Tiller for outboard motor
11628919 · 2023-04-18
Assignee
Inventors
- Madalyn G. Pielow (Fond du Lac, WI, US)
- Paul M. Kraus (Fond du Lac, WI, US)
- Robert A. Podell (Slinger, WI, US)
Cpc classification
B63H2021/216
PERFORMING OPERATIONS; TRANSPORTING
B63H21/21
PERFORMING OPERATIONS; TRANSPORTING
International classification
B63H21/21
PERFORMING OPERATIONS; TRANSPORTING
B63B49/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A tiller for an outboard motor has a tiller body that is elongated along a longitudinal center axis between a proximal end and a distal end, a throttle grip on the distal end of the tiller body, and a control switch located on the tiller body adjacent the throttle grip. A microcontroller is located inside the tiller body, remote from the control switch, and is in signal communication with an engine controller of the engine. The control switch is configured to be selectively electrically connected to the microcontroller. In response to actuation of the control switch, the microcontroller sends a signal to the engine controller. In one example, the control switch is an idle speed control switch.
Claims
1. A tiller for an outboard motor powered by an engine, the tiller comprising: a tiller body that is elongated along a longitudinal center axis between a proximal end and a distal end; a throttle grip on the distal end of the tiller body; a control switch located on the tiller body adjacent the throttle grip; and a microcontroller located inside the tiller body, remote from the control switch, and in signal communication with an engine controller of the engine located remote from the microcontroller; wherein the control switch is configured to be selectively electrically connected to the microcontroller; and wherein in response to actuation of the control switch, the microcontroller sends a signal to the engine controller.
2. The tiller of claim 1, further comprising an electronic display on the tiller body, configured to be electrically connected to the microcontroller, and configured to display information about at least one of the tiller and the engine to a user.
3. The tiller of claim 2, further comprising a circuit board supporting the microcontroller and the electronic display.
4. The tiller of claim 3, further comprising a serial bus controller supported on the circuit board and electrically connected to the microcontroller, wherein the serial bus controller provides the signal communication between the microcontroller and the engine controller.
5. The tiller of claim 1, wherein the control switch is located on a top face of the tiller body.
6. The tiller of claim 5, wherein the control switch is aligned with the longitudinal center axis of the tiller body.
7. The tiller of claim 1, wherein the microcontroller is located closer to the proximal end of the tiller body than to the distal end of the tiller body, and further comprising an electrical conductor connecting the control switch to the microcontroller.
8. The tiller of claim 1, wherein the control switch is an idle speed control switch; and wherein in response to actuation of the idle speed control switch, the microcontroller sends a signal to the engine controller to change an idle speed of the engine.
9. The tiller of claim 1, further comprising a membrane covering the control switch and coupled to the tiller body in a watertight manner.
10. A tiller for an outboard motor powered by an engine, the tiller comprising: a tiller body that is elongated along a longitudinal center axis between a proximal end and a distal end; an idle speed control switch located on the tiller body between the proximal and distal ends; a microcontroller located inside the tiller body and in signal communication with an engine controller of the engine; an electronic display on the tiller body, configured to be electrically connected to the microcontroller, and configured to display information about at least one of the tiller and the engine to a user; and a circuit board supporting the microcontroller and located remote from the idle speed control switch; wherein the idle speed control switch is configured to be selectively electrically connected to the microcontroller; and wherein in response to actuation of the idle speed control switch, the microcontroller sends a signal to the engine controller to change an idle speed of the engine.
11. The tiller of claim 10, further comprising a throttle grip on the distal end of the tiller body, wherein the idle speed control switch is adjacent the throttle grip.
12. The tiller of claim 10, wherein the circuit board also supports the electronic display.
13. The tiller of claim 10, further comprising a serial bus controller supported on the circuit board and electrically connected to the microcontroller, wherein the serial bus controller provides the signal communication between the microcontroller and the engine controller.
14. The tiller of claim 10, wherein the circuit board is located closer to the proximal end of the tiller body than to the distal end of the tiller body, and further comprising an electrical conductor connecting the idle speed control switch to the microcontroller.
15. The tiller of claim 10, wherein the idle speed control switch is located on a top face of the tiller body and is aligned with the longitudinal center axis of the tiller body.
16. A tiller for an outboard motor powered by an engine, the tiller comprising: a tiller body that is elongated along a longitudinal center axis between a proximal end and a distal end; a throttle grip on the distal end of the tiller body; a control switch located on the tiller body adjacent the throttle grip; a microcontroller located inside the tiller body and in signal communication with an engine controller of the engine located remote from the microcontroller; and a membrane covering the control switch and coupled to the tiller body in a watertight manner; wherein the control switch is configured to be selectively electrically connected to the microcontroller; and wherein in response to actuation of the control switch, the microcontroller sends a signal to the engine controller.
17. The tiller of claim 16, wherein the control switch is an idle speed control switch; and wherein in response to actuation of the idle speed control switch, the microcontroller sends a signal to the engine controller to change an idle speed of the engine.
18. The tiller of claim 16, wherein the control switch is located on a top face of the tiller body and is aligned with the longitudinal center axis of the tiller body.
19. The tiller of claim 16, wherein the microcontroller is located closer to the proximal end of the tiller body than to the distal end of the tiller body, and further comprising an electrical conductor connecting the control switch to the microcontroller.
20. The tiller of claim 16, further comprising: an electronic display on the tiller body, configured to be electrically connected to the microcontroller, and configured to display information about at least one of the tiller and the engine to a user; and a circuit board supporting the microcontroller and the electronic display.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure is described with reference to the following Figures. The same numbers are used throughout the Figures to reference like features and like components.
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8)
(9) Moving toward the distal end 20, an ignition switch 26 and lanyard stop switch 28 are provided on a lateral side of the tiller body 16. The ignition switch 26 accepts a key that can be twisted to turn the outboard motor 12 on and off, and twisted even further to start the engine 14. The lanyard stop switch 28 accepts a lanyard “key” 30 on one end of a lanyard 32, the other end of which can be attached to a user. If the user (with lanyard) moves too far from the tiller 10, the lanyard key 30 will pull away from and thereby actuate the lanyard stop switch 28, and the engine 14 will be stopped, all as is known.
(10) Referring also to
(11) Still referring to
(12) According to the present embodiment, a switch 52 is located on the tiller body 16 adjacent the throttle grip 40. The switch 52 is located just proximal of the distal end 20 of the tiller body 16, and is easily accessible by the user's finger while the user's hand remains on the throttle grip 40. In the present example, the switch 52 is an idle speed control switch. As is known in the art, idle speed control (also known as “low speed control” or “troll control”) can be used to change an idle speed of the engine 14 while the throttle grip 40 is in an idle position. In other words, the idle speed control switch 52 can be used to adjust a low operational engine speed above the “true” idle speed of the engine 14. In some prior art designs, a mechanical rocker switch was used to actuate idle speed control, and a microcontroller and serial communication bus were integrated with the mechanical rocker switch. In contrast, in the present design, the idle speed control switch 52 is a momentary switch and is configured to be selectively electrically connected to a microcontroller located inside the tiller body 16. As will be described further herein below, such an assembly allows the microcontroller to be located remote from the idle speed control switch 52, and thus the idle speed control switch 52 can be packaged on the tiller body 16 in a manner that provides unique benefits not provided by prior art designs. Although in this example the momentary idle speed control switch 52 is a tactile switch, any other type of suitable momentary switch, or indeed any suitable locked switch, could be used depending on the packaging constraints of the tiller 10.
(13) As shown in
(14) The above-noted microcontroller is not shown in
(15) Not only does the circuit board 60 support the microcontroller 62 and the electronic display 58, a serial bus controller 66 is also supported on the circuit board 60 and electrically connected to the microcontroller 62. Furthermore, the microcontroller 62 is in signal communication with an engine controller 68 of the engine 14, such as an engine control unit (ECU), which is also shown in
(16) Using a microcontroller 62 and serial bus controller 66 to send such a command via the serial bus 70 avoids the need to provide analog electrical connections all the way from the idle speed control switch 52 to the engine controller 68. This reduces the number of wires running from the tiller 10 to the outboard motor 12 if there are additional signals that need to be communicated between the two, because only two signal connections (e.g., CAN + and CAN −) need to be provided between the microcontroller 62 and the engine controller 68.
(17) However, because the circuit board 60 that supports the microcontroller 62 is located closer to the proximal end 18 of the tiller body 16 than to the distal end 20 of the tiller body 16 (recall that the circuit board 60 is located under the electronic display 58), an electrical conductor is required to connect the idle speed control switch 52 to the microcontroller 62. As shown in
(18) Another benefit of having the microcontroller 62 located remote from the idle speed control switch 52 and connected to the engine controller 68 via the serial bus 70 is that the electronic display 58 can be configured to be electrically connected to the microcontroller 62 and configured to display information about at least one of the tiller 10 and the engine 14 to a user. For example, the engine controller 68 already has information related to the temperature of the engine 14, an oil level in the engine 14, a voltage of a battery of the outboard motor 12, and whether the lanyard key 30 is correctly placed on/in the lanyard stop switch 28. This information can be conveyed to the microcontroller 62 via the serial bus 70 and serial bus controller 66, and the microcontroller 62 can be programmed to provide different displays via the electronic display 58 using this information. For example, referring to
(19) The electronic display 58 may additionally or alternatively be configured to display to the user a general warning indication 58e, such as for example if there is an engine malfunction, low fuel, low cooling water pressure, or any other number of faults, also using information from the engine controller 68. The electronic display 58 may additionally or alternatively be configured to display to the user an indication 58c that the lanyard 32 is not connected to the tiller 10. This may be helpful information when a user tries to start the engine 14 by twisting the key in the ignition switch 26, but the engine 14 does not start because the user forgot to place or incorrectly placed the lanyard key 30 on the lanyard stop switch 28. Like the other indications 58a, 58b, 58d, and 58e, the indication 58c is displayed based on information from the engine controller 68; however, in an alternative embodiment, the indication 58c can be displayed in response a voltage being applied (or not being applied) to an input pin of the microcontroller 62, which input pin is electrically connected to the lanyard stop switch 28.
(20) By comparison of
(21) The assembly of the present disclosure therefore allows a single microcontroller 62 to be used both to send idle speed control signals to the engine controller 68 as well as to output information to a user via the electronic display 58. Meanwhile, the idle speed control switch 52 can be located remote from the microcontroller 62, near the user's hand, which is likely on the throttle grip 40 while the idle speed control function is being used. Because the idle speed control switch 52 is aligned with the center longitudinal axis L of the tiller body 16, the tiller 10 is easy to use for both left-handed and right-handed users. The idle speed control switch 52 is able to be located in this position, despite the throttle shaft 42 being located directly below the idle speed control switch 52 (see
(22) Note that although the switch 52 at the distal end 20 of the tiller body 16 is described hereinabove as being for idle speed control, the switch 52 could be used for enabling any engine function that requires an analog signal to be generated in the tiller 10. For example, a trim command and/or an automatic trim command could be generated by actuation of the switch. In other examples, no electronic display 58 is provided, and/or the microcontroller 62 and serial bus controller 66 can be located elsewhere in the tiller 10. In still other examples, the idle speed control switch 52 (or other type of switch) is combined onto the same circuit board 60 as the microcontroller 62, serial bus controller 66, and electronic display 58.
(23) Referring again to
(24) As shown in
(25) According to the present example, the tactile momentary switches 82a, 82b are rated to carry no more than 100 milliamps of current, and in one example are rated to carry only 50 milliamps of current. However, the trim system 88 will generally be configured such that more than 100 milliamps of current are required to activate the trim-up trim relay 86a or trim-down relay 86b. Thus, the drivers 84a, 84b connect the power source to the trim relay 86 in response to actuation of the tactile momentary switch 82a or 82b, thereby providing full power from the power source to the trim relay 86a or 86b. Electrical conductors 94a, 94b connect an output of each driver 84a, 84b to a respective input of each trim relay 86a, 86b. Although not shown in
(26) As shown in
(27) As shown in
(28) Note that although the switch assembly 78 at the distal end 80 of the throttle grip 40 has hereinabove been described as a trim switch assembly, the switch assembly 78 could be any type of switch assembly suitable for inclusion on a tiller 10 that communicates with a relay on the outboard motor 12, such as a switch assembly for actuating a gas-assist tilt function or a back-up steering function of the outboard motor 12. The use of tactile switches in the switch assembly 78 allows for a compact design, as the button board 90, a small portion of the first housing part 98a, the second housing part 98b, and the collar 104 are the only portions of the tiller 10 that project beyond the throttle grip 40.
(29) In the above description, certain terms have been used for brevity, clarity, and understanding. No unnecessary limitations are to be inferred therefrom beyond the requirement of the prior art because such terms are used for descriptive purposes and are intended to be broadly construed. The different systems and method steps described herein may be used alone or in combination with other systems and methods. It is to be expected that various equivalents, alternatives and modifications are possible within the scope of the appended claims.