A TURBOCOMPOUND UNIT
20170241330 · 2017-08-24
Assignee
Inventors
Cpc classification
F16D41/069
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B41/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2011/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16D41/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D55/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D25/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D67/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02B41/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D55/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D25/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/069
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D67/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A turbocompound unit for converting energy of an exhaust gas from an internal combustion engine to torque increase of a crankshaft of the internal combustion engine includes a turbine arrangement and an arrangement configured to operatively connecting the turbine arrangement to the crankshaft is a hydrodynamic coupling and freewheeling arrangement. The turbocompound unit further includes a brake arrangement, wherein the brake arrangement and the freewheeling arrangement are located on an opposite side of the hydrodynamic coupling in relation to the turbine arrangement.
Claims
1. A turbocompound unit for converting energy of an exhaust gas from an internal combustion engine (10) to torque increase of a crankshaft (30) of the internal combustion engine (10), comprising a turbine arrangement (105) and means (106) configured to operatively connecting the turbine arrangement (105) to the crankshaft (30) via a hydrodynamic coupling (110) and freewheeling means (120), characterized in that the turbocompound unit (100) further comprises brake means (130) and that the brake means (130) and the freewheeling means (120) are located on an opposite side of the hydrodynamic coupling (110) in relation to the turbine arrangement (105).
2. The turbocompound unit according to claim 1, wherein the means (106) configured to operatively connect the turbine arrangement (105) to the crankshaft (30) comprises a gearing (106).
3. The turbocompound unit according to claim 2, wherein the gearing (106) comprises at least one gear (142a) having teeth (144a) for meshing with a corresponding gear of the crankshaft (30), and wherein the freewheeling means (120) is provided as a freewheel clutch being arranged radially inside said teeth (144a).
4. The turbocompound unit according to any one of claims 1-3, wherein the brake means (130) comprises a disc clutch.
5. The turbocompound unit according to claims 3 and 4, wherein the disc clutch (130) is provided at one end of a shaft (140), and wherein the freewheel clutch (120) is arranged onto said shaft (140).
6. The turbocompound unit according to claim 5, wherein the freewheel clutch (120) is arranged adjacent to said disc clutch (130).
7. The turbocompound unit according to claim 5, wherein the freewheel clutch (120) and the disc clutch (130) are arranged at opposite ends of the shaft (140).
8. The turbocompound unit according to any one of claims 4-7, wherein said disc clutch (130) is hydraulically actuated by means of a piston (134).
9. The turbocompound unit according to any one of claims 5-8, wherein the shaft (140) comprises an oil conduit (149b) for providing lubricating fluid to the freewheel clutch (120) and or the friction discs (132).
10. The turbocompound unit according to any one of claims 1-3, wherein the freewheeling means (120) and the brake means (130) are provided by means of a clutch having a connection mode for engaging the turbine arrangement (105) with the crankshaft (30), a freewheeling mode for disconnecting the turbine arrangement (105) from the crankshaft (30), and a braking mode for braking the turbine arrangement (105) relative the crankshaft (30).
11. The turbocompound unit according to any one of the preceding claims, further comprising a controller (300) having at least one input (302) for receiving a signal representing the operational status of the turbocompound unit (100), a determination unit (304) being configured to determine a desired operational status of the turbocompound unit and to calculate a corresponding control signal, and at least one output (306) for transmitting the control signal to the brake means (130) and/or the freewheeling means (120).
12. A turbocompound unit for converting energy of an exhaust gas from an internal combustion engine (10) to torque increase of a crankshaft (30) of the internal combustion engine (10), comprising a turbine arrangement (105) and means (106) configured to operatively connecting the turbine arrangement (105) to the crankshaft (30) via a hydrodynamic coupling (110) and freewheeling means (120), characterized in that the turbocompound unit (100) further comprises brake means (130), and a controller (300) having at least one input (302) for receiving a signal representing the operational status of the turbocompound unit (100), a determination unit (304) being configured to determine a risk associated with the operational status and to determine a corresponding control signal, and at least one output (306) for transmitting the control signal to the brake means (130) and/or the freewheeling means (120).
13. The turbocompound unit according to claim 11 or 12, wherein the input (302) of the controller (300) is configured to receive a signal representing the engine torque and the 35 engine speed of the associated internal combustion engine (10), and wherein the determination unit (304) is configured to determine a risk of oil leakage in the turbine arrangement (105).
14. The turbocompound unit according to claim 11 or 12, wherein the input (302) of the controller (300) is configured to receive a signal representing the rotational speed of the turbine arrangement (105), and wherein the determination unit (304) is configured to determine a risk of malfunction due to overspeed.
15. The turbocompound unit according to claim 11 or 12, wherein the input (302) of the controller (300) is configured to receive a signal representing the current driving mode, and wherein the determination unit (304) is configured to determine a risk of excessive friction of the turbocompound unit (100).
16. The turbocompound unit according to claim 11 or 12, wherein the input (302) of the controller (300) is configured to receive a signal representing start-up of the internal combustion engine, and wherein the determination unit (304) is configured to determine a risk of excessive load on an associated starter.
17. The turbocompound unit according to claim 11 or 12, wherein the input (302) of the controller (300) is configured to receive a signal representing the temperature of the exhaust gas, and wherein the determination unit (304) is configured to determine a risk of unfavorable operation of an associated exhaust gas aftertreatment system.
18. The turbocompound unit according to claim 11 or 12, wherein the input (302) of the controller (300) is configured to receive a signal representing engine braking, and wherein the determination unit (304) is configured to determine a risk of undesired torque transfer from the turbocompound unit to the crankshaft.
19. An internal combustion engine system, comprising an internal combustion engine (10) having a crankshaft (30) and a turbocompound unit (100) according to any one of the preceding claims.
20. A vehicle (1) comprising a turbocompound unit (100) according to any one of claims 1-18.
21. A method for controlling the operation of a turbocompound unit configured to convert energy of an exhaust gas from an internal combustion engine to torque increase of a crankshaft of the internal combustion engine, the turbocompound unit comprising a turbine arrangement and means configured to operatively connecting the turbine arrangement to a crankshaft of the internal combustion engine via a hydrodynamic coupling and freewheeling means, characterized by the steps of: receiving a signal representing the operational status of the turbocompound unit, determining a risk associated with the operational status, determining a corresponding control signal, and transmitting the control signal to the freewheeling means and/or to brake means of the turbocompound unit for controlling the operation of the turbocompound unit.
22. The method according to claim 21, wherein the step of receiving a signal representing the operational status comprises receiving a signal representing the engine torque and the engine speed of the associated internal combustion engine, and wherein the step of determining a risk comprises determining a risk of oil leakage in the turbine arrangement.
23. The method according to claim 21, wherein the step of receiving a signal representing the operational status comprises receiving a signal representing the rotational speed of the turbine arrangement, and wherein the step of determining a risk comprises determining a risk of malfunction due to overspeed.
24. The method according to claim 21, wherein the step of receiving a signal representing the operational status comprises receiving a signal representing the current driving mode, and wherein the step of determining a risk comprises determining a risk of excessive friction of the turbine arrangement.
25. The method according to claim 21, wherein the step of receiving a signal representing the operational status comprises receiving a signal representing start-up of the internal combustion engine, and wherein the step of determining a risk comprises determining a risk of excessive load on an associated starter.
26. A computer program comprising program code means for performing the steps of claims 21 when said program is run on a computer.
27. A computer readable medium carrying a computer program comprising program code means for performing the steps of claims 21 when said program product is run on a computer.
28. A control unit for controlling the operation of a turbocompound unit, the control unit being configured to perform the steps of the method according to claim 21.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples.
[0024] In the drawings:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
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[0035]
DETAILED DESCRIPTION
[0036] Starting with
[0037] in
[0038] The internal combustion engine 10 further comprises an exhaust gas system 40, which system 40 serves the purpose of recovering at least some of the energy in the exhaust gas flow to improve the performance of the internal combustion engine 10. In the shown example the exhaust gas exits the cylinders 20 and enters a manifold 42 which is further connected to an inlet 52 of a turbo charger 50. The exhaust gas flow causes a turbine wheel 54 to rotate, which rotation is translated to a corresponding rotation of a compressor wheel 56 being used to compress incoming air before it is introduced in the cylinders 20. The structural as well as functional specifications of a turbocharger 50 are well known in the art and will not be described in further details.
[0039] The exhaust gas exits the turbocharger 50 and flows to a turbocompound unit 100, optionally via an exhaust gas pressure regulator (not shown). The incoming exhaust gas, from which some energy have already been used to drive the turbine wheel 54 of the turbo charger 50, is guided to pass a turbine wheel 102 of the turbocompound unit 100, thus causing the turbine wheel 102 and an associated turbine shaft 104 to rotate. The rotation of the turbine shaft 104 is transmitted to a corresponding rotation of a gear wheel 200 via a hydrodynamic coupling 110 and a freewheel 120 and brake means 130. The freewheel 120 and/or the brake means 130 is connected to a control unit 300 for performing methods in order to control the operation of the freewheel 120 and/or brake means 130. The gear wheel 200 meshes with further gearings 205 in order to couple the turbine shaft 104 to the crankshaft 30. Hence, when the turbine wheel 02 is forced to rotate the turbine shaft 104 will provide an additional torque to the crankshaft 30.
[0040] An embodiment of a turbocompound unit is shown in further details in
[0041] Exhaust gas leaving an outlet 58 of the turbo charger 50 is directed to an axial-flow or radial in-flow (not shown) turbine wheel 102 of the turbocompound unit 100, whereby the turbine wheel 102 starts to rotate. The rotation of the turbine wheel 102 is transmitted to the turbine shaft 104, whereby the turbine wheel 102 and the turbine shaft 104 forms a turbine arrangement 105. Reduction gearings 106 are provided for adjusting the rotational speed of the turbine arrangement 105 such that it corresponds with the rotational speed of the crankshaft 30, i.e. the speed of the internal combustion engine 10. Hence the reduction gearings 106 forms at least part of means configured to operatively connecting the turbine arrangement 05 to the crankshaft 30.
[0042] The hydrodynamic clutch 110 is provided in order to reduce torque pulsations from the crankshaft 30. The turbine arrangement 105 is arranged on a primary side, i.e. a side which is normally associated with torque input of the hydrodynamic clutch 110, while the freewheel 120 and the brake means 130 are provided on a secondary side, i.e. a side which is normally associated with torque output.
[0043] As is indicated in
[0044] The shaft 140 having two gears 142a, 142b spaced apart axially is normally called a bull gear. A bull gear according to an embodiment is shown is
[0045] The bull gear is further shown in
[0046] The turbocompound unit 100 described so far may provide improved operation as well as reduced complexity of the constructional design. It is well known that during specific operating conditions the pressure behind the turbine wheel may drop causing a suction pressure from the turbocompound housing, i.e. from the parts supporting the turbine shaft. Since this suction pressure may draw oil and other lubrication fluids into the exhaust gas flow it is desirable to always maintain an overpressure behind the turbine. Existing solutions to this problem include the pre vision of buffer air, which means that pressurized air is supplied to an area between the housing and the turbine wheel.
[0047] The turbocompound unit according to the present application may solve this problem in a different manner. A diagram showing the pressure behind the turbine wheel as a function of engine speed and engine torque is shown in
[0048]
[0049] The above example of controlling the turbocompound unit is realized by the controller 300 acting as a control unit, and having at least one input 302 for receiving a signal representing the operational status of the turbocompound unit 100, a determination unit 304 being configured to determine a risk associated with the operational status and to determine a corresponding control signal, and at least one output 306 for transmitting the control signal to the brake means 130 and/or the freewheeling means 120.
[0050] In the embodiment described with reference to
[0051] In another embodiment the input 302 of the controller 300 is configured to receive a signal representing the rotational speed of the turbine arrangement 105. The determination unit 304 may in such embodiment be pre-programmed to assess the risk of overspeed, which may lead to serious damage of the turbine wheel 102. Should there be a risk for engine overspeed the control unit 300 may transmit an output signal for braking the turbine arrangement 105. Such embodiment is particularly advantageous by the fact that the turbocompound unit 100 may be designed closer to its limits, as the controlling functionality will prevent damage and malfunction.
[0052] In a yet further embodiment the input 302 of the controller 300 is configured to receive a signal representing the current driving mode, and the determination unit 304 is configured to determine a risk when net output torque from the turbocompound unit to the engine is zero or below zero. During operation some situations may occur in which the engine 10 is having a higher speed than the turbocompound unit 100. Normally this will have a negative effect on the fuel consumption since the engine 10 must also drive the turbocompound unit 100. However, the controller 300 may determine that there is a risk for torque transfer in the wrong direction, i.e. from the engine 1 to the turbocompound unit 100, and brake or freewheel the turbocompound unit 100 accordingly.
[0053] In a further embodiment the input 302 of the controller 300 is configured to receive a signal representing start-up of the internal combustion engine 10. In order to minimize the rotating masses upon startup, the determination unit 304 may determine a risk of excessive load on an associated starter, and the controller 300 may output a signal for freewheeling the turbocompound unit 100.
[0054] In a still further embodiment the input 302 of the controller 300 is configured to receive a signal representing the status of an associated exhaust gas aftertreatment system. The determination unit 304 may be pre-programmed to determine a risk of non-optimal energy usage, which e.g. may indicate that the heat of the exhaust gas flow may be better used in the aftertreatment system than in the turbocompound unit 100. Hence, the controller 300 may output a signal for freewheeling and/or braking the turbocompound unit 100.
[0055] In one embodiment the input 302 of the controller 300 is configured to receive a signal representing the temperature of the exhaust gas. The determination unit 304 is configured to determine a risk of unfavorable operation of an associated exhaust gas aftertreatment system. Hence, should the temperature of the exhaust gas flowing into the turbocompound unit not be sufficient to allow optimal operation of the associated aftertreatment system the controller 300 may command freewheeling of the turbocompound unit.
[0056] In a yet further embodiment the input 302 of the controller 300 is configured to receive a signal representing engine braking, and the determination unit 304 is configured to determine a risk of undesired torque transfer from the turbocompound unit to the crankshaft.
[0057] In
[0058] In
[0059] The freewheel coupling 1200 comprises a disc package 1210 having a first set of discs 0 being fixedly connected to the shaft 140, and a second set of discs being fixedly connected to the gear 142a. A spring biased hydraulic piston 1220 may urge the first set of discs and the second set of discs towards each other such that there will be no, or very little, slip between the first and second set of discs. For synchronization purposes the piston 1220 may comprise a non-rotating part 1222 and a rotating part 1224; the rotating 5 part 1224 being allowed to rotate with the gear 142a or the shaft 140. The rotating part 1224 is arranged on the non-rotating part 1222 via a bearing 1226. It should be realized that the freewheel means 120 in the form of a coupling 1200 may be combined with a brake means 130, e.g. in accordance with the embodiment being described with reference to
[0060] Now turning to
[0061] In a subsequent step 204 the method determines a risk associated with the operational status, such as a risk of oil leakage in the turbine arrangement, a risk of malfunction due to overspeed, a risk of excessive friction of the turbine arrangement, or a risk of excessive load on an associated starter, in accordance with the description above.
[0062] The method thereafter performs a step 206 in which a control signal is generated, wherein the control signal is configured in accordance with the determined risk.
[0063] The method 200 also comprises the step 208 of outputting and transmitting the control signal to the freewheeling means 120 and/or to the brake means 130 of the turbocompound unit 100 for controlling the operation of the turbocompound unit 100.
[0064] The embodiments described so far may require active control of the brake means 130 and/or freewheeling means 120. In
[0065] An embodiment of such clutch 1300 is shown in
[0066] a freewheel mode, and either an engaging mode in which the gear 142a is rotationally connected to the gear 142b, or a brake mode in which the gear 142b is connected to a stationary housing 1320.
[0067] In a preferred embodiment the turbocompound unit 100 may further comprise an elastic element being arranged somewhere between the crankshaft and the turbine arrangement 105. Such elastic element, e.g. in the form of springs incorporated in the disc coupling of the brake means 130 and/or the freewheeling means 120, will thus isolate the hydrodynamic coupling 110, and consequently also the turbine arrangement 105 from torque pulsations coming from the engine.
[0068] It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.