Composite intake system and method of the rotary engine with variable intake manifold
10364778 ยท 2019-07-30
Assignee
Inventors
- Jianfeng Pan (Jiangsu, CN)
- Wei CHEN (Jiangsu, CN)
- Baowei Fan (Jiangsu, CN)
- Qingbo Lu (Jiangsu, CN)
- Yao Lu (Jiangsu, CN)
Cpc classification
F02M35/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D9/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10111
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B53/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B53/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D9/109
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D9/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M35/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B53/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B53/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D9/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M53/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M53/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A composite intake system and method of operating a rotary engine with variable intake manifold is provided. The system includes two switching valves in a secondary intake switching tube to change the intake method. When the rotary engine works under low speed conditions, it adopts the long intake manifold and the side-intake mode. When the rotary engine works under medium and high speed conditions, it uses the short intake manifold and the composite-intake mode. When the rotary engine works under ultra high speed conditions, it takes the short intake manifold and the peripheral-intake mode.
Claims
1. A composite intake system of a rotary engine having a flywheel, said composite intake system comprising an air cleaner, an intake manifold, a primary intake switching tube, a variable intake manifold, a secondary intake switching tube, a side-intake manifold, a peripheral-intake manifold, a middle partition, a cylindrical body, a rotor, a speed sensor and controller (ECU); wherein a peripheral-intake port and a peripheral-exhaust port are distributed at a peripheral-wall of the cylindrical body, a side-intake port is arranged in the middle partition; the rotor is arranged in the cylindrical body; the middle partition, is fixed on a side face of the cylindrical body and located between the side face of the cylindrical body and the rotor; the primary intake switching tube is connected with the air cleaner via the intake manifold; the variable intake manifold includes a short intake manifold and a long intake manifold; the short intake manifold and the long intake manifold are connected with the primary intake switching tube at one end; first valve is arranged in the primary intake switching tube which is used to control the intake manifold to connect with the at least one of one end of the short intake manifold and the long intake manifold; the other end of short intake manifold and the long intake manifold is connected with the secondary intake switching tube; other end of the secondary intake switching tube is connected with the side-intake manifold and the peripheral-intake manifold, and another end of the side-intake manifold is connected with the side-intake port and another end of the peripheral-intake manifold is connected with the peripheral-intake port; the connection between the secondary intake switching tube and the side-intake manifold is controlled by a secondary valve and the connection between the secondary intake switching tube and the peripheral-intake manifold is controlled by a third valve; wherein the secondary valve and the third valve are arranged in the secondary intake switching tube; the speed sensor is mounted on the flywheel and it is connected with the ECU to detect a rotational speed of the rotor and transmit rotational speed signal to the ECU; and the ECU is connected with the first valve, the second valve and the third valve to control their opening and closing according to the rotational speed of the rotor.
2. The system according to claim 1, wherein the first valve is a sheet-like structure: the short intake manifold is located on one side of the primary intake switching tube while the long intake manifold is located on the other side; the short intake manifold shares a same horizontal center line with the primary intake switching tube while the long intake manifold is at an upper location; and the first valve is fixed at a nozzle of the short intake manifold.
3. The system according to claim 1, wherein the second valve and the third valve are a sheet-like structure; they are fixed at a joint between the secondary intake switching tube and the side-intake manifold and the peripheral-intake manifold, at a position close to the side-intake manifold and the peripheral-intake manifold.
4. The system according to claim 2, wherein in the primary intake switching tube, a port of the short intake manifold is inserted at one side-wall surface of the primary intake switching tube; a port of the long intake manifold is inserted in the side-wall surface of the primary intake switching tube, and a direction of the long intake manifold is perpendicular to an orientation of airflow movement.
5. The system according to claim 1, wherein the variable intake manifold is connected with the secondary intake switching tube; the short intake manifold shares a common pipe, which has a rotating shape, with the long intake manifold; an arc-over-form is used at joint of the common pipe and the short intake manifold; and a diameter of the short intake manifold is larger than that of the long intake manifold.
6. The system according to claim 1, wherein the intake manifold and the primary intake switching tube are connected by a primary connecting flange; the variable intake manifold and the secondary intake switching tube are connected by a second connecting flange; the side-intake manifold and the peripheral-intake manifold are connected with the middle partition and the cylindrical body by a third connecting flange.
7. A method of operating the composite intake system for the rotary engine as claimed in claim 1, wherein the speed sensor monitors a real-time revolving speed of the rotor, and then the real-time revolving speed signal is sent to the ECU; wherein different kinds of air intake methods that the ECU conducts via revolving speed of the rotor are as follows: when the revolving speed of the rotor is below 2000 r/min, the rotary engine works under low speed conditions; the ECU controls the first valve to connect the Intake manifold with the long intake manifold, and the second valve (the third valve is closed) to connect the second intake switching tube with the side-intake manifold; in other words, the long intake manifold and the side-intake manifold are used; when the revolving speed of the rotor is between 2000 r/min and 5000 r/min, the rotary engine works under medium and high speed conditions; the ECU controls the first valve to connect the intake manifold with the short intake manifold, concurrently regulates the second valve and the third valve to connect the second intake switching tube with the side-intake manifold and the peripheral-intake manifold; in other words, the short intake manifold and the side intake manifold are used; and When the revolving speed of the rotor is more than 5000r/min, the rotary engine works under ultra high speed conditions; the ECU controls the first valve to connect the intake manifold with the short intake manifold, and the third valve (the second valve is closed) to connect the second intake switching tube with the peripheral-intake manifold; in other words, the short intake manifold and the peripheral intake manifold are used.
Description
DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4) In the figures:
(5) 1. Air cleaner, 2.Intake manifold, 3.Primary intake switching tube, 3-1.First valve, 4.Variable intake manifold, 4-1.Short intake manifold, 4-2.Long intake manifold, 5.Secondary intake switching tube, 5-1.Second valve, 5-2.Third valve, 6.Side-intake manifold, 7.Peripheral-intake manifold, 8.Middle partition, 9.Cylinder body, 10. Side-intake port, 11.Peripheral-intake port, 12.First connection flange, 13.Second connection flange, 14.Third connection flange, 15.Rotor, 16.Peripheral-exhaust port.
DETAILED DESCRIPTION
(6) The present invention will now be further described with reference to the drawings and specific embodiments, but the scope of this patent is not limited to these contents.
(7) As shown in
(8) The first valve in the primary intake switching tube 3 enables the length of the different intake manifolds switch rapidly. Meanwhile, the second valve and third valve in the second intake switching tube 5 enables the free conversion and combination of the side intake method and peripheral intake method.
(9) At the same time, this invention also includes a speed sensor SS and an ECU (shown in phantom), the speed sensor is arranged at the shaft S and flywheel FW (also shown in phantom) to real-time detect the rotational speed of the rotor. The speed sensor is connected to the ECU, which is also connected to the first valve, the second valve and the third valve. Moreover, the speed sensor transmits the detected rotor speed to the ECU in real time, then ECU according to the rotor speed to control the air intake manifold and intake method.
(10) As shown in
(11) When the side-intake method is adopted, firstly, the air flow flows from the intake manifold 2 into the primary intake switching tube 3, then the gas flows into the long intake manifold 4-2 (the first valve 3-1 is closed). Secondly, the gas in the secondary intake switching pipe 5 enters the side-intake manifold 6 (the second valve 5-1 is opened and the third valve 5-2 is closed). Finally, the gas enters the cylinder through the side-intake port 10. When the peripheral-intake method is adopted, firstly, the air flows from the intake manifold 2 into the primary intake switching tube 3, then the gas flows into the short intake manifold 4-1 (the first valve 3-1 is opened). Secondly, the gas in the secondary intake switching pipe 5 enters the peripheral-intake manifold 7 (the second valve 5-1 is closed and the third valve 5-2 is opened). Finally, the gas enters the cylinder through the peripheral-intake port 11. When the composite intake method is adopted, firstly, the gas flows into the short intake manifold 4-1 (the first valve 3-1 is opened). Then, the gas in the secondary intake switching pipe 5 enters the side-intake manifold 6. Finally, the gas can not only flow through the side-intake manifold and the side-intake port, but also through the peripheral-intake manifold and the peripheral-intake port into the cylinder (the second valve 5-1 is opened and the third valve 5-2 is opened).
(12) Adopting different intake methods on the basis of rotor speed can take full advantage of the side-intake method (high-torque output at low speed) and the peripheral-intake method (high-power output at high speed). When the rotary engine runs under low speed conditions, the air flow through the long intake manifold 4-2 and match up with the side-intake method. Under medium and high speed conditions, the air flow through the short intake manifold 4-1 and match up with the composite intake method (side-intake method and peripheral-intake method). Under ultra high speed conditions, the air flow through the short intake manifold 4-1 and match up with the side-intake method.
(13) The intake methods of a composite intake system of the rotary engine with variable intake manifold. The details are as follows.
(14) The rotational speed sensor detects the rotational speed of the rotor 15 in real-time and transmits the signal to the ECU. The ECU controls the intake method according to the rotational speed as follows:
(15) When the rotor speed is less than 2000 r/min (low speed operation), the ECU controls the first valve 3-1 to close. Then the intake manifold 2 is connected to the long intake manifold 4-2. In the meantime, the ECU controls the second valve 5-1 to open and the third valve 5-2 to close. So the secondary intake switching pipe 5 is connected to the side-intake manifold 6. At this time, the air flow passes from the long intake manifold 4-2 to the secondary intake switching pipe 5. Then it flows through the side-intake manifold 6 and the side-intake port 10, finally into the cylinder. That is to say, the long intake manifold 4-2 is used and the side-intake method is adopted.
(16) When the rotor speed is 2000 r/min-5000 r/min (medium and high speed operation), the ECU controls the first valve 3-1 to open. As a result, the intake manifold 2 is connected to the short intake manifold 4-1. Meanwhile, the ECU controls both of the second valve 5-1 and the third valve 5-2 to open. The secondary intake switching pipe 5 is connected to the side-intake manifold 6 and the peripheral-intake manifold 7 at the same time. In this case, the air flow passes from the short intake manifold 4-1 to the secondary intake switching pipe 5. There are two intake routes, one route is from the side-intake manifold 6 and the side-intake port 10 to the cylinder, the other one is from the peripheral-intake manifold 7 and the peripheral-intake port 11 to the cylinder. That is to say, the short intake manifold 4-1 is used and the composite intake method is adopted.
(17) When the rotor speed is greater than 5000 r/min (ultra high speed operation), the ECU controls the first valve 3-1 to open, then the intake manifold 2 is connected to the short intake manifold 4-1. The ECU controls the second valve 5-1 to close and the third valve 5-2 to open. The secondary intake switching pipe 5 is connected to the peripheral-intake manifold 7. And the air flow passes from the short intake manifold 4-1 to the secondary intake switching pipe 5. Then it flows through the peripheral-intake manifold 7 and the peripheral-intake port 10, finally into the cylinder. That is to say, the short intake manifold 4-1 is used and the peripheral-intake method is adopted.
(18) The above-described embodiment is a preferred scheme of the present invention, but the invention is not limited to this embodiment. Without departing from the spirit of this patent, any conceivable modifications, substitutions or variations that can be made by the technical staff in the field are within the scope of the present invention.