1460921383-3d35d54a-a5d9-47e6-a43e-24221052cd51

1-11. (canceled)
12. A hydraulic control device for a hybrid drive device, comprising:
a source pressure generation section that generates a source pressure;
a hydraulic servo for a clutch provided on a power transfer path between an engine and a motor provided on a drive wheel side with respect to the engine;
a control solenoid valve that is electrically controlled so as to output the regulated source pressure to the hydraulic servo for the clutch as an engagement pressure; and
a switching section that switches a hydraulic passage, which extends between the source pressure generation section and the hydraulic servo to supply the engagement pressure, between a first state and a second state in which the hydraulic passage has a high conduit resistance compared to that in the first state at least until the clutch is engaged, wherein
the switching section switches the hydraulic passage into the second state during a failure in which the control solenoid valve is de-energized and the source pressure is directly supplied to the hydraulic servo as the engagement pressure, and switches the hydraulic passage into the first state during normal times when the failure does not occur.
13. The hydraulic control device for a hybrid drive device according to claim 12, wherein:
the hydraulic passage includes a first hydraulic passage that allows communication between the source pressure generation section and the hydraulic servo during the normal times, and a second hydraulic passage that allows communication between the source pressure generation section and the hydraulic servo during the failure; and
the switching section includes
a switching valve that switches the hydraulic passage to the first hydraulic passage to establish the first state, and that switches the hydraulic passage to the second hydraulic passage to establish the second state, and
a hydraulic pressure adjustment section that is disposed on the second hydraulic passage and that restricts a flow rate of oil in the second hydraulic passage or absorbs a hydraulic pressure in the second hydraulic passage to relieve a rise in engagement pressure during engagement of the clutch during the failure.
14. The hydraulic control device for a hybrid drive device according to claim 13, wherein
the hydraulic pressure adjustment section is a flow rate restriction section that restricts the flow rate of the oil, and is disposed on the second hydraulic passage between a branch portion, at which a common hydraulic passage connected to the source pressure generation section is branched into the first and second hydraulic passages, and the switching valve.
15. The hydraulic control device for a hybrid drive device according to claim 14, wherein:
the control solenoid valve is a normally closed linear solenoid valve that includes an input port, an output port, and a drain port, and that blocks communication between the input port and the output port and allows communication between the drain port and the output port when de-energized;
the switching valve is a valve that includes a hydraulic servo connection port connected to the drain port of the control solenoid valve and a second hydraulic passage input port to which the source pressure is supplied, and that allows communication between the hydraulic servo connection port and the second hydraulic passage input port during the failure and blocks communication between the hydraulic servo connection port and the second hydraulic passage input port during the normal times;
the first hydraulic passage includes the common hydraulic passage, a first connection passage that connects between the branch portion and the input port of the control solenoid valve, and an input passage that connects between the output port of the control solenoid valve and the hydraulic servo for the clutch;
the second hydraulic passage includes the common hydraulic passage, a second connection passage that connects between the branch portion and the second hydraulic passage input port of the switching valve, a drain passage that connects between the hydraulic servo connection port of the switching valve and the drain port of the control solenoid valve, and the input passage; and
the flow rate restriction section is an orifice provided on the second connection passage or the second connection passage which is formed to be smaller in diameter than the first connection passage.
16. The hydraulic control device for a hybrid drive device according to claim 14, wherein:
the control solenoid valve is a normally closed linear solenoid valve that includes an input port, an output port, and a drain port, and that blocks communication between the input port and the output port and allows communication between the drain port and the output port when de-energized;
the switching valve is a valve that includes a first hydraulic passage input port connected to the output port of the control solenoid valve, a second hydraulic passage input port to which the source pressure is supplied, and a hydraulic servo connection port connected to the hydraulic servo, and that allows communication between the first hydraulic passage input port and the hydraulic servo connection port during the normal times and blocks communication between the first hydraulic passage input port and the hydraulic servo connection port and allows communication between the second hydraulic passage input port and the hydraulic servo connection port during the failure;
the first hydraulic passage includes the common hydraulic passage, a first connection passage that connects between the branch portion and the input port of the control solenoid valve, a third connection passage that connects between the output port of the control solenoid valve and the first hydraulic passage input port of the switching valve, and an input passage that connects between the output port of the control solenoid valve and the hydraulic servo for the clutch;
the second hydraulic passage includes the common hydraulic passage, a fourth connection passage that connects between the branch portion and the second hydraulic passage input port of the switching valve, and the input passage; and
the flow rate restriction section is an orifice provided on the fourth connection passage or the fourth connection passage which is formed to be smaller in diameter than the first or third connection passage.
17. The hydraulic control device for a hybrid drive device according to claim 14, wherein:
the control solenoid valve is a normally open linear solenoid valve that includes an input port, an output port, and a drain port, and that allows communication between the input port and the output port when de-energized;
the switching valve is a valve that includes first and second hydraulic passage input ports connected to the output port of the control solenoid valve and a hydraulic servo connection port connected to the hydraulic servo, and that allows communication between the first hydraulic passage input port and the hydraulic servo connection port during the normal times and blocks communication between the first hydraulic passage input port and the hydraulic servo connection port and allows communication between the second hydraulic passage input port and the hydraulic servo connection port during the failure;
the first hydraulic passage includes the common hydraulic passage, a fifth connection passage that connects between the branch portion and the first hydraulic passage input port of the switching valve, and an input passage that connects between the hydraulic servo connection port of the switching valve and the hydraulic servo for the clutch;
the second hydraulic passage includes the common hydraulic passage, a fourth connection passage that connects between the branch portion and the second hydraulic passage input port of the switching valve, and the input passage; and
the flow rate restriction section is an orifice provided on the fourth connection passage or the fourth connection passage which is formed to be smaller in diameter than the fifth connection passage.
18. The hydraulic control device for a hybrid drive device according to claim 14, wherein:
the control solenoid valve is a normally open linear solenoid valve that includes an input port, an output port, and a drain port, and that allows communication between the input port and the output port when de-energized;
the switching valve is a valve that includes first and second hydraulic passage input ports to which the source pressure is supplied and a hydraulic servo connection port connected to the input port of the control solenoid valve, and that allows communication between the first hydraulic passage input port and the hydraulic servo connection port during the normal times and blocks communication between the first hydraulic passage input port and the hydraulic servo connection port and allows communication between the second hydraulic passage input port and the hydraulic servo connection port during the failure;
the first hydraulic passage includes the common hydraulic passage, a fifth connection passage that connects between the branch portion and the first hydraulic passage input port of the switching valve, a sixth connection passage that connects between the hydraulic servo connection port of the switching valve and the input port of the control solenoid valve, and an input passage that connects between the output port of the control solenoid valve and the hydraulic servo for the clutch;
the second hydraulic passage includes the common hydraulic passage, a fourth connection passage that connects between the branch portion and the second hydraulic passage input port of the switching valve, the sixth connection passage, and the input passage; and
the flow rate restriction section is an orifice provided on the fourth connection passage or the fourth connection passage which is formed to be smaller in diameter than the fifth connection passage.
19. The hydraulic control device for a hybrid drive device according to claim 13, wherein
the hydraulic pressure adjustment section is a damper having a damper capacity that enables absorption of a hydraulic pressure that causes the clutch to generate a torque capacity corresponding to friction torque at a predetermined rotational speed of the engine.
20. The hydraulic control device for a hybrid drive device according to claim 19, wherein:
the control solenoid valve is a normally closed linear solenoid valve that includes an input port, an output port, and a drain port, and that blocks communication between the input port and the output port and allows communication between the drain port and the output port when de-energized;
the switching valve is a valve that includes a hydraulic servo connection port connected to the drain port of the control solenoid valve and a second hydraulic passage input port to which the source pressure is supplied, and that allows communication between the hydraulic servo connection port and the second hydraulic passage input port during the failure and blocks communication between the hydraulic servo connection port and the second hydraulic passage input port during the normal times;
the first hydraulic passage includes a common hydraulic passage connected to the source pressure generation section, a first connection passage that connects between a branch portion, at which the common hydraulic passage is branched into the first and second hydraulic passages, and the input port of the control solenoid valve, and an input passage that connects between the output port of the control solenoid valve and the hydraulic servo for the clutch;
the second hydraulic passage includes the common hydraulic passage, a second connection passage that connects between the branch portion and the second hydraulic passage input port of the switching valve, a drain passage that connects between the second hydraulic passage input port of the switching valve and the drain port of the control solenoid valve, and the input passage which connects between the output port of the control solenoid valve and the hydraulic servo for the clutch; and
the damper is connected to the drain passage.
21. The hydraulic control device for a hybrid drive device according to claim 12, wherein:
the control solenoid valve is a normally open linear solenoid valve that includes an input port, an output port, and a drain port, and that allows communication between the input port and the output port when de-energized;
the hydraulic passage includes a seventh connection passage that connects between the source pressure generation section and the input port of the control solenoid valve, and an input passage that connects between the output port of the control solenoid valve and the hydraulic servo for the clutch; and
the switching section includes
a damper connected to the input passage via a communication passage and having a damper capacity that enables absorption of a hydraulic pressure that causes the clutch to generate a torque capacity corresponding to friction torque at a predetermined rotational speed of the engine, and
a blocking valve that blocks the communication passage to bring the hydraulic passage into the first state during the normal times, and that allows communication through the communication passage to bring the hydraulic passage into the second state during the failure.
22. The hydraulic control device for a hybrid drive device according to claim 19, wherein
the predetermined rotational speed of the engine is a prescribed maximum rotational speed of the engine.
23. The hydraulic control device for a hybrid drive device according to claim 20, wherein
the predetermined rotational speed of the engine is a prescribed maximum rotational speed of the engine.
24. The hydraulic control device for a hybrid drive device according to claim 21, wherein
the predetermined rotational speed of the engine is a prescribed maximum rotational speed of the engine.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A method of inhibiting rejection of a transplanted organ, tissue or cell in a recipient mammal, the method comprising the step of administering to the recipient mammal an effective amount of an anti-lymphocyte antibody and an effective amount of a compound represented by the following structural formula:
or a physiologically acceptable salt of the compound.
2. The method of claim 1 wherein the transplanted organ, tissue or cell is a transplanted heart, kidney, lung, liver, pancreas, skin or bone marrow.