogenic container and efficient routing of the connection line
20240183499 ยท 2024-06-06
Inventors
Cpc classification
F17C13/084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0332
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K15/073
PERFORMING OPERATIONS; TRANSPORTING
F17C1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0171
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Y2200/148
PERFORMING OPERATIONS; TRANSPORTING
B66C23/62
PERFORMING OPERATIONS; TRANSPORTING
F17C2205/0326
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Y2200/14
PERFORMING OPERATIONS; TRANSPORTING
F17C2265/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0107
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2250/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/0119
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K1/00
PERFORMING OPERATIONS; TRANSPORTING
F17C2270/0184
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/0161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0352
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2015/03309
PERFORMING OPERATIONS; TRANSPORTING
B60P3/2215
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/0638
PERFORMING OPERATIONS; TRANSPORTING
F17C2201/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F17C13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vehicle including a vehicle frame with an upper frame edge, a front axle with one front wheel, a rear axle with a rear wheel and a cryogenic container arranged laterally of the vehicle frame, and the cryogenic container is arranged in an installation space available, and a connection line runs to the cryogenic container or to an operating component of the cryogenic container located in the installation space through one of the following spandrels outside of the installation space available: through a rear wheel spandrel between the installation space and the rear wheel; through a front wheel spandrel between the installation space and the front wheel; through a lower construction spandrel between the installation space and an extruded triangle above the road; or, through a semi-trailer spandrel between the installation space and a pivoting region of a semi-trailer mounted on the vehicle.
Claims
1-15. (canceled)
16. A vehicle comprising a vehicle frame with an upper frame edge, a front axle with at least one front wheel, a rear axle with at least one rear wheel and a cryogenic container arranged laterally of the vehicle frame, wherein the cryogenic container is arranged in an installation space enclosed by the following planes at the front, by a vertical front plane resting against the front wheel or against a first mud flap of the front wheel and facing the rear wheel and at the rear, by a vertical rear plane resting against the rear wheel or against a second mud flap of the rear wheel and facing the front wheel, on the side facing the vehicle frame, by a vertical frame plane passing through the upper frame edge, on the side facing away from the vehicle frame, by a vertical outer plane located at a predetermined distance from the vehicle frame, at the top, by a horizontal upper plane extending through the upper frame edge, at the bottom, by a horizontal lower plane lying at a minimum ground clearance height, and wherein a connection line, which is connected to the cryogenic container or to an operating component of the cryogenic container located in the installation space, or an operating component, which is part of a refuelling system, withdrawal system or venting system of the cryogenic container, runs through one of the following spandrels outside the installation space available: through a rear wheel spandrel limited by the upper plane, the lower plane, the frame plane, the outer plane, the rear plane and a first discharge volume, which is formed by the rear wheel or the second mud flap and remaining free of connection lines; through a front wheel spandrel limited by the upper plane, the lower plane, the frame plane, the outer plane, the front plane and a second discharge volume, which is formed by the front wheel or the first mud flap and remaining free of connection lines; through a sub-structure spandrel limited by the frame plane, the outer plane, the front plane, the rear plane, the lower plane and a third discharge volume, which is formed by an extruded triangle, the first extrusion edge of which passes through the lowermost point of the front wheel, the second extrusion edge of which passes through the lowermost point of the rear wheel and the third extrusion edge of which passes equidistantly between the rear wheel and the front wheel through the lower plane, wherein the third discharge volume remains free of connection lines; or through a semi-trailer spandrel limited by the frame plane, the outer plane, the front plane, the rear plane, the upper plane and a fourth discharge volume, which is formed by a pivoting region of a semi-trailer mounted on the vehicle, wherein the fourth discharge volume remains free of connection lines.
17. The vehicle according to claim 16, wherein the connection line is routed starting from the vehicle frame through the rear wheel spandrel or front spandrel and is routed into an upper quadrant, facing away from the vehicle frame, of the installation space available.
18. The vehicle according to claim 16, wherein the connection line, starting from the vehicle frame, is routed below the installation space available through the lower structure spandrel and is routed into a lower quadrant, facing away from the vehicle frame, of the installation space available.
19. The vehicle according to claim 16, wherein the connection line, starting from the vehicle frame, is routed above the installation space available through the semi-trailer spandrel and is routed into an upper quadrant, facing away from the vehicle frame, of the installation space available.
20. The vehicle according to claim 17, wherein the connection line or a connecting line is routed from the upper quadrant, facing away from the vehicle frame, of the installation space into a lower quadrant, facing away from the vehicle frame, of the installation space, within the installation space available.
21. The vehicle according to claim 16, comprising a cover, which at least in part encloses the connection line and/or the operating component in the respective spandrel, and wherein the cover comprises an interface for a connection to the connection line and/or the operating component.
22. The vehicle according to claim 16, wherein the connection line comprises a connection fitting attached, off-center, to one of the end caps of the cryogenic, which projects into the rear wheel spandrel or front wheel spandrel.
23. The vehicle according to claim 16, further comprising at least two tensioning straps, which embrace the cryogenic container and fix it within the installation space available on the vehicle frame, on support brackets, on which the cryogenic container rests, wherein the connection line and/or the operating component are located only on that side of an outermost tensioning strap, which faces the nearest end cap.
24. The vehicle according to claim 16, wherein the operating component is configured to be rod-shaped and is arranged substantially horizontally and perpendicularly to the direction of travel and is located completely within the rear wheel spandrel, the front wheel spandrel, the lower structure spandrel or semi-trailer spandrel.
25. The vehicle according to claim 16, wherein the operating component is configured to be rod-shaped and is arranged substantially horizontally and perpendicularly to the direction of travel if the operating component is located within the installation space available as well as within the rear wheel spandrel or the front wheel spandrel, or wherein the operating component is arranged vertically if the operating component is located within the installation space available as well as within the lower structure spandrel or semi-trailer spandrel.
26. The vehicle according to claim 16, wherein the operating component is selected from the following list: heat exchanger, economizer, pressure relief valve, check valve, manual valve, electromechanical valve, emergency stop switch, valve module comprising at least two valves, filling fitting, venting connection, discharging connection, pump, pressure build-up device, pressure gauge and control unit for at least one of the aforementioned operating components.
27. The vehicle according to claim 16, wherein the connection line and/or the operating component is routed through a first partial spandrel, which is a lower region of the rear wheel spandrel, wherein the first partial spandrel is formed by a space limited by the frame plane, the outer plane, the rear plane, the upper plane, a vertical rear spacing plane and a horizontal lower spacing plane, wherein the rear spacing plane and the lower spacing plane, respectively, are located at a distance of 1 cm to 30 cm behind the rear plane or below the upper plane, respectively.
28. The vehicle according to claim 16, wherein the connection line and/or the operating component is routed through a second partial spandrel, which is a lower region of the front wheel spandrel, wherein the second partial spandrel is formed by a space limited by the frame plane, the outer plane, the front plane, the upper plane, a vertical front spacing plane and a horizontal lower spacing plane, wherein the front spacing plane or the lower spacing plane, respectively, is located at a distance of 1 cm to 30 cm in front of the front plane or below the upper plane, respectively.
29. The vehicle according to claim 16, wherein the connection line and/or the operating component is routed through a front third partial spandrel and/or rear third partial spandrel, each of which is a lower region of the lower structure spandrel, wherein the front third partial spandrel is formed by a space limited by the frame plane, the outer plane, front plane, the lower plane, a vertical rear spacing plane and a horizontal lower spacing plane, wherein the rear third partial spandrel is formed by a space limited by the frame plane, the outer plane, the rear plane, the lower plane, a vertical front spacing plane and a horizontal lower spacing plane, wherein the rear spacing plane and the front spacing plane are respectively located at a distance of 1 cm to 30 cm behind the front plane, in front of the rear plane or below the lower plane, respectively.
30. The vehicle according to claim 16, wherein the connection line and/or the operating component is routed through a fourth partial spandrel which is a lower region of the semi-trailer spandrel, wherein the fourth partial spandrel is formed by a space limited by the frame plane, the outer plane, the upper plane, a horizontal upper spacing plane, a vertical front spacing plane or a vertical rear spacing plane, wherein the upper spacing plane, the front spacing plane or the rear spacing plane are located at a distance of 1 cm to 30 cm above the upper plane, in front of an articulation point of the semi-trailer on the vehicle frame or behind the articulation point, respectively.
Description
[0045] Advantageous and non-limiting embodiments of the invention are explained in greater detail in the following with reference to the drawings.
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[0071] The cryogenic fluid stored in the two cryogenic containers 3, 4 may be, for example, hydrogen, such that the respective cryogenic container 3, 4 is a hydrogen container, or the cryogenic fluid may be LNG (Liquefied Natural Gas), such that the cryogenic container 3, 4 is an LNG container. Depending on the cryogenic fluid, the cryogenic container 3, 4 is thus adapted to store cryogenic fluid at temperatures of, for example, below: 150 Kelvin, or in the case of hydrogen, even below 50 Kelvin or below: 30 Kelvin or substantially 20 Kelvin. Depending on the application, the cryogenic container 3, 4 could, for example, be configured for storing sLH2 (subcooled liquid hydrogen) or CcH2 (cryo-compressed hydrogen) and thus also be designed for corresponding high pressures, e.g. for maximum pressures between 5 bar and 350 bar.
[0072] The vehicle 1 has a front axle 5 with front wheels 6 and a rear axle 7 with rear wheels 8. Optionally, the vehicle 1 may have further wheel axles, for example a further rear axle behind the rear axle 7 shown, wherein only the front axle 6 and rear axle 7 facing each other are considered for the invention shown here. If a wheel axle 5, 7 has several wheels on each side, as shown, for example, in the rear axle 7 of
[0073] As shown in
[0074] Furthermore, in-between the front axle 5 and the rear axle 7 there is present a region, in which there are not situated any structural components across the full width B of the vehicle 1. This region is used as the installation space 12 available for the cryogenic containers 3, 4, i.e. the cryogenic containers 3, 4 should, for example, be located completely in their respective installation space 12 and should not, for example, project beyond the width B of the vehicle 1 on the road side. For this purpose, the installation space 12 available may be limited as follows. The terms front, rear, top, bottom, horizontal and vertical used in the following are each to be understood as relative terms to the vehicle 1. In particular, front refers to the side lying in the normal direction of travel and rear to the side facing away from the direction of travel. The normal direction of travel is understood as the direction from the rear (rear) of the vehicle 1 to the front (front) of the vehicle 1 and may also be referred to as the vehicle direction.
[0075] With reference to the
[0076] At the front, the installation space 12 available for the cryogenic containers 3, 4 is limited by a vertical front plane V. This front plane V may be in contact with the mud flap 10 (shown schematically in
[0077] At the rear, the installation space 12 available for the cryogenic containers 3, 4 is limited by a vertical rear plane H. The rear plane H may lie against the mud flap 11 of the rear wheel 8 (
[0078] On the side facing the vehicle frame 2, i.e. in the direction of the vehicle interior, the installation space 12 available is limited by a vertical frame plane R. The vertical frame plane R passes through the outside of the vehicle frame 2, in particular through an upper frame edge 13 of the vehicle frame 2. The limitation of the installation space 12 available by the frame plane R is due to the fact that the cryogenic container 3, 4 cannot be moved into the vehicle frame 2.
[0079] On the side facing away from the vehicle frame 2, i.e. in the direction of the vehicle exterior, the installation space 12 available is limited by a vertical outer plane A. The outer plane A is at a predetermined distance from the vehicle frame 2 and, starting from the vehicle frame 2, usually does not extend over the width B of the vehicle 1. In a preferred embodiment, the outer plane A therefore is in contact with the broadside of the body of the vehicle 1. The limitation of the installation space 12 available by the outer plane A is justified by the fact that the cryogenic container 3, 4 should not increase the width B of the vehicle 1.
[0080] With reference to
[0081] At the bottom, the installation space 12 available is limited by a horizontal lower plane U, which is situated at a minimum ground clearance height h of the vehicle 1. The minimum ground clearance height h depends on the vehicle 1 and is usually limited by the lowest level of the vehicle body, e.g. the driver's cab 9, or by the lowest level of vehicle components located on the vehicle frame 2. The minimum ground clearance height h could also be set by standards or simply be synonymous with a certain safety level, because the lower the minimum ground clearance height h is chosen, the more likely it is that the cryogenic container 3, 4 will collide with the road below if it is uneven.
[0082] At the top, the installation space 12 available is limited by a horizontal upper level O. The upper plane O generally passes through the frame upper edge 13 and defines a plane above which no elements of the vehicle frame 2 protrude. Above the upper edge of the frame 13, however, there may in particular be trailer coupling plate 14, which articulates a semi-trailer 15 resting on the vehicle 1, see
[0083] The installation space 12 available is thus defined by an imaginary cuboid, as is also generally recognised in the state of the art. The cryogenic container 3, 4 is thus arranged in the respective installation space 12 available, usually completely in the installation space 12 available. Returning to
[0084] It will be appreciated that the respective cryogenic container 3, 4 need not completely fill the installation space 12 available. For example, the cryogenic container 3, 4 may be substantially cylindrical, as shown in
[0085] However, in order to maximise the volume of the cryogenic container 3, 4, there is usually at least provided that the lowest point of the cryogenic container 3, 4, i.e. the lowest line in the case of a cylindrical cryogenic container 3, 4, coincides with the lower level U. Alternatively or additionally, the uppermost point of the cryogenic container 3, 4, i.e. the uppermost line in the case of a cylindrical cryogenic container 3, 4, may coincide with the upper plane O. The maximum diameter of the cryogenic container 3, 4 is usually determined by the distance of the upper plane O to the lower plane U (unless the maximum diameter is further reduced by a smaller distance of the frame plane R to the outer plane A, which is usually not the case, however).
[0086] Alternatively or additionally, there may be provided that at least one of the flat end caps 16, 17 or a vertex plane of a curved end cap coincides with the front plane V and/or the rear plane H, i.e. the cryogenic container 3, 4 is aligned at least with one end with the front or rear end of the installation space 12 available. In order to achieve a maximum length of the cryogenic container 3,4, both end caps 16, 17 touch the front plane V and the rear plane H, respectively.
[0087] In the remaining space of the installation space 12 available, which is not filled by the cryogenic container 3, 4, there may be arranged operating components 19a, 19b, i.e. so-called manifold components, see
[0088] Further operating components 19a, 19b, which are not to be associated with the withdrawal system are, for example, a filling coupling, fittings, valves and components of a filling system of the cryogenic container 3, 4 and/or a venting system of the cryogenic container 3, 4 as well as a control unit, which, for example, controls the economizer or valves of the systems mentioned above.
[0089] All the operating components 19a, 19b mentioned above may be accommodated together with the cryogenic container 3, 4 completely or at least in part within the installation space 12 available and defined above. In common prior art embodiments, all operating components are arranged between one of the end caps 17, 18 and the nearest front plane V or rear plane H, respectively. However, this shortens the greatest possible longitudinal extension of the cryogenic container 3, 4. There may further also be provided to arrange some of the operating components in available spandrels between the lateral surface 16 of the cryogenic container 3, 4 and the installation space 12. These spandrels are available even if the lateral surface 16 touches the upper plane O, the lower plane U, the frame plane R and the outer plane A. In particular, the heat exchanger may be elongated and arranged in parallel to the cryogenic container 3, 4 on its lateral surface 16 and thereby be arranged completely in the installation space 12 available.
[0090] If the installation space 12 available is now filled as far as possible by the cryogenic container 3, 4 or the operating components 19a, 19b mentioned, it will present a challenge to route the connection lines 20 starting from the cryogenic container 3, 4 or from the operating components 19a, 19b to the vehicle 1, in particular to the consumer appliance or the driver's cab 9 of the vehicle 1, since no further space or only little space is available in the installation space 12 available. In this context, the term connection lines 20 also covers, in particular, connection fittings to the cryogenic container 3, 4.
[0091] It is therefore provided in accordance with the invention that the connection lines 20 are to be routed out of the installation space 12 laterally in or in opposition to the direction of travel, above or below the cryogenic container 3, 4 at certain points, where there are no safety concerns. These points are shown in the
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[0095] Furthermore, there is shown in
[0096] In
[0097] In further embodiments, the connection line 20 could also be routed directly at the end cap 18 into the cryogenic container 3, 4, i.e. there it could be embodied as a connection fitting, for example in parallel to the direction of travel, and from there it could be routed into the rear wheel spandrel 21. In this embodiment, the connection fitting could, for example, project directly into the rear wheel spandrel 21 and be provided e.g. off-centre on the end cap 18 for this purpose. This embodiment also makes sense for curved end caps, because a connection fitting on the end cap side has to have a certain length, and with the proposed solution the connection fitting need not be completely present in the installation space 12 available, but may rather also utilize the space of the rear wheel spandrel 21. The connection fitting could be provided at all four quadrants of the installation space 12, i.e. the upper quadrant Q1 facing away from the vehicle frame 2, the lower quadrant Q2 facing away from the vehicle frame 2, or the lower or upper quadrant of the installation space 12 facing the vehicle frame 2, and from there be routed into the rear wheel spandrel 21 or the front wheel spandrel 22, which is explained later.
[0098] In general and regardless of whether the connection line 20 is routed to the end cap or to an operating component 19a, 19b present on the lateral surface, the connection line 20 may be routed into one of the four quadrants of the installation space 12. If the connection line 20 is routed into one of the lower quadrants of the installation space 12, it is usually routed in the rear wheel spandrel 21 below the rear wheel 8.
[0099] Alternatively or in addition to routing a connection line 20 through the rear wheel spandrel 21, a connection line 20 may be routed through the front wheel spandrel 22. Analogous to the rear wheel spandrel 21, the front wheel spandrel 22 is limited by the upper plane O, the lower plane U, the frame plane R and the outer plane A and is situated between the front plane V and a second discharge volume 30 (
[0100] As shown in the
[0101]
[0102] Alternatively or additionally, there may project downwards into the sub-structure spandrel 23 a connection fitting on the lateral surface 16 or on the end cap 17, 18, in particular if the latter is curved.
[0103] Referring back to the
[0104] Furthermore, in this embodiment, there may also be used a cover, in this case a sub-structure spandrel cover 32, which at least in part encloses the connection line 20 in the sub-structure spandrel 23, wherein the sub-structure spandrel cover 32 is routed into the lower quadrant Q2, facing away from the vehicle frame 2, of the installation space 12 available and there encloses the connection line 20 and preferably also an operating component 19a. The sub-structure spandrel cover 32 may also cover the connecting line 26 and an operating component 19b in the upper quadrant Q1 of the installation space 12 facing away from the vehicle frame 2, as shown in
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[0106] It can be seen from the
[0107] As already noted above, the semi-trailer spandrel 24 is composed of two partial spandrels 24a and 24b, see
[0108] The first partial spandrel 24a results from a space that lies between the semi-trailer 15 (or the lower side of the semi-trailer 15) and the vehicle frame 2 if the end of the semi-trailer 15 facing the driver's cab 9 is inclined downwards as far as possible and comes to rest, for example, on the vehicle frame 2 or on a protective plate 34 located thereon. However, it should be noted that the semi-trailer 15 may also be pivoted about a vertical axis about the pivot point P, as shown in
[0109] The second partial spandrel 24b results from a space that lies between the driver's cab 9, the vehicle frame 2 and the semi-trailer 15 (or the front side of the semi-trailer 15, respectively) when the end of the semi-trailer 15 facing the driver's cab 9 is inclined downwards as far as possible, again taking into account the rotation about the vertical axis. Since the second partial spandrel 24 may be open at the top, see
[0110] As a rule, the pivoting range of the semi-trailer 15 and thus also of the semi-trailer spandrel 24 is defined, on the one hand, by the position of the trailer coupling plate 14 and, on the other hand, by the length of the semi-trailer 15 between the driver's cabin 9 and the articulation point P. The trailer coupling plate 14 may be positioned between the front axle 5 and the rear axle 7 or above or behind the rear axle 7, as shown in
[0111] In the
[0112] In the
[0113] The
[0114] In
[0115] The routing of the connection line 20 through the rear wheel spandrel 21, front wheel spandrel 22, sub-structure spandrel 23 and/or the semi-trailer spandrel 24 not only enables improved utilization of the installation space 12 available, but also easier attachment of the cryogenic container 3, 4 to the vehicle frame 2. As shown in the
[0116] The support brackets 36 each have a mounting side 38 for mounting on the vehicle frame 2. The vehicle frame 2 has a surface complementary to the support brackets 36 such that the support brackets 36 may be mounted thereon. The mounting side 38 is usually vertical, but could also be inclined if the vehicle frame 2 is configured accordingly.
[0117] As shown, the support brackets 36 have a rounding, which embraches the cryogenic container 3, 4 in some sections. This allows the support bracket 36 to absorb part of the weight of the cryogenic container 3, 4 even without the tensioning straps 37, although the tensioning straps 37 are of course still required to tension the cryogenic container 3, 4 against the support brackets 36. However, the rounding of the support brackets 36 should preferably be dimensioned in such a way that the support brackets 36 themselves do not protrude below the lower level U. The support brackets 36 could also have a different shape than shown and could, for example, also be configured to be straight. Alternatively, no support brackets 36 could be used, such that the tensioning straps 37 are fastened directly to the vehicle frame 2.
[0118] It is usually critical or obstructive for the assembly of the cryogenic container 3, 4 on the vehicle frame 2 if connection lines 20 or operating components run above or below the tensioning straps 36. Since the spandrels 21-24 mentioned are usually located on the outer sides of the cryogenic container 3, 4, i.e. next to the end caps 17, 18 or next to the front plane V or the rear plane H, there may be provided that the first and the second operating components 19a, 19b are located only on that side of an outermost tensioning strap 37, which faces the nearest end cap 17, 18. In other words, the connection lines 20 or operating components 19a. 19b, respectively, are arranged above or on the lateral surface 16 between the outermost tensioning strap 37 and the end cap 17, 18, wherein the connection line 20 or the operating components 19a, 19b, respectively, could also be located above the end cap 17, 18, for example in the rear wheel spandrel 21 or front wheel spandrel 22.
[0119] According to the invention, the connection line 20 may now be routed on the vehicle side through the spandrels 21-24 and from there into an upper or lower quadrant Q1, Q2 of the installation space 12 facing towards or away from the vehicle 1, namely only on that side of an outermost tensioning strap 37 that faces the nearest end cap 17, 18, without having to cross or undercut a tensioning strap 37. In particular, if operating components 19a, 19b are arranged in at least two different ones of said quadrants of the installation space 12, in particular in the upper quadrant Q1 facing away from the vehicle frame 2 and the lower quadrant Q2 facing away from the vehicle frame 2, and are connected by means of the connecting line 26 mentioned, as many operating components 19a, 19b as possible may be arranged within the installation space 12 available, without connection lines 20 having to cross tensioning straps 37.
[0120] It should be emphasised, however, that the invention is not limited to these embodiments, but rather that connection lines 20 could cross over or underneath the tensioning straps 37, as illustrated, for example, through the elongated cover 27 of
[0121]
[0122] The first partial spandrel 39 is a lower region of the rear spandrel 21, which is formed by a space limited by the frame plane R, the outer plane A, rear plane H, the upper plane O, a vertical rear spacing plane X1 and a horizontal lower spacing plane X2. The rear spacing plane X1 lies at a distance of at least 1 cm, at least 3 cm, at least 5 cm and/or at most 6 cm, at most 10 cm, at most 20 cm, at most 30 cm, behind the rear plane H. The lower spacing plane X2 lies at a distance of at least 1 cm, at least 3 cm, at least 5 cm and/or at most 6 cm, at most 10 cm, at most 20 cm, at most 30 cm, below the upper plane O.
[0123] The second partial spandrel 40 is a lower region of the front spandrel 22, which is formed by a space limited by the frame plane R, the outer plane A, front plane H, the upper plane O, a vertical front spacing plane X3 and the horizontal lower spacing plane X2 mentioned. The front spacing plane X3 lies at a distance of at least 1 cm, at least 3 cm, at least 5 cm and/or at most 6 cm, at most 10 cm, at most 20 cm, at most 30 cm, in front of the front plane V. The lower spacing plane X2 may be dimensioned as above for the first partial spandrel 39.
[0124] The third partial spandrel 41 is a lower region of the sub-structure spandrel 23 and is composed of a front third partial spandrel 41a and a rear third partial spandrel 41b. The front third partial spandrel 41a is formed by a space limited by the frame plane R, the outer plane A, front plane V, the lower plane U, a vertical rear spacing plane X4 and a horizontal bottom spacing plane X5. The rear spacing plane X4 lies at a distance of at least 1 cm, at least 3 cm, at least 5 cm and/or at most 6 cm, at most 10 cm, at most 20 cm, at most 30 cm, behind the front plane V. The lower spacing plane X5 lies at a distance of at least 1 cm, at least 3 cm, at least 5 cm and/or at most 6 cm, at most 10 cm, at most 20 cm, at most 30 cm, below the lower plane U.
[0125] The rear third spandrel 41b is formed by a space limited by the frame plane R, the outer plane A, rear plane H, the lower plane U, a vertical front spacing plane X6 and the horizontal lower spacing plane X5. The front spacing plane X6 is at a distance of at least 1 cm, at least 3 cm, at least 5 cm and/or at most 6 cm, at most 10 cm, at most 20 cm, at most 30 cm, in front of the rear plane H. The lower spacing plane X5 may be dimensioned as above for the front third partial spandrel 41a.
[0126] The fourth partial spandrel 42 is a lower region of the semi-trailer spandrel 24, which is formed by a space limited by the frame plane R, the outer plane A, the upper plane O, a horizontal upper spacing plane X7, a vertical front spacing plane X8 and a vertical rear spacing plane X9. The upper spacing plane X7 lies at a distance of at least 1 cm, at least 3 cm, at least 5 cm and/or at most 6 cm, at most 10 cm, at most 20 cm, at most 30 cm, above the upper plane O. The vertical front spacing plane X8 lies at a distance of at least 1 cm, at least 3 cm, at least 5 cm and/or at most 6 cm, at most 10 cm, at most 20 cm, at most 30 cm, at most 50 cm in front of the rear plane H. The vertical rear spacing plane X8 preferably coincides with the rear plane H or is located a maximum of 1 cm, a maximum of 3 cm, a maximum of 4 cm, a maximum of 10 cm, a maximum of 20 cm in front of the rear plane H.
[0127] Alternatively, the front and rear spacing planes X8, X9 may be symmetrically located in front of or behind the articulation point P or a centre point of the trailer coupling plate 14 mounted on the vehicle frame 2, e.g. at a distance of at least 1 cm, at least 3 cm, at least 5 cm and/or at most 6 cm, at most 10 cm, at most 20 cm, at most 30 cm, at most 50 cm in front of or behind the articulation point P or the centre point mentioned.
[0128] It will be appreciated that the connection line 20 between the frame plane R and the installation space 12 available is to run only in one or more of the spandrels 21-24 mentioned or only in one or more of the partial spandrels 39-42 mentioned, and in particular the four discharge volumes are to remain free of connection lines 20 or operating components 19a. 19b. Optionally, the space resulting from the difference between the spandrels 21-24 and their respective partial spandrels 39-42 may also be free of connection lines 20.
[0129] Incidentally, the vehicle 1 shown herein need not be a semi-trailer vehicle either, but may rather also be, for example, a regular truck, in which the area above the installation space 12 available is permanently obstructed. The invention may also be used for these vehicles, wherein only the routing through the semi-trailer spandrel 24 is not applicable. If, moreover, for example, one of the other spandrels, in particular the front wheel spandrel 22, is not available because it is permanently obstructed, for example, by the driver's cab 9, the routing of the connection line 20 through this spandrel will not be provided: however, the connection line 20 may, of course, be routed through one of the other remaining spandrels.
[0130] However, the invention mentioned above is not limited to the connection line 20 being routed through the rear wheel spandrel 21, the front wheel spandrel 22, the sub-structure spandrel 23 and/or the semi-trailer spandrel 24a, 24b. In particular, an operating component 19a, 19b could also be located at least in part or also completely in one of the spandrels 21-24b mentioned, outside of the installation space 12 available. In this case, it is possible that the connection line 20 mentioned is routed into one of the spandrels 21-24b and is connected there to the operating component 19a, 19b located in the spandrel (thereby expanding the above embodiments), or an operating component 19a, 19b could be arranged with a part in the installation space 12 available and protrude into one of the spandrels 21-24b, in which case it is also possible that no connection line 20 is located in the respective spandrel.
[0131] Embodiments, in which operating components 19a, 19b are at least in part located in one of the spandrels 21-24b mentioned, are shown in the
[0132] In order to accommodate an operating component 19a, 19b completely within one of the spandrels 21-24b, the operating component 19a, 19b may preferably be configured to be rod-shaped and arranged substantially horizontally and normal to the direction of travel. By rod-shaped it is understood, for example, that the operating component 19a has an extension axis, wherein the operating component 19a is longer along the extension axis than in directions normal to the extension axis. Such a horizontal, rod-shaped operating component 19a may be used to utilize as much space as possible in the respective spandrel 21-24b, as can be seen in particular in
[0133] However, rod-shaped operating components 19a, 19b may also be used to effectively allow the operating components 19a, 19b to protrude into one of the spandrels 21-24b mentioned, as shown in
[0134] In the case of the operating component 19a shown in the
[0135] In the case of the operating component 19b shown in the
[0136]
[0137] In contrast to the embodiment of the
[0138] The second operating component 19b shown in the
[0139] The third operating component 19c shown in the
[0140] It will be appreciated that an operating component 19d could also be arranged above the rear wheel spandrel 21 or next to the semi-trailer spandrel 24d, wherein a connection line 20 to this operating component 19d could in turn pass through the rear wheel spandrel 21 and/or semi-trailer spandrel 24d.
[0141] These embodiments with operating component 19a. 19b in one of the spandrels 21-24b may, of course, be combined with the above embodiments. Thus, in the embodiments of the