CONVEY MODULAR VEHICLE SYSTEM AND METHOD OF COUPLING
20220017166 · 2022-01-20
Inventors
Cpc classification
B60L2270/40
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/0636
PERFORMING OPERATIONS; TRANSPORTING
B60L53/80
PERFORMING OPERATIONS; TRANSPORTING
B60K1/00
PERFORMING OPERATIONS; TRANSPORTING
B60Y2400/61
PERFORMING OPERATIONS; TRANSPORTING
B60K2001/0455
PERFORMING OPERATIONS; TRANSPORTING
B62D24/00
PERFORMING OPERATIONS; TRANSPORTING
B60L2200/46
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/70
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
B60K1/04
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/7072
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
B60K1/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to a modular vehicle system and assembly thereof comprising a preassembled Body (Cabin Module) and a preassembled Chassis (Drive Module). More particularly, the present invention relates to the modular vehicle system allowing for the docking of a Cabin Module onto a Drive Module, and wherein Drive Modules can be seamlessly interchanged during the lifespan of the Cabin Module.
Claims
1. A modular vehicle system comprising: a) a preassembled body, comprised of a Primary System Network and a Secondary System Network that can operate independently of each other, wherein the Primary System Network manages the driving interface, main controls, and power supply of the vehicle, and wherein the Secondary System Network; b) a preassembled chassis that connects to and can mate with the preassembled body via locking hardware; and c) a simplified network that allows for communication between and integration of the preassembled body and the preassembled chassis to form and operate as a single vehicle.
2. The vehicle system of claim 1, wherein the Primary System Network is comprised of and is the power management for Info and Media, Heating Venting and Cooling, Auxiliary, Amenities, and Safety of the vehicle.
3. The vehicle system of claim 2, wherein the Primary System Network is channeled through a Secured Primary Drive BUS.
4. The vehicle system of claim 1, wherein the Secondary System Network, wherein the Secondary System Network has at least one battery for backup for power.
5. The vehicle system of claim 3, wherein the BUS connects to the preassembled chassis via a main umbilical connector port.
6. The vehicle system of claim 1, wherein the power supply of the preassembled body connects to the preassembled chassis via a power connector port.
7. The vehicle system of claim 1, wherein the preassembled chassis is one of the following: a) hybrid gas/electric; b) full electric; or c) hydrogen fuel cell.
8. The system of claim 7, wherein the hybrid gas/electric preassembled chassis is comprised of at least one battery cell, a gasoline tank, and a combustion motor/transmission.
9. The system of claim 7, wherein the full electric preassembled chassis is comprised of at least one battery cell, at least one electric converter, and at least one electric motor.
10. The system of claim 7, wherein the hydrogen fuel cell preassembled chassis is comprised of at least one hydrogen tank, at least one fuel cell, and at least one electric motor.
11. A method of assembly of a modular vehicle system comprising: a) providing a modulator rig, comprised of wheel supports, support discs, and a drill system; b) placing a preassembled body atop the modulator on the support discs; c) introducing a preassembled chassis within the perimeter of the modulator rig and placing the wheels of the chassis within the wheel supports, aligning the chassis with the preassembled body, and raising the chassis via the wheel supports up to the body, lifting the body off the support discs; d) connecting the chassis to the body via a drill system, securing the chassis to the body, and connecting a communication network between the body and the chassis so that they can operate as a singular vehicle.
12. The method of claim 11, wherein the drill system is a pneumatic drill system.
13. The method of claim 11, wherein the wheel supports are hydraulic.
14. A method of uncoupling a modular vehicle system comprising: a) providing a modulator rig, comprised of wheel supports, support discs, and a drill system; b) placing a preassembled body, connected to a preassembled chassis via assembly hardware and connecting ports, atop the modulator rig; c) using the drill system to unscrew the assembly hardware; d) decoupling the connecting ports; e) lowering the chassis from the body via the wheel supports while allowing the body to remain on the support discs; f) connecting the chassis to a control device; and g) removing the chassis off the modulator rig.
15. The method of claim 15, wherein the wheel supports are hydraulic.
16. The method of claim 15, wherein the drill system is a pneumatic drill system.
17. (canceled)
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0031] For a further understanding of the nature, objects, and advantages of the present invention, reference should be had to the following detailed description, read in conjunction with the following drawings, wherein like reference numerals denote like elements and wherein:
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DETAILED DESCRIPTION OF THE INVENTION
[0045] A more open-minded approach to future technologies and energy sources will allow for healthy competition which will drive more aggressive and effective progress. As the demand for more advanced vehicles increases, the transition to alternative energy sources and increased autonomy will benefit from a cumulative adoption method, where older models can be easily updated, rather than replaced outright. The life cycle of vehicles in use can be lengthened, and the industry as a whole can be better equipped to respond to changes.
[0046] In one embodiment, the present invention allows for continuous updating and adaptation of a vehicle's drive train for the entirety of its lifecycle. The present invention will drastically increase the adaption rate and improve the entire structure of vehicle ownership and use. When implemented as a wide scale infrastructure, the present invention's modular vehicle systems create a more sustainable energy use curve, while maintaining consistent movement and demand within the industry. Every new vehicle generation can take advantage of subsequent improvements in technology that will happen after their production. These techniques are currently applied in various ways to enhance manufacturing efficiencies for the automakers and parts suppliers. However, the modularity capabilities are severely limited for the consumer market. With the emergence of industrial 3D printing and improvement of system module interfaces, the technology is now available to produce easily swappable and adaptable technologies in and out of a variety of vehicles in a quick and efficient manner. The present invention creates a standardized vehicle and drivetrain relationship which enhances efficiency for both the manufacturer and the end user. Production will shift to focus in two segments—Drive Modules and Cabin Modules. New ownership models will be structured to increase value retention of the Cabin Module as the user's investment, while Drive Modules can be leased at lower financial risk and with the ability to be cycled in and out use for repair or modifications. As Drive Modules age and approach the end of their life cycle, they can be retrofitted with newer drivetrain and autonomous technology and be re-introduced at the top of the cycle. An additional benefit for the consumer market is the ability to shift between different drivetrains with varying performance capabilities, depending on the location or use. Swapping Drive Modules can be done in varying frequencies, and data collected from trending demand can assist manufacturers in more easily shifting to meet the market. Other operational benefits for the manufacturer include facilitating massive recalls and flexible service intervals. The manufacturing network will grow more independent in each region, and emerging markets will be much easier to manage. Development costs needed for new models will decrease as prototypes can cycle through various Drive Modules and Cabin Modules independent of the others' progress.
[0047] The present invention can be comprised of two main components: a preassembled body or Cabin Module 1 and a preassembled Chassis or Drive Module 2, as shown in
[0048] The Cabin Module 1 is preferably made of carbon composites. The Drive Module 2 is preferably made of high strength lightweight aluminum alloy.
[0049] The design functionality of both modules relies on the utilization of a simplified vehicle communication network. In a preferred embodiment of the present invention, the Vehicle Cabin Module 1 is preferably comprised of two separate and independent systems. The Primary System Network (PSN) preferably manages the driving interface, main controls, and power supply. This system preferably is channeled through a Secured Primary Drive CAN Bus (Controller Area Network message unit) 3. As shown in
[0050] In a preferred embodiment of the present invention, the internal operations of the vehicle are managed by a Secondary System Network (SSN) which is comprised of Info and Media, Heating, Venting and Cooling, Auxiliary, Amenities, Safety, and the power management for these systems. The SSN preferably operates independently of the PSN, preferably with a separate battery for backup, yet preferably still relies on core power from the Drive Module 2 connection. The PSN preferably operates independently of the SSN, maintaining navigating, sensing, and drive capabilities which can be controlled remotely.
[0051] In a preferred embodiment of the present invention, the vehicle construction is unique in that the Cabin Module 1 and Drive Module Chassis 2 are preferably assembled as separate bodies prior to the vehicle marriage, or joining of the two. In a preferred embodiment of the present invention, the two modules are preferably connected via a set of 4-12, preferably 8, (dependent on weight class) connection points using high strength locking hardware 7.1, from micro car to heavy duty truck. Once assembled, the Joined Cabin Module Monocoque and Drive Module Chassis 7 retains and surpasses the safety, rigidity, flex and NVH (Noise, Vibration, Harshness) levels of a modern performance vehicle 8, as seen in
[0052] In a preferred embodiment of the present invention, the Drive Module Chassis 2 preferably allows for utilization of a variety of different drive train systems 11 as shown in
[0053] The present invention allows for swapping out Drive Modules 2 from the Cabin Module 1, similar in operation to a traditional hydraulic car lift system, as seen in U.S. Pat. No. 2,251,293, yet differing in layout and with the addition of several key components. In a preferred embodiment of the present invention, a modulator 15.5, as shown in
[0054] The present invention also allows for the Drive Module 2 to be separated from the Cabin Module 1 located on the modulator rig 15.5 as shown in
[0055] The present invention also preferably has a mechanism to reinstall the separate Drive Module 2 to the Cabin Module 1 as shown in
[0056] In a preferred embodiment, with all safety protocols in place and followed properly, the entire module swap process should preferably take under 90 seconds. The technician preferably manages the connecting ports while the vehicle preferably sits atop the modulator rig 15.5, and a systems check is done to coordinate communication between the main ports as shown in
PARTS LIST
[0057] The following is a list of parts and materials suitable for use in the present invention:
[0058] Parts Number Description [0059] 1 Cabin Module [0060] 2 Drive Module Chassis [0061] 3 Secured Primary Drive CAN bus [0062] 4 Power Supply Converter [0063] 5.1 Umbilical Connector Port [0064] 5.2 Power Connector Port [0065] 6 External Charging/Refueling Ports [0066] 7 Joined Cabin Module Monocoque and Drive Module Chassis [0067] 7.1 Locking Hardware/Assembly Hardware [0068] 8 Modern Performance Vehicle [0069] 11 Advanced Drive Train and Fuel Systems [0070] 11.1 Gas/Electric Hybrid [0071] 11.2 Full Electric [0072] 11.3 Hydrogen Fuel Cell [0073] 12 Hybrid Gas/Electric [0074] 12.1 Battery Cells [0075] 12.2 Gasoline Tank [0076] 12.3 Combustion Motor/Transmission [0077] 13 Full Electric [0078] 13.1 Battery Cells [0079] 13.2 Electric Converters [0080] 13.3 Electric Motors [0081] 14 Hydrogen Fuel Cell [0082] 14.1 Hydrogen Tanks [0083] 14.2 Fuel Cells [0084] 14.3 Electric Motors [0085] 15.1 Wheel Supports [0086] 15.2 Support discs [0087] 15.3 Drill System [0088] 15.4 Gap in the modulator [0089] 15.5 Modulator [0090] 16.1 Decoupling of Connecting Ports [0091] 23.1 Attachment of connecting ports [0092] 26 Licensed Communication Remote
[0093] All measurements disclosed herein are at standard temperature and pressure, at sea level on Earth, unless indicated otherwise. All materials used or intended to be used in a human being are biocompatible, unless indicated otherwise.
[0094] The foregoing embodiments are presented by way of example only; the scope of the present invention is to be limited only by the following claims.