Light Projected Visual Space and Safety System For Bicycles
20190002052 ยท 2019-01-03
Inventors
Cpc classification
F21W2103/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62J6/015
PERFORMING OPERATIONS; TRANSPORTING
F21W2107/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62J6/057
PERFORMING OPERATIONS; TRANSPORTING
B62J6/028
PERFORMING OPERATIONS; TRANSPORTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B62J6/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A light projection system for bicycles that comprises a front light and a rear light that act in tandem to emit light on the sides and beneath the cycle to visually indicate the safety space of the cyclist; and to use such lights to indicate cyclists' intention to other commuters. Individually, both the front and rear light can project light as wide as 330, with sharply defined patterns and objects. The front and rear lights act in concert that allows the projection of light on a surface that is demonstrably more visible, brighter, better defined, which allows the user of such lights signal intentions to other commuters. Moreover, the lights are synchronized so the shape and outline of the projected light field is malleable, thus different shapes can be projected with no loss of luminous flux and/or sharpness.
Claims
1. A system of light projected visual safety space for a transportation device comprising: a front light and a rear light coupled to the transportation device; wherein both the front light and rear light comprise a ground light, wherein the ground light inclines beyond a pre-defined angle from the perpendicular to the ground and emits light in a cone shape of light field on pre-determined positions beneath top portions of the transportation device proximal to the bicycle defining the visual safety space.
2. The system of light projected visual safety space for a transportation device according to claim 1, wherein the ground light of either or both the front light and the rear light comprises a size lens to adjust the size of the emitted light, a shaping lens for modifying the shape of the emitted light and a LED as the light source.
3. The system of light projected visual safety space for a transportation device according to claim 1, wherein at least one of the front light and rear light comprises a control module controlling and modifying at least one of the aspects of size, shape, color, intensity and frequency of emitted light and light emission modes, wherein the light emission modes comprise solid/constant and strobe/flash light modes.
4. The system of light projected visual safety space for a transportation device according to claim 3, wherein at least one of the front light and rear light comprises a switch set for activation or alteration at least one of aspects controlled and modified by the control module.
5. The system of light projected visual safety space for a transportation device according to claim 4, wherein the system further comprises a remote controller for controlling over the control modules of the front light or the rear light.
6. The system of light projected visual safety space for a transportation device according to claim 5, wherein the system further comprises a mobile device application for control over settings and functions of the front light, the rear light and the remote controller.
7. The system of light projected visual safety space for a transportation device according to claim 1, wherein both the front light and rear light comprises a wireless module for communications within the front light and the rear light to synchronize settings or lighting mode of the emitted light.
8. The system of light projected visual safety space for a transportation device according to claim 1, wherein at least one of the front light and the rear light comprises an accelerometer for measuring acceleration of the transportation device for activating a brake light when the acceleration of the transportation device is higher than a threshold.
9. The system of light projected visual safety space for a transportation device according to claim 1, further comprising a radar module to monitor surrounding objects and their travelling speed; wherein the rear light comprises a control module controlling and modifying at least one of the aspects of size, shape, color, intensity and frequency of emitted light and light emission modes in accordance to the speed of the surrounding objects.
10. The system of light projected visual safety space for a transportation device according to claim 1, wherein a light sensor is coupled to the front light or rear light monitoring the lighting intensity proximal to cyclists and one or more of the front light and rear light adjust the luminance of light in response to environment change.
11. The system of light projected visual safety space for a transportation device according to claim 1, wherein the transportation device is a bicycle.
12. The system of light projected visual safety space for a transportation device according to claim 1, wherein the transportation device is a tricycle.
13. The system of light projected visual safety space for a transportation device according to claim 1, wherein the transportation device is a motorcycle.
14. The system of light projected visual safety space for a transportation device according to claim 1, wherein the transportation device is a moped.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Embodiments of the invention are described in more detail hereinafter with reference to the drawings, in which:
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[0019]
DETAILED DESCRIPTION
[0020] In the following description, systems, devices, and apparatuses for light signaling and illumination system used in transportation devices and the likes are set forth as preferred examples. It will be apparent to those skilled in the art that modifications, including additions and/or substitutions may be made without departing from the scope and spirit of the invention. Specific details may be omitted so as not to obscure the invention; however, the disclosure is written to enable one skilled in the art to practice the teachings herein without undue experimentation.
[0021] Although the present document describes the present invention as applied primarily to bicycles, an ordinarily skilled person in the art will be able adapt its various embodiments to be applied to other types of personal and small-sized transportation devices such as, without limitation, motor-assisted bicycles, tricycles, motor-assisted tricycles, motorcycles, mopeds, trikes, and scooters without undue experimentation.
[0022] The ultimate goal of this invention is to improve the safety of cyclists. A cyclist's safety is heavily dependent on being visible to other road users, but even then, motorist miscalculation is a prominent cause in cycling accidents and fatalities. Thus, to improve cyclist safety, the invention herein not only enhances a cyclist visibility, but provides two functions in improving safety: creating a safety space using light projection, and allowing cyclist to signal intentions, all the while providing directional light for the cyclist, sustaining cyclist's visibility and visibility of cyclist.
[0023] A safety space means the minimum space between motorists and the cyclist that should be observed when sharing the same road, as specified in local laws pertaining to cycling. For instance, according to the Queensland Government from the Government of the Commonwealth of Australia, Motorists must stay wider of bicycle riders by giving a minimum of: 1 meter when passing a bicycle rider in a 60 km/h or less speed zone or 1.5 meters where the speed limit is over 60 km/h..sup.4 .sup.4https://www.qld.gov.au/transport/safety/rules/other/cyclists/
[0024] As such, the dimension of the safety space light projection observes such laws and safety standards according to a preferred embodiment of the present invention. The boundary of the safety space light projection serves as a visual cue for adjacent and oncoming motorists to maneuver around the cyclist's safety space.
[0025] As local relevant laws pertaining to the actual size of the safety space is likely different for different jurisdictions, the safety standards posited by the Queensland Government is used only as a reference described herein for the standard size of the safety space in the present invention. An ordinary skilled person in the art will be able to adapt the various embodiments of the present invention to meet the legal requirements and standards of other jurisdictions without undue experimentation.
[0026]
[0027] The front light 100, as seen in
[0028] The front light 100 further includes a wireless module 130, an accelerometer 140, a battery 150, the control module 160 and a switch set 170. A wireless module 130 electrically connected to the control module 160 is provided for wireless communications with other components and modules, and other external devices. An accelerometer 140 is used for measuring acceleration of the bicycle. Acceleration data collected is transmitted via the wireless module 130 to the mobile device application 400. A control module 160 controls the various functions of the front light 100 in accordance to the settings of switch set 170 or the settings in the mobile device application 400 via the wireless module 130. The various functions of the front light 100 includes the on/off, luminance adjustments, and controls of the lens actuators.
[0029] The rear light 200, as seen in
[0030] The rear light 200 further includes a wireless module 230, an accelerometer 240, a rechargeable battery 250, the control module 260 and a switch set 270. A wireless module 230 is provided for wireless communications with other components and modules, and other external devices. An accelerometer 240 is used for measuring acceleration of the bicycle. Acceleration data collected is transmitted via the wireless module 230 to the mobile device application 400. A control module 260 controls the various functions of the rear light 200 according to the settings of switch set 270 or the settings in the mobile device application 400 via the wireless module 130. The various functions of the front light 100 includes the on/off, luminance adjustments, and controls of the lens actuators.
[0031] In one embodiment, a radar module 280 is included for detecting surrounding traffic. The radar data generated is sent to the mobile device application 400 for displaying surrounding traffic condition. The radar data generated is also received by the control module 260 for automatic adjustments of the rear light 200 in response to the surrounding traffic conditions. In one exemplary embodiment, when radar module 280 detected surrounding heavy traffic in that the number of cars is above a threshold number within a time period, and/or cars traveling at high speed above a threshold average speed, e.g. above 60 km/h, the control module 260, in receiving and processing such radar data, causes an expansion of the safe space, e.g. radius from 1 m to 1.5 m, by sending the control signals to adjust the size lenses 1202 and/or 2202.
[0032] In one embodiment, one or more of the front light 100, rear light 200 and remote controller 300 may comprise a light sensor and monitors the lighting intensity proximal to cyclists from the light reflection of the ground. Control module 160, 260, or 360 receives the light sensor reading and adjust the luminance according to environment changes, e.g., from day to night or night to day.
[0033] Referring to
[0034] In response to environmental condition changes, settings built in or commands given by the cyclist processed by one or more the control modules 160, 260, and 260 causes one or more changes in the projection size and/or shape, color, intensity, and/or flash frequency of emitted light and light emission modes by sending control signals to each of the adjustable sub-components, such as size lens, shaping lens, and the LEDs. Light emission modes may be solid/constant light emission or strobe/flash light emission. In one embodiment where the system 10 comprises only front light 100 and rear light 200, the corresponding control modules 160 and 260 communicate and synchronize the settings or lighting mode with each other via their respective wireless modules. In another embodiment where the system 10 further comprises a remote controller 300, the control module 360 takes over control of control modules 160 and 260 to communicate and synchronize the settings and/or lighting mode of front light 100 and rear light 200 via the wireless modules, unless remote controller 300 is deactivated, then control modules 160 and 260 take back the control.
[0035] Preferably, batteries 150, 250 and 350 are rechargeable batteries.
[0036] The front light 100 and rear light 200 of system 10 achieve a 360 light emission that can circumvent physical barriers due to the positioning of front light 100 and rear light 200, as well as the fact that each of them contains two light sources that are angled differently. Both the front light 100 and rear light 200 can individually emit light at an angle of 360, but when mounted on a bicycle, a slightly smaller angle of illumination is practically achieved due to the bicycle frame being a physical barrier and necessarily a blind-spot. In one aspect, both the directional light 110 and ground light 120 of front light 100 are mounted on the handle bar of the bicycle, and both the rear visibility light 210 and ground light 220 of rear light 200 are mounted on the seat post below the saddle of a bicycle.
[0037] Referring to
[0038] Further from
[0039] In one aspect, ground lights 120 and 220 emit stronger lights and reach a luminous flux of 50-200 lumens that is conspicuous to other road users. Under such high luminous flux, the shadow of the cyclist becomes unnoticeable and hence creating a full pattern of safety space. In contrast, directional light 110 and rear visibility light 210 emit lights with lower luminous flux which prevents blinding other commuters nearby.
[0040] In one embodiment, each of ground lights 120 and 220 has at least two LEDs and corresponding lens such that one of the emitted light is semi-circle in shape projected on to one side adjacent to the bicycle when the light passes through the shaping lens 1206 or 2206, the other emitted light projected on to the opposite side adjacent to the bicycle, as depicted on
[0041]
[0042] Optionally, more settings can be customized by a mobile device application 400, for example a mobile phone app, to directly control other components such as front light 100 or rear light 200 via remote controller 300, or directly control over the other components. A smart bicycle helmet 500 having signal lighting functions can also be adopted in the system of the present invention to provide synchronized turning signals.
[0043] The embodiments disclosed herein may be implemented using general purpose or specialized computing devices, computer processors, or electronic circuitries including but not limited to application specific integrated circuits (ASIC), field programmable gate arrays (FPGA), and other programmable logic devices configured or programmed according to the teachings of the present disclosure.
[0044] Portions or all of the mobile device application in the various embodiments may be executed in one or more general purpose or computing devices including server computers, personal computers, laptop computers, mobile computing devices such as smartphones and tablet computers
[0045] The foregoing description of the present invention has been provided for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise forms disclosed. Many modifications and variations will be apparent to the practitioner skilled in the art.
[0046] The embodiments were chosen and described in order to best explain the principles of the invention and its practical application, thereby enabling others skilled in the art to understand the invention for various embodiments and with various modifications that are suited to the particular use contemplated.