Ultraviolet Light Cleansing Cart with Wand Assembly
The mobile UV light cleansing cart addresses the challenge of inconsistent UV disinfection by using movable assemblies and UV lamps emitting specific wavelengths, ensuring efficient and consistent surface disinfection as the cart moves.
Patent Information
- Application Number
- JP2021078959
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-16
- Filing Date
- 2021-05-07
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2041-05-07
AI Technical Summary
Existing mobile UV cleaning devices struggle to provide consistent and efficient disinfection of surfaces while moving, due to varying distances between the UV light source and the surface, leading to inconsistent UV doses and potential insufficient disinfection.
A mobile UV light cleansing cart equipped with one or more UV lamps and movable assemblies that can be deployed and stowed, allowing for constant and efficient disinfection of surfaces as the cart moves. The cart includes a body with a movable base, and the UV lamps are configured to emit UV light at specific wavelengths within the far UV or UVC spectrum.
The solution enables consistent and efficient disinfection of surfaces within aircraft cabins and other enclosed areas, ensuring effective pathogen reduction without the need for manual operation or significant reduction in speed, thereby improving cleanliness and reducing operational time.
Smart Images

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Abstract
Description
[Technical field]
[0001] Examples of the subject disclosure herein relate generally to cleaning equipment that may be used, for example, to clean structures and areas within a vehicle (such as a commercial aircraft), and more particularly, to mobile equipment for autonomously or semi-autonomously cleaning structures and areas using ultraviolet (UV) light. [Background technology]
[0002] Vehicles (such as commercial aircraft) are used to transport passengers between various points. Systems are currently under development for disinfecting or otherwise cleaning surfaces inside the aircraft, for example using UV light. In known UV light disinfection methods, broad spectrum UVC light is emitted onto a structure to clean the surface of the structure.
[0003] A portable cleaning system having a wand assembly for cleaning a component is under development. The wand assembly of the portable cleaning system includes a UV lamp configured to emit UV light. Typically, an operator moves the wand assembly across the surface of the component to clean the surface. However, an individual typically does not know if they are moving the wand assembly too fast or too slow to effectively and efficiently clean the surface. In general, the manual process for disinfecting a surface using a handheld device has varying degrees of consistency.
[0004] Mobile cleaning devices are under development that can roll or otherwise move along a path (such as an interior cabin corridor in an aircraft) and emit UV light to a structure surface as the device moves. However, known mobile cleaning devices have limited effectiveness and consistency of disinfection because the UV light remains at a certain height relative to the structure illuminated by the UV light as the device moves along the path. As a result, the UV light is positioned relatively far from the structure surface, and the distance between the UV light and the structure surface can vary. The amount of disinfection or cleaning at a target surface is referred to as dosage and is affected by the power of the UV light, the range or distance from the UV light source to the target surface, and the exposure time. The speed of the device relative to the target surface affects the exposure time. Variations in the distance of various surfaces from a fixed UV light source will cause the dose irradiated to such various surfaces to vary, resulting in inconsistent cleaning. Additionally, the relative distance of some surfaces from the UV light source and the inability to target the UV light at the surface can result in an insufficient dose of UV light being delivered to the surface. One way to increase the dose to achieve a desired amount of disinfection is to significantly slow down the speed of the mobile cleaning equipment to increase the exposure time, but doing so also reduces the efficiency of the cleaning process. Summary of the Invention
[0005] There is a need for autonomous or semi-autonomous mobile UV cleaning equipment that can consistently and efficiently disinfect structures and areas while on the move.
[0006] In light of such needs, certain examples of the subject disclosure herein provide an ultraviolet (UV) light cleansing cart that includes one or more first UV lamps configured to emit UV light and one or more wand assemblies with one or more second UV lamps, the second UV lamps configured to emit UV light, the one or more wand assemblies being movable between a stored position and a deployed position.
[0007] In at least one example, the UV light cleaning cart further includes a body having a movable base. The one or more first UV lamps are secured to one or more portions of the body. As a further example, the one or more wand assemblies are connected to the body by one or more tethers. The one or more tethers may include one or more of a power cord, a cable, or an air hose.
[0008] In at least one example, the UV light cleaning cart is a galley cart configured to be moved in and out of compartments within a galley of the interior cabin of the vehicle.
[0009] In at least one example, the first UV lamp(s) and the second UV lamp(s) are configured to emit UV light at a wavelength within the far-UV spectrum, for example, the first UV lamp(s) and the second UV lamp(s) are configured to emit UV light at a wavelength of 222 nm.
[0010] In at least one other example, the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at a wavelength within the UVC spectrum, for example, the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at a wavelength of 254 nm.
[0011] In at least one example, the one or more wand assemblies include a first wand assembly and a second wand assembly.
[0012] In at least one example, the one or more wand assemblies include a handle and a cleaning head coupled to the handle. The cleaning head includes the one or more second UV lamps. In a further example, the cleaning head is movably coupled to the handle.
[0013] Certain examples of the subject disclosure herein provide an ultraviolet (UV) light cleaning method that includes providing one or more first UV lamps on or within a UV light cleaning cart, providing one or more wand assemblies with one or more second UV lamps on or within the UV light cleaning cart, and moving the one or more wand assemblies between a stored position and a deployed position. [Brief description of the drawings]
[0014] [Figure 1] 1 is a rear or aft view of an interior cabin of a vehicle including a UV light cleaning cart according to an example of the subject disclosure herein. [Diagram 2] FIG. 1 is a side or tip view of the interior cabin of a vehicle including a UV light cleaning cart. [Diagram 3] FIG. 1 is a perspective view of a UV light cleaning cart within an interior cabin according to an example of the subject disclosure herein. [Figure 4] 1 is a side or tip view of two rows of seats in an interior cabin showing the travel path of a UV light array of a UV light cleaning cart over time according to an example of the subject disclosure herein. [Diagram 5] 1 is a schematic diagram of a UV light cleaning cart according to an example of the subject disclosure herein. [Figure 6] FIG. 2 is a rear view of a UV light cleaning cart with arms raised and extended according to an example of the subject disclosure herein. [Figure 7] FIG. 2 is a diagram of a UV light cleaning cart stored within a monument within an interior cabin according to an example of the subject disclosure herein. [Figure 8]1 illustrates a curved rack and pinion actuator for raising and lowering the arm of a UV light cleaning cart, and therefore the UV light array, according to an example of the subject disclosure herein. [Figure 9] 1 shows a linear actuator for raising and lowering the arm, and therefore the UV light array, of a UV light cleaning cart according to an example of the subject disclosure herein. [Figure 10] 1 is a top view of a UV light cleaning cart according to an example of the subject disclosure herein. [Figure 11] 1 is a cross-sectional view of an inner member and an outer member of one of the arms of a UV light cleaning cart according to an example of the subject disclosure herein. [Figure 12A] 1 shows the outer member of the arm extended relative to the inner member. [Figure 12B] 1 shows the outer member shortened relative to the inner member. [Figure 13] 1 shows a rack and pinion or gear driven actuator for controlling the extension of the outer member relative to the inner member. [Figure 14A] 13A-13C show various positions of the arms of the UV light cleaning cart relative to the body of the UV light cleaning cart according to another example in which the outer member of the arms can pivot relative to the inner member. [Figure 14B] 13A-13C show various positions of the arms of the UV light cleaning cart relative to the body of the UV light cleaning cart according to another example in which the outer member of the arms can pivot relative to the inner member. [Figure 14C] 13A-13C show various positions of the arms of the UV light cleaning cart relative to the body of the UV light cleaning cart according to another example in which the outer member of the arms can pivot relative to the inner member. [Figure 14D] 13A-13C show various positions of the arms of the UV light cleaning cart relative to the body of the UV light cleaning cart according to another example in which the outer member of the arms can pivot relative to the inner member. [Figure 14E] 13A-13C show various positions of the arms of the UV light cleaning cart relative to the body of the UV light cleaning cart according to another example in which the outer member of the arms can pivot relative to the inner member. [Figure 15]1 shows an outer array carrier mounted to an inner member of an arm of a UV light cleaning cart according to an example of the subject disclosure herein. [Figure 16] 1 illustrates a steering mechanism for controlling the position of a wheel of a UV light cleaning cart according to an example of the subject disclosure herein. [Figure 17] 17 shows a wheel carrier assembly of the steering mechanism shown in FIG. 16. [Figure 18] A rack and pinion mechanism is shown for steering the UV light cleaning cart as an alternative to the steering mechanism shown in Figures 16 and 17. [Figure 19] 1 illustrates a carrier inclined relative to a body of a UV light cleaning cart according to an example of the subject disclosure herein. [Figure 20] 1 illustrates an actuator that may be used to rotate a carrier about a vertical axis, according to an example of the subject disclosure herein. [Figure 21A] 1 shows a first elevation UV light cleaning cart. [Figure 21B] 1 shows a UV light cleaning cart at a second height that is greater than the first height due to an extension of the body portion. [Figure 21C] 1A-1D show both a side view and a top view of a rack and pinion actuator for extending and retracting a fuselage according to an example of the subject disclosure herein. [Figure 22] 1 illustrates a base for a UV light cleaning cart according to an alternative example of the subject disclosure herein. [Figure 23] 1 illustrates a body portion of a UV light cleaning cart according to an alternative embodiment of the subject disclosure herein. [Figure 24] 1 illustrates a front perspective view of a UV light cleaning cart according to an example of the subject disclosure herein. [Diagram 25] 1 illustrates a perspective view of a UV light cleaning cart within an interior cabin of a vehicle according to an example of the subject disclosure herein. [Figure 26] 25 shows a side view of the UV light cleaning cart of FIG. 24. [Figure 27] 25 shows a top view of the UV light cleaning cart of FIG. 24. [Figure 28]1 illustrates a top view of a UV light cleaning cart according to an example of the subject disclosure herein. [Figure 29] 1 illustrates a front perspective view of a UV light cleaning cart with a wand assembly in a stored position according to an example of the subject disclosure herein. [Diagram 30] 1 illustrates a front perspective view of a UV light cleaning cart with a wand assembly in a deployed position according to an example of the subject disclosure herein. [Diagram 31] 1 illustrates a top perspective side view of a wand assembly according to an example of the subject disclosure herein. [Diagram 32] FIG. 32 shows a rear perspective view of the wand assembly of FIG. 31. [Diagram 33] 32 shows a side perspective view of the wand assembly of FIG. 31. [Diagram 34] 1 illustrates a perspective end view of a UV lamp and reflector of a cleaning head according to an example of the subject disclosure herein. [Diagram 35] 1 illustrates a perspective end view of a UV lamp and reflector of a cleaning head according to an example of the subject disclosure herein. [Diagram 36] 1 illustrates a perspective end view of a UV lamp and reflector of a cleaning head according to an example of the subject disclosure herein. [Figure 37] The ultraviolet spectrum is shown. [Figure 38] 1 illustrates a perspective view of a galley within an interior cabin according to an example of the subject disclosure herein. [Figure 39] 1 shows a flow diagram of a UV light cleaning method according to an example of the subject disclosure herein. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0015] The above summary, as well as the following detailed description of certain examples, will be better understood when read in conjunction with the accompanying drawings. As used herein, it should be understood that an element or step described in the singular following the word "a" or "an" does not necessarily exclude elements or steps in the plural. Moreover, references to "one example" are not intended to be interpreted as excluding the existence of additional examples that incorporate the recited features. Furthermore, examples "comprising" or "having" one or more elements having a particular condition may include additional elements that do not have such conditions (unless expressly stated otherwise).
[0016] Certain examples of the subject disclosure herein provide an ultraviolet (UV) UV light sanitization cart that emits UV light as it moves through an area. The cart includes an array of UV light sources that emit UV light. The UV light sources (also referred to herein as lamps) can emit light in the far UV light spectrum at one or more wavelengths that neutralize (e.g., kill) pathogens. Pathogens referred to herein can include viruses and bacteria. The wavelength of UV light emitted by the UV lamps (e.g., 222 nm) can be non-harmful to humans upon contact. The UV lamps can be excimer lamps. The UV light sources can optionally emit UV light at other wavelengths (e.g., within the UVC spectrum).
[0017] In at least one example, a wand assembly including an additional UV light source is coupled to the UV light cleaning cart and is movable between a stored position on or within the cart and a deployed position that allows the wand assembly to reach areas that may not be reachable by the cart.
[0018] The UV light cleaning cart may be used within the interior cabin of a vehicle to decontaminate and disinfect surfaces, such as structures, walls, floors, ceilings, etc., within the interior cabin. The structures may include seats, storage containers, or shelves, tables, etc. Examples of the subject matter disclosed herein provide safer, more efficient, and effective cleaning compared to certain known UV systems (e.g., manual cleaning using a UV wand or pushing a mobile device with a UV light source fixed in place).
[0019] In one example, the wand assembly is a handheld UV wand that is attached to the UV sanitizing cart, for example, by a power cord or by a power cord and a cooling air hose. The UV wand receives power from the UV sanitizing cart. The handheld wand is an additional sanitizing device. The UV wand can operate in any germicidal UV band (e.g., between 200 nm and 320 nm). In at least one example, the UV wand includes a UV lamp configured to emit UV light having a wavelength within the spectrum of 200 nm to 230 nm, which is not harmful to human tissue. In at least one embodiment, the UV lamp is configured to emit UV light having a wavelength of 222 nm UV that eliminates or otherwise reduces pathogens on the surface of the component, but is not harmful to humans.
[0020] The UV cleaning system, including the wand assembly coupled to the cart, can operate continuously or on a preset periodic schedule, or can be switched on as needed. Power for the system can be provided by a battery and / or by a power cord connected to an off-board power source.
[0021] The UV wand attachment (i.e., the wand assembly coupled to the cart) allows an individual or individuals to disinfect areas that may be shaded or that are often insufficiently disinfected by the UV light illumination of the primary UV cart. The handheld UV wand can be brought in close proximity to a surface and oriented as desired relative to the surface. This allows the wand assembly to illuminate and disinfect the surface separately from the UV light sources on the other carts.
[0022] FIG. 1 is a rear or aft view of an interior cabin 102 of a vehicle 104 including a UV light cleaning system or UV light cleaning cart 100, according to an example. FIG. 2 is a side or tip view of the interior cabin 102 of a vehicle 104 including a UV light cleaning cart 100. The interior cabin 102 is oriented along a longitudinal or X-axis 110, a transverse or Y-axis 111, and a vertical (e.g., height) or Z-axis 112. The axes 110-112 are perpendicular to each other. The interior cabin 102 is defined by a floor 114, a ceiling 116, and a sidewall 118 of the vehicle 104. The interior cabin 102 has a number of seats 120 for passengers. The seats 120 are arranged in two groups 122, 124 separated from each other by an aisle 126. The aisle 126 extends along the longitudinal axis 110. Each of the groups 122, 124 includes a plurality of seats 120 arranged in a plurality of rows 128 spaced along the length of the cabin 102. Each of the rows 128 is oriented parallel to the lateral axis 111. The cabin 102 also includes a storage bin 130 mounted above the seats 120 for storing personal items (e.g., luggage, bags, coats, etc.). The storage bin 130 may be secured to the ceiling 116 and / or the sidewalls 118. The UV light cleaning cart 100 is operable to efficiently, effectively, and consistently clean and disinfect surfaces within the interior cabin 102, including, for example, the seats 120, the storage bin 130, the floor 114, the sidewalls 118, and / or the ceiling 116.
[0023] In one non-limiting example, the vehicle 104 is an aircraft (e.g., a commercial airliner) and the interior cabin 102 is a passenger cabin. In another example, the vehicle 104 may be another type of vehicle (e.g., a rail-based passenger train car, a bus, etc.). The UV light cleaning cart 100 may optionally be utilized to clean other enclosed areas outside of the vehicle, such as areas within a building. For example, the cart 100 may be used to clean office buildings, theaters, restaurants, houses of worship, etc.
[0024] The UV light cleaning system or UV light cleaning cart 100 includes a body 131 having a movable base 132 and a plurality of interconnected rigid members 133. The rigid members 133 are supported by the base 132. The rigid members 133 of the body 131 may include, for example, an upright member or body 134 coupled to the base 132 and an arm 136 extending from the body 134. The rigid members 133 may also include additional components such as a handle 146 and a carrier 214 (discussed in more detail herein with reference to FIG. 6 ). The cart 100 includes a UV light array 138 defined by a plurality of UV lamps 140. At least a portion of the UV lamps 140 of the array 138 are mounted on the arm 136. The arm 136 is operable to extend from the body 134 and retract toward the body 134. 1 and 2 show the arm 136 in an extended position, which is the position utilized when operating to disinfect surfaces of the interior cabin 102. In the extended position, the arm 136 is elongated parallel to the lateral axis 111. The extension length of the arm 136 can be controlled based on the space within the cabin 102 and the surfaces that are required to be disinfected. For example, each row 128 in the illustrated cabin 102 has a total of six seats, with three seats 120 adjacent in each group 122, 124. The first arm 136A extends across the three seats 120 in the first group 122, and the second arm 136B extends across the three seats 120 in the second group 124. The UV lamps 140 located on the first arm 136A emit UV light onto the surfaces of the three sheets 120 in the first group 122, and the UV lamps 140 located on the second arm 136B irradiate the surfaces of the three sheets 120 in the second group 124. In this manner, the cart 100 simultaneously cleans all six sheets 120 in the row 128 at the position of the cart 100 within the cabin 102 shown in Figures 1 and 2. The cart 100 moves along the cart path 141 (e.g., back and forth along the cart path) to translate the UV light array 138 in a direction parallel to the cart path 141. In the illustrated example where the environment is the interior cabin 102, the cart path 141 is the aisle 126.Cart 100 travels along the length of aisle 126 to clean each of the rows 128, one row at a time.
[0025] In the illustrated example, the base 132 includes a number of wheels 142 that provide mobility and allow the cart 100 to roll along the length of a path (such as the path 126). In the illustrated example, the base 132 has four wheels 142. Alternatively, the base 132 may include a continuous track having a set of treads that engage the floor 114 in place of the surface of the wheels 142. The base 132 may support additional components of the cart 100, such as one or more battery packs 144.
[0026] A body 134 extends from the base 132 and is oriented along a vertical (or height) axis 112. A handle 146 is coupled to the body 134. The handle 146 provides an interface that allows an operator to physically grasp and control the movement of the cart 100, as shown in FIG. 2. The cart 100 is pushed and pulled by the operator to operate in a semi-autonomous mode in the illustrated example. The semi-autonomous mode relies on the operator to propel the cart 100 along the aisle 126, as described in detail herein, but may provide various automated tasks, including, for example, terrain following of the UV light array 138 and arm 136 to follow the contours of the sheet 120, and control feedback to the operator indicating whether the operator should change the speed or direction of the movement of the cart 100 along the aisle 126 to improve the effectiveness of the cleaning. In the autonomous mode, all operations, including the movement of the cart 100 along the aisle 126, are automated. For example, as described herein, an operator may use the input device to selectively activate or turn on the cart 100 to trigger the cart 100 to perform cleaning of the interior cabin 102 and then return it to a stored position. In one example, the cart 100 may only operate in an autonomous mode, and thus the handle 146 is optional.
[0027] As described herein, the UV light cleaning system or UV light cleaning cart 100 also includes a wand assembly coupled to (e.g., movably secured to) a portion thereof. For example, the wand assembly is coupled to the base 132 and configured to be moved relative to the base 132 between a stored position and a deployed position.
[0028] FIG. 3 is a perspective view of a UV light cleaning cart 100 in the interior cabin 102, according to an example. The cart 100 in FIG. 3 is positioned in the aisle 126, with the first arm 136A extending above the three seats 120 in the first group 122 of seats 120 in a single (first) row 128A. The handle 146 is omitted in FIG. 3. FIG. 4 is a side or tip view of two rows 128 of seats 120, showing the travel path of the UV light array 138 of the UV light cleaning cart 100 over time, according to an example. The two rows include the first row 128A of seats 120 shown in FIG. 3 and the row 128B of seats 120 in front of the first row 128A. FIGS. 3 and 4 show the conforming ability of the UV light cleaning cart 100 to achieve effective, efficient, and consistent disinfection of various surfaces in the cabin 102. In the position shown in FIG. 3, the arm 136A is positioned above a head rest 150 of the seat 120, and a UV lamp 140 (see FIG. 1) disposed on the arm 136A emits UV light onto the top of the head rest 150.
[0029] 3, the UV light cleaning cart 100 can translate and roll the UV lamps 140 (see FIG. 1) of the UV light array 138 relative to the seats 120 and other structures within the interior cabin 102 to emit UV light within a specified proximity range of the surfaces of the structures. Such a specified proximity range can be a few inches (e.g., 2 inches, 4 inches, etc.). In the illustrated example, the cart 100 moves the UV lamps 140 along the longitudinal or X-axis 110 as the cart 100 moves along the aisle 126. For example, in an autonomous mode, the wheels 142 are actuated to drive the cart 100. In a semi-autonomous mode, the cart 100 can instruct the operator how to push or pull the cart 100, for example, by providing feedback on the speed and direction of movement along the longitudinal axis 110. The arm 136 can translate along the vertical or Z-axis 112 to control the height of the UV light relative to the surfaces of the seats 120 and other structures. For example, the body 134 may be telescopic to mechanically raise and lower the arm 136. The arm 136 may be rotatable about a lateral or Y axis 111 to aim the UV light toward the surface of the sheet 120 and other structures.
[0030] 4, the current position of the first arm 136A in the position shown in FIG. 3 is indicated by a solid rectangle 152 positioned above the top 151 of the headrest 150 of the seat 120 in the first row 128A. UV light emitted by the UV lamp 140 of the illustrated arm 136A illuminates the top 151 of the headrest 150. FIG. 4 illustrates a cleaning path 160 of the first arm 136A over time, according to one example. The dashed rectangle 162 represents the position of the first arm 136A at a subsequent time as the cart 100 moves the arm 136A along the cleaning path 160. For example, the first arm 136A cleans the top 151 of the headrest 150 and then moves along the cleaning path 160 to a location 162A where UV light is emitted from the UV lamp 140 onto the front surface 155 of the headrest 150. Although only one sheet 120 per row is illustrated in FIG. 4, it will be appreciated that all three sheets 120 in the block illustrated in FIG. 3 may simultaneously receive UV light on the same surface of each of the sheets 120. Additionally, although several dashed rectangles 162 are illustrated at separate locations, in one example, UV light is emitted continuously from the arm 136A along the entire length of the cleaning path 160. The dashed rectangles 162 illustrated are not the only locations where UV light is emitted.
[0031] The cleaning path 160 of the first arm 136A (and its UV lamp 140) extends along the front surface 157 of the seat back 158 (of each of the seats 120 in the block), up to the top surface 164 of the seat surface 165, and then along the front surface 166 of the seat surface 165. The UV light is then emitted under the seats 120 and then towards the floor 114 between the two rows 128A and 128B. The arm 136A then moves the UV lamp 140 to emit UV light under the seats 120 in the next row 128B, and then against the back surface 167 of the seat back 158 (of each of the seats 120 in the block), from the seat surface 168 of each seat 120 towards the top 151 of the headrest 150.
[0032] The movement of the arm 136A along the cleaning path 160 is autonomous or at least semi-autonomous. In one example, the only movement that receives manual input in the semi-autonomous mode is along the longitudinal axis 110. The cart 100 is capable of providing compound motion (referring to simultaneous movement along multiple axes and / or nodes). For example, to achieve translation from position 152 to position 162A shown in FIG. 4, the arm 136A carrying the UV lamp 140 is moved in a forward direction 170 (see FIG. 3) along the longitudinal axis 110, descends downward 172 (FIG. 3) along the vertical axis 112, and rotates in a counterclockwise direction 174 (FIG. 3) about the lateral axis 111. Such motions may be performed simultaneously to enable the arm 136A to sweep along the contour of the headrest 150. In the illustrated example, movement in the forward direction 170 may be accomplished by driving the entire cart 100 forward, but may alternatively be provided by moving the fuselage 134 and / or the arm 136A relative to the base 132, such that the cart 100 remains in a fixed position in the aisle 126. To reach another position along the cleaning path 160, the arm 136A may be moved in a rearward or aft direction 171 along the longitudinal axis 110, upward 173 along the vertical axis 112, and in a clockwise direction 175 about the lateral axis 111. Although not shown in FIG. 3, the cart 100 may also be capable of moving the arm 136 along other planes and axes of rotation, as described herein.
[0033] The cleaning path 160 follows the contours of the seats 120 and other structures present within the cabin 102. In one example, the cleaning path 160 is configured to allow the UV lamps 140 to be within a specified or predetermined proximity or range of a surface to provide an effective and efficient dose of UV light. For example, controlling the UV lamps 140 to be within a few inches of a surface allows a specified dose to be delivered without requiring large amounts of UV light power or exposure time. Limiting power requirements is energy saving, and limiting exposure time is time efficient. For example, by emitting UV light close to the target surface, the cart 100 may provide a consistent and effective disinfection of the cabin 102 in less time and with less power consumption than known systems. Additionally, the UV dose delivered to a surface by the cart 100 may be greater than known systems that use roughly the same amount of power and / or time for cleaning, and therefore may be more effective at neutralizing pathogens because of the shorter range from the UV lamps to the target surface.
[0034] Optionally, the cleaning path 160 shown in FIG. 4 may be a first path followed by the UV light cleaning cart 100 in one direction (e.g., forward direction 170) along the length of the aisle 126. The UV light cleaning cart 100 may then follow a second cleaning path 180 as the cart 100 moves in an opposite reverse direction 171 along the aisle 126. The second cleaning path 180 follows the contours of the ceiling 116 and / or storage bins 130 above the seat 120. The UV light is emitted upward relative to the ceiling 116 and / or storage bins 130 instead of downward relative to the seat 120 and floor 114. In one non-limiting example, the cart 100 may clean a surface of a structure, a wall, a floor, etc., by simply moving the cart 100 the length of the aisle 126 and then returning it to a stored position.
[0035] 5 is a schematic diagram of a UV light cleaning cart 100, according to one example. The cleaning cart 100 includes UV lamps 140 (see FIG. 1), which are referred to as an array 138, a control unit 190, a power supply 192, sensors 194, actuators 196, and output devices 198. The actuators 196 refer to the mechanical actuators, motors, and drive systems that generate automated motion of the cart 100 (e.g., rotation of the wheels 142, extension and retraction of the body (or support member) 134 and arms 136, rotation of the arms 136 relative to the body 134, etc.).
[0036] The power supply 192 provides power to the UV lamps 140 to power the generation of UV light. The power supply 192 also provides power to the actuators 196, the control unit 190, the sensors 194, and the output devices 198. Various conductive wires and / or cables may conduct power from the power supply 192 to the UV lamps 140, the actuators 196, the control unit 190, the sensors 194, and the output devices 198. The power supply 192 may include any on-board energy storage device or power generation component, including but not limited to the battery 144 shown in FIGS. 1 and 2, or may refer to such an off-board energy storage device or power generation component. The power supply 192 may also include a capacitor, a photovoltaic cell, and / or the like. Optionally, the power supply 192 may be a power cable connected to a source located outside the cart 100 (e.g., the electrical system of the vehicle 104 (or building) including the interior cabin 102). This power cable may be capable of running the entire length of the interior cabin 102 to allow the cart 100 to clean the entire cabin 102 without having to unplug the cable and plug it into another outlet. In another example, the power source 192 may be a generator or storage device that is external to the cart 100 and separate from the vehicle 104. For example, the power source 192 may be located in a backpack carried by the operator or on a side cart that is strapped to the UV light cleansing cart 100.
[0037] In at least one embodiment, at least one of the UV lamps 140 is on or within a wand assembly. For example, a wand assembly including at least one UV lamp 140 is coupled to a portion of the UV light cleansing cart 100 (e.g., to the body 131 shown in Figures 1 and 2).
[0038] The control unit 190 is operatively connected to the UV lamps 140, the actuators 196, the sensors 194, and the output devices 198 via wired and / or wireless communication paths. The control unit 190 generates control signals that control the operation of the UV lamps 140 (e.g., on / off state) and the amplitude or power of the generated UV light, and optionally the wavelength of the UV light. The control unit 190 also generates control signals for controlling the actuators 196 and the output devices 198. Such control signals may be generated based on sensor signals received from the sensors 194. The control unit 190 refers to hardware circuitry that includes and / or is connected to one or more processors 197 (e.g., one or more microprocessors, integrated circuits, microcontrollers, field programmable gate arrays, etc.). The control unit 190 includes and / or is connected to a tangible, non-transitory computer-readable storage medium 199 (e.g., memory, etc.). For example, memory 199 may store programmed instructions (such as software) that are executed by one or more processors 197 to perform the operations of control unit 190 described herein.
[0039] The sensors 194 may include proximity sensors, visual sensors, etc. The sensors 194 may utilize ultrasonic, cameras (e.g., in the visible and / or infrared wavelength ranges), optical ranging sensing (e.g., Light Detection and Ranging (LIDAR)), and / or the like. The sensors 194 are used for object avoidance to prevent collisions between the cart 100 and objects and structures within the cabin 102. In certain examples, the sensors 194 are also used for spatial awareness to guide the arm 136 carrying the UV lamps 140 along the cleaning paths 160, 180 shown in FIG. 4. For example, the sensors 194 may be utilized by the control unit 190 to determine the current location of the cart 100 and / or its components relative to the interior cabin 102.
[0040] In one non-limiting example, the memory 199 stores a map of the environment in the interior cabin 102. The map may be three-dimensional and may have a coordinate system. For example, all of the rows 128 of the seats 120 have known coordinates in the map. Furthermore, the cleaning paths 160, 180 may be pre-programmed routes in the map's coordinate system. The control unit 190 may move to or remain at a specified reference point in the cabin 102 in an autonomous mode. The movement of the cart 100 may be tracked by the control unit 190 based on mechanical elements (e.g., gears, articulations, actuators 196, etc.). By starting at a reference point and then tracking subsequent movements from the reference point, the control unit 190 may correlate or record the movement in the physical space with the corresponding movement in the virtual space of the 3D map. For example, the control unit 190 may determine the current location of the cart 100 within the cabin 102 based on consulting the 3D map and tracking the movement of the cart 100 from a reference point. The movement of the cart 100 may be tracked, in part, by monitoring the positioning of the wheels 142, which indicate the direction of movement, and by monitoring the rotation of the wheels 142 (or related components). Similar tracking of the arm 136 through various actuators 196 and other mechanical elements that control the movement of the arm 136, together with the 3D map, may also be utilized by the control unit 190 to enable the control unit 190 to control the shape following shown and described in FIG. 4. In this example, where the movement of the UV array 138 is controlled based on a stored map of the cabin 102, the sensor 194 is used for object avoidance. For example, the sensor signal may indicate when a map modification should be implemented to avoid an object not accounted for in the map (e.g., a bag left on a seat, etc.).
[0041] In another example, instead of using a map, a sensor 194 may be used to guide the movement of the cart 100. For example, the control unit 190 may be a vision-based system. The sensor 194 may provide image data, range data, etc. to the control unit 190. The processor(s) 197 may analyze the sensor data and perform object detection, for example, to identify the sheet 120 in the image data. The control unit 190 generates a control signal based on the identified sheet and the distance to the sheet based on the sensor data to control the arm 136 to approach and move along the surface of the sheet 120 as shown in the cleaning paths 160, 180 illustrated in FIG. 4.
[0042] The output device 198 may include or be a light, a speaker, a display screen, a vibration pack, and / or the like to provide warnings and notifications to nearby personnel. For example, the output device 198 may have a flashing light and / or emit a beep to alert personnel in the vicinity of the cart 100 that the cart 100 is moving when the cart 100 is operating in an autonomous mode. When personnel are present in a semi-autonomous mode, the output device 198 may be used to direct or modify the operator's movements to improve the effectiveness, efficiency, and / or consistency of the disinfection process. For example, there may be a specified speed or range of speeds that the cart 100 moves along the aisle 126 to produce good or satisfactory disinfection performance (based in part on the exposure time of the target surface to UV light). The operator may be notified by a pacing light on the cart 100 that lights up with different colors and flashing rates depending on whether the speed is correct, too fast, or too slow; a handle 146 that vibrates with different frequencies and / or intensities depending on whether the speed is correct, too fast, or too slow; and / or an audible signal tone that changes sound and beat rate depending on whether the speed is correct, too fast, or too slow. may be used to communicate the actual speed of the kart 100 relative to the specified speed.
[0043] 6 is a rear view of the UV light cleaning cart 100 with the arm 136 raised and extended, according to one example. With the arm 136 extended, the UV light array 138 is elongated linearly along the array axis 201. The UV light array 138 emits UV light along the length of the array 138 to provide a substantially wall or sheet of UV light. In one or more examples, the cart 100 is autonomously controlled to rotate the UV light array 138 about the array axis 201 to aim the UV light at the component surface as the surface curves and intersects, as required to enable the UV light array 138 to follow the contours of the component surface in the environment to be cleaned. The cart 100 is also autonomously controlled to translate the UV light array 138 along two axes that are orthogonal to each other and to the array axis 201. For example, if the array axis 201 is parallel to the lateral axis 111 shown in Figures 1 and 3, the cart 100 may translate the UV light array 138 vertically along the vertical or height axis 112 and longitudinally along the longitudinal axis 110 during the cleaning process.
[0044] The first and second arms 136A, 136B may be inverted copies of each other, so only one arm 136 is described to represent both. The arm 136 includes a plurality of interconnected members, including at least an inner member 202 and an outer member 204. The inner member 202 is connected to the body 134, and the outer member 204 is connected to the body 134. The UV light array 138 includes at least one elongated UV lamp 140 mounted on each of the inner member 202 and the outer member 204. The UV lamp 140 is elongated along at least a majority of the length of the arm 136 so as to emit substantially a wall of UV light. Although the UV lamps 140 are positioned only along one side 206 of the members 202, 204 in the illustrated example, in other examples, additional UV lamps 140 may be positioned at the end 208 of the outer member 204 and / or along the opposite side 210 of the members 202, 204. In the illustrated raised, extended position, the arms 136A, 136B extend parallel to each other and parallel to the floor (e.g., perpendicular to the axis of the body 134).
[0045] The illustrated example also shows various locations of sensors 194 on the cart 100. For example, the cart 100 may include sensors 194 on the wheels 142 or base 132 that are used to determine the proximity of the base 132 to nearby objects for object avoidance. Additional sensors 194 may be mounted on the ends 208 of the arms 136A, 136B to determine the proximity to nearby objects and / or structures. For example, the sensors 194 on the ends 208 may be used to determine the distance the arms 136A, 136B extend from the torso 134. Another sensor 194 may be mounted on the top 212 of the torso 134 that may be used to determine the proximity of the arms 136A, 136B to a surface above the cart 100.
[0046] In one example, the cart 100 includes a carrier or head 214. The carrier 214 is mounted to the body 134 and may rotate relative to the body 134 about a vertical axis 112, as shown in FIG. 3. The carrier 214 may also be rotatable relative to the body 134 about a lateral axis 111. The arms 136A, 136B may be mechanically coupled to the carrier 214 such that rotation of the carrier 214 causes the arms 136A, 136B (and the UV light array 138) to move relative to the body 134 as well. The arms 136A, 136B may pivot at hinges at their interfaces with the carrier 214.
[0047] FIG. 7 is a diagram of the UV light cleaning cart 100 stored in a fixture 220 in the interior cabin 102, according to an example. In the illustrated cart 100, the arm 136 is in a retracted state relative to the torso 134. In the retracted state, the arm 136 is shortened to extend parallel to the torso 134 and is disposed adjacent to the torso 134. In the retracted state, the arm 136 may physically abut (e.g., touch) the torso 134. The arm 136 retracts by pivoting at a hinge on the carrier 214. The fixture 220 in which the cart 100 is stored may be a shed, a vestibule, or other compartment. In an autonomous mode, the control unit 190 may retract the arm 136 and drive the cart 100 into a cavity 222 in the fixture 220 once the cleaning task is completed. Optionally, a beacon device may be placed within the installation 220, which communicates with the cart 100 and enables the cart 100 to return to a home location (storage position).
[0048] In one example, the control unit 190 self-monitors the activity of the UV light cleaning cart 100 by logging cleaning events in the memory 199. For example, during the cleaning process or upon return to a home location (storage location), the processor(s) 197 may log a new record in a log or database. This record may provide the date and time of the most recent cleaning event, and may optionally include additional details such as the elapsed time of the entire cleaning event, the calculated dose of UV light applied to the surfaces, the identity of the interior cabin 102 and / or vehicle 104 being cleaned, any errors or abnormal objects detected during the cleaning event, whether the cart 100 was in a fully autonomous or semi-autonomous mode, etc. The log of cleaning events may be used as evidence that the cabin 102 was properly cleaned by the machine without risk of human error or omission. The log may be copied from the memory 199 and / or transmitted remotely as required for data collection, sharing, etc.
[0049] Figures 8 and 9 show two different actuator mechanisms for raising and lowering the arms 136, and therefore the UV light array 138, relative to the body 134. The angle between each arm 136 and the body 134 is referred to as theta (Θ). Figure 8 shows a curved rack and pinion actuator 230, which includes a curved gear 232 and a circular drive gear 234. Figure 9 shows a linear actuator 240, which includes a piston 242 in a cylinder 244. Each actuator 230, 240 receives power from a power supply 192 and a control signal from a control unit 190 to control the angle theta between the respective arm 136 and the body 134.
[0050] FIG. 10 is a top view of a UV light cleaning cart 100, according to an example. FIG. 11 is a cross-sectional view of an inner member 202 and an outer member 204 of one of the arms 136 of the UV light cleaning cart 100, according to an example. The cross-section is taken along line 11-11 in FIG. 10. In the example shown, the outer member 204 of each arm 136 is received within the inner member 202. For example, to control the length or extension of the arm 136, the inner member 202 defines a track 250 between two rails 252, and the outer member 204 slides in the track 250. Although in the example shown, each arm 136 has two members 202, 204, in other examples, the arm 136 may have only one member or at least three members. For example, another member may be coupled to the outer member 204 and may be controllable to extend beyond the end 208 of the outer member 204 to increase the extension length. Although not shown, the UV lamps 140 of the array 138 are mounted to each of the members 202, 204, as described above.
[0051] 12A, 12B, and 13 show two different actuator mechanisms for adjusting the extension length of the arm 136 (e.g., adjusting the lateral width of the UV light array 138). FIGS. 12A and 12B show a linear actuator 260 mounted to the inner member 202 and mechanically coupled to the outer member 204. For example, the end 262 of a translating piston 264 of the actuator 260 is coupled to the outer member 204 such that extension of the piston 264 pushes the outer member 204 away from the body 234 along the track 250 and contraction of the piston 264 pulls the outer member 204 towards the body 234. FIG. 12A shows the outer member 204 extended relative to the inner member 202, and FIG. 12B shows the outer member 204 contracted. FIG. 13 shows a rack-and-pinion or gear driven actuator 270. 13 shows that a gear drive 272 may be attached to the inner member 202 and the outer member 204 may include a row of gear teeth 274 that engages the gear drive 272. Rotation of the gear drive 272 when powered causes translation of the outer member 204 relative to the inner member 202 along the track 250.
[0052] 14A-14E illustrate the arms 136 and body 134 of the UV light cleaning cart 100 according to another example in which the outer member 204 can pivot relative to the inner member 202. FIG. In Fig. 14A, the outer member 204 is pivoted downward relative to the inner member 202 to define a right angle between the inner member 202 and the outer member 204. In Fig. 14B, the outer member 204 extends upward to define a right angle with the inner member 202. In Fig. 14C, both arms 136A, 136B extend upward from the body 134 and generally parallel to each other and to the body 134. In Fig. 14C, the inner and outer members 202, 204 are coaxial. In Figs. 14D and 14E, the outer member 204 extends horizontally, generally perpendicular to the body 134, while the inner member 202 extends at an oblique angle to the body 134. The ability to individually control the extension angles of the inner and outer members 202, 204 relative to the fuselage 134 and relative to each other may enable the control unit 190 to target UV light at a variety of different surfaces simultaneously, for example, to irradiate both the seat 120 and the sidewalls 118 of the interior cabin 102.
[0053] 15 illustrates an outer array carrier 280 mounted to the inner member 202 of the arm 136 of the UV light cleaning cart 100, according to one example. The outer array carrier 280 is translatable relative to the inner member 202 along a track 250. The outer array carrier 280 is coupled to the outer member 204 and configured to rotate the outer member 204 relative to the inner member 202. The ability to independently rotate the inner member 202 and the outer member 204 may enable the UV lamps 140 to provide an organic sweeping motion along the target surface being cleaned. This rotation may also reduce non-uniformity in cleaning due to shadow areas by reducing the presence of shadow areas.
[0054] 16 illustrates a steering mechanism 290 for controlling the position of the wheels 142 of the UV light cleaning cart 100, according to one example. The actuator 290 includes a servo steering motor 292 that is coupled to a tie rod or articulator 294. The servo motor 292 is controlled by the control unit 190 to rotate a set amount in either a clockwise or counterclockwise direction, which causes movement of the tie rod 294. Each end of the tie rod 294 is connected to a corresponding wheel carrier assembly 296.
[0055] Reference is now made to Figure 17, which shows one of the wheel carrier assemblies 296 in greater detail. The carrier assembly 296 includes a traction motor 300, which generates torque for the wheels 142. The carrier assembly 296 is pivotally or rotatably fixed to the frame or base 132 of the cart 100. Movement of the tie rods 294 by the servo steering motor 292 causes the carrier assembly 296 to turn or pivot relative to the base 132. Because the carrier assembly 296 includes the wheels 142, as the carrier assembly 296 pivots, the cart 100 turns.
[0056] Figure 18 shows a rack and pinion mechanism 310 for steering the cart 100 in place of the steering mechanism 290 shown in Figures 16 and 17. For example, the tie bar or articulator 294 may include a row of gear teeth 312 that engages a drive gear 314 that is connected to a motor 316. Rotation of the drive gear 314 by the motor 316 causes movement of the tie bar 294, which changes the angle of the wheels 142, as described above. Figure 18 shows both a top view 318 and a side view 319 of the mechanism 310.
[0057] FIG. 19 shows the carrier 214 of the UV light cleaning cart 100 tilted relative to the body 134. The carrier 214 can rotate relative to the body 134 about the lateral axis 111 shown in FIG. 3 to provide a beta (β) angle range. The control unit 190 controls the actuator to set the beta angle. The arm 136 and the UV light array 138 rotate with the carrier 214. In this manner, the control unit 190 can rotate the carrier 214 to change the orientation of the UV light array 138 relative to the interior cabin 102 to aim the UV light toward the surface. For example, various orientations of the arm 136 along the cleaning path 160 shown diagrammatically in FIG. 4 can be achieved by rotating the carrier 214 to change the beta angle.
[0058] Figure 20 illustrates an actuator 320 that may be used to rotate the carrier 214 about the vertical axis 112 shown in Figure 3. Rotating the carrier 214 relative to the body 134 about an angle alpha (α) may pivot the arm 136 and UV light array 138 relative to the body 134 and base 132.
[0059] 21A-21C show that a rack and pinion actuator 330 can be used to extend and retract the telescoping body 134 of the UV light cleaning cart 100. FIG. 21A shows the cart 100 at a first height. FIG. 21B shows the cart 100 at a second height, which is higher than the first height due to the extension of the body 134. FIG. 21C shows the rack and pinion actuator 330 in both a side view 332 and a top view 334.
[0060] FIG. 22 illustrates the base 132 of the UV light cleaning cart 100 according to one alternative example. In the examples described above in FIGS. 1-3, the body 134 is fixed in place on the base 132, and the entire cart 100 is moved or driven back and forth along the path 126 to move the arm 136 and the UV light array 138 along the longitudinal axis 110. In FIG. 22, the body 134 is translatable relative to the base 132 along at least one axis. Optionally, the body 134 can translate both longitudinally and laterally relative to the base 132 while remaining attached to the base 132. For example, the body 134 can be coupled to the base 132 by a belt pulley mechanism 340 or an orbital rack and pinion mechanism 342 that allows the body 134 to move along one axis. Either of the mechanisms 340, 342 may be capable of sliding along a vertical axis via carrier wheels 343 within a track 344 defined by the base 132. Having a translatable body 134 allows the base 132 of the cart 100 to position between the two rows 128 and then, for example, remain stationary in that position while the body 134, carrier 214, and / or arm 136 translate and / or rotate to provide contour conformance of the UV light array 138. Once one segment of the cleaning path 160 is completed, the cart 100 may then proceed to another position between the two rows 128 to repeat the process along another segment of the cleaning path 160 to clean surfaces.
[0061] 23 illustrates the body 134 of the UV light cleaning cart 100 according to one alternative embodiment. In the illustrated example, the body 134 is sectioned to provide a number of nodes 350 between the body members 352. Actuators along the body 134 may allow the body members 352 to pivot relative to one another at the nodes 350, allowing the carrier 214 to be selectively positioned at a variety of different locations in space. The example illustrated in FIG. 23 may be used in conjunction with or in place of the base 132 illustrated in FIG. 22.
[0062] 1-23, in at least one example, the UV light array 138 is configured to emit (through operation of the UV lamps 140) sanitizing UV light within the far UV spectrum (e.g., between 200 nm and 230 nm). In at least one example, the UV light array 138 emits sanitizing UV light having a wavelength of 222 nm. Optionally, the UV light array 138 is configured to emit sanitizing UV light at a wavelength other than within the far UV spectrum. For example, the UV light array 138 may emit sanitizing UV light within the UVC spectrum.
[0063] In one or more examples, the control unit 190 controls and / or directs the movement of the UV light array 138 (and / or the wand assembly of the UV light cleaning cart 100) relative to the surface being cleaned to ensure that a specified or predefined dose of UV light is consistently applied to the surface along the cleaning path 160, 180. This dose is based on the power or amplitude of the UV light emitted by the UV lamps 140, the proximity or range from the UV lamps 140 to the surface being cleaned, and the exposure or dwell time. The exposure time is the length of time that a given area is illuminated by UV light as the UV light array 138 of the cart 100 sweeps the surface being cleaned. The specified dose may be preselected based on operator preferences, regulatory requirements, etc. The power or amplitude of the UV light may be set based on the capacity limits of the UV lamps 140 and / or the desired energy consumption limits. The proximity distance may be selected to be within a few inches (e.g., 2 inches, 3 inches, 4 inches, etc.). The above characteristics of the specified dose, power, and proximity may be stored in memory 199 and accessed by one or more processors 197. Optionally, some characteristics may vary based on the type of surface being cleaned. Thus, memory 199 may store multiple values of some of such characteristics. In one example, based on the stored characteristics, the processor(s) may calculate a dwell time, which is the minimum amount of exposure time required to achieve the specified dose for a given area of the surface being cleaned. The processor(s) may use this dwell time to determine the pace speed of the UV light array 138 relative to the surface being cleaned to consistently achieve the specified dose without unduly delaying the completion of the cleaning task. The pace speed indicates the correct speed for proper cleaning of the surface at a particular UV light and UV light emission power, at a detected proximity distance.
[0064] The pacing speed may be stored in memory 199 and may be used by the control unit 190 to control the movement of the UV light array 138 as it moves along the contour of the surface. For example, as the UV light array 138 moves along the surface, the control unit 190 receives and analyzes feedback from the sensor 194 and the actuator 196. The control unit 190 may receive proximity status data from a sensor 194 disposed on the arm 136 that measures the actual distance or range from the UV lamp 140 to the surface to be cleaned within the cabin 102. Based on this proximity status data, the control unit 190 may determine whether the UV light array 138 is maintaining a specified proximity status relative to the surface (e.g., whether the array 138 is progressing along the corresponding cleaning path 160, 180). Furthermore, the control unit 190 may determine the actual speed of the UV light array 138 relative to the surface and compare the actual speed to the pacing speed stored in the memory 199. The actual speed may be determined based on feedback from the actuator 196. For example, the motion of a mechanical drive train and motors is translated by the control unit 190 into physical movement of the UV light array 138 in space, which when divided by time provides the actual speed. In another example, one or more of the sensors 194 may be used to track the movement of the UV light array 138 over time to determine the actual speed of the UV light array 138.
[0065] In one example, if the actual speed of the UV light array 138 differs from the pacing speed by more than a specified tolerance (e.g., 2%, 5%, etc.), the control unit 190 may generate a control signal to modify the movement of the UV light array 138 relative to the surface to reduce the discrepancy between the actual speed and the pacing speed. This control signal (which may adjust the speed at which the actuators 196 operate based on the control signal) may be communicated to one or more of the actuators 196. For example, if the actual speed is faster than the pacing speed, the dose of UV light delivered may be insufficient to provide a desired level or amount of cleaning. In response, the control unit 190 generates a control signal to slow the movement of the UV light array 138 to increase the dose. Conversely, if the actual speed is slower than the pacing speed, the dose of UV light delivered to the surface may be excessive to provide a desired level of cleaning, and accelerating the speed of the UV light array 138 provides an opportunity to improve energy efficiency and reduce the total cleaning time of the cleaning task.
[0066] In the semi-autonomous mode, the speed of the UV light array 138 may be controlled in part by the operator pushing or pulling the cart 100 along the path 126. When the control unit 190 identifies a discrepancy between the actual speed and the gait speed, it may generate a control signal to the output device 198. For example, if the actual speed is faster than the gait speed, the generated control signal may cause the output device 198 to warn or notify the operator that they are speeding too fast and to suggest slowing down the movement of the cart 100. The warning may indicate the excessive speed through a corresponding lighting effect (e.g., emitting a red light or flashing a light), sound effect (e.g., frequent, high frequency, and / or loud beeps), and / or haptic effect (e.g., vibration of the handle 146) provided by the output device(s) 198. In another example, if the actual speed is slower than the pacing speed, the control signal may cause the output device 198 to provide another corresponding lighting effect and / or sound effect (e.g., a yellow light) to indicate to the operator that the operator may increase the speed of the cart 100. If the actual speed is within an acceptable error range of the pacing speed, the control signal may cause the output device 198 to provide another corresponding lighting effect and / or sound effect (e.g., a green light), or may not provide any lighting effect and / or sound effect.
[0067] The speed of the cart 100 along the aisle 126 varies as the arms 136 and other movable components of the UV light cleaning cart 100 are actuated to control the UV light array 138 to follow cleaning paths 160, 180 that follow the contours of the surfaces within the cabin 102 as shown in FIG. 4. In one or more examples where a rolling motion of the base 132 along the aisle 126 is used to move the UV light array 138 along its longitudinal axis, the control unit 190 may automatically control the direction and speed of the movement of the base 132 and wheels 142 depending on the surface being cleaned. For example, as the UV light array 138 cleans the floor 114 or ceiling 116 between the rows of sheets 120, the base 132 may move at a relatively constant speed based on a predetermined dwell time. However, when the UV light array 138 is moved substantially vertically to clean the rear of the seat back of the seat 120, for example, the base 132 is controlled to remain stationary until longitudinal movement of the UV light array 138 is again desired. Based on the contour of the surface, the base 132 may even move, at least temporarily, in a reverse direction opposite to the general direction of the cleaning path to allow the UV light array 138 to stay close to the contour and avoid direct contact with any objects within the cabin 102.
[0068] In the examples shown in FIGS. 22 and 23 where the UV light array 138 may be moved longitudinally relative to the base 132, the base 132 may be controlled via the control unit 190 and / or an operator to move sequentially and then stop at various points along the length of the aisle 126. For example, the cart 100 may be moved or driven to a position aligned with a row 128 or between two rows 128. The base 132 of the cart 100 may then remain stationary while the body 134, carrier 214, and / or arm 136 manipulate the UV light array 138 to follow the contours of the surface along the row or rows. The longitudinal movement of the UV light array 138 may be accomplished by moving the body 134 as shown in FIGS. 22 and / or 23, so that the base 132 may remain stationary. Once the base 132 has completed cleaning a row or two rows, it is then controlled to proceed along the path 126 to another location to repeat the process.
[0069] In one alternative, the UV light cleaning cart 100 may include additional UV lamps 140 selectively extendable from the arm 136. The additional UV lamps 140 may be located on end effectors attached to the arm 136 and selectively projecting from the arm 136. For example, the end effectors may be selectively pivoted out of the plane of the arm 136 to position the corresponding UV lamps 140 in front of or behind the arm 136 (e.g., along the longitudinal axis). The UV lamps 140 of the end effectors may be oriented at angles up to 90 degrees relative to the UV lamps 140 of the arm 136. This provides an L- or T-shaped UV array on the end effector. The UV lamps 140 of the end effectors may be used to clean inside cavities and under objects (such as under the seat 120). For example, an arm 136 extending laterally across multiple seats 120 may not be able to fully access the area beneath the seats, but an end effector may extend from the arm 136 into the space beneath the seat cushion to clean the floor 114 beneath the seats 120 and / or the underside of the seat cushion. The UV lamps 140 of the end effector may also be used to clean arm rests, bin sections, walls, and / or the like. The multiple axes of translation and rotation provided by the cart 100 allow the UV lamps 140 to be positioned and aimed to substantially replicate the ability of a person to hold a UV light wand without the inherent inconsistencies in speed, coverage area, and proximity associated with manual cleaning.
[0070] In at least one embodiment, the UV light cleaning cart 100 includes a wand assembly (e.g., a handheld UV wand) coupled to the cart 100. The wand assembly provides personnel with the option of utilizing a wand in conjunction with automated cleaning by the cart 100 to clean areas that are difficult for the cart 100 to access or to provide additional UV doses to certain high use areas. The wand may be tethered to the cart 100 with at least a power cable for powering the UV lamp of the wand. Alternatively, the wand may be battery powered. Optionally, the wand may include a light sensor that indicates to an operator whether the UV lamp is positioned at a desired proximity (or range) from the surface being cleaned. A light sensor that indicates the range of the wand from the surface is disclosed in U.S. Provisional Patent Application No. 63 / 027,869.
[0071] In one or more examples, an ultraviolet (UV) light cleaning cart is provided that includes a UV light array, a body, an actuator, and a control unit. The UV light array includes a UV lamp configured to emit UV light to clean a surface of a component. The body includes a movable base and a plurality of interconnected rigid members supported by the base. The UV lamp is mounted to at least one of the rigid members. The actuator is mechanically connected to the body. At least some of the actuators are configured to control movement of the rigid members relative to each other and relative to the base. The control unit is configured to generate control signals to control the actuator to move the UV light array along a cleaning path that follows the contour of the surface.
[0072] Optionally, the rigid members include arms and a body. The body is mounted to the movable base. The arms extend in opposite directions from the body and hold at least a portion of the UV lamps to provide a linear arrangement of the UV lamps. Each of the arms may include at least an inner member and an outer member. The inner member is disposed between the outer member and the body. The outer member is configured to shorten to be received within the inner member and to extend linearly outward from the inner member to increase the length of the arm. Optionally, at least some of the actuators are connected to the arms and are controllable by the control unit to pivot the arms to a contracted state in which the arms are parallel to and adjacent to the body.
[0073] Optionally, the UV light array includes a linear arrangement of multiple UV lamps extending along an array axis, and the actuator and body are configured to translate the UV light array along two axes, orthogonal to each other and to the array axis, and to rotate the UV light array about the array axis.
[0074] Optionally, the movable base includes a plurality of wheels that interface with the floor and support the cart. The actuator includes a motor on the movable base for driving rotation of the wheels and steering the wheels. The control signals generated by the control unit to move the UV light array along the cleaning path may include control signals for a motor on the movable base to drive the movable base along the cart path to translate the UV light array along an axis parallel to the cart path.
[0075] Optionally, the body includes a retractable handle configured to be held by an operator to manually propel the cart along a cart path to translate the UV light array along an axis parallel to the cart path.
[0076] Optionally, the cart further comprises a sensor mounted on the body and configured to generate sensor data indicative of a proximity of the cart to a surface of the component or to a surface of another component, and the control unit is configured to generate control signals based on the sensor data to avoid a collision between the cart and the surface of the component or to a surface of another component.
[0077] Optionally, the control unit includes a memory device that stores a three-dimensional map of the environment the component is located in. The control unit is configured to identify a reference point of the UV light array relative to the three-dimensional map, and to generate control signals for moving the UV light array along a cleaning path within the environment based on the three-dimensional map and the reference point of the UV light array.
[0078] Optionally, the cart further includes a sensor mounted on the rigid member of the body proximate to the UV lamp, the sensor configured to generate sensor data indicative of a proximity of the UV lamp to a surface of the component, and a control unit configured to generate control signals based on the sensor data to maintain the UV lamp at a specified proximity distance from the surface to ensure that a specified dose of UV light is applied to the surface.
[0079] Optionally, the control unit includes a memory device storing a pacing speed of the UV light array. The pacing speed is based on the power of the UV lamp and a specified proximity distance between the UV lamp and the surface to provide a specified dose of UV light to the surface of the component. The control unit is configured to generate a control signal to control the actuator to move the UV light array along the cleaning path at a speed based on the pacing speed. The control unit may be configured to determine an actual speed of the UV light array relative to the surface of the component and compare the actual speed to the pacing speed. The control unit may be configured to generate a control signal to control the actuator to slow down the movement of the UV light array along the cleaning path in response to the actual speed being faster than the pacing speed.
[0080] Optionally, the control unit includes a memory device and is configured to store in the memory device a record of the cleaning tasks performed by the cart over time.
[0081] Optionally, the control unit controls the UV light array to (i) rotate about two different axes simultaneously, (ii) translate along two different axes simultaneously, or (iii) rotate about one axis while simultaneously translating about the one axis or another axis; a control signal for at least two of the actuators to provide a compound movement of the UV light array to perform one or more of the following:
[0082] In one or more examples, a method is provided that includes providing a cart including a body that holds an ultraviolet (UV) light array. The UV light array includes UV lamps configured to emit UV light to clean a surface of a component. The cart further includes an actuator mechanically connected to the body and a control unit communicatively connected to the actuator. The method includes determining, via the control unit, a cleaning path for the UV light array that follows a contour of the surface, and generating, via the control unit, a control signal for controlling the actuator to move the body such that the UV light array follows the cleaning path.
[0083] Optionally, the UV light array includes a linear arrangement of multiple UV lamps extending along an array axis, and control signals are generated to control the actuator and body to translate the UV light array along two axes, orthogonal to each other and to the array axis, and to rotate the UV light array about the array axis as the UV light array follows the cleaning path.
[0084] Optionally, the body includes a movable base having a plurality of wheels supporting the base, and the actuator includes one or more motors on the base for driving rotation of the wheels and steering the wheels. Generating the control signals can include generating control signals to drive the movable base along a cart path to translate the UV light array along an axis parallel to the cart path.
[0085] Optionally, the method further includes receiving sensor data indicative of a proximity state of the UV lighting array relative to a surface of the component, the control signal being for (i) avoiding a collision between the cart and the surface of the component, or (ii) maintaining a specified proximity distance between the UV lamps and the surface of the component to provide a specified dose of UV light to the surface of the component; based on the sensor data to perform one or more of the following:
[0086] Optionally, the method further comprises storing the pacing speed of the UV light array in a memory device. The pacing speed may be based on the power of the UV lamp and a specified proximity distance between the UV lamp and the surface to provide a specified dose of UV light to the surface of the component. The method may further comprise determining, via the control unit, an actual speed of the UV light array relative to the surface of the component, and generating a control signal for controlling an actuator to vary the actual speed of the UV light array along the cleaning path in response to the actual speed differing from the pacing speed by more than a specified tolerance range.
[0087] As used herein, terms such as "control unit," "central processing unit," "CPU," "computer," and the like, may include any processor- or microprocessor-based system, including systems using microcontrollers, reduced instruction set computers (RISC), application specific integrated circuits (ASIC), logic circuits, and any other circuits or processors, including hardware, software, or a combination thereof, capable of performing the functions described herein. These are examples only, and thus are not intended to limit in any way the definition and / or meaning of such terms.
[0088] The control unit 190 is configured to execute a set of instructions stored in one or more data storage units or elements (e.g., one or more memories 199) in order to process data. The data storage units may also store data or other information as desired or required. The data storage units may be in the form of information sources or physical memory elements within a processing machine.
[0089] The set of instructions may include various commands that instruct the control unit 190 as a processing machine to perform certain operations (e.g., methods and processes of various examples of the subject matter described herein). The set of instructions may be in the form of a software program. The software may be in various forms such as system software or application software. Furthermore, the software may be in the form of a collection of separate programs, a subset of a program within a larger program, or a portion of a program. The software may also include modular programming in the form of object-oriented programming. The processing of input data by the processing machine may be in response to user commands, results of previous processing, or in response to a request made by another processing machine.
[0090] The diagrams of the examples herein may depict one or more control or processing units (such as control unit 190). It should be understood that the processing or control unit may refer to a circuit, circuitry, or portions thereof that may be implemented as hardware associated with instructions (e.g., software stored in a tangible, non-transitory computer-readable storage medium such as a computer hard drive, ROM, RAM, etc.) that perform the operations described herein. The hardware may include hardwired state machine circuitry to perform the functions described herein. Optionally, the hardware may include electronic circuitry including and / or connected to one or more logic-based devices such as a microprocessor, processor, controller, etc. Optionally, the control unit 190 may refer to processing circuitry such as one or more of a field programmable gate array (FPGA), an application specific integrated circuit (ASIC), a microprocessor(s), and / or the like. The circuitry in various examples may be configured to execute one or more algorithms to perform the functions described herein. Such algorithm or algorithms may include aspects of the examples disclosed herein, whether or not explicitly identified in the flow diagrams or methods.
[0091] As used herein, the terms "software" and "firmware" are used interchangeably and include any computer program executed by a computer that is stored in a data storage unit (e.g., one or more memories) including RAM memory, ROM memory, EPROM memory, EEPROM memory, and non-volatile RAM (NVRAM) memory. The above types of data storage units are exemplary only and thus are not intended to be limiting as to the types of memory that may be used for storage of computer programs.
[0092] Certain examples of the subject disclosure herein provide systems and methods for autonomously controlling UV lamps to follow the contours of a surface and provide consistent, efficient and effective cleaning of the surface. Automated control of the UV lamps ensures that a precise dose of UV light is delivered to the surface to effectively clean the surface. The UV light cleaning carts described herein are collapsible and storable on-board the vehicle, such that the carts can be operated when desired and then stored when not needed (e.g., while the vehicle is in flight).
[0093] 24 illustrates a front perspective view of a UV light cleaning system or UV light cleaning cart 100 according to one example of the subject disclosure herein. As described herein, the UV light cleaning cart 100 includes a body 131 having a movable base 132 and a UV light array 138 including UV lamps 140 configured to emit UV light to clean surfaces of components. The UV light cleaning cart 100 also includes a wand assembly 1202. In at least one embodiment, the wand assembly 1202 is coupled to the body 131. For example, the wand assembly 1202 is coupled to the base 132. The wand assembly 1202 is configured to be selectively moved between a stored position (e.g., on the base 132) and a deployed position in which the wand assembly 1202 is moved away from the base 132. In the deployed position, the wand assembly 1202 may be connected to the base 132 via a leash connection 1203, which may include a power cord, a cable, an air hose, and / or the like.
[0094] In at least one embodiment, the UV light array 138 of the UV light cleaning cart 100 is configured to emit a particular wavelength of UV light (e.g., within the far UV light spectrum or the UVC spectrum), and the UV lamp of the wand assembly 1202 is configured to emit a particular wavelength of UV light that may be the same as or different from the wavelength of the UV light emitted by the UV light array 138 of the UV light cleaning cart 100. As an example, the UV light array 138 may emit a first wavelength of UV light (e.g., within the far UV light spectrum or the UVC spectrum), and the UV lamp of the wand assembly 1202 may emit a second wavelength of UV light (e.g., within the far UV light spectrum or the UVC spectrum) that is different from the first wavelength.
[0095] In at least one other example, the UV light cleaning cart 100 can be a galley cart having one or more UV light sources, such as one or more UV lamps 140. The wand assembly 1202 can be coupled to the galley cart.
[0096] In at least one example, the wand assembly 1202 is attached to the body 131 via a tether 1203, which may include a power cord and / or a cooling air hose. The wand assembly 1202 receives power from one or more power sources of the UV cleansing cart 100, as described herein. The wand assembly 1202 includes a UV lamp 140 configured to emit germicidal UV light in any UV band (e.g., between 200 nm and 320 nm). In at least one example, the UV lamp 140 of the wand assembly 1202 is configured to emit UV light in the far UV spectrum (e.g., between 200 nm and 230 nm). Such UV light has been found to be safe for humans.
[0097] The UV wand assembly 1202 allows an individual to disinfect surfaces of components that may be shaded or prone to insufficient disinfection by the UV light array 138. For example, the wand assembly 1202 may be moved from a stored position on the body 131 and moved and oriented relative to surfaces that may be shaded.
[0098] As described herein, examples of the subject disclosure herein provide a UV light cleaning cart 100 including one or more first UV lamps 140 configured to emit UV light and a wand assembly 1202 including one or more second UV lamps 140 configured to emit UV light. In at least one embodiment, the UV light array 138 includes the first UV lamp(s) 140. As another example, the UV light cleaning cart 100 can be a galley cart including the first UV lamp(s) 140 secured on or within a portion of the galley cart.
[0099] Optionally, the UV light cleaning cart 100 may be sized, shaped, and configured differently than shown. In at least one example, the UV light cleaning cart 100 is sized and shaped as or differently from a galley cart. In at least one example, the UV light cleaning cart 100 includes a UV light source (e.g., one or more UV lamps) fixed to an exterior portion of the UV light cleaning cart 100, whether or not it is part of a movable array. In at least one other example, the cart portion may not include a UV light source. Instead, the UV light cleaning cart 100 may include a wand assembly 1202 having one or more UV lamps coupled to a movable cart (whether configured as shown in FIG. 24 or configured otherwise) that may or may not include an additional UV light source.
[0100] FIG. 25 illustrates a perspective view of a UV light cleaning cart 100 in the interior cabin 102 of a vehicle 104 according to an example of the subject disclosure herein. The UV light cleaning cart 100 is configured to move through the aisle 126 as described herein. In FIG. 25, the wand assembly 1202 is illustrated in a deployed position. The wand assembly 1202 is moved by a personnel individual to emit cleaning UV light through the UV lamp 140 of the wand assembly 1202 to clean surfaces of components that may be in shadow. For example, the shaded surfaces may not receive UV light from the UV light array 138 of the UV light cleaning cart 100. Therefore, the wand assembly 1202 is moved to an area that may not be fully exposed to the UV light emitted from the UV light array 138.
[0101] Figure 26 shows a side view of the UV light cleaning cart 100 of Figure 24. The wand assembly 1202 can be moved and steered in a variety of different orientations. For example, the wand assembly 1202 can be moved away from the body 131, towards a component, proximate to a component (e.g., between seats in the interior cabin). The wand assembly 1202 can be extended, rotated, tilted, etc. to reach areas not easily reachable by the UV light array 138.
[0102] The wand assembly 1202 provides increased versatility to the UV light cleaning cart 100. The wand assembly 1202 can reach tighter spaces compared to the UV light array 138. The wand assembly 1202 can be moved closer to certain components (e.g., tray tables, between seats, wall sections, etc.) in the interior cabin compared to the UV light array 138. The UV lamps 140 of the wand assembly 1202 can emit cleaning UV light to surfaces that tend to be in the shadow of other components and / or the UV light cleaning cart 100 itself.
[0103] Figure 27 shows a top view of the UV light cleaning cart 100 of Figure 24. As shown, a personnel individual 1205 can move the wand assembly 1202 to a deployed position in which the wand assembly 1202 can be moved relative to the body 131.
[0104] As shown, the wand assembly 1202 is connected to the body 131 via a leash connection 1203, which may include one or more power cables, air hoses, and / or the like. In at least one other example, the wand assembly 1202 is not connected to the body 131 via the leash connection 1203. Instead, the wand assembly 1202 may be completely independent with respect to the body 131. In this example, the wand assembly 1202 may include its own power source (such as one or more batteries).
[0105] A staff individual 1205 moves the UV light cleaning cart 100, for example, by pushing the UV light cleaning cart 100 through the interior cabin corridors, as described herein. Optionally, the UV light cleaning cart 100 may include one or more actuators, motors, or the like, that enable the UV light cleaning cart 100 to move automatically within the environment. That is, the UV light cleaning cart 100 may be moved by a staff individual or may move autonomously.
[0106] 28 shows a top view of a UV light cleaning cart 100 according to one example of the subject disclosure herein. In at least one example, the UV light cleaning cart 100 includes a first wand assembly 1202a coupled to the body 131 via a first tether 1203a and a second wand assembly 1202b coupled to the body 131 via a second tether 1203b.
[0107] FIG. 29 illustrates a front perspective view of the UV light cleaning cart 100 with the wand assembly 1202 in a stored position, according to one example of the subject disclosure herein. For example, the wand assembly 1202 can be removably secured to a portion of the body 131 (e.g., the base 132) by one or more clips, latches, snap fasteners, lanyard fasteners, or the like. In at least one example, the base 132 includes a recess that fits an outer surface of at least a portion of the wand assembly 1202. The wand assembly 1202 is held within the recess. As another example, the wand assembly 1202 in the stored position can be secured to the base 132 by an interference fit. As another example, the body 131 includes an interior compartment covered by a movable door. The wand assembly 1202 can be stored in the interior compartment when not in use.
[0108] 30 shows a front perspective view of a UV light cleaning cart 100 with a wand assembly 1202 in a deployed position according to one example of the subject disclosure herein. A personnel individual moves the wand assembly 1202 from the stored position to the deployed position as desired to move into areas not easily reachable by the UV light array 138.
[0109] 31 shows a lateral top perspective view of a wand assembly 1202, according to one example of the subject disclosure herein. The wand assembly 1202 includes a cleaning head 1206 coupled to a handle 1208. In at least one example, the cleaning head 1206 is movably coupled to the body 1208 via a coupler 1210.
[0110] The cleaning head 1206 includes a shroud 1212 having an outer cover 1214 that extends from a proximal end 1216 to a distal end 1218. As described herein, the shroud 1212 contains a UV light source (such as a UV lamp).
[0111] Optionally, the wand assembly 1202 may include a cleaning head 1206 connected to a fixed handle. Additionally, the wand assembly 1202 may be sized and shaped differently than shown.
[0112] A port 1220 extends from the proximal end 1216. The port 1220 is coupled to a hose 1222, which is coupled to a portion of the UV light cleansing cart 100 (e.g., a portion of the body 131 shown in FIGS. 24-30). The hose 1222 is an example of the tether 1203 shown in FIGS. 24-30. In at least one example, the hose 1222 includes an electrical cord, cable, wire, or the like that couples a power source or power supply (e.g., one or more batteries) within the UV light cleansing cart 100 to the UV lamps within the shroud 1212. Optionally, the electrical cord, cable, wire, or the like may be external to the hose 1222. In at least one embodiment, the hose 1222 also includes an air supply conduit (e.g., an air tube) that fluidly connects the interior space of the shroud 1212 to a blower, vacuum generator, air filter, and / or the like within the UV light cleaning cart 100.
[0113] The coupler 210 is secured to an outer cover 1214 of the shroud 1212, e.g., proximal to a proximal end 1216. The coupler 1210 may include a fixed beam 1224 secured to the outer cover 1214, e.g., via one or more fasteners, adhesives, and / or the like. An extension beam 1226 extends outwardly from the fixed beam 1224, which spaces the handle 1208 away from the shroud 1212. A bearing assembly 1228 extends from the extension beam 1226 on the opposite side of the fixed beam 1224. The bearing assembly 1228 includes one or more bearings, raceways, and / or the like that allow the handle 1208 to translate linearly relative to the coupler 1210 in the direction of arrow 1259 and / or pivot about a pivot axis in the direction of an arc 1261. Optionally, the fixed beam 1224 may include a bearing assembly in addition to or in place of the handle 1208 coupled to the bearing assembly 1228 (e.g., the handle 1208 may be fixed to the coupler 1210) that allows the cleaning head 1206 to translate in the direction of arrow A and / or rotate (e.g., swivel) in the direction of arc B.
[0114] In at least one other embodiment, the wand assembly 1202 does not include the coupler 1210. Instead, the handle 1208 can be secured to the shroud 1212, for example.
[0115] In at least one example, the handle 1208 includes a rod, pole, beam, etc. 1230 that can be longer than the shroud 1212. Optionally, the rod 1230 can be shorter than the shroud 1212. One or more gripping portions 1232 are secured to the rod 1230. The gripping portion 1232 is configured to be grasped and held by an individual. The gripping portion 1232 can include ergonomic tactile features 1234.
[0116] FIG. 32 illustrates a rear view of the wand assembly 1202 of FIG. 31. FIG. 33 illustrates a side perspective view of the wand assembly 1202 of FIG. 31. With reference to FIGS. 32 and 33, the handle 1208 may be pivotally coupled to the coupler 1210 through a bearing 1236 having a pivot shaft 1238 that pivotally couples the handle 1208 and the coupler 1210. The handle 1208 may be further configured to translate linearly in and out of the bearing 1236. For example, the handle 1208 may be configured to telescope in and out. Optionally or alternatively, in at least one embodiment, the handle 1208 may include a telescoping body that allows the handle 1208 to extend outward and retract inward. In at least one other embodiment, the handle 1208 may not be configured to move, extend, retract, or otherwise move relative to the shroud 1212.
[0117] To extend the cleaning head 1206 relative to the handle 1208, the cleaning head 1206 slides outward relative to the handle 1208 (or the handle 1208 slides back relative to the cleaning head 1206). As described above, the cleaning head 1206 can translate linearly relative to the handle 1208 via the coupler 1210. Extending the cleaning head 1206 outward allows the wand assembly 1202 to easily reach scattered areas. Alternatively, the cleaning head 1206 may not translate linearly relative to the handle 1208.
[0118] The handle 1208 may be configured to translate linearly, such as by a retracting portion, to allow the cleaning head 1206 to reach further, or the handle 1208 may not be configured to extend and retract.
[0119] In at least one embodiment, the handle 1208 can include a lock that is configured to be selectively actuated to secure the handle 1208 in a desired extended (or retracted) position.
[0120] As discussed above, the cleaning head 1206 is configured to rotate relative to the handle 1208 via the coupler 1210. Rotating the cleaning head 1206 relative to the handle 1208 allows the cleaning head 1206 to be moved to a desired position to sweep (or otherwise reach) areas that would be difficult to reach if the cleaning head 1206 were rigidly fixed to the handle 1208. Alternatively, the cleaning head 1206 may not be rotatable relative to the handle 1208.
[0121] FIG. 34 illustrates an end perspective view of the UV lamps 140 and reflector 1242 of the cleaning head 1206, according to one example of the subject disclosure herein. The UV lamps 140 and reflector 1242 are secured within a shroud 1212 (see, e.g., FIG. 31) of the cleaning head 1206. In at least one embodiment, the reflector 1242 is secured to the backside 1241 of the shroud 1212, for example, by one or more adhesives. As another example, the reflector 1242 is an integral part of the shroud 1212. For example, the reflector 1242 can be or otherwise provide the backside 1241 of the shroud 1212. The reflector 1242 provides a reflective surface 1243 (e.g., formed of Teflon, a mirror, and / or the like) configured to reflect UV light emitted by the UV lamps 140 outwardly. In at least one example, the shroud 1212 may be or may include a shell formed of fiberglass, and the reflector 1242 may be formed of Teflon, which provides 98% reflectivity, and in at least one embodiment, the reflector 1242 may be a multi-piece reflector.
[0122] The reflector 1242 can extend along the entire length of the back side 1241 of the shroud 1212. Optionally, the reflector 1242 can extend along less than the entire length of the back side 1241 of the shroud 1212.
[0123] The UV lamp 140 may extend along the entire length (or substantially the entire length, such as between ends 1216 and 1218). The UV lamp 140 is secured to the reflector 1242 and / or the shroud 1212 by one or more mounts, such as a bracket. The UV lamp 140 includes one or more UV light emitters, such as one or more bulbs, light emitting elements (such as light emitting diodes), and / or the like. In at least one embodiment, the UV lamp 140 is configured to emit UV light in the far UV spectrum (e.g., wavelengths between 200 nm and 230 nm). In at least one embodiment, the UV lamp 140 is configured to emit UV light having a wavelength of 222 nm. For example, the UV lamp 140 may be or may include a 300 W bulb configured to emit UV light having a wavelength of 222 nm. Alternatively, the UV lamps 140 may be configured to emit UV light in other portions of the UV spectrum (eg, in the UVC spectrum).
[0124] As shown, the reflector 1242 includes flat upright side walls 1244 connected together by a curved top wall 1246. The curved top wall 1246 may curve outwardly, away from the UV lamps 140. For example, the curved top wall 1246 may have a parabolic cross section and / or profile.
[0125] It has been found that straight, linear sidewalls 1244 provide desirable reflection and / or focusing of UV light emitted from UV lamps 1240 toward and to desired locations. Alternatively, sidewalls 1244 may not be straight and flat.
[0126] 35 shows an end perspective view of a UV lamp 140 and reflector 1242 of a cleaning head 1206 according to one example of the subject disclosure herein. The reflector 1242 shown in FIG. 35 is similar to the reflector 1242 shown in FIG. 34, except that the side walls 1244 may be angled outwardly from a curved top wall 1246.
[0127] 36 shows an end perspective view of the UV lamps 140 and reflector 1242 of the cleaning head 1206 according to one example of the subject disclosure herein. In this embodiment, the side walls 1244 may be curved to follow the curvature of the curved top wall 1246.
[0128] Figure 37 illustrates an ultraviolet light spectrum. Referring to Figures 1-37, in at least one example, the UV lamps (e.g., those of the UV light array 138 and wand assembly 1202) are configured to emit sanitizing UV light in the far UV spectrum (e.g., between 200 nm and 230 nm). In at least one embodiment, the UV lamps emit sanitizing UV light having a wavelength of 222 nm.
[0129] Optionally, the UV lamp may be configured to emit UV light at wavelengths other than 200 nm to 230 nm, for example the UV lamp may emit UV light in the UVC range of the spectrum.
[0130] 38 illustrates a perspective view of a galley 1340 within an interior cabin 1342 (e.g., interior cabin 102 shown in FIG. 1 ), according to one embodiment of the subject disclosure herein. The galley 1340 includes one or more cart compartments 1344. The cart compartments 1344 are configured to receive and hold the galley cart 1300. For example, the galley cart 1300 is configured to be moved in and out of the cart compartment 1344 in the direction of arrow 1383.
[0131] In at least one example, a galley cart 1300 provides the UV light cleaning cart 100. For example, the galley cart 1300 includes one or more UV light sources (such as one or more UV lamps 140), which may be fixed to the galley cart 1300 or may be movable relative to the galley cart 1300. The galley cart 1300 also includes a wand assembly 1202 connected to the galley cart 1300 by a tether 1203.
[0132] 39 shows a flow diagram of a UV light cleaning method according to one example of the subject disclosure herein, the UV light cleaning method including providing 1400 one or more first UV lamps on or within a UV light cleaning cart, providing 1402 one or more wand assemblies with one or more second UV lamps on or within the UV light cleaning cart, and moving 1404 the one or more wand assemblies between a stored position and a deployed position.
[0133] In at least one example, providing the one or more first UV lamps includes securing the one or more first UV lamps to one or more portions of a body of the UV light cleaning cart. Further, in at least one example, securing includes connecting the one or more wand assemblies to the body with one or more tethers. The one or more tethers may include one or more of a power cord, a cable, or an air hose.
[0134] In at least one example, the UV light cleaning method further includes moving a UV light cleaning cart in and out of a compartment within a galley of the interior cabin of the vehicle.
[0135] In at least one example, providing the one or more wand assemblies includes providing a first wand assembly and a second wand assembly.
[0136] With reference to Figures 1 through 39, examples of the subject disclosure herein provide an autonomous or semi-autonomous mobile UV cleaning device capable of consistently and efficiently disinfecting structures and areas as the device moves.
[0137] Additionally, the present disclosure includes embodiments according to the following clauses:
[0138] Clause 1. An ultraviolet (UV) light cleaning cart comprising: one or more first UV lamps configured to emit UV light; and one or more wand assemblies comprising one or more second UV lamps configured to emit UV light; A UV light cleaning cart, wherein one or more wand assemblies are movable between a stored position and a deployed position.
[0139] Clause 2. The UV light cleaning cart of clause 1, further comprising a body having a movable base, the one or more first UV lamps being secured to one or more portions of the body.
[0140] Clause 3. The UV light cleaning cart of clause 2, wherein the one or more wand assemblies are connected to the body by one or more tether connections.
[0141] Clause 4. The UV light cleaning cart of clause 3, wherein the one or more tether connections include one or more of a power cord, a cable, or an air hose.
[0142] Clause 5. A UV light cleaning cart as described in any one of clauses 1 to 4, which is a galley cart configured to be moved in and out of a compartment within a galley of the interior cabin of the vehicle.
[0143] Clause 6. A UV light cleaning cart as described in any one of clauses 1 to 5, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at wavelengths within the far UV spectrum.
[0144] Clause 7. A UV light cleaning cart as described in any one of clauses 1 to 6, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at a wavelength of 222 nm.
[0145] Clause 8. A UV light cleaning cart described in any one of clauses 1 to 6, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at wavelengths within the UVC spectrum.
[0146] Clause 9. A UV light cleaning cart as described in any one of clauses 1 to 6, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at a wavelength of 254 nm.
[0147] Clause 10. The UV light cleaning cart of any one of clauses 1 to 9, wherein the one or more wand assemblies include a first wand assembly and a second wand assembly.
[0148] Clause 11. One or more wand assemblies: A handle and 11. The UV light cleaning cart of any one of clauses 1 to 10, comprising a cleaning head connected to the handle, the cleaning head comprising one or more second UV lamps.
[0149] Clause 12. The UV light sanitization cart of clause 11, wherein the sanitization head is movably connected to the handle.
[0150] Clause 13. An ultraviolet (UV) light cleaning method comprising: providing one or more first UV lamps on or within the UV light cleaning cart; providing one or more wand assemblies on or within the UV light cleaning cart, the wand assemblies including one or more second UV lamps; and moving one or more wand assemblies between a stored position and a deployed position.
[0151] Clause 14. The UV light cleaning method of clause 13, wherein providing one or more first UV lamps as described above includes fixing the one or more first UV lamps to one or more portions of a body of the UV light cleaning cart.
[0152] Clause 15. The UV light cleaning method of clause 14, wherein said securing includes connecting one or more wand assemblies to the body by one or more string connections.
[0153] Clause 16. The UV light cleaning method of clause 15, wherein the one or more tie connections include one or more of a power cord, a cable, or an air hose.
[0154] Clause 17. The UV light cleaning method of any one of clauses 13 to 16, further comprising moving a UV light cleaning cart in and out of compartments within a galley of the interior cabin of the vehicle.
[0155] Clause 18. The UV light cleaning method of any one of clauses 13 to 17, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at wavelengths within the far UV spectrum.
[0156] Clause 19. The UV light cleaning method of any one of clauses 13 to 18, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at a wavelength of 222 nm.
[0157] Clause 20. The UV light cleaning method of any one of clauses 13 to 17, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at a wavelength within the UVC spectrum.
[0158] Clause 21. The UV light cleaning method of any one of clauses 13 to 17, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at a wavelength of 254 nm.
[0159] Clause 22. The UV light cleaning method of any one of clauses 13 to 21, wherein providing one or more wand assemblies as described above includes providing a first wand assembly and a second wand assembly.
[0160] Clause 23. An ultraviolet (UV) light cleaning cart comprising: A main body having a movable base; one or more first UV lamps secured to one or more portions of the body, the one or more first UV lamps configured to emit UV light; one or more wand assemblies comprising one or more second UV lamps configured to emit UV light, the one or more wand assemblies being connected to the body by one or more tether connections; the one or more wand assemblies are movable between a retracted position and a deployed position; A UV light cleaning cart, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at wavelengths within the far UV spectrum.
[0161] Clause 24. One or more wand assemblies: A handle and 24. The UV light cleaning cart of claim 23, comprising a cleaning head movably connected to the handle, the cleaning head comprising one or more second UV lamps.
[0162] Various spatial and directional terms may be used to describe the examples of the present disclosure, such as top, bottom, lower, mid, lateral, horizontal, vertical, front, etc., with it being understood that such terms are used only with reference to the orientation shown in the drawings. These orientations may be flipped, rotated, or otherwise changed, such as top becoming bottom or vice versa, horizontal becoming vertical, etc.
[0163] As used herein, a structure, limitation, or element that is "configured to" perform a task or operation is structurally formed, constructed, or adapted in a manner that specifically corresponds to such task or operation. For clarity and avoidance of doubt, as used herein, an object that is capable of performing a task or operation only when modified is not "configured to" perform such task or operation.
[0164] It should be understood that the above description is for illustration and not for limitation. For example, the above-described examples (and / or aspects thereof) may be used in combination with each other. In addition, many modifications may be made to the teachings of the various examples of the present disclosure to adapt to a particular situation or material without departing from its scope. While the dimensions and types of materials described herein are intended to define the parameters of the various examples of the present disclosure, these examples are by no means limiting, but are illustrative examples. Many other examples will be apparent to those skilled in the art upon review of the above description. Thus, the scope of the various examples of the present disclosure should be determined in conjunction with the appended claims, along with the full scope of equivalents to which such claims are entitled. In the appended claims and in the detailed description herein, the words "including" and "in which" are used as the plain English equivalents of the words "comprising" and "wherein," respectively. Moreover, the terms "first," "second," "third," etc. are used merely as labels and are not intended to impose numerical requirements on their objects. Moreover, the limitations of the following claims are not written in means-plus-function format and are not intended to be construed under 35 U.S.C. 112(f) unless the phrase "means for" followed by a description of the functional void of further structure is expressly used in such claim limitations.
[0165] Examples are used in this specification to disclose various examples of the present disclosure, including the best mode, and also to enable any person skilled in the art to practice the various examples of the present disclosure, including making and using any device or system, and performing any embodied methods. The patentable scope of the various examples of the present disclosure is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if the examples have structural elements that do not differ from the literal language of the claims, or if the examples include equivalent structural elements that have only minor differences from the literal language of the claims.
Claims
1. An ultraviolet (UV) light cleaning cart (100), comprising: a body having a movable base (132) including a recess; one or more first UV lamps (140) configured to emit UV light; one or more wand assemblies comprising one or more second UV lamps (140) configured to emit UV light; the one or more wand assemblies include a cleaning head (1206) extending from a proximal end to a distal end; the one or more second UV lamps (140) extend along the entire length of the wand assembly between the proximal end and the distal end of the cleaning head (1206); the recess conforms to an exterior surface of at least a portion of the wand assembly; the one or more wand assemblies are movable between a retracted position and a deployed position; A UV light cleaning cart (100), wherein in the stored position, an outer surface of at least a portion of the wand assembly is retained within the recess, and in the deployed position, the wand assembly is removed from the recess.
2. A UV light cleaning cart (100) as described in claim 1, wherein the one or more first UV lamps (140) are fixed to one or more portions of the main body.
3. The UV light cleaning cart (100) of claim 2, wherein the one or more wand assemblies are connected to the body by one or more tether connections.
4. The UV light cleaning cart (100) of claim 3, wherein the one or more tether connections include one or more of a power cord, a cable, or an air hose.
5. 5. The UV light cleaning cart (100) of any one of claims 1 to 4, which is a galley cart (1300) configured to be moved in and out of a compartment within a galley (1340) of an interior cabin (102) of a vehicle (104).
6. 6. The UV light cleaning cart (100) of claim 1, wherein the one or more first UV lamps (140) and the one or more second UV lamps (140) are configured to emit UV light at wavelengths within the far-UV spectrum.
7. 6. The UV light cleaning cart (100) of claim 1, wherein the one or more first UV lamps (140) and the one or more second UV lamps (140) are configured to emit UV light at a wavelength of 222 nm.
8. 6. The UV light cleaning cart (100) of claim 1, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at wavelengths within the UVC spectrum.
9. 6. The UV light cleaning cart (100) of claim 1, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at a wavelength of 254 nm.
10. The UV light cleaning cart (100) of any one of claims 1 to 9, wherein the one or more wand assemblies include a first wand assembly (1202) and a second wand assembly (1202).
11. the one or more wand assemblies: The UV light cleaning cart (100) of any one of claims 1 to 10, comprising a handle (146) coupled to the cleaning head (1206).
12. The UV light cleaning cart (100) of claim 11, wherein the cleaning head (1206) is movably coupled to the handle (146).
13. 1. An ultraviolet (UV) light cleaning method comprising: Providing one or more first UV lamps (140) on or within the UV light cleaning cart (100); providing one or more wand assemblies on or within said UV light cleaning cart (100) comprising one or more second UV lamps (140); and moving the one or more wand assemblies between a stored position and a deployed position, The UV light cleaning cart (100) comprises a body having a movable base (132) including a recess; the one or more wand assemblies include a cleaning head (1206) extending from a proximal end to a distal end; the one or more second UV lamps (140) extend along the entire length of the wand assembly between the proximal end and the distal end of the cleaning head (1206); the recess conforms to an exterior surface of at least a portion of the wand assembly; In the stored position, an outer surface of at least a portion of the wand assembly is retained within the recess, and in the deployed position, the wand assembly is removed from the recess.
14. 14. The UV light cleaning method of claim 13, wherein providing the one or more first UV lamps (140) comprises fixing the one or more first UV lamps (140) to one or more portions of the body.
15. 15. The UV light cleaning method of claim 14, wherein said securing comprises connecting said one or more wand assemblies to said body by one or more tethers.
16. 16. The UV light cleaning method of claim 15, wherein the one or more tether connections include one or more of a power cord, a cable, or an air hose.
17. 17. The UV light cleaning method of any one of claims 13 to 16, further comprising moving the UV light cleaning cart (100) in and out of a compartment within a galley (1340) of an interior cabin (102) of a vehicle (104).
18. 18. The UV light cleaning method of any one of claims 13 to 17, wherein the one or more first UV lamps (140) and the one or more second UV lamps (140) are configured to emit UV light at wavelengths within the far UV spectrum.
19. 18. The UV light cleaning method of any one of claims 13 to 17, wherein the one or more first UV lamps (140) and the one or more second UV lamps (140) are configured to emit UV light at a wavelength of 222 nm.
20. 18. The UV light cleaning method of any one of claims 13 to 17, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at wavelengths within the UVC spectrum.
21. 18. The UV light cleaning method of any one of claims 13 to 17, wherein the one or more first UV lamps and the one or more second UV lamps are configured to emit UV light at a wavelength of 254 nm.
22. 22. The UV light cleaning method of any one of claims 13 to 21, wherein providing one or more wand assemblies comprises providing a first wand assembly (1202) and a second wand assembly (1202).
23. An ultraviolet (UV) light cleaning cart (100), comprising: a body having a movable base (132) including a recess; one or more first UV lamps (140) fixed to one or more portions of the body, the one or more first UV lamps (140) configured to emit UV light; one or more wand assemblies comprising one or more second UV lamps (140) configured to emit UV light, the one or more wand assemblies being connected to the body by one or more tether connections; the one or more wand assemblies include a cleaning head (1206) extending from a proximal end to a distal end; the one or more second UV lamps (140) extend along the entire length of the wand assembly between the proximal end and the distal end of the cleaning head (1206); the recess conforms to an exterior surface of at least a portion of the wand assembly; the one or more wand assemblies are movable between a retracted position and a deployed position; In the retracted position, an outer surface of at least a portion of the wand assembly is retained within the recess, and in the deployed position, the wand assembly is removed from the recess; the one or more first UV lamps (140) and the one or more second UV lamps (140) are configured to emit UV light at wavelengths within the far UV spectrum; UV Light Cleaning Cart (100).
24. the one or more wand assemblies:
24. The UV light cleaning cart (100) of claim 23, comprising a handle (146) coupled to the cleaning head (1206).
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