Portable gasoline tool and electronic ignition system thereof
10704521 ยท 2020-07-07
Assignee
Inventors
Cpc classification
F02P3/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N2011/0881
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02P5/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02P5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N11/0862
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02P5/1502
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/40
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
International classification
F02P1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02P5/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02P5/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B63/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02P3/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electronic ignition system for a portable gasoline tool includes a voltage boosting device, a spark plug connected with an output of the voltage boosting device, a DC power source, and a controller electrically connected with the DC power source and connected with the voltage boosting device. The controller controls an ignition voltage and an ignition advance angle. A related portable gasoline tool includes a body, a cylinder located in the body, a piston movable to and fro within the cylinder, a crankshaft co-moved with the piston, and a flywheel located on the body and driven by the crankshaft to rotate.
Claims
1. An electronic ignition system for a portable gasoline tool, comprising: a voltage boosting device; a spark plug connected with an output of the voltage boosting device; a DC power source; and a controller electrically connected with the DC power source and connected with the voltage boosting device, wherein the controller controls an ignition voltage and an ignition advance angle.
2. The electronic ignition system according to claim 1, wherein the voltage boosting device boosts an output voltage of the DC power source to the ignition voltage, the output voltage of the DC power source is 6V12V, and the ignition voltage is 10 kV30 kV.
3. The electronic ignition system according to claim 2, wherein the ignition voltage is 15 kV30 kV.
4. The electronic ignition system according to claim 1, wherein the DC power source includes a lithium battery, the voltage boosting device includes a plurality of stages of voltage boosting units, and an output voltage of the lithium battery is boosted to the ignition voltage through the plurality of stages of voltage boosting units.
5. The electronic ignition system according to claim 4, wherein the plurality of stages of voltages boosting units includes a first-stage voltage boosting unit and a second-stage voltage boosting unit, the first-stage voltage boosting unit boosts a voltage from the output voltage of the lithium battery to 200V250V, and the second-stage voltage boosting unit further boosts the voltage from 200V250V to the ignition voltage.
6. The electronic ignition system according to claim 1, wherein the portable gasoline tool includes a body, and a flywheel provided on the body; and the electronic ignition system further comprising at least one sensing element provided on one of the flywheel and the body, and at least one position sensor provided on the other one of the body and the flywheel to obtain a rotation speed of the flywheel through the at least one sensing element, wherein the controller controls the ignition voltage and the ignition advance angle according to the rotation speed of the flywheel.
7. The electronic ignition system according to claim 1, further comprising a temperature sensor connected with the controller, wherein the temperature sensor obtains an ambient temperature, and the controller controls the ignition voltage and the ignition advance angle according to the ambient temperature.
8. The electronic ignition system according to claim 5, wherein the second-stage voltage boosting unit is an ignition coil.
9. A portable gasoline tool, comprising: a body; a cylinder located in the body; a piston movable to and fro within the cylinder; a crankshaft co-moved with the piston; a flywheel located on the body and driven by the crankshaft to rotate; and an electronic ignition system including a voltage boosting device, a spark plug connected with an output of the voltage boosting device, a DC power source, and a controller electrically connected with the DC power source and connected with the voltage boosting device, wherein the controller controls an ignition voltage and an ignition advance angle.
10. The portable gasoline tool according to claim 9, wherein the electronic ignition system further includes at least one sensing element located on one of the flywheel and the body, and at least one position sensor provided on the other one of the body and the flywheel to obtain a rotation speed of the flywheel via the at least one sensing element.
11. The portable gasoline tool according to claim 9, wherein the electronic ignition system further includes a temperature sensor connected with the controller, the temperature sensor obtains an ambient temperature, and the controller controls the ignition voltage and the ignition advance angle according to the ambient temperature.
12. The electronic ignition system according to claim 6, wherein the at least one sensing element is located on the flywheel and is a magnet, and the at least one sensing element includes at least two sensing elements.
13. The electronic ignition system according to claim 12, wherein the at least one sensing element includes a positioning magnet for initial positioning and a measuring magnet for rotation speed measurement.
14. The electronic ignition system according to claim 6, wherein the at least one position sensor is located on the body, and the at least one position sensor includes only one position sensor.
15. The electronic ignition system according to claim 6, wherein the at least one position sensor is one of Hall element and a photoelectric element.
16. The electronic ignition system according to claim 6, wherein the at least one sensing element is a magnet, the at least one sensing element includes only one sensing element, and the at least one position sensor includes at least two position sensors.
17. The electronic ignition system according to claim 6, further comprising a PCB located on the body and electrically connected and fixed with the at least one position sensor.
18. The electronic ignition system according to claim 17, wherein the at least one sensing element is located in a circumferential direction of the flywheel, and wherein the PCB is located at a side of and spaced from the flywheel.
19. The electronic ignition system according to claim 1, wherein the controller is an MCU controller.
20. The electronic ignition system according to claim 19, wherein the DC power source is a removable rechargeable lithium battery.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(11) As shown in
(12) As shown in
(13) Preferably, the sensing element comprises a positioning magnet 32 for initial positioning, and a measuring magnet 34 for rotation speed measurement, wherein the positioning magnet 32 is also referred as the top dead point positioning magnet.
(14) Preferably, the present embodiment further comprises a PCB (printed circuit board) 52 provided on the body 10 and electrically connected and fixed with the position sensor 50. The sensing element is provided in a circumferential direction of the flywheel 30, and the PCB 52 is located at a side of the flywheel 30 and is kept spaced from the flywheel 30.
(15) Preferably, the sensing element is a magnet, with its number being one, and at least two position sensors are provided.
(16) Preferably, the present embodiment further comprises a DC power source 70 providing electric energy to the controller. The DC power source 70 is preferably a Li battery, more preferably a removable lithium battery.
(17) Preferably, the voltage boosting device boosts an output voltage of the Li battery to an ignition voltage, thus providing sufficient energy to ignite the fuel-gas mixture. The output voltage of the Li battery is 6 V12 V, and the ignition voltage is 10 kV30 kV. Preferably, the voltage boosting device comprises a plurality of stages of voltage boosting units. In the present embodiment, the voltage boosting device comprises a first-stage voltage boosting unit and a second-stage voltage boosting unit, the first-stage voltage boosting unit boosts the voltage from the output voltage of the lithium battery to 200 V250 V, and the second-stage voltage boosting unit further boosts the voltage from 220 V250 V to the ignition voltage. Specifically in the present embodiment, the output voltage of the lithium battery is 6 V or 7.2 V. The voltage boosting device first boosts the output voltage of the lithium battery to 220 V by a series induction manner, and then boosts the 220 V voltage to the ignition voltage wherein the ignition voltage is 15 kV30 kV.
(18) Preferably, the voltage boosting device comprises an ignition coil.
(19) As shown in
(20) Preferably, the sensing element comprises a positioning magnet 32 for initial positioning, and a measuring magnet 34 for rotation speed measurement, wherein the positioning magnet 32 is also referred as the top dead point positioning magnet.
(21) Preferably, the present embodiment further comprises a PCB 52 provided on the body 10 and electrically connected and fixed with the position sensor 50. The sensing element is provided in a circumferential direction of the flywheel 30, and the PCB 52 is located at a side of the flywheel 30 and is kept spaced from the flywheel 30.
(22) Preferably, the sensing element is a magnet, with its number being one, and at least two position sensors are provided. The position sensor 50 is preferably a Hall element, or may be a photoelectric element or other elements.
(23) Preferably, the present embodiment further comprises a DC power source 70 providing electric energy to the controller, and a temperature sensor connected with the controller.
(24) As shown in
(25) As shown in
(26) As shown in
(27) In summary, the Li battery is used as the DC power source, the position sensor is used to detect the rotation speed of the flywheel to determine the ignition angle, the temperature sensor is used to detect the current temperature, and the controller converts the DC power source from a low voltage to a high voltage via the voltage boosting device. The controller, according to various working conditions including the current rotation speed, working time, temperature, etc., calculates the currently necessary ignition angle and ignition voltage, then the electronic ignition system, with the angle calculated by the controller itself, uses a high voltage pack to release an electric spark with corresponding energy such that the fuel-gas mixture in the cylinder combusts, pushing the piston to move to and fro so that the gasoline engine is in an ideal working state. Therefore, ignition can be achieved at a very low rotation speed. The temperature sensor is used to detect the current temperature and when the temperature is relatively low, the ignition voltage should be increased. Also, the controller can control the ignition angle and energy such that the ignition occurs when the concentration in the cylinder is the highest, producing the largest spark, so that it is relatively easy to start the gasoline engine, easier to operate and higher in efficiency. Compared with the prior technical solution of a magnet motor, it is not necessary to install bulky magnet modules on the blades of the flywheel, and thus the weight of the blades can be reduced, so that the power (from the gasoline engine) consumed by the blades is relatively small and the whole efficiency of the system can be improved. Also, by speed detection, the ignition angles at different speeds can be controlled to be in the ideal state, thus improving the working efficiency of the gasoline engine system in any speed state. Moreover, the controller with an MCU design can precisely control the ignition angle and energy. When the load of the gasoline engine changes rapidly, the controller can, with the flywheel position detected by the position sensor and the flywheel rotation speed and with controlling of the program algorithms, adjust the ignition angle at the appropriate time. Thus a relation of the ignition time point, the ignition voltage, and the rotation speed as obtained is shown in
(28) The above embodiments are provided only to explain the technical concepts and features of the present disclosure, with the purpose for enabling those skilled in the art to implement the embodiments of the present disclosure by understanding the contents thereof, rather than limiting the protection scope of the embodiments of the present disclosure thereto. Any equivalent alternative or modification made to the main technical solutions of the embodiments of the present disclosure based on the substantial spirit of the embodiments of the present disclosure will fall within the protection scope of the embodiments of the present disclosure.