The present invention relates to a lawn profile data collecting apparatus or tool which may automatically generate lawn profile data after going through desired places of a piece of lawn. In particular, such a lawn profile data collecting tool of the present invention is used to collect information of all aspects of any pieces of lawns, such as locations, GPS coordinates, number of zones, sizes, lengths, slopes, and conditions of the lawns, that may be transferable to and kept in a storage or memory for future use of lawn mowing or caring jobs.
Currently, border wiring or radio beacons technologies are used to facilitate the robotic lawn mowers to perform mowing of the lawns. Generally, something must be learned or known or predetermined about the lawns before a robotic mower can start mowing a piece of lawn. The available ways of learning or knowing the lawns with the above-mentioned technologies are all about how to define the boundaries of a piece of lawn. With the border wiring technology, the border wires are preset up or buried around or along every inches of the physical boundaries of the lawn for the robotic lawn mower to move around within the boundaries as so defined, and no measurement is needed for other aspects besides the boundaries of the lawn. Likewise, with the radio beacons technology, several radio beacons are planted or preset up at appropriate locations of the boundaries of the lawn, and thus the robotic lawn mower will move around the lawn with reference to the radio beacons.
The most common practice now is still to bury low voltage wires into ground and mark the boundaries of the lawn. A robotic lawn mower will mow the lawn or yard within the boundaries, most likely in a random pattern without any mowing path planning. Thus, there is no guarantee as to how much time it will take to finish mowing the entire lawn without duplicated work. Therefore, this is not efficient at all.
The radio beacon technology was proposed in 2019. It eliminates the burying of border wires around the physical boundaries of the lawn by placing beacons around the lawn so that the robotic lawn mower can learn and memory the location and radio characteristics of each and every beacon. Beacons have to stay in their exact locations at all the time, otherwise the robotic lawn mower will get lost and may go beyond boundaries if any beacon is missing or removed from the original location. This radio beacons technology may work fine with small residential yards, and the number of beacons may not be many, but the beacons would get lost or missing without notice. Thus, it may not be an easy and cost-effective way to use in commercial mowing of relatively large scale of lawns, such as football fields or golf courses, or some public areas, such as parks or roadsides. In any event, merely knowing or presetting boundaries of lawns may not assure good quality of mowing jobs because almost every pieces of lawns may not be just defined by their boundaries, but have other aspects, such as, slopes, obstacles or fixtures within the boundaries of the lawns that may affect the movement or mowing of the mowers.
Therefore, it is desirable to have a more promising, fast, and economical way to learn or know all of aspects about the lawns so as to assure good quality of mowing or other lawncare jobs for any pieces of lawns, either small or large, plain, curving, slope or uneven. And it may get rid of buried wires as well as planted beacons. Nothing needs to be planted under or above the ground and around boundaries of the lawns. This may keep a much pretty appearance of the lawn without much undesirable or non-ornamental fixtures. It can be used on any sizes of lawns and in any occasions, private properties as well as public areas.
An object of the present invention is to learn or know all aspects of any pieces of lawns in advance by measurement to create or generate corresponding lawn profile data that reflects accurately the entire piece of any specific lawn.
The other object of the present invention is to design a specific measurement apparatus or collecting tool as local processing apparatus of lawn profile data in association with an information management system of lawn profile data, that enables the management, storage, and distribution of lawn profile data for sharing among or using by any robotic lawn mowers to perform accurate mowing jobs or broadly by lawn robots for lawncare jobs on any pieces of lawns abound the world. The lawn profile data information management system is being pursued through a related application by the applicant, which is incorporated herein by reference. Accordingly, the present invention is to design a lawn profile data collecting tool or apparatus that is used and based on the lawn profile data technology.
According to the present invention, a lawn data collecting tool or apparatus comprises a plurality of moving wheels, a chassis for mounting and connecting the wheels, a main function box sitting on the chassis, a handle provided with function buttons, and a rod connecting the handle and the chassis.
Further, according to the present invention, at least one of the wheels is provided with a distance measuring mechanism, that may be a counter. All wheels have the same perimeter and the perimeter of each wheel is set to have a predetermined length. When each of the wheels turns a circle, the distance of this tool having traveled is equal to the length of the wheel's perimeter.
Still further, the main function box contains PCB boards which include a CPU, a GPS or GNSS receiver, a differential GPS or GNSS receiver, a Wi-Fi module, a Bluetooth module, a camera, and an optional 4G/5G telecommunication module, as well as data conversion and processing module.
Moreover, the handle of the collecting tool may hold four functional buttons which are used to mark LAWN, ZONE, OBSTACLE, and SEGMENT because the lawn profile data will contain all the aspects of the lawns when the measured or rather learned or known information of the lawns as collected by the tool is converted into the lawn profile data.
Details of the present invention may be understood and will be discussed hereinafter in connection with the accompanying drawings.
Generally, the lawn data collecting tool 10 of the present invention as shown in
The perimeter of each of the wheels 14a, 14b, 14c is set to a predetermined length, e.g., 16 inches or so. A length measuring sensor or counter 18 is provided and connected to the axle of one of the two front moving wheels 14a, 14b, as shown in
Generally, GNSS (i.e., Global Navigation Satellite System) may include the United States' Global Positioning System (GPS), Russia's Global Navigation Satellite System (GLONASS), China's BeiDou Navigation Satellite System (BDS), the European Union's Galileo, and other non-mainstream systems. GPS is the most commonly used and preferable system; but others may be preferred in different regions or locations. Therefore, the lawn data collecting tool 10 of the present invention is designed to use GNSS for accurately positioning at any locations or any pieces of lawns.
GNSS is capable of providing geolocation and time information to a GNSS receiver anywhere on the Earth. A GNSS module is adopted in the lawn data collecting tool of the present invention as seen in
The main function box 12 is generally briefly illustrated in
Wi-Fi module is used as a communication means for accessing information, as well as used to identify and collect Wi-Fi signals of surrounding Wi-Fi routers or access points to build a micro positioning and navigation system of the lawn, which will be addressed in another related patent application of the same applicant. An optional 4G/5G telecommunication module may be installed in the function box 12 to provide more flexibility of communication choices. Further, 5G technology looks very promising to be used for positioning or even navigation since 5G communication would have more base stations than 4G or 3G.
Bluetooth module is used to connect to a mobile device and to transfer data between the lawn profile data collecting tool and the mobile device. In order to initiate a lawn profile data collecting job, the mobile device with an APP will first connect to the lawn profile data collecting tool to gather the information of the tool and send a request to a remote information processing center. The remote information processing center could be a physical base server facility, or a cloud based fully automated service. Once the request gets approved the information processing center, the mobile device with the APP will send instructions to the collecting tool to start data collecting job. When the data collecting job is finished, the data collected by the tool will be sent to and received by the mobile device with the APP via Bluetooth connection. After inputting the necessary information, all of the collected lawn profile data will be verified, and the verified data will be encrypted and then sent to the remote information processing center or rather the cloud storage for future use.
To start measurement and collection of information of the lawn, a differential GNSS system is used to determine coordinates and heights of points of each segment as classified according to the present invention. As described above, the moving wheel 14a or 14b equipped with counter is used to measure length or size or distance by the number of turns of the wheel as the wheel travels. Moreover, another input may be necessary to come up with a more accurate measurement of length through a length fusion algorithm. The slope of a segment can be calculated by heights of both ends.
A camera 21 is also mounted inside of the function box 12 as shown in
For instance, zone 1 as shown in
As another example, zone 2 as shown in
There is an obstacle inside of zone 2. The obstacle has four segments. Segment 1 has a length of 100 feet and goes from west to east. The object next to Segment 1 is a tree. Segment 2 has a length of 100 feet and goes from north to south. The object next to Segment 2 is a tree. Segment 3 has a length of 100 feet and goes from east to west. The object next to Segment 3 is a tree. Segment 4 has a length of 100 feet and goes from south to north. The object next to Segment 4 is a tree.
Generally for those lawn profile data, a LAWN contains one or more ZONES. A ZONE contains SEGMENTS and possible OBSTACLES. An OBSTACLE contains SEGMENTS. In the flow chart of LAWN data, the collection of OBSTACLE and SEGMENT data are just illustrative, not given in details. They are given in details in the OBSTACLE flow chart. Things become obstacles only when they are in a ZONE. As an example, one obstacle, i.e., the tree, is shown in zone 2 in
The essence of the present invention has been described above. The lawn profile data collecting tool disclosed here is a separate apparatus. However, it is understood that such apparatus may be integrated as part of any robotic lawn mowers so long as the mowers may be equipped with the aforesaid functions; and thus, the mowers may serve as the data collecting tool. This should be within the scope of the present invention as described above and defined in the accompanying claims.
The present application claims priority to U.S. Provisional Application No. 62/981,585 filed on Feb. 26, 2020; U.S. Provisional Application No. 62/981,577, filed on Feb. 26, 2020; and U.S. Provisional Application No. 62/991,106, filed on Mar. 18, 2020; the disclosures of which are incorporated herein by reference in the entirety as part of the present application. This application also relates to and claims priority to PCT/US21/016951, filed on Feb. 5, 2021, which claims priority to U.S. Provisional Application No. 62/971,805, filed on Feb. 7, 2020.
Filing Document | Filing Date | Country | Kind |
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PCT/US2021/019744 | 2/25/2021 | WO |
Number | Date | Country | |
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62981577 | Feb 2020 | US | |
62981585 | Feb 2020 | US | |
62991106 | Mar 2020 | US |