This document relates generally to the forklift truck field and, more particularly, to a new hybrid forklift truck.
In the past, forklift trucks have generally been designed to operate on either battery power or fossil fuel sources. No commercially viable hybrid forklift truck has been developed to date.
This document relates to a commercially viable forklift truck incorporating a hybrid power module and related control system. These work together to allow the truck to be effectively and efficiently powered by both stored electrical energy as well as energy generated from the combustion of fossil fuel sources.
In accordance with the purposes and benefits described herein, a hybrid forklift truck is provided. That truck comprises a truck assembly including a lift section, a drive section and a power supply compartment. A power module is received in the power supply compartment. The power module includes an energy storage compartment, a generator compartment, a fuel tank compartment and an energy storage device received in the energy storage compartment. Further, a DC electric generator and a cooperating internal combustion engine are received in the generator compartment. In addition a control system is provided for operating the forklift truck including the lift section and the drive section.
In one possible embodiment the truck includes a front and a rear and the power module is positioned in the power supply compartment with the generator compartment toward the front and the energy storage compartment toward the rear. In one possible embodiment, the energy storage device is a multiple cell battery and the internal combustion engine includes an electric starter. The electric starter is powered by selected cells of the multiple cell battery.
In one possible embodiment, a grating is provided between the generator compartment and the fuel tank compartment. Further, the power module includes a sidewall having a cutdown profile at the fuel tank compartment and an opening at the generator compartment.
In one possible embodiment, a lift hood is provided for additional access to the fuel tank compartment. In one possible embodiment, the internal combustion engine includes a radiator mounted to the sidewall over the opening and an air pathway is provided for cooling the internal combustion engine. The air pathway extends from the cutdown profile of the sidewall through the grating across the internal combustion engine, through the radiator and then through the sidewall opening. In one possible embodiment, a cooling fan is positioned between the internal combustion engine and the grating. In one possible embodiment, that cooling fan is positioned adjacent the radiator.
In one possible embodiment, the internal combustion engine includes an in-line engine block, an air filter system and an exhaust system wherein the internal combustion engine maintains a narrow horizontal profile from front to rear of the truck by vertical stacking of the filter system and exhaust system above or below the inline engine block.
In one possible embodiment, the generator includes electric power output terminals that are located along a top or bottom surface of the generator within a side profile of the generator so as to minimize the horizontal dimension of the generator from front to rear of the truck. Further, the internal combustion engine does not include a dedicated engine alternator so as to accommodate a smaller horizontal profile. Still further, in one possible embodiment the internal combustion engine also does not include a dedicated battery for engine starting. This also minimizes space requirements and helps to maintain a smaller horizontal profile.
In one possible embodiment, the truck accessories are powered by the main generator.
In one possible embodiment, a removable fuel tank is provided. That fuel tank may be easily inserted into and removed from the power module through the cutdown profile of the sidewall.
In one possible embodiment, a cover is provided over the generator compartment. Further, in one possible embodiment a divider is provided between the energy storage compartment and the generator compartment. The cover engages or nearly contacts this divider, the grating and the sidewall of the power module. In one possible embodiment, sound insulation is provided on the cover.
In one possible embodiment, the lift section includes a lift section drive motor, a telescoping mast assembly that may be raised and lowered and a displaceable carriage assembly carried on that mast assembly.
In one possible embodiment, the truck further includes a dynamic charging circuit wherein the energy storage device is charged by the lift motor whenever the mast assembly is lowered. In one possible embodiment, the dynamic charging circuit also charges the energy storage device whenever the carriage assembly is lowered on the mast assembly.
In one possible embodiment, the lift section includes a lift section drive motor and a lift controller. The drive section includes a traction motor and a traction controller. Further the control system includes a DC power bus connected to the energy storage device and the generator.
In one possible embodiment, the truck further includes offset lifting eyes aligned with the center of gravity of the power module to maintain level position lifting.
In the following description, there are shown and described several preferred embodiments of the hybrid forklift truck. As it should be realized, the truck is capable of other, different embodiments and its several details are capable of modification in various, obvious aspects all without departing from the truck as set forth and described in the following claims. Accordingly, the drawings and description should be regarded as illustrative in nature and not as restrictive.
The accompanying drawings incorporated herein and forming a part of the specification, illustrate several aspects of the hybrid forklift truck and together with the description serve to explain certain principles thereof. In the drawings:
Reference will now be made in detail to the present preferred embodiment of the hybrid forklift truck illustrated in the accompanying drawings.
Reference is now made to
The power module 20 includes an energy storage compartment 22, a generator compartment 24, a fuel tank compartment 26 and an energy storage device 28 received in the energy storage compartment 22. In the illustrated embodiment the energy storage device 28 is a multiple cell battery. It should be appreciated, however, that the energy storage device may comprise a capacitor system, a combination multiple cell battery and capacitor system or any other device suitable for storing electric energy as required to operate the hybrid forklift truck 10.
A DC electric generator 30 and a cooperating internal combustion engine 32 are received in the generator compartment 24. The internal combustion engine 32 may include an enlarged oil sump in order to allow for a longer service interval. A removable or replaceable fuel tank such as an LP gas tank 34 is received in the fuel tank compartment 26.
As illustrated in
Lifting eyes 96 are provided for lifting and handling the power module 20 by means of a lift or overhead crane and cooperating lift device such as a lift bar. As should be appreciated, the lift eyes 96 are offset toward the heavier, energy storage compartment 22 side of the power module 20 so as to be aligned with the center of gravity and maintain the module level during lifting.
As further illustrated in
In one possible embodiment, the internal combustion engine 32 is an inline engine block. In one possible embodiment, the filter system 90 and exhaust system of the internal combustion engine 32 is vertically stacked above or below the inline engine block in order to maintain a narrow horizontal profile from the front F to the rear R of the truck 10. Further, the electric power outlet terminals 95 on the generator 30 are located along a top or bottom surface of the generator at a side profile of the generator so as to minimize the horizontal dimension of the generator from the front F to the rear R of the truck 10.
In accordance with additional aspects, the internal combustion engine 32 does not include an alternator. This is done to reduce the width and cost of the internal combustion engine 32. Starting power for the electric starter 100 of the internal combustion engine 32 is provided by selected cells 99 of the multiple cell battery 28 that are compatible with the engine starter voltage. For example, the energy source may include six cells of the forty 2 volt cells of the energy storage device 28 arranged in series to power the twelve volt components such as the starter 100. Charge power for the starter 100 and engine accessories may be provided via the main generator 30 via use of this selected cell method. A voltage step down converter (not shown) could also be applied to supply power for this purpose.
In accordance with still further aspects, it should be appreciated that the cutdown profile 42 of the power module housing 38 at the fuel tank compartment 26 allows one to easily insert or remove an exchangeable LP fuel tank 34 from the power module when refueling the internal combustion engine 32. In alternative embodiments, such as for gasoline and diesel fuel powered internal combustion engines 32, the fuel tank 34 could be of the permanently mounted variety. Further, a cover 50 may be secured over the generator compartment 24. The cover 50 may engage a divider 52 provided between the energy storage compartment 22 and the generator compartment 24. The cover 50 engages the divider 52, the grating 40 and the sidewall of the power module housing 38. Sound insulation may be provided on the cover or elsewhere in the compartment if desired to further control or reduce noise produced by the internal combustion engine 32 and other components in the chamber 24. A connector 91 may be provided to connect the power module 20 to the D.C. bus 66 on the forklift chassis (see
Reference is now made to
As should be appreciated, the lift section 14 includes a telescoping mast assembly 74 that may be raised and lowered and a displaceable carriage assembly 76 that is carried upon and may be raised and lowered on that mast assembly. In one embodiment the control system 60 includes an optional utility powered stationary charger 78 that functions to charge the energy storage device 28 whenever truck 10 is parked. This is accomplished by manually disconnecting connector 91 from the DC bus 66 and connecting the charger 78 to the battery side of the connector 91.
The truck 10 may also include a dynamic charging provision to provide for charging of the energy storage device 28 via the traction and lift drive circuits, for example, during lowering mode of the mast or carriage assemblies or during braking mode of the traction unit.
The foregoing has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the embodiments to the precise form disclosed. Obvious modifications and variations are possible in light of the above teachings. For example, as illustrated in
This application claims the benefit in priority to U.S. Provisional Patent Application Ser. No. 61/900,456 filed on Nov. 6, 2013, the full disclosure of which is incorporated herein by reference.
Number | Date | Country | |
---|---|---|---|
61900456 | Nov 2013 | US |