Autonomous vehicle for road and rail, method of operation thereof, railcar, system comprising the autonomous vehicle and railcar

EP4739531A1Pending Publication Date: 2026-05-13TEICHER MORDECHAI
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Patent Information

Application Number
EP2024735703
Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-05-07
Filing Date
2024-06-07
Publication Date
2026-05-13

AI Technical Summary

Technical Problem

The complexity of autonomous vehicles delays their deployment, increases costs, and limits their scope due to the challenges of integrating advanced technologies into existing infrastructure and regulatory frameworks.

Method used

An autonomous road vehicle is temporarily mounted on and powers an electric railcar, utilizing its driving automation control system to control the railcar, eliminating the need for onboard power sources and automation systems, and leveraging existing rail infrastructure for safer and more efficient travel.

Benefits of technology

This solution simplifies and reduces the cost of railcar infrastructure, avoids peak electricity consumption, and enables safer, more efficient driverless travel by integrating autonomous road vehicles with rail systems, overcoming deployment challenges and enhancing autonomy levels.

✦ Generated by Eureka AI based on patent content.

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Abstract

An autonomous road vehicle (210) is transported by a railcar (280) for automated railed travel on a railway (298). During automated railed travel, the railcar (280) is powered by the main power source (212) of the autonomous road vehicle (210) and is driven by the driving automation control system (151) of the autonomous road vehicle (210). A driver control (254) of the autonomous road vehicle (210) enables a human driver to apply emergency braking during both road and railed travel.
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Description

Title of Invention:AUTONOMOUS VEHICLE FOR ROAD AND RAIL, METHOD OF OPERATION THEREOF, RAILCAR, SYSTEM COMPRISING THE AUTONOMOUS VEHICLE AND RAILCARTECHNICAL FIELD

[0001] The present disclosure relates to autonomous road vehicles, and in particular to autonomous electric road vehicles.

[0002] The technical problem addressed by the present invention is the complexity of driverless vehicles, which delays, increases the cost and limits the scope of their deployment.BACKGROUND ART

[0003] Electric road vehicles, such as electric passenger cars or electric trucks, use a battery pack or fuel cell to power an electric motor that propels the vehicle.

[0004] In autonomous road vehicles, sensors and electronic control units are harnessed to assist or replace a human driver in driving the vehicle.

[0005] Driving automation is commonly classified at levels 0-5 according to the widely accepted SAE J3016 classification by SAE International (Society of Automotive Engineers) - https: / / www.sae.org / standards / content / j3016_202104 / , wherein level 0 is no driving automation while level 5 is full driving automation that enables driverless travel.

[0006] Railed travel, where vehicles move on rails, highly reduces the complexity and safety risks of travel.

[0007] The present disclosure comes to combine the advantages of autonomous road travel and railed travel in a novel and useful manner.

[0008] Reference is made to Fig. 1A that schematically describes an autonomous road vehicle 100A of the background art. Battery pack 114 is loaded with electricity from the grid 104 via AC (alternating current) charging connection 108 and AC-DC converter 110 that supplies DC (direct current) charging current 112 to battery pack 114. Battery pack 114 provides hi-voltage DC power 118 to DC-DC converter 120 that supplies low voltage DC battery charging current 122 to 12 / 24V battery 124, which supplies low voltage power 128 to DC loads 130 such as lighting, climate control, multimedia systems, electronics, processors, and the like. Battery pack 114 also supplies hi-voltage DC current 134 to vehicle inverter 138, which supplies AC power of variable frequency 140 to autonomous road vehicle motor 144,the frequency determined by inverter control unit 136. Autonomous road vehicle motor 144 is an AC motor (or multiple AC motors) that revolves at an angular frequency, customarily measured in RPM (revolutions per minute) units, determined by the instant AC frequency provided by vehicle inverter 138, to drive, via transmission 146, the wheels of autonomous road vehicle 100A.

[0009] Fig. IB schematically describes another version of autonomous road vehicle 100B of the background art, with battery pack 114 of Fig. 1A replaced by fuel cell 116, rendering AC-DC converter 110 and grid 104 of Fig. 1A redundant. All other numbered elements of Fig. IB are the same as their corresponding elements in Fig. 1A.

[0010] Fig. 1C schematically describes an example driving automation control system 150 of autonomous road vehicles of the background art. Vehicle sensors 160, include at least any or some or all of camera(s) 160C, radar(s) 160R, lidar(s) 160L, sonar(s) 160S, GPS 160G and / or IMU(s) 160A (IMU is inertial measurement unit such as accelerometers and gyroscopes). The vehicle sensors 160 continuously monitor the vehicle and driving environment, which are transformed by perception unit 162 and motion planning unit 164 - both electronic control units known in the art of autonomous road vehicles - into driving control signals 149 that selectably actuate acceleration control 170A, braking control 170B and / or steering control 170S of vehicle driving control 170 (all being electronic control units) to assist or replace a human driver.SUMMARY OF INVENTIONDEFINITIONS

[0011] “Vehicle” herein is a wheeled motorized transportation instrument. “Electric vehicle” is propelled by an electric motor. “Motor” is one or more electric motors propelling a vehicle. “Road vehicle” travels on paved, gravel and dirt roads, while “motorized railcar”, abbreviated “railcar”, travels on rails. “Railway” is a track made of rails.

[0012] “Driving automation control system” herein combines one or more sensors and one or more electronic control units to assist or replace a human driver in planning and controlling at least one of braking, accelerating, or steering of a vehicle. In case of a railcar, steering control is replaced herein by track switching control.

[0013] “Autonomous road vehicle” herein is a vehicle that harnesses a driving automation control system to assist or replace a human driver in driving the vehicle. A vehicle that features just automated emergency braking or adaptive cruise control is considered herein autonomous vehicle. On the extremeend there is a “driverless vehicle” (aka / “self-driving vehicle”) that is devised and authorized to travel with no human supervision or even without human presence.

[0014] “Automated traveling” or “automated driving” herein pertain to the operation of an autonomous vehicle while being driven or assisted by a driving automation control system.

[0015] “Vehicle-on-railcar”, is a novel transportation concept taught by the present disclosure, of an autonomous road vehicle temporarily mounted on, powering and controlling a railcar. “Vehicle-on- railcars” is herein the plural of a vehicle -on-railcar.

[0016] “Electronic control unit (ECU)” is an embedded module in automotive electronics that controls one or more of the electrical systems or subsystems in a motor vehicle. An electronic control unit may include a plurality of electronic control units; for example, a driving control ECU may include an acceleration control ECU, a braking control ECU, and a steering control ECU. “Electronic control system” is an electronic control unit that includes all electronic control units in a motor vehicle.

[0017] “Non-transitory computer-readable media” comprise all computer-readable media, with the exception of transitory, propagating signal.BRIEF SUMMARY OF INVENTIVE CONCEPTSHighlights

[0018] The present disclosure suggests that the safest and most practical and economical autonomous road vehicle is a vehicle-on-railcar - an autonomous road vehicle temporarily mounted on, powering and controlling an electric railcar. Railcars run on railways that may be separate from other traffic, and easily combine into platoons or trains that drive safely and economically at high speed. Rail transport benefits from a huge supportive industry, installed infrastructure and regulatory basis, as well as from a plethora of proven technologies, components, safety standards, and public trust.

[0019] The present disclosure envisions main roads and highways replaced or supplemented by railways dedicated to vehicle-on-railcar traffic. In an example scenario, a driver of an autonomous road vehicle conventionally (according to the vehicle and environment level of autonomy) drives ‘the first mile’ from home to a nearby dedicated railway. The road vehicle is then mounted on and electrically and logically connected to a railcar for an autonomous railed cruise of the vehicle-on-railcar. Finally, the autonomous road vehicle disembarks from the railcar and resumes ‘the final mile’ of conventional road travel toward the destination.

[0020] Since railed travel on dedicated rails that are separate from other traffic is simpler and safer than typical road travel, it is likely that a railed travel segment of the vehicle-on-railcar will afford a higher level of autonomy than a corresponding road travel segment, with an ultimate ideal of achieving autonomy level of driverless travel at as many railed travel segments as possible. Moreover, investment in a railed infrastructure in a certain area may be made purposely for upgrading the autonomy level of vehicle-on-railcar travel in that area to driverless.

[0021] The present disclosure teaches powering the transporting railcar by electricity supplied by the transported autonomous road vehicle, which offers at least three important advantages: (1) eliminating the need to install, service and power fail-safe catenary electricity lines, thereby highly reducing the costs of a new infrastructure dedicated to vehicle-on-railcar traffic; (2) eliminating the cost and complexity of a pantograph per railcar; and (3) avoiding the consumption of additional electricity at peak hours, and instead using electricity charged at home by autonomous road vehicles at off-peak hours, typically overnight.

[0022] The present disclosure further teaches controlling the transporting railcar by the driving automation control system of the transported autonomous road vehicle. This way, the transporting railcar can be simple and of low cost, while the sophisticated automated driving functionalities are provided by sensors and electronic control units of an existing driving automation control system of the transported road vehicle, which is mostly already paid for.Unified Autonomous Vehicle-on-Railcar

[0023] The present disclosure teaches an autonomous road vehicle mounted on and transported by a motorized railcar that is powered and controlled by the transported road vehicle. During the railed travel, the road vehicle and railcar are effectively merged into a unified vehicle -on-railcar transportation instrument, wherein the road vehicle offers a safe and convenient accommodation for the driver and passengers and provides power and driving automation, while the railcar provides the simplicity and safety of railed travel.

[0024] The railway then turns into a kind-of single-lane road. Acceleration and braking on rail are similar by their nature and effect to their road counterparts with appropriate adjustments of friction and safety parameters, while steering is replaced by track switching for route selection. In summary, driving automation turns to be simpler and safer for vehicle-on-railcar traveling on railways, than for the same road vehicle traveling on the road. Furthermore, vehicle sensors and ECUs that form part of the driving automation control system of the autonomous road vehicle, lend themselves to detect and perceive the environment of the vehicle-on-railcar travel, which is likely simpler and more predictable than the environment of a typical road travel. All of the above suggest the extension of concepts and technologiesof automated driving of an autonomous road vehicle on road, to automated driving of a vehicle-on-railcar on rails.

[0025] The concept of autonomous vehicle-on-railcar encourages also extending the concept of manual driver intervention in automated driving of a road vehicle on road, to manual driver intervention in automated driving of a vehicle-on-railcar on rail. For example, a human driver of an autonomous vehicle-on-railcar may depress the brake pedal of the road vehicle for emergency braking of the vehicle- on-railcar on rails, effectively actuating friction brakes of the railcar.Examples

[0026] Example 1 : An autonomous road vehicle operable for both automated road travel and automated railed travel, during automated railed travel the autonomous road vehicle is mounted on and transported by a railcar on a railway. The autonomous road vehicle comprises: a vehicle motor; a main power source operable to: (i) during automated road travel, electrically power the vehicle motor, and (ii) during automated railed travel, electrically power a railcar motor of the railcar; a vehicle power delivery connection operable to, during automated railed travel, deliver electric power from the autonomous road vehicle to the railcar to electrically power the railcar motor; and a driving automation control system operable to: (i) during automated road travel, autonomously control at least braking of the autonomous road vehicle, and (ii) during automated railed travel, autonomously control at least braking of the railcar.

[0027] Example 2: The autonomous road vehicle of example 1 further comprises a vehicle inverter, wherein, during automated railed travel: the electric power delivered from the autonomous road vehicle to the railcar via the vehicle power delivery connection is AC power of variable frequency supplied from the vehicle inverter to a railcar AC motor of the railcar; and acceleration of the railcar is controlled by the driving automation control system varying the variable frequency of the AC power.

[0028] Example 3 : In the autonomous road vehicle of example 2, the main power source is a rechargeable battery pack; and the vehicle inverter (216) is further operable to intermittently charge the rechargeable battery pack upon regenerative braking of the railcar.

[0029] Example 4: The autonomous road vehicle of any one of examples 1-3 further comprises a driver control that enables a human driver: (i) during automated road travel, to override the driving automation control system and manually apply emergency vehicle braking; and (ii) during automated railed travel, to override the driving automation control system and manually apply emergency railcar braking.

[0030] Example 5: In the autonomous road vehicle of any one of examples 1-4 the driving automation control system is operable to verify, toward automated railed travel, that a sufficient amount of electric power is allocated for powering the railcar up to reaching a destination, as a precondition for the railcar transporting the autonomous road vehicle.

[0031] Example 6: In the autonomous road vehicle of any one of examples 1-5 the driving automation control system is further operable to control operation of a track switching control unit of the railcar.

[0032] Example 7: A system for automated road travel and automated railed travel of autonomous road vehicles. The system includes: an autonomous road vehicle according to any one of examples 1-6; and a railcar operable to transport the autonomous road vehicle on a railway, the railcar comprising: (i) a deck operable to support the autonomous road vehicle while mounted on the railcar for automated railed travel, (ii) a railcar motor, (iii) a railcar power delivery connection operable to deliver electric power from the autonomous road vehicle mounted on the railcar to power the railcar motor, and (iv) railcar friction brakes.

[0033] Example 8: In the system of example 7 the railcar further comprises a track switching control unit.

[0034] Example 9: In the system of example 7 or 8, the railcar is further transporting and powering a passenger cabin that is separate from the autonomous road vehicle.

[0035] Example 10: A method for operating an autonomous road vehicle for automated travel of at least one road segment and at least one rail segment. The method comprises, for automated travel of a road segment: electrically powering a vehicle motor of the autonomous road vehicle, and autonomously controlling, by a driving automation control system of the autonomous road vehicle, at least braking of the autonomous road vehicle. The method further comprises, for automated travel of a rail segment: mounting the autonomous road vehicle on a railcar, delivering electric power from the autonomous road vehicle to the railcar to power a railcar motor of the railcar, and autonomously controlling, by the driving automation control system of the autonomous road vehicle, at least braking of the railcar.

[0036] Example 11 : In the method of example 10 the autonomous road vehicle comprises a driver control, and the method further comprises: (i) during automated road travel, monitoring the driver control for conditionally overriding the driving automation control system and applying manual emergency vehicle braking; and (ii) during automated railed travel, monitoring the driver control for conditionally overriding the driving automation control system and applying manual emergency railcar braking.

[0037] Example 12: The method of example 10 or 11 further comprises, toward traveling an automated rail segment: verifying in advance that a sufficient amount of electric power is allocated for powering the railcar through the automated rail segment, as a precondition for traveling the automated rail segment.

[0038] Example 13: A railcar transporting an autonomous road vehicle on a railway. The railcar comprises: a deck supporting the autonomous road vehicle; a railcar motor; a railcar power delivery connection delivering electric power from the autonomous road vehicle to power the railcar motor; and railcar friction brakes and a track switching control unit that are controlled by a driving automation control system of the autonomous road vehicle.

[0039] Example 14: The railcar friction brakes of example 13 are controlled also by a driver control included in the autonomous road vehicle.

[0040] Example 15: In the railcar of example 13 or 14 the railcar motor is a railcar AC motor, and the railcar power delivery connection is delivering AC power of variable frequency from a vehicle inverter of the autonomous road vehicle, to power the railcar AC motor.

[0041] Example 16: In the railcar of example 15, the railcar power delivery connection is intermittently delivering electric power from the railcar AC motor to the autonomous road vehicle upon regenerative braking.

[0042] Example 17: In the railcar of example 13 the railcar motor is a railcar AC motor, and the railcar includes a railcar battery pack that is intermittently charged by the railcar AC motor upon regenerative braking of the railcar. Additionally or alternatively, the railcar battery pack is charged when a vehicle-on- railcar that includes the railcar battery pack is charged.

[0043] Example 18: The railcar of example 13 is also transporting and powering a passenger cabin that is separate from the autonomous road vehicle.BRIEF DESCRIPTION OF THE DRAWINGS

[0044] The present disclosure will be understood and appreciated more fully from the following detailed description, taken in conjunction with the drawings in which:

[0045] Figs. 1A-1B are block diagrams schematically describing electric road vehicles of the background art.

[0046] Fig. 1C schematically describes an example driving automation control system of the background art.

[0047] Fig. 2A schematically illustrates a simplified layout of a vehicle -on-railcar taught by the present disclosure.

[0048] Fig. 2B is a schematic block diagram of the vehicle-on-railcar of Fig. 1.

[0049] Figs. 2C-2H are six block diagrams depicting three variations of vehicle-railcar power delivery, coupled with two variations of the location of the railcar driving control.

[0050] Figs. 2I-2J are block diagrams schematically describing railcar driving controls of Fig. 2B located in the road vehicle or railcar, respectively.

[0051] Fig. 2K is a block diagram describing the driver control of Fig. 2B.

[0052] Fig. 3A is a flowchart reciting readying driving control signals for controlling a railcar.

[0053] Fig. 3B lists several examples of railways.

[0054] Figs. 3C and 3D are block diagrams that briefly elaborate on the concept of electronic control unit (ECU).

[0055] Fig. 4 is a flowchart describing the operation of an example of the present disclosure.

[0056] Figs. 5A-5H are illustrations depicting example autonomous road vehicles transported by electric railcars.

[0057] Fig. 6 is a flowchart depicting verification of sufficient electrical power toward mounting an autonomous road vehicle on a railcar.

[0058] Fig. 7 is a block diagram depicting a railcar having batteries.

[0059] Fig. 8 is a schematic illustration of an implementation of systems, railcars, and autonomous road vehicles according to the present disclosure.DETAILED DESCRIPTION

[0060] All autonomous road vehicles described hereinbelow are autonomous electric road vehicles.SIMPLIFIED LAYOUT

[0061] Fig. 2A schematically depicts a simplified layout of a vehicle-on-railcar 200 introduced by the present disclosure. Railcar 280 is supported by railcar wheels 296 on railway 298. Autonomous road vehicle 210 is mounted on a railcar 280 selected for transporting autonomous road vehicle 210. Vehiclerailcar power delivery connection 236 delivers electric power from autonomous road vehicle 210 to power railcar motor 286 (possibly multiple motors) of railcar 280. Wireless or wired railcar driving control channel 152 delivers driving control signals from autonomous road vehicle 210 to railcar 280 to affect acceleration, braking, and / or track switching of railcar 280. Vehicle wheels 154 interface with roads or with railcar 280.

[0062] Fig. 2B is a schematic block diagram of vehicle -on-railcar 200 of Fig. 2A. Autonomous road vehicle 210 is mounted on railcar 280 while powering railcar motor 286 and autonomously controlling at least one of accelerating, braking or track switching of railcar 280. Driving automation control system 151 is similar to driving automation control system 150 of Fig. 1C, further allowing exporting driving instructions, preferably adjusted according to railed transport friction, safety parameters and motor transmission rate, from motion planning unit 164 to railcar driving control 256 or railcar driving control 291 (Figs. 2I-2J). Autonomous vehicle control system 240 includes driving automation control system 151, and preferably also a navigation unit 252 that provides route selection and driving guidance, and driver control 254 that enables manual driving by a human driver (Fig. 2K). Main power source 212 is either a rechargeable battery of a fuel cell, that supplies electric energy to power autonomous road vehicle 210 and railcar 280. DC-DC converter 222 charges 12 / 24V battery 224 to provide low-voltage power for electrical and electronic devices of both autonomous road vehicle 210 and railcar 280. Vehicle inverter 216 draws DC current 214 from main power source 212 and transforms it to variable-frequency AC power 218 that propels and controls the angular frequency (RPM) of vehicle motor 220. Vehicle steering system 226 and vehicle braking system 225 serve for driving autonomous road vehicle 210 on roads, either autonomously under the control of driving automation control system 151, or manually under the control of driver control 254.

[0063] A railcar driving control 256 / 291 is an ECU (electronic control unit) included in autonomous vehicle control system 240 or railcar 280, respectively, to control acceleration, braking and track switching of railcar 280, in response to driving control signals received from motion planning unit 164 via wired or wireless railcar driving control channel 152. Railcar driving control 256 / 291 may be also involved in manual driving via driver control 254, so that a human driver can take control of vehicle-on- railcar 200 if needed. The choice between placing railcar driving control 256 in autonomous road vehicle 210 or railcar driving control 291 in railcar 280, is determined by technical and ecosystem considerations. It is also an option to split functions of railcar driving control between autonomous roadvehicle 210 and railcar 280; for example, to have a railcar driving control 256 that controls only acceleration via controlling the frequency of vehicle inverter 216, while braking and track switching are handled by railcar driving control 291. For brevity, driving automation control system 151 will be often described hereinbelow as controlling railcar motor 286, railcar friction brakes 288 and / or track switching control unit 289 with no explicit reference to railcar driving control 256 / 291.

[0064] Power delivery connection 229 comprises wires and connectors that deliver electric power from autonomous road vehicle 210 to railcar 280 to power railcar motor 286. Power delivery connection 229 comprises vehicle power delivery connection 230 and vehicle power delivery connector 234 that form part of autonomous road vehicle 210; railcar power delivery connection 242 and railcar power delivery connector 238 that form part of railcar 280, and vehicle -railcar power delivery connection 236, such as a cable, that connects vehicle power delivery connector 234 and railcar power delivery connector 238, for example via plug-socket arrangement, when autonomous road vehicle 210 is mounted on railcar 280. In some examples, vehicle-railcar power delivery connection 236 may be null if vehicle power delivery connector 234 and railcar power delivery connector 238 are devised to engage directly when autonomous road vehicle 210 is mounted on railcar 280. It will be noted that power delivery connection 229 may function also to deliver low-voltage electricity from 12 / 24-volt battery 224 to railcar 280, to power low-power elements of railcar 280 such as brakes, lights, electronics and / or processors, including railcar driving control 291. This note also applies to Figs. 2C-2H, and will not be repeated below. In examples that apply regenerative braking by railcar motor 286, power delivery connection 229 may serve also for intermittently charging a main power source 212 that is a rechargeable battery, from railcar motor 286.

[0065] Railcar 280 is supported by railcar wheels 296 on railway 298. Deck 284 is any physical arrangement configured to support autonomous road vehicle 210 when transported by railcar 280. Railcar motor 286 drives the railcar wheels 296 via a transmission (not shown); if regenerative braking is applied, railcar motor 286 also takes part in railcar braking and in intermittently charging the main power source 212 of autonomous road vehicle 210. Railcar friction brakes 288 handle braking, possible in cooperation with regenerative braking applied via railcar motor 286. Track switching control unit 289 handles track switching, if needed, possibly via communication with a track switching system that forms part of the railway system. In an example, track switching control unit 289 may also provide electrical energy or mechanical drive to a standalone track switching mechanism that forms part of the track and lacks electricity supply of its own, possibly while slowing down or temporarily halting the railcar toward a track switching point. Other track switching mechanisms and methods that may be actuated by track switching control unit 289 are also possible. Railcar inverter 285 is optionally included in railcar 280, forcases where the power delivered from autonomous road vehicle 210 to railcar 280 is DC power, as described below with reference to Figs. 2D and 2G.

[0066] Road traffic management 202 is an external compute and communication system that may communicate with autonomous road vehicles and provide them with road maps, speed limits, current traffic, and the like, optionally considered by motion planning unit 164 for planning driving instructions for vehicle driving control 170. Railway traffic management 204 is an external compute and communication system that may communicate with autonomous vehicle-on-railcars and provide them with railway maps, railcar speed limits, current railcar traffic, and the like, optionally considered by motion planning unit 164 of autonomous road vehicle 210 for planning driving instructions for vehicle- on-railcar 200. In some examples, road traffic management 202 and / or railway traffic management 204 may operate also for urban or rural traffic management, fleet management, ride reservations, charging management, billing, and other system-level management and control tasks of driverless autonomous road and rail vehicles. Optional road traffic management 202 and railway traffic management 204 are implicitly included, but not explicitly shown, also in the examples of Figs. 2C-2H below.POWER DELIVERY AND DRIVING CONTROL VARIATIONS

[0067] Figs. 2C-2H describe three variations of vehicle-railcar power delivery, coupled with two variations of the location of the railcar driving control. As discussed above, the railcar driving control functions may also be split between the road vehicle and railcar, which is not explicitly covered in Figs. 2C-2H.

[0068] Fig. 2C describes vehicle-on-railcar 200C, where the electric power delivered from autonomous road vehicle 210C to railcar 280C is AC power of variable frequency supplied by vehicle inverter 216C via vehicle power delivery connection 230C, vehicle-railcar power delivery connection 236C and railcar power delivery connection 242C, to power railcar AC motor 286C that drives railcar 280C and control acceleration of vehicle-on-railcar 200C. Railcar driving control 256C is an ECU that controls railcar acceleration by varying the AC frequency of vehicle inverter 216C; controls railcar braking via controlling railcar friction brakes 288; and controls track switching via controlling track switching control unit 289. If regenerative braking is applied, then braking control is split between controlling vehicle inverter 216C for railcar regenerative braking, and railcar friction brakes 288. Other numbered elements of Fig. 2C that were not specifically mentioned with reference to Fig. 2C, operate as described above with reference to identically or similarly numbered elements of Fig. 2B.

[0069] Fig. 2D describes vehicle-on-railcar 200D, that features supply of DC power from main power source 212 of autonomous road vehicle 210D to railcar inverter 285 of railcar 280D via vehicle powerdelivery connection 23 OD, vehicle-railcar power delivery connection 236D, and railcar power delivery connection 242D. Railcar inverter 285 then generates variable-frequency AC power 287 to power railcar AC motor 286D. Railcar driving control 256D functions similarly to railcar driving control 256C of Fig. 2C, except controlling railcar inverter 285 rather than vehicle inverter 216C. Other numbered elements of Fig. 2D that were not specifically mentioned with reference to Fig. 2D, operate as described above with reference to identically or similarly numbered elements of Fig. 2B.

[0070] Fig. 2E describes vehicle -on-railcar 200E where main power source 212 of autonomous road vehicle 210E supplies DC power to railcar DC motor 292 of railcar 280E. Railcar driving control 256E controls railcar DC motor 292 to control acceleration, railcar friction brakes 288 to control braking, and track switching control unit 289 to control track switching. Other numbered elements of Fig. 2E that were not specifically mentioned with reference to Fig. 2E, operate as described above with reference to identically or similarly numbered elements of Fig. 2B.

[0071] Fig. 2F describes vehicle-on-railcar 200F that is similar to vehicle-on-railcar 200C of Fig. 2C, except that railcar driving control 291C is moved from autonomous road vehicle 21 OF to form part of railcar 280F. All operations remain the same as in vehicle-on-railcar 200C.

[0072] Fig. 2G describes vehicle-on-railcar 200G that is similar to vehicle-on-railcar 200D of Fig. 2D, except that railcar driving control 29 ID is moved from autonomous road vehicle 210G to form part of railcar 280G. All operations remain the same as in vehicle-on-railcar 200D.

[0073] Fig. 2H describes vehicle-on-railcar 200H that is similar to vehicle -on-railcar 200E of Fig. 2E, except that railcar driving control 29 IE is moved from autonomous road vehicle 21 OF to form part of railcar 280H. All operations remain the same as in vehicle-on-railcar 200E.DRIVING CONTROLS

[0074] Fig. 21 schematically describes railcar driving control 256 of Fig 2B and its variations in Figs. 2C-2H. Railcar acceleration control 256A is an ECU that controls acceleration of railcar 280. Railcar braking control 256B is an ECU that controls braking of railcar 280, which may combine regenerative and friction braking where applicable. Railcar track switching control 256S is an ECU that controls track switching of railcar 280, possibly via communication with a track switching system that forms part of the railway system. Vehicle / railcar converter 256C is an optional ECU that transforms driving control signals received from the driving automation control system 151 or driver control 254 of the autonomous road vehicle into railcar-ready driving control signals (see Fig. 3A and respective description).

[0075] Fig. 2J describes railcar driving control 291, which is an ECU similar to railcar driving control 256 of Fig. 21, except of railcar driving control 291 forming part of railcar 280.

[0076] As noted above, the railcar driving control functions may also be split between the road vehicle and railcar, which is not reflected in Figs. 2I-2J. Also, for brevity of this specification, control of the railcar acceleration, braking and / or track switching may be attributed to driving automation control system 151 without explicitly mentioning railcar driving control 256 / 291.

[0077] Fig. 2K describes driver control 254 of Figs. 2B-2H, that may include accelerator pedal 254A, brake pedal 254B, steering wheel 254S and dashboard & buttons 254D. During road travel, driver control 254 may be operated by a human driver conventionally, for manual driving as needed or desired. During railed travel, driver control 254 may be required or selectably actuated by a human driver, for example for emergency braking of vehicle-on-railcar 200.RAILCAR-READY CONTROL SIGNALS

[0078] Figs. 2B-2H describe a motion planning unit 164 of a driving automation control system 151 of an autonomous road vehicle providing driving control signals to control either the vehicle during road travel, or the railcar during vehicle-on-railcar travel. In an example, driving automation control system 151 is preprogrammed and configured to autonomously drive the vehicle-on-railcar, and then driving automation control system 151 provides railcar-ready driving control signals to control the railcar. In another example, the driving control signals provided by the motion planning unit 164 are vehicle-ready, which requires to convert them into railcar-ready signals.

[0079] Both possibilities are schematically summarized in the flowchart of Fig. 3A. Thus, with a vehicle mounted on a railcar toward vehicle-on-railcar travel, is step 320 driving control signals are generated by motion planning unit 164 of driving automation control system 151. If step 324 finds that the driving automation control system 151 is programmed and configured to provide driving control signals that are railcar-ready, then in step 336 the driving control signals from the driving automation control system 151 control acceleration, braking and track-switching of the railcar, and possibly also mounting and disembarking management commands. If step 328 finds that the driving control signals from the driving automation control system 151 are just vehicle-ready, or otherwise less than railcarready, then in step 332 the driving control signals from the driving automation control system 151 are converted by vehicle / railcar converter 256C (Fig. 21) or vehicle / railcar converter 291C (Fig. 2 J) to railcar-ready signals that in step 336 control acceleration, braking and track-switching of the railcar. Converting vehicle-ready to railcar-ready driving control signals may be applied also to manual railcar driving via driver control 254, and mounting and disembarking management commands.EXAMPLE RAILWAYS

[0080] Fig. 3B lists several examples of railway 298 of Figs. 2B-2H. In example 298A the railway is laid on the ground, such as a common ballasted track, or a grooved track embedded in the road as is common in trams; in example 298B the railway is elevated above the ground; in example 298C the railway is laid underground. Examples 298D and 298E refer to dual rail and monorail, respectively.

[0081] It will be appreciated that vehicle-on-railcars that are intended to carry primarily passengers and / or are operated only at low speed in urban or mountain areas, may afford narrower, light-duty railways that are easier and less expensive to deploy and maintain than standard commercial railways.

[0082] For safety reasons, vehicle -on-railcars preferably use dedicated railways. However, time sharing is also an option, for example vehicle-on-railcars traveling during the day, while cargo trains traveling at night. In some examples, vehicle -on-railcars may act as micro trams that share road space with other vehicles, as depicted below.ELECTRONIC CONTROL UNITS

[0083] Figs. 3C and 3D briefly elaborate on the concept of an electronic control unit (ECU), defined above as an embedded module in automotive electronics that controls one or more of the electrical systems or subsystems in a motor vehicle.

[0084] Fig. 3C depicts a simple electronic control unit 300 which includes program memory 304 made of non-transitory computer-readable media that stores program code 308, and a processor 312. When processor 312 is loaded with and runs program code 308, it performs a useful function that is the purpose of electronic control unit 300, such as actuating and controlling braking of a vehicle.

[0085] Fig. 3D depicts an example larger electronic control unit 360 that comprises a non-transitory computer-readable program memory 364, and three program codes 368A, 368B and 368C stored in memory 364 and run on processor 372 to preform three useful functions. In the present example, electronic control unit 360 also comprises electronic control unit 300x and electronic control unit 300Y, each with its own non-transitory computer-readable program memory, program code and processor. In an extreme case, a single central vehicle computer that includes a single processor 372 and multiple program codes 368A. . . within a single program memory 364 may represent most or all ECUs of a vehicle.OPERATION

[0086] Fig. 4 is a flowchart describing the operation of an example of the present disclosure, wherein an autonomous road vehicle starts conventionally traveling a road segment, and is then mounted on a railcar for traveling a rail segment. Steps on the left-hand side of the flowchart pertain to electric power delivery, while steps on the right-hand side pertain to driving control. Autonomous operation implies that the road vehicle includes a driving automation control system 151 of Fig. 2B capable of automated driving which enables at least automated accelerating or braking, with or without driver supervision, depending on the automation level.

[0087] With reference also to Fig. 2B, in step 404 an autonomous road vehicle, such as autonomous road vehicle 210, starts conventionally traveling a road segment, according to the applicable automation level. In step 408 the vehicle motor, such as vehicle motor 220, is powered by the main power source of the road vehicle, such as main power source 212, which may be a rechargeable battery pack or a fuel cell, preferably via a vehicle inverter such as vehicle inverter 216.

[0088] Concurrently with step 408, in step 412 at least braking, and possibly also acceleration and steering, according to the applicable automation level of autonomous road vehicle 210, are autonomously controlled by the driving automation control system of the road vehicle, such as driving automation control system 151 of Fig . 2B . In step 416 a human driver conditionally overrides the driving automation control system and manually applies emergency vehicle braking via driver control 254, monitored by autonomous vehicle control system 240. Step 416 is marked by a dashed frame as conditional - since in many rides it will not be applied, and if the current automated driving level of autonomous road vehicle 210 is driverless, step 416 may be unavailable.

[0089] In step 420 the road travel segment has ended, and the autonomous road vehicle is mounted on a railcar for a rail segment. The vehicle-on-railcar 200 of Fig. 2B then starts a railed travel. In step 424 the autonomous road vehicle 210 and railcar 280 are electrically connected. The electrical connection of step 424 is formed as either step 432 of connecting railcar AC motor 286C to the vehicle inverter 216 (Fig. 2C or 2F); or step 436 of connecting railcar AC motor 286D to railcar inverter 285 while drawing DC power from main power source 212 (Fig. 2D or 2G); or step 440 of railcar DC motor 292 that draws DC power from main power source 212 (Fig. 2E or 2H). In step 444, during the railed trip of vehicle-on- railcar 200, railcar 280 is effectively powered by the main power source 212 of autonomous road vehicle 210.

[0090] If main power source 212 is a rechargeable battery pack and railcar AC motor of step 432 applies regenerative braking, then step 446 applies regenerative braking as needed, with power deliveryconnection 229 intermittently delivering electric power from railcar motor 286 to recharge main power source 212 upon regenerative braking.

[0091] Concurrently with powering the vehicle-on-railcar 200, the road vehicle and railcar are logically paired in step 428, so that driving automation control system 151 of the autonomous road vehicle starts controlling railcar 280 (and eventually the vehicle-on-railcar 200) via railcar driving control 256 or railcar driving control 291. In step 448 at least braking, and possibly also acceleration and / or track switching, according to the applicable automation level of vehicle-on-railcar 200, are autonomously controlled by the driving automation control system of the road vehicle, such as driving automation control system 151 of Fig. 2B. In step 452 a human driver conditionally overrides the driving automation control system and manually applies emergency vehicle braking via railcar driving control 256 monitored by control system 240. Step 452 is marked by a dashed frame as conditional - since in many rides it will not be applied, and if the automated driving level of vehicle-on-railcar 200 is driverless, step 452 may be unavailable.POWER DELIVERY FROM SEVERAL VEHICLES

[0092] In some examples, a railcar may carry two (or more) autonomous road vehicles. While a typical contemporary autonomous road vehicle can provide lOOkW or more of power that is sufficient to transport, for example, several road vehicles on a railcar, it may be the interest of the participating autonomous road vehicle drivers to equally share the electric energy contributed for their joint railed travel. A technical way of doing so may be based on cyclic time sharing, wherein each road vehicle delivers power to the railcar motor for, say, one minute, and is then disconnected and power is delivered to the railcar from the next road vehicle in the cycle. Driving automation control may remain with the first vehicle in the row, whose sensors best serve the vehicles-on-railcar of the present scenario. Driving automation control by the first vehicle in the row may be implemented also in case of autonomous trains, such as in the case of Fig. 5B below. Other methods for consolidating electrical power and / or driving control from multiple sources extend beyond the scope of the present disclosure.VEHICLE-ON-RAILCAR EXAMPLES

[0093] Figs. 5A-5H depict example vehicle-on-railcars that are constructed and operating according to the present disclosure. The figures focus on vehicle-to-railcar power delivery.

[0094] Fig. 5A depicts vehicle-on-railcar 500A that is autonomous road vehicle 504 mounted on railcar 520. A railcar motor of railcar 520 (not shown) is powered by autonomous road vehicle 504 viavehicle power delivery connector 508, vehicle -railcar power delivery connection 512, and railcar power delivery connector 524.

[0095] Fig. 5B depicts loaded electric train 500B that is a train of two vehicle-on-railcar units of Fig. 5A. Fig. 5C depicts loaded electric train 500C that is similar to loaded electric train 500B of Fig. 5B, except that the second railcar 520C is not loaded, and is towed and / or powered by railcar 520. This configuration may be useful for returning empty railcars to loading points that face a shortage of railcars. Fig. 5D depicts loaded electric train 500D made of vehicle -on-railcar 500A of Fig. 5A towing or powering a dumb or motorized railcar 518 carrying arbitrary payload 550, such as a passenger cabin, bicycles, a motorcycle, another vehicle, or any other cargo.

[0096] Fig. 5E depicts an extended vehicle-on-railcar 500E that is an extended railcar 522 that carries and is powered by two of autonomous road vehicle 504. Extended railcar 522 has a motor receiving power from the two autonomous road vehicles via a two-port railcar power delivery connector 526. As noted above, power delivery from two (or more) sources may be based, for example, on cyclic time sharing, wherein each autonomous road vehicle delivers power to the railcar for, say, one minute, and is then disconnected and power is delivered to the railcar from the next autonomous road vehicle in the cycle.

[0097] Fig. 5F depicts vehicle -on-railcar 500F where the extended railcar 522 is loaded with and powered by a single autonomous road vehicle 504. In an example, an extended railcar 522 may carry a longer vehicle, such as a minivan, or host another vehicle or other payload.

[0098] Fig. 5G depicts vehicle-on-railcar 500G where extended railcar 522 that carries and is powered by autonomous road vehicle 504, is preloaded with a passenger cabin 560 whose climate control, lighting and entertainment system, etc. are powered by autonomous road vehicle 504 via extended railcar 522. Passenger cabin 560 may be preordered by the driver of autonomous road vehicle 504 to be used as a meeting room, work room, dining room, sleeping coach, gym room etc. during driverless travel, or offered to other users as a carpool service or a robotaxi. The separation between the vehicle owner’s private space in autonomous road vehicle 504 and a public space in passenger cabin 560 may make a difference for some vehicle owners toward deciding to join a carpool or offer a robotaxi service to the public.

[0099] Fig. 5H depicts electric train 500H that includes two vehicle-on-railcars powered by autonomous road vehicles, one of which also carrying arbitrary payload or a passenger cabin.

[0100] In all examples of Figs. 5A-5H above that include multiple autonomous road vehicle, the frontmost autonomous vehicle is preferably controlling the extended vehicle or train.VERIFYING SUFFICIENT ELECTRICAL ENERGY IN ADVANCE

[0101] Fig. 6 is a flowchart depicting verifying in advance that an autonomous road vehicle has and allocates a sufficient amount of electrical energy (kWh) in its main power source, for powering the railcarthat transports the autonomous road vehicle up to reaching a designated destination, as a precondition for the railcar transporting the autonomous vehicle to the destination. The flowchart is to be preferably implemented in the autonomous vehicle control system 240 (Fig. 2B). Alternatively, the flowchart can be implemented in a separate access control system that controls access of autonomous road vehicles to railcars.

[0102] In step 604 a request for transport to a destination is received from a human driver via communication with a smartphone or via a keypad included in driver control 254 (Fig. 2B).

[0103] In step 608, an amount of kWh available and allocated for the transport is received from the road vehicle or the driver. Often, the amount allocated for the transport may be smaller than the remining kWh amount in the main power source, since there may be a need for reserving electric power also for subsequent trips prior to recharging the battery pack or replenishing the fuel cell of the road vehicle.

[0104] In step 612 the amount of kWh required to reach the destination, by the vehicle -on-railcar, is estimated according to route, weight, and distance data, preferably including a safety factor. In step 616 the available amount of step 608 is compared to the required amount of step 612. If the available amount is sufficient, then in step 632 the autonomous road vehicle commits to provide the available amount during the travel to the destination, and in step 636 the autonomous road vehicle is mounted on the railcar.

[0105] If step 616 finds that the available amount is insufficient, yet the remaining amount of kWh in the main power source of the autonomous road vehicle is sufficient, then step 620 negotiates with the autonomous road vehicle driver providing the required amount, which may oblige the driver to change travel plans, turn off climate control, or recharge earlier than originally planned. If in step 624 the negotiation is successful, then steps 632 and 636 are executed. Otherwise, the transport is declined in step 628 for insufficient kWh supply for reaching the designated destination.RAILCARS INCLUDING BATTERIES

[0106] The railcars described so far have been powered by the autonomous road vehicles mounted on them. Fig. 7 depicts a railcar 700 that is similar to railcar 280 of Fig. 2B, and also includes a railcar battery pack 780 and railcar 12 / 24V battery 782, which are available, for example, for railcar logistics in railcar parking lots or railcar parking spots, in the absence of autonomous road vehicles mounted on therailcars. Railcar batery pack 780 and railcar 12 / 24V batery 782 can be intermitently charged from railcar motor 286 that is an AC motor upon regenerative braking, and / or when a vehicle-on-railcar that includes railcar 700 is charged by a robotic charger 828 (Fig. 8), and / or at dedicated railcar charging stations in railcar parking lots such as park-pool-mount parking lot 830 or off-site park-mount parking lot 840 of Fig. 8.EXAMPLE USE CASESRoad-Rail Travel

[0107] An example use case for a vehicle-on-railcar is a trip of an autonomous road vehicle that involves both road and rail segments. An autonomous road vehicle drives a short road segment conventionally, according to the road vehicle’s level of autonomy. The autonomous road vehicle is then mounted on a railcar, and the vehicle-on-railcar starts a cruise, ideally driverless, on a long railway segment. Finally, the autonomous road vehicle disembarks from the railcar and resumes conventional driving on a short road segment. An example of such trip is a ‘first mile’ road segment from home to a nearby railway, a cruise of the vehicle -on-railcar on a long rail segment, and a ‘final mile’ road segment of conventional driving from the rail to a destination.Public Transportation Example

[0108] The following use case of road-rail travel assumes automated vehicle -on-railcar travel that is approved for driverless travel. A public transportation electric road vehicle, such as a bus or taxi, starts a short conventional road journey (say, 10 minutes) atended by a human driver, for picking up passengers. When mounted on a railcar, the driver leaves the vehicle-on-railcar with its passengers, for a driverless cruise of, say, one hour, while the driver moves to another bus or taxi that disembarks from another railcar. When approaching the destination, another driver joins the vehicle, driving conventionally for dropping-off passengers along the final segment.Railed Travel to and at Campuses

[0109] The following use cases envision campuses, such as industrial zones, airports, universities, military sites, government sites, etc., having a rail network interconnecting main sites within the campus, and vehicle -on-railcars approved for driverless railed travel. A user drives her autonomous road vehicle conventionally until reaching a dedicated railway and mounting the autonomous road vehicle on a railcar. The vehicle -on-railcar starts a driverless railed ride until reaching a destination site within a campus. After the user gets off the road vehicle, the vehicle-on-railcar continues unmanned to an off-campus parking lot, waiting for a call from the user. Either at a parking spot or at a dedicated charging station, the autonomous road vehicle may be electrically charged automatically.

[0110] Optionally, instead of paying for parking, the vehicle-on-railcar may offer driverless paid taxi services within the campus and possibly extended to a railed range off the campus, including conventional train stations, as long as it can return, properly charged and on time, to pick up its owner from the campus and drive her back home via a railed / road trip.[OHl] In some scenarios or for some users, the initial ride to a rail-only campus or city center may be performed conventionally on road by the autonomous road vehicle, and transform to a vehicle-on-railcar driverless ride upon approaching the campus or city. The driver is then dropped-off at her in-campus destination, and the vehicle-on-railcar then continues its driverless railed trip toward off-campus parking or serving as a driverless paid taxi as described above.Micro Tram

[0112] A city may offer a micro tram service during busy hours, while allowing conventional road traffic at night, for example for commercial deliveries, maintenance etc. Grooved rail tracks are embedded in roads and streets, as well as in drop-off / pick-up lanes. All traffic is made by individual vehicle-on-railcars, navigating the city similarly to conventional car traffic, except that all vehicle-on- railcars move driverless. Momentary drop-off / pick-up stops are allowed in drop-off / pick-up lanes and in designated streets. Sizeable off-city parking lots allow to mount and unmount vehicles on railcars as well as offer paid hourly parking for vehicle -on-railcars. Vehicle-on-railcars that have dropped-off their passengers may continue empty to wait at an off-city parking lot, or offer driverless taxi service until called to pick up their owner. Robotic charging stations within the city and in parking lots may recharge car battery packs as needed.Transportation System Example

[0113] Fig. 8 describes transportation system 800 that combines several use cases. A user leaves home 802 for reaching destination 850, such as a workplace or college. The user conventionally drives autonomous road vehicle 804 along road segment 808 A according to the vehicle’s autonomy level.

[0114] In a first scenario, the user stops at a neighborhood park-pool-mount parking lot 830, selecting one of three options: (i) park the vehicle conventionally and join another vehicle-on-railcar for a carpool ride; (ii) mount the vehicle on a railcar 806 and start a railed cruise of vehicle -on-railcar 814 on rail segment 810A, possibly inviting other users to join the ride under carpool arrangement; or (iii) mount the vehicle on an extended vehicle -on-railcar 814E that includes an extended railcar 806E, a passenger cabin 807 to be used for either accommodating additional passengers under carpool or robotaxi arrangement or providing a luxury limousine ride for the vehicle owner (see Fig. 5G).

[0115] When either regular or extended vehicle-on-railcar 814X enters via rail segment 81 OB a restricted rail-only area indicated by rail-only sign 809, travel continues via rail segment 810D until reaching a drop-off stop 824 next to destination 850, where the user gets off the vehicle. The vehicle may continue to drop-off other passengers, stop at robotic charger 828 for charging, and then either continue via rail segment 810E to off-site park-mount-hail parking lot 840 to park as a vehicle-on-railcar, until called to pick up its owner via rail segment 810C, or divert to rail segment 81 OF and start offering hailed robotaxi services for a fee to users of the railed area, for example a large industrial zone or city center, in either the vehicle-on-railcar 814 or extended vehicle -on-railcar 814E configuration.

[0116] In a second scenario, a neighborhood park-pool-mount parking lot 830 may be unavailable for a user, and the user then drives autonomous road vehicle 804 on wheels along road segment 808B until reaching off-site park-mount-hail parking lot 840. The vehicle may be then left to park, or be mounted on a regular or extended railcar becoming regular or extended vehicle-on-railcar 814X and move along rail segment 810C to drop off its owner at destination 850 and continue as described above with respect to the first scenario.ADVANTAGES AND CONCLUSION

[0117] The present disclosure teaches transporting autonomous road vehicles by railcars that are electrically powered by the main power sources - rechargeable batteries or fuel cells - of the carried road vehicles, and are controlled by the transported autonomous vehicles. This paradigm enables:

[0118] A. Highly simplifying and reducing the costs of railcars, by eliminating onboard power sources and driving automation control systems for the railcars.

[0119] B. Highly simplifying infrastructures and reducing their costs and daily service. For example, railcars require just plain light-duty rails, with no need for a fail-safe heavy-duty electricity supply system which is extremely expensive to acquire, install, service, and operate.

[0120] C. Eliminating major additional peak-hour loads on the grid, which could be required for operating a new fleet of railcars powered from the grid.

[0121] D. Effectively enabling safe and convenient driverless travel of private cars, far before driverless (level 4 or 5) vehicles reaching the consumer market.

[0122] On top of advantages A-D, vehicle-on-railcars offers unparalleled advantages with regard to overcoming traffic congestion and parking bottlenecks:

[0123] E. Switching both the mindset and legal position of participating vehicle owners into ‘a passenger’ rather than ‘a driver’, which is essential for central traffic management.

[0124] F. Promoting the use of rails, which may be advantageous in many use cases.

[0125] G. Extended vehicle-on-railcars that carry a separate passenger cabin offer shared vehicles acting as pool cars or robotaxis, without invading the private cabin space of the car owner, which is expected to promote participation in vehicle sharing.

[0126] Advantage A-G accumulate into enabling a new, practical breed of autonomous road vehicles, as well as other new transportation instruments implemented as autonomous road vehicles transported by railcars that are powered and controlled by the transported vehicles.

[0127] While the disclosure has been described with respect to a limited number of examples, it will be appreciated by persons skilled in the art that the present disclosed concepts are not limited by what has been particularly shown and described herein. Rather the scope of the present disclosure includes both combinations and sub-combinations of the various features described herein, as well as variations and modifications which would occur to persons skilled in the art upon reading the specification and which are not in the prior art.

Claims

CLAIMS1. An autonomous road vehicle (210) operable for both automated road travel and automated railed travel, during automated railed travel the autonomous road vehicle (210) is mounted on and transported by a railcar (280) on a railway (298), the autonomous road vehicle (210) comprising: a vehicle motor (220); a main power source (212) operable to: during automated road travel, electrically power the vehicle motor (220), and during automated railed travel, electrically power a railcar motor (286) of the railcar (280); a vehicle power delivery connection (230) operable to, during automated railed travel, deliver electric power from the autonomous road vehicle (210) to the railcar (280) to electrically power the railcar motor (286); and a driving automation control system (151) operable to: during automated road travel, autonomously control at least braking of the autonomous road vehicle (210), and during automated railed travel, autonomously control at least braking of the railcar (280).

2. The autonomous road vehicle (210) of claim 1, further comprising a vehicle inverter (216), and wherein, during automated railed travel: the electric power delivered from the autonomous road vehicle (210) to the railcar (280) via said vehicle power delivery connection (230) is AC power of variable frequency supplied from the vehicle inverter (216) to a railcar AC motor (286, 286C) of the railcar (280); and acceleration of the railcar (280) is controlled by said driving automation control system (151) varying the variable frequency of said AC power.

3. The autonomous road vehicle (210) of claim 2, wherein: the main power source (212) is a rechargeable battery pack; and the vehicle inverter (216) is further operable to intermittently charge the rechargeable battery pack upon regenerative braking of the railcar (280).

4. The autonomous road vehicle (210) of claim 1, further comprising a driver control (254) that enables a human driver: during automated road travel, to override the driving automation control system (151) and manually apply emergency vehicle braking; and during automated railed travel, to override the driving automation control system (151) and manually apply emergency railcar braking.

5. The autonomous road vehicle (210) of claim 1, wherein the driving automation control system (151) is operable, toward automated railed travel, to verify that a sufficient amount of electric power is allocated for powering the railcar (280) up to reaching a destination, as a precondition for said railcar (280) transporting the autonomous road vehicle (210).

6. The autonomous road vehicle (210) of claim 1, wherein the driving automation control system (151) is further operable to control operation of a track switching control unit (289) of the railcar (280).

7. A system for automated road travel and automated railed travel of autonomous road vehicles (210), the system comprising: an autonomous road vehicle (210) according to any one of claims 1-6; and a railcar (280) operable to transport the autonomous road vehicle (210) on a railway (298), the railcar (280) comprising: a deck (284) operable to support the autonomous road vehicle (210) while mounted on the railcar (280) for automated railed travel, a railcar motor (286), a railcar power delivery connection (242) operable to deliver electric power from the autonomous road vehicle (210) mounted on the railcar (280) to power the railcar motor (286), and railcar friction brakes (288).

8. The system of claim 7, wherein the railcar (280) is further comprising a track switching control unit (289).

9. The system of claim 7 or 8, wherein the railcar (280, 806E) is further transporting and powering a passenger cabin (807) that is separate from the autonomous road vehicle (210, 804).

10. A method for operating an autonomous road vehicle (210) for automated travel of at least one road segment and at least one rail segment, the method comprising: for automated travel of a road segment: electrically powering a vehicle motor (220) of the autonomous road vehicle (210), and autonomously controlling, by a driving automation control system (151) of the autonomous road vehicle (210), at least braking of the autonomous road vehicle (210); and for automated travel of a rail segment: mounting the autonomous road vehicle (210) on a railcar (280), delivering electric power from the autonomous road vehicle (210) to the railcar (280) to power a railcar motor (286) of the railcar (280), and autonomously controlling, by the driving automation control system (151) of the autonomous road vehicle (210), at least braking of the railcar (280).

11. The method of claim 10, wherein the autonomous road vehicle (210) comprises a driver control (254), the method further comprising: during automated road travel, monitoring the driver control (254) for conditionally overriding the driving automation control system (151) and applying manual emergency vehicle braking; and during automated railed travel, monitoring the driver control (254) for conditionally overriding the driving automation control system (151) and applying manual emergency railcar braking.

12. The method of claim 10 or 11, further comprising, toward traveling an automated rail segment: verifying in advance that a sufficient amount of electric power is allocated for powering the railcar (280) through the automated rail segment, as a precondition for traveling said automated rail segment.

13. A railcar (280) transporting an autonomous road vehicle (210) on a railway (298), the railcar (280) comprising: a deck (284) supporting the autonomous road vehicle (210); a railcar motor (286); a railcar power delivery connection (242) delivering electric power from the autonomous road vehicle (210) to power the railcar motor (286); and railcar friction brakes (288) and a track switching control unit (289) that are controlled by a driving automation control system (151) of the autonomous road vehicle (210).

14. The railcar (280) of claim 13, wherein the railcar friction brakes (288) are controlled also by a driver control (254) included in the autonomous road vehicle (210).

15. The railcar (280) of claim 13, wherein: the railcar motor is a railcar AC motor (286, 286C); and the railcar power delivery connection (242) is delivering AC power of variable frequency from a vehicle inverter (216) of the autonomous road vehicle (210) to power the railcar AC motor (286, 286C).

16. The railcar (280) of claim 15, wherein the railcar power delivery connection (242) is intermittently delivering electric power from the railcar AC motor (286, 286C) to the autonomous road vehicle (210) upon regenerative braking.

17. The railcar (280, 700) of claim 13, further comprising a railcar battery pack (780), and wherein: the railcar motor is a railcar AC motor (286, 286C); and the railcar battery pack (780) is intermittently charged by the railcar AC motor (286, 286C) upon regenerative braking of the railcar (280, 700).

18. The railcar (280, 806E) of claim 13 further transporting and powering a passenger cabin (807) that is separate from the autonomous road vehicle (210, 804).

19. A system for automated road travel and automated railed travel of autonomous road vehicles (210), the system comprising:a railcar (280) operable to transport an autonomous road vehicle (210) on a railway (298), the railcar (280) comprising: a deck (284) operable to support an autonomous road vehicle (210) while mounted on the railcar (280) for automated railed travel, a railcar motor (286), a railcar power delivery connection (242) operable to deliver electric power from an autonomous road vehicle (210) mounted on the railcar (280) to power the railcar motor (286), and railcar friction brakes (288); and an autonomous road vehicle (210) comprising: a vehicle motor (220), a main power source (212) operable to: during automated road travel, electrically power the vehicle motor (220), and during automated railed travel, electrically power the railcar motor (286), a vehicle power delivery connection (230) operable to, during automated railed travel, deliver electric power from the autonomous road vehicle (210) to the railcar (280) to electrically power the railcar motor (286), and a driving automation control system (151) operable to: during automated road travel, autonomously control at least braking of the autonomous road vehicle (210), and during automated railed travel, autonomously control at least braking of the railcar (280).

20. The system of claim 19, wherein: the autonomous road vehicle (210) further comprises a vehicle inverter (216) that supplies AC power of variable frequency; the electric power delivered from the autonomous road vehicle (210) to the railcar (280) via the vehicle power delivery connection (230) is the AC power of variable frequency; the railcar motor (286) is a railcar AC motor (286, 286C) powered by the AC power of variable frequency; and during automated railed travel, the driving automation control system (151) controls acceleration of the railcar (280) by varying the variable frequency of said AC power.

21. The system of claim 20, wherein: the main power source (212) is a rechargeable battery pack; and the railcar (280) AC motor is operable to apply regenerative braking and charge said main power source (212) upon said regenerative braking.

22. The system of claim 19, wherein the autonomous road vehicle (210) comprises a driver control (254) that enables a human driver: during automated road travel, to override the driving automation control system (151) and manually apply emergency vehicle braking; and during automated railed travel, to override the driving automation control system (151) and manually apply emergency railcar (280) braking.

23. The system of claim 19, wherein the driving automation control system (151) of the autonomous road vehicle (210) is operable to verify in advance that a sufficient amount of electric power is allocated for powering the railcar (280) up to reaching a designated destination, as a precondition for said railcar (280) transporting the autonomous road vehicle (210) to the designated destination.

24. The system of claim 19, wherein: the railcar (280) further comprising a track switching control unit (289); and the driving automation control system (151) is further operable to control operation of the track switching control unit (289).

25. The system of claim 19 under automated operation, wherein: the autonomous road vehicle (210) is mounted on the railcar (280) and is in automated railed travel; the railcar motor (286) is powered by the main power source (212) of the autonomous road vehicle (210); and braking is operating under control of the driving automation control system (151).

26. The system of claim 19, wherein the railcar (280, 806E) is further transporting and powering a passenger cabin (807) that is separate from the autonomous road vehicle (210,804).