Method of extended thermodynamic turbine mapping via compressor inlet throttling
10273965 ยท 2019-04-30
Assignee
Inventors
Cpc classification
F02C7/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/51
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D27/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D21/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/146
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method for extending thermodynamic turbine mapping of a turbocharger, the turbocharger including a turbine and a compressor, the method including the steps of providing a steady-state turbocharger gas test stand configured to flow continuous gas to the turbocharger, the test stand including a throttle device disposed upstream of an inlet of the compressor of the turbocharger, and varying an area of the inlet with the throttle device to change density of the continuously flowing gas at the inlet of the compressor and establish a choked-flow condition for extending the thermodynamic turbine mapping of the turbocharger.
Claims
1. A method for extending thermodynamic turbine mapping of a turbocharger, the turbocharger including a turbine and a compressor, said method comprising the steps of: providing a steady-state turbocharger gas test stand configured to flow continuous gas to the turbocharger, the test stand including a throttle device disposed upstream of an inlet of the compressor of the turbocharger; and varying an area of the inlet with the throttle device to change a density of the continuously flowing gas at the inlet of the compressor and establishing a choked-flow condition for extending the thermodynamic turbine mapping of the turbocharger.
2. A method as set forth in claim 1 including the step of providing a compressor inlet run including a compressor inlet pipe and the throttle device disposed in or with the compressor inlet pipe.
3. A method as set forth in claim 2 including the step of providing the throttle device as an orifice in or with the compressor inlet pipe.
4. A method as set forth in claim 2 including the step of providing the throttle device as a plurality of interchangeable orifices of different sizes and interchanging the orifices in or with the compressor inlet pipe.
5. A method as set forth in claim 4 including the step of providing the throttle device as a plurality of interchangeable plates for the plurality of orifices and interchanging the plates in or with the compressor inlet pipe.
6. A method as set forth in claim 2 including the step of providing the throttle device as a compressor load throttle valve assembly.
7. A method as set forth in claim 6 including the step of providing the compressor load throttle valve assembly as a movable valve member and an actuator coupled to the valve member to move the valve member.
8. A method as set forth in claim 7 including the step of moving the valve member toward the inlet to produce a quasi-choked flow at a target compressor operating point of the turbocharger.
9. A method for extending thermodynamic turbine mapping of a turbocharger, the turbocharger including a turbine and a compressor, said method comprising the steps of: providing a steady-state turbocharger gas test stand configured to flow continuous gas to the turbocharger, the test stand including a compressor inlet run having a compressor inlet pipe and a throttle device disposed in the compressor inlet pipe upstream of an inlet of the compressor of the turbocharger; and varying an area of the inlet with the throttle device to change density of the continuously flowing gas at the inlet of the compressor and establishing a quasi-choked-flow condition at a target compressor operating point of the turbocharger for extending the thermodynamic turbine mapping of the turbocharger.
10. A method as set forth in claim 9 including the step of providing the throttle device as a compressor load throttle valve assembly.
11. A method as set forth in claim 10 including the step of providing the compressor load throttle valve assembly as a movable valve member and an actuator coupled to the valve member to move the valve member.
12. A method as set forth in claim 11 including the step of moving the valve member toward and away from the inlet.
13. A method as set forth in claim 9 including the step of providing the throttle device as an orifice in or with the compressor inlet pipe.
14. A method as set forth in claim 9 including the step of providing the throttle device as a plurality of interchangeable orifices of different sizes and interchanging the orifices in or with the compressor inlet pipe.
15. A gas test stand for carrying out a method for extending thermodynamic turbine mapping of a turbocharger, the turbocharger including a turbine and a compressor, said gas test stand configured to flow continuous gas to the turbocharger and comprising: a compressor inlet run having a compressor inlet pipe and a throttle device disposed in the compressor inlet pipe upstream of an inlet of the compressor of the turbocharger; the throttle device being one of; an orifice, a plurality of interchangeable orifices of different sizes, and a compressor load throttle valve assembly including a movable valve member and an actuator coupled to the valve member to move the valve member, wherein the throttle device varies an area of the inlet to change a density of the continuously flowing gas at the inlet of the compressor and establishes a choked-flow condition for extending the thermodynamic turbine mapping of the turbocharger.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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DETAILED DESCRIPTION OF THE INVENTION
(5) Referring now to the figures, where like numerals are used to designate like structure unless otherwise indicated, a gas test stand is generally indicated at 10 in
(6) As illustrated in
(7) Referring again to
(8) Referring to
(9) In another embodiment, the throttle device 31 is a compressor load throttle valve assembly 38. The compressor load throttling valve assembly 38 includes a valve member 40 that is movable relative to the orifice 34. In one embodiment, the valve member 40 is generally tapered or frustoconical in shape. It should be appreciated that this shape preserves uniformity of flow entering the compressor of the turbocharger 12, which is required to accurately measure boundary conditions at the compressor inlet.
(10) The compressor load throttling valve assembly 38 includes an actuator 42 coupled to the valve member 40 to move the valve member 40 relative to the orifice 34 to vary an annular orifice area 44. It should be appreciated that, in one embodiment, the actuator 42 moves the valve member 40 axially relative to the orifice 34 to vary the annular orifice area 44.
(11) The compressor inlet run 30 also includes an upstream pressure tap 46 provided in the inlet compressor pipe 32 upstream of the orifice 34 and a downstream pressure tap 48 provided in the inlet compressor pipe 32 downstream of the orifice 34 and both communicating with the interior of the compressor inlet pipe 32. It should be appreciated that, except for the compressor inlet run 30 having the throttle device 31, the remainder of the gas test stand 10 is conventional.
(12) In operation of the compressor load throttle valve assembly 38, a continuous flow of air travels from upstream through the orifice 34 and downstream through the compressor inlet pipe 32. The valve member 40 is moved axially relative to the orifice 34 to vary the annular orifice area 44. It should be appreciated that orifice area 44 is used to extend the thermodynamic turbine map for the turbocharger 12. It should be appreciated that the valve member 40 restricts flow, thereby decreasing pressure. It should further be appreciated that the valve member 40 is closed enough relative to the orifice 34 to produce quasi-choked flow at a target compressor operating point and this causes the compressor of the turbocharger 12 to operate in a partial vacuum, lowering the required drive power and extending the thermodynamic turbine map to the left.
(13) In operation of the gas test stand 10 for the turbocharger 12, flow of continuous gas is provided to the turbocharger 12. The gas continuously flows from a source to the compressor mass flow measurement device 34. From the device 34, the gas continuously flows to the compressor inlet run 30 and through the throttle device 31 disposed upstream of an inlet of the compressor wheel 22 of the turbocharger 12. In the compressor inlet run 30, varying the area of the inlet with the throttle device 31 changes a density of the continuously flowing gas at the inlet of the compressor of the turbocharger 12 and establishes a choked-flow condition for extending the thermodynamic turbine mapping of the turbocharger 12. The compressor inlet pressure is throttled down by the throttle device 31 in front of the compressor of the turbocharger 12 under test. In one embodiment, the valve member 40 is moved relative to the orifice 34 such that the orifice 34 is closed enough to adjust the flow rate of the gas and produce a quasi-choked flow at the target compressor operating point. This causes the compressor of the turbocharger 12 to operate in a partial vacuum, lowering the required drive power and extending the thermodynamic turbine map (
(14) Referring to
(15) Referring to
(16) Accordingly, the present invention provides a method for extending thermodynamic turbine mapping of the turbocharger 12. The method includes the steps of providing a steady-state turbocharger gas test stand 10 configured to flow continuous gas to the turbocharger 12. The test stand 10 includes a compressor inlet run 30 having a throttle device 31 disposed upstream of an inlet of the compressor of the turbocharger 12. The method also includes the steps of varying an area of the inlet with the throttle device 31 to change a density of the continuously flowing gas at the inlet of the compressor and establishing a choked-flow condition for extending the thermodynamic turbine mapping of the turbocharger 12.
(17) The present invention has been described in an illustrative manner. It is to be understood that the terminology which has been used is intended to be in the nature of words of description rather than of limitation.
(18) Many modifications and variations of the present invention are possible in light of the above teachings. Therefore, within the scope of the appended claims, the invention may be practiced other than as specifically described.