Rechargeable power source for baggage handling equipment

A thermal management system with integrated temperature control and Peltier elements in a cassette housing addresses thermal issues in luggage handling equipment batteries, ensuring stable operation and extended life by maintaining optimal temperature ranges.

JP7680456B2Active Publication Date: 2025-05-20OCADO INNOVATION LTD
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Patent Information

Application Number
JP2022544770
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-30
Filing Date
2021-01-22
Publication Date
2025-05-20
Estimated Expiration
2041-01-22

AI Technical Summary

Technical Problem

Existing luggage handling equipment in storage systems faces issues with thermal management of rechargeable batteries, leading to potential thermal runaway and reduced stability due to high internal resistance and temperature-dependent performance, especially in refrigerated or frozen zones.

Method used

Incorporation of a thermal management system with temperature sensors and regulators, including cooling fans, heating elements, and Peltier elements, to maintain battery temperature within a predetermined range, integrated into a cassette housing the power source, which can be easily replaced and positioned to optimize stability.

Benefits of technology

The system effectively regulates battery temperature, preventing thermal runaway and improving stability by maintaining optimal performance and reducing the center of gravity, thus enhancing the luggage handling device's operational reliability and longevity.

✦ Generated by Eureka AI based on patent content.

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Abstract

1. A luggage handling apparatus (130) for lifting and moving one or more stacked containers within a storage system comprising a grid framework structure supporting a plurality of tracks arranged in a grid pattern to define a grid structure above one or more stacks of containers, the grid pattern comprising a plurality of grid cells, the luggage handling apparatus comprising: A) a drive mechanism operatively arranged to move the luggage handling apparatus (130) on the grid structure; and B) a vehicle body (132) housing: i) a container receiving space (152) located above the tracks; ii) a lifting device comprising a lifting drive assembly (140) and a gripping device (139) configured, in use, to releasably grip a container and lift the container from the stack into the container receiving space; and iii) a cassette (142) housing a rechargeable power source for powering the drive mechanism, wherein the luggage handling apparatus (130) comprises a thermal management system comprising a temperature sensor and at least one temperature adjustment device configured to maintain a temperature of the rechargeable power source within a predetermined temperature range in response to a signal from the temperature sensor.
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Description

[Technical field]

[0001] The present invention relates to the field of luggage handling equipment for handling storage containers or receptacles in a storage system comprising a grid framework structure and stacked containers, and more particularly to a thermal management system for a rechargeable power supply of the luggage handling equipment. [Background technology]

[0002] An order fulfillment or warehousing facility typically includes a receiving operation for receiving shipments of stock from various distributors and storing the received stock in an inventory. An order fulfillment or warehousing facility typically includes a storage system or automated storage system with a three-dimensional storage grid structure, in which storage containers / receptacles are stacked on top of each other, as is well known. PCT Publication No. WO2015 / 185628A (Ocado) describes a known storage and fulfillment system in which a stack of receptacles or containers is arranged within a grid framework structure. The receptacles or containers are accessed by baggage handling equipment operating on tracks mounted above the grid framework structure. A storage system of this type (1) is shown diagrammatically in Figures 1 to 3 of the accompanying drawings.

[0003] As shown in Figures 1 and 2, stackable containers known as receptacles 10 are stacked on top of one another to form a stack 12. The stack 12 is placed within a grid framework structure 14 in a warehouse or manufacturing environment. The grid framework is made up of a plurality of storage or grid rows. Each grid within the grid framework structure has at least one grid row for storage of a stack of containers. Figure 1 is a schematic perspective view of the grid framework structure 14.

[0004] The grid framework structure 14 comprises a plurality of upright members 16 supporting horizontal members 18, 20. A first set of parallel horizontal members 18 are arranged perpendicular to a second set of parallel horizontal members 20 to form a plurality of horizontal grid structures supported by the upright members 16. The members 16, 18, 20 are typically fabricated from metal. The containers 10 are stacked between the members 16, 18, 20 of the grid framework structure 14 such that the grid framework structure 14 prevents horizontal movement of the stack 12 of containers 10 and guides vertical movement of the containers 10.

[0005] The top level of the grid framework structure 14 includes rails 22 arranged in a grid pattern with a plurality of grid cells 17 to define a grid structure 15 across the top of the stack 12. Figure 2 is a top view of a single grid cell 17 of the grid structure showing a stack 12 of containers 10 arranged within the framework structure 14. Each container 10 typically holds multiple product items (not shown), which may be the same or different product types within the containers 10, depending on the application.

[0006] 3, the rails 22 support a plurality of luggage handling devices 30. A first set 22a of parallel rails 22 guides movement of the robotic luggage handling devices 30 in a first direction (e.g., X direction) across the top of the grid framework structure 14, and a second set 22b of parallel rails 22 disposed perpendicular to the first set 22a guides movement of the robotic luggage handling devices 30 in a second direction (e.g., Y direction) perpendicular to the first direction. In this manner, the rails 22 enable movement of the robotic luggage handling devices 30 laterally in two dimensions in the horizontal XY plane such that the luggage handling devices 30 can be moved to a position above any of the stacks 12.

[0007] A known luggage handling apparatus 30 shown in Figure 4 comprises vehicles 32 and is described in PCT Patent Publication No. WO2015 / 019055 (Ocado), which is incorporated herein by reference, with each luggage handling apparatus 30 encompassing only one grid space of the grid framework structure 14. Here, the luggage handling apparatus 30 comprises a wheel assembly comprising a first set of wheels 34 consisting of a pair of wheels on the front of the vehicles 32 and a pair of wheels 34 on the rear of the vehicles 32 for engaging a first set of rails or tracks to guide movement of the apparatus in a first direction, and a second set of wheels 36 consisting of a pair of wheels 36 on either side of the vehicles 32 for engaging a second set of rails or tracks to guide movement of the apparatus in a second direction.

[0008] The load handling apparatus shown in Figures 5(a and b) is equipped with a lifting or crane apparatus to lift a storage container from above. The lifting apparatus comprises a set of lifting tethers 38 extending vertically and connected to the four corners of a lifting frame 39, also known as grippers (one tether near each of the four corners of the gripper), for releasable connection to the storage container 10. The grippers 39 are configured to releasably grip the top of the storage container 10 to lift the storage container 10 from a stack of containers in a storage system of the type shown in Figures 1 and 2.

[0009] Although not shown in FIGS. 1-3, the luggage handling device 30 is powered by an on-board rechargeable battery during operation. Examples of rechargeable batteries are lithium ion batteries, nickel cadmium batteries, nickel metal hydride batteries, lithium ion polymer batteries, thin film batteries, and smart battery carbon foam based lead batteries. The battery is recharged while the luggage handling device 30 operates on the grid framework structure by a charging station. The charging station is generally an L-shaped structure fixed proximate to the grid framework structure and extending above the normal grid cells at the edge of the grid structure. The charging station includes a charging head with charging contacts fixed in position relative to the charging station. The charging head is attached to one arm of the L-shaped structure such that the charging head is suspended above at least two grid spaces of the grid framework. The luggage handling device may be charged by being commanded to move to a grid cell above which the charging head is located. As the luggage handling device moves to the grid cell, contact is made between a charging contact pad on the top surface of the luggage handling device and the charging contacts of the charging head. An electrical charge is applied to the load handling device from the charging contacts through charging contact pads mounted on the top surface of the load handling device.

[0010] Since the items stored in the containers may include various food and grocery items of perishable nature that require to be stored at strict storage temperatures, the baggage handling equipment is operable on the grid framework structure in strict temperature conditions. The different storage temperatures include ambient controlled temperature, refrigerated temperature, and freezer temperature. The freezer temperature covers a range between substantially -25°C and substantially 0°C, more preferably between substantially -21°C and substantially -18°C, the refrigerated temperature covers a range between substantially 0°C and substantially 4°C, preferably between substantially 0°C and substantially 5°C, and the ambient controlled temperature covers a range between substantially 4°C and substantially 21°C, preferably substantially 18°C. As a result, charging of the batteries may be performed in various temperature conditions depending on whether the charger is installed in the ambient zone, the refrigerated zone, or the freezer zone of the procurement center.

[0011] During battery charging, a portion of the current from the charging station is converted into thermal energy. The thermal energy must be dissipated outside the battery or heat will build up and increase the temperature of the battery. If the charging station delivers a charge above 150 amps at 48 volts, control over the temperature of the battery takes precedence over preventing thermal runaway of the battery. When the amount of heat dissipated is high, the temperature of the battery exceeds the normal temperature range, resulting in degradation of the battery's performance and ultimately shortening the battery's cycle life. For example, one of the most common types of batteries used to deliver power to drive wheels and lifting drives in baggage handling equipment is the lithium-ion battery. Such batteries have the ability to create their own internal supply of oxygen when overheated. More specifically, oxygen is liberated from the anode at high temperatures, which is composed primarily of cobalt or nickel-cobalt oxide. Because both oxygen and fuel are available internally to the cells, a fire can start within one or more of the battery cells. Unless the fire is extinguished, it will continue until all of the combustible materials within the battery are depleted.

[0012] One of the contributing factors for the heating of a battery while being charged is its internal resistance. A higher internal resistance of a battery causes the battery to heat up when being charged, and the heat can cause damage leading to safety issues. A low internal resistance allows the battery to deliver a high current on demand, but a high internal resistance limits the current and reduces the voltage on the load. The internal resistance of a battery is highly temperature dependent and increases as the ambient temperature decreases. This is because low temperatures slow down the electrochemical reactions occurring in the battery, thus causing a decrease in the mobility of the ions in the electrolyte. Since the load handling equipment can be operated in the refrigerated or frozen zones of the procurement center, the heating of the battery not only during charging but also during discharging is an increasingly increasing problem when operating on a grid structure, causing a reduction in the effective cyclic service life of the battery. Various attempts have been made in the art to mitigate this heating of the battery, which can lead to thermal runaway. Thermal runaway refers to a situation where the internal temperature of a battery increases to a high temperature, e.g., 200° C. or higher, for some reason, such as an internal short circuit or overcharging, which promotes chemical reactions within the battery and accelerates the temperature rise inside the battery cells.

[0013] One solution proposed in the art is to reposition one or more batteries in the body of the luggage handling device to effectively dissipate heat to the surroundings, especially during charging. WO2019 / 206440 (Autostore Technology AS) teaches a container handling vehicle for picking up storage containers from a three-dimensional grid of a lower storage system, comprising a first set of wheels arranged on opposing parts of the vehicle body for moving the vehicle along a first direction (X) on a rail system in a grid, and a second set of wheels arranged on opposing parts of the vehicle body for moving the vehicle along a second direction (Y) on the rail system in the grid, the second direction (Y) being perpendicular to the first direction (X). The vehicle body includes walls on all sides, forming a quadrilateral footprint and a first section and a second section arranged side by side such that a center point of the first section is located off-center relative to a center point of the footprint formed by the vehicle body, the size ratio of the footprint of the first section to the footprint of the second section being at least 2:1, the first section being configured to house a storage container and the second section including at least a first battery. The second section is more open to allow cooling of the battery and motor. However, placing the first section and the second section side by side, thereby making the first section equal to the size of a single grid cell, meant that the second section extends beyond the footprint of the first section. Because the footprint of the first section occupies a single grid cell, the total footprint of the vehicle extends beyond a single grid cell.

[0014] During operation on the grid structure, the baggage handling device travels as fast as 4 m / s and travels at 2 m / s on the grid structure. 2The battery can accelerate. Thus, the heating of the battery during charging and also the heavy load during discharging, the positioning of the battery within the body of the luggage handling device has an effect on the stability of the luggage handling device on the grid structure. With a weight as high as 30 kg, the positioning of the battery has an effect on the center of gravity (CoG) of the luggage handling device. A high CoG reduces the stability of the luggage handling device on the grid structure. WO2019 / 206440 (Autostore Technology AS) mitigated this problem by increasing the footprint of the luggage handling device to extend over a single grid cell of the grid structure by mounting the battery externally or to the side of the container receiving space of the body of the luggage handling device. The increased footprint of the luggage handling device presents an improved stability of the luggage handling device and the positioning of the battery allows heat to be dissipated from the battery.

[0015] Therefore, there is a need for a luggage handling apparatus that does not suffer from the above problems while still having a footprint that occupies a single grid cell.

[0016] This application claims priority to British Patent Application Nos. GB2001012.0, filed January 24, 2020, GB2003101.9, filed March 4, 2020, and GB2017241.7, filed October 30, 2020, the contents of which are incorporated herein by reference. Summary of the Invention

[0017] Applicant has realised that by incorporating an integrated thermal management system with the rechargeable power source, the temperature of the cells of the rechargeable power source can be controlled to be within a predetermined range that will mitigate possible thermal runaway. More particularly, the present invention provides a luggage handling apparatus or robotic luggage handling apparatus for lifting and moving one or more containers stacked in a storage system comprising a grid framework structure supporting a plurality of tracks arranged in a grid pattern to define a grid structure above one or more stacks of containers, the grid structure comprising a plurality of grid cells, the luggage handling apparatus comprising: A) a drive mechanism operatively arranged to move the load handling apparatus on the grid structure; B) i) a container receiving space located above the track; ii) a lifting device comprising a lifting drive assembly and a gripping device configured, in use, to releasably grasp a container and lift the container from the stack and into the container receiving space; iii) a cassette containing a rechargeable power source for powering the drive mechanism; A vehicle body that accommodates the Equipped with Here, the luggage handling device or robotic luggage handling device includes a thermal management system including a temperature sensor and at least one temperature control device configured to maintain the temperature of the rechargeable power source within a predetermined temperature range in response to a signal from the temperature sensor.

[0018] By incorporating the thermal management system of the present invention, comprising a temperature sensor and at least one temperature regulator, into the luggage handling apparatus, the temperature of the rechargeable power source can be regulated by the at least one temperature regulator to be within a predetermined temperature range. The luggage handling apparatus comprises a wheel assembly comprising a first set of wheels consisting of a pair of wheels on the front of the vehicle body and a pair of wheels on the rear of the vehicle body for engaging with a first set of rails or tracks to guide the movement of the apparatus in a first direction, and a second set of wheels consisting of a pair of wheels on both sides of the vehicle body for engaging with a second set of rails or tracks to guide the movement of the luggage handling apparatus in a second direction. Optionally, the temperature sensor comprises one or more temperature sensors. Optionally, the predetermined temperature range is between 20°C and 40°C. Optionally, the temperature sensor comprises a thermal imaging camera, e.g., an infrared camera, in the vehicle body that detects infrared energy emitted by the rechargeable power source. Optionally, the temperature sensor comprises a thermistor, e.g., an NTC thermistor or a PTC thermistor, or a thermocouple, e.g., a K-type thermocouple. To maintain the temperature of the rechargeable power source, the at least one temperature regulating device preferably comprises at least one cooling fan, the speed of which is adjustable to control the delivery of cool air to the rechargeable power source.

[0019] Preferably, the cassette comprises a thermal management system. Optionally, the thermal management system is integrated into the cassette. For the purposes of the present invention, the term "cassette" encompasses a stand-alone case or enclosure. By encapsulating the rechargeable power source in the cassette with a temperature sensor and at least one temperature regulator, the temperature of the rechargeable power source can be maintained within a predetermined temperature range in response to a signal from the temperature sensor. The rechargeable power source of the present invention comprises a built-in thermal management system that eliminates the need to install the rechargeable power source in several areas of the vehicle body to accomplish heat dissipation. This improves the flexibility with which the cassette of the present invention can be installed or mounted within the vehicle body to lower the center of gravity of the luggage handling device, thereby improving the stability of the luggage handling device operable on a grid structure. For example, the cassette of the present invention can be incorporated between other electronics, auxiliary components, and / or hardware components of the luggage handling device that were not considered practical due to heat dissipation, such as between the lifting drive assembly, between the control unit of the luggage handling device, etc., without affecting the performance of those components within the luggage handling device. The cassette itself may be a stand-alone device such that power from the rechargeable power source can provide power to the at least one temperature adjustment device and / or temperature sensor, or the at least one temperature adjustment device and / or temperature sensor can be powered by a separate auxiliary power source housed either within the cassette or external to the cassette.

[0020] Furthermore, the use of cassettes to house the rechargeable power sources allows the baggage handling device to not be limited to any one type of rechargeable power source, and can include rechargeable power cells from different manufacturers, as well as allow different combinations of different types of rechargeable power cells to be incorporated into one housing or cassette. Preferably, the cassette comprises one or more vents, e.g., one or more openings in at least one wall of the cassette. For example, the cooling fan can be configured to draw cool air through one or more vents in the cassette. Alternatively, the cooling fan can be configured to draw cool air into the interior of the cassette space, and warm air is pushed out of the one or more vents. Optionally, the at least one cooling fan comprises a first cooling fan for supplying cool air to the interior space of the cassette, and a second cooling fan for drawing warm air from the interior space of the cassette.

[0021] To facilitate heat dissipation from the rechargeable power source, the cassette further comprises a heat sink thermally coupled to the rechargeable power source, said heat sink comprising a plurality of heat dissipation fins, and wherein the at least one cooling fan is configured to blow cool air across the heat dissipation fan. Preferably, the cassette comprises walls on all sides, and wherein the at least one cooling fan is mounted to at least one of the walls of the cassette.

[0022] Since the internal resistance of the battery increases in the refrigerated or frozen zone of the procurement center, preferably the temperature control device comprises at least one heating element in the vicinity of the rechargeable power source contained in the cassette. The at least one heating element provides heat to increase the temperature of the cells of the rechargeable power source, thus lowering its internal resistance. Typically, the internal resistance of the battery changes rapidly at temperatures below 0° C. in the refrigerated and frozen zones of the procurement center. Optionally, the at least one heating element is a heating pad. For example, the rechargeable power source can be mounted on a heating pad such that heat from the heating pad is thermally transferred to warm the rechargeable power source.

[0023] The cassette itself may be a stand-alone device such that the temperature of the rechargeable power source can itself be regulated by powering at least one temperature regulation device in response to a signal from a temperature sensor. Alternatively, the at least one temperature regulation device and / or temperature sensor can be powered by a separate auxiliary power source housed either within the cassette or external to the cassette. Combining the heating and / or cooling capabilities of the rechargeable power source in one device allows the cassette of the present invention to be formed as a stand-alone device separate from other auxiliary components of the baggage handling apparatus.

[0024] Preferably, the at least one temperature adjustment device comprises at least one thermoelectric device. The at least one thermoelectric device is included in the cassette in the vicinity of the cells of the rechargeable power source. Preferably, the at least one thermoelectric device comprises at least one Peltier element having a heat absorbing surface and a heat emitting surface facing each other. An advantage of the Peltier element over other temperature adjustment devices is that the Peltier element can operate without the use of a coolant or any moving parts. As known in the art, when an electric current is passed through two dissimilar metals or semiconductors (n-type and p-type) connected together at two junctions (Peltier junctions), a temperature difference is established between the opposing surfaces of the Peltier element. The Peltier element has a heat absorbing surface, also known as the cooling side, where heat is absorbed, and a heat emitting surface, also known as the warming side, where heat is generated. The heat absorbing surface provides the cooling surface as it absorbs heat dissipated from the rechargeable power source. Conversely, the heat emitting surface of the Peltier element provides heat to the rechargeable power source. Preferably, the at least one Peltier element is configured for selectively cooling and / or heating the rechargeable power source by switching polarity on the Peltier junction. This allows the thermoelectric element to selectively provide heating and cooling in one area of ​​the thermoelectric element simply by switching the electrical polarity or direction of the current through the at least one Peltier element. By switching the direction of the current, the at least one Peltier element allows both cooling and heating of the rechargeable power source in one area. Thereby, comprehensive temperature control of the rechargeable power source is possible to operate the rechargeable power source within its optimal operating temperature range. For example, the cassette can include a switching device for reversing the polarity of the current to the at least one Peltier element.

[0025] As the Peltier element has a heat absorbing surface and a heat emitting surface, in an alternative arrangement, preferably the at least one Peltier element comprises a first Peltier element and a second Peltier element, the first Peltier element being arranged such that a heat absorbing surface of the first Peltier element is proximate to the first portion of the rechargeable power source and the second Peltier element being arranged such that a heat emitting surface is proximate to the second portion of the rechargeable power source, the first portion and the second portion of the rechargeable power source corresponding to the first contact surface of the rechargeable power source and the second contact surface of the rechargeable power source, respectively.

[0026] When operated as a cooling device, the heat absorbing surface of the at least one Peltier element is thermally coupled to the rechargeable energy source such that heat from the rechargeable energy source is absorbed by the heat absorbing surface. One side effect of absorbing heat on one side of the Peltier element is that the heat is transferred to the other opposing side of the Peltier element. Without sufficient dissipation of heat from the heat emitting surface, the temperature of the heat emitting surface will gradually increase, reducing the effectiveness of the Peltier element as a cooling device and, in extreme cases, resulting in damage to the at least one Peltier element. To dissipate heat from the heat emitting surface of the at least one Peltier element and maintain the effectiveness of the at least one Peltier device as a cooling device, preferably the heat emitting surface of the at least one Peltier element is thermally coupled to a heat sink. The heat sink is capable of dissipating heat from the heat emitting surface in an efficient manner. The heat sink can comprise a plurality of fins to effect the dissipation of heat from the heat emitting surface. Preferably, the cooling fan can be configured to blow air onto the heat sink. Alternatively, the cooling fan can blow air on the heat emitting surface of the at least one Peltier element to improve the efficiency of heat dissipation of the heat emitting surface of the at least one Peltier element. Preferably, the at least one Peltier element is driven by a Peltier driver. The Peltier driver can be, for example, a simple connection between the at least one Peltier element and a rechargeable power source to provide a current source to the at least one Peltier element. Preferably, the Peltier driver comprises a pulse width modulator. The pulse width modulator is configured to regulate the amount and / or direction of current to the at least one Peltier element, which controls the amount of heating and / or cooling of the heat emitting surface and the heat absorbing surface. For example, the pulse width modulator can regulate the power to the at least one Peltier element by switching the power to the at least one Peltier element either fully on or fully off. Alternatively, or in combination, the pulse width modulator can be configured to periodically switch the direction of current or the polarity of current to the at least one Peltier element.

[0027] In all of the different options for varying the temperature of the rechargeable power source, a controller is coupled to the temperature sensor and at least one temperature adjustment device to define a thermal management system, said controller being configured to provide a control signal to the at least one temperature adjustment device in response to a signal from the temperature sensor to adjust a temperature reading from the temperature sensor within a predetermined temperature range. More specifically, the signal from the temperature sensor is feedback to the controller to control the at least one temperature adjustment device. The controller may be referred to as a feedback controller.

[0028] If the at least one temperature adjustment device is a fan, the controller controls the operation and / or speed of the fan in response to a temperature reading of the temperature sensor being outside of a predetermined temperature range. Similarly, the controller can be configured to adjust the current to the at least one Peltier element in response to a signal from the temperature sensor indicating a temperature outside of a predetermined temperature range. For example, the controller can control the direction of the current through the at least one Peltier element and / or the duration of the current through the at least one Peltier element in response to a signal from the temperature sensor indicating a temperature above or below the predetermined temperature range. The controller sends a control signal to the Peltier driver to drive the activation of the at least one Peltier element. If the Peltier driver includes a pulse width modulator, the controller is configured to control the "pulsing" and / or duration (i.e., duty cycle) of the current through the at least one Peltier element to control the amount of cooling and heating of the heat absorbing and heat emitting surfaces of the at least one Peltier element, respectively. Preferably, the controller comprises a PI or PID controller configured to regulate the temperature reading of the temperature sensor to be within a predetermined temperature range, i.e. to a set temperature value.

[0029] Preferably, the controller can be housed within the cassette. Alternatively, the at least one temperature adjustment device can be controlled externally to the cassette through a suitable communication port. For example, in addition to power terminals attached to the cassette, where the DC supply has + and - terminals for electrically coupling to an electrical load, a third communication port can be configured to receive signals from an external controller. Preferably, the third communication port on the cassette provides signals to the controller regarding the status or condition of the rechargeable power source.

[0030] Preferably, the rechargeable power source comprises at least one of a battery and / or a capacitor, each of the at least one of the batteries and / or capacitors comprising a plurality of cells. Preferably, the battery is a lithium-ion battery comprising a stack of lithium-ion cells, each of the stack of lithium-ion cells being electrically connected together.

[0031] The present invention relates to a first set of tracks and a second set of tracks running transversely to the first set of tracks in a substantially horizontal plane to form a grid pattern having a plurality of grid spaces or grid cells; a plurality of stacks of containers positioned under a first set of tracks and a second set of tracks, wherein each stack of containers occupies a single grid space or grid cell; a robotic load handling apparatus according to the present invention, arranged to traverse along a first set of tracks and a second set of tracks over a plurality of grid spaces or grid cells such that when positioned above a stack of containers occupying said grid spaces or grid cells, the lifting apparatus is configured to lift at least one container from said stack of containers; An automated storage system comprising:

[0032] The terms baggage handling device and robotic baggage handling device are used interchangeably in the description to denote the same features.

[0033] Further features and aspects of the present invention will be made apparent from the following detailed description of an illustrative embodiment which proceeds with reference to the drawings. [Brief description of the drawings]

[0034] [Figure 1] 1 is a schematic diagram of a grid framework structure according to known systems; [Diagram 2] 2 is a schematic diagram of a top view showing a stack of containers arranged within the framework structure of FIG. 1; [Diagram 3] 1 is a schematic diagram of a known storage system for luggage handling equipment operating on a grid framework structure; [Figure 4] FIG. 1 is a schematic perspective view of a load handling apparatus showing a lifting device gripping a container from above. [Figure 5(a)] 5 is a schematic perspective cutaway view of the luggage handling apparatus of FIG. 4 showing a container receiving space of the luggage handling apparatus; [Figure 5(b)] 5 is a schematic perspective cutaway view of the load handling apparatus of FIG. 4 showing a container housing the container receiving space of the load handling apparatus; [Figure 6] 1 is a perspective view of a luggage handling apparatus according to an embodiment of the present invention showing a battery receiving space; [Figure 7] 1 is a perspective side view of a luggage handling apparatus according to an embodiment of the present invention; [Figure 8] 1 is a perspective top view of a load handling apparatus showing placement of a battery and a lift drive assembly according to an embodiment of the present invention; [Figure 9] FIG. 2 is a perspective top view of a mounting tray supporting the battery and lift drive assembly of the present invention. [Figure 10] FIG. 2 is a perspective side view of a battery and lift drive assembly mounting according to an embodiment of the present invention. [Figure 11] FIG. 2 is a perspective view of a battery cassette according to one embodiment of the present invention. [Figure 12] FIG. 13 is a perspective view of a battery cassette according to another embodiment of the present invention. [Figure 13]2 is a schematic diagram of an example battery cassette containing battery cells, in accordance with one embodiment of the present invention. [Figure 14] 1 is a simplified block diagram of a thermal management system for a battery in accordance with one embodiment of the present invention; [Figure 15] FIG. 4 is a simplified block diagram of a thermal management system for a battery in accordance with another embodiment of the present invention. [Figure 16] 1 is a simplified block diagram of a thermal management system incorporating Peltier elements, in accordance with one embodiment of the present invention; [Figure 17] 2 is a schematic diagram of a luggage handling apparatus showing the location of a battery cassette within a vehicle body in accordance with an embodiment of the present invention. [Figure 18] FIG. 2 is a diagram showing the location of the center of mass of a luggage handling device relative to the intersection plane of the luggage handling device on a grid structure. [Figure 19] 1 is a schematic diagram of a load handling apparatus showing a chassis for mounting a wheel assembly according to one embodiment of the present invention; DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0035] FIG. 6 shows a perspective side view of a luggage handling apparatus 130 according to an embodiment of the present invention, and FIG. 7 shows a rear view of the luggage handling apparatus 130. For purposes of the present description, the bulk of the luggage handling apparatus' auxiliary components, such as electronic auxiliary components, and the drive assembly for moving the luggage handling apparatus on the track are not shown to clarify the location of the battery in the body of the luggage handling apparatus. The luggage handling apparatus 130 shown in FIGS. 6 and 7 includes a vehicle body 132 mounted on a wheel assembly 134 that includes a first set of wheels for guiding the luggage handling apparatus in a first direction on the track and a second set of wheels for guiding the luggage handling apparatus in a second direction on the track. The vehicle body 132 includes a side panel 136 and a top panel 138. In certain embodiments of the present invention, the vehicle body 132 defines a footprint that occupies or is within a single grid cell of a grid structure.

[0036] As discussed in the introduction of the patent, the first set of wheels comprises a first pair of wheels at the front of the vehicle body and a pair of wheels at the rear of the vehicle body 132. The first set of wheels is positioned for engaging with a first set of tracks or rails. The second set of wheels comprises a pair of wheels on either side of the vehicle body for engaging with a second set of tracks. The first set of wheels and the second set of wheels are configured to selectively disengage with the first set of tracks and the second set of tracks by moving vertically, thereby allowing the baggage handling device 130 to move in a desired direction on the grid structure, i.e., in the XY direction on the grid structure.

[0037] Present in the schematic diagrams in Figs. 6-8 is a lifting drive assembly 140 for hoisting the gripping device 139 to the body 132 of the load handling device 130, and a battery 142 for powering the lifting drive assembly 140 and the wheel assembly 134. The lifting drive assembly comprises a motor 140 configured to raise and lower the gripping device 139. In particular embodiments of the present invention, the motor 140 of the lifting drive assembly is a single motor, but is not limited to being a single motor. The lifting device or mechanism further comprises a hoisting assembly 144 comprising a first pair 146 and a second pair 148 of winches or spools. The first and second pairs 146, 148 of winches or spools separately carry a lifting tether 150 attached to the gripping device 139. As can be seen in Fig. 8, the first and second pairs 146, 148 of winches are mounted spaced apart within the vehicle body 132 to define a battery receiving space for housing the battery 142 of the present invention. For purposes of the present description, the container receiving space 152 for storing the container below the battery 142 is referred to as the first space, and the space for storing the battery of the present invention is referred to as the second space 142b. The gripping device 139 is configured to grip the top of the container and lift the container from a stack of containers in a storage system of the type shown in Figures 1 and 2. Generally, the gripping device 139 is configured as a frame, and four lifting tethers are fixed to each corner of the gripping device shown in Figure 5. A first pair of lifting tethers is attached to one side of the gripping device 139 and is wound up on a first pair of winches 146, and a second pair of lifting tethers is attached to the other side of the gripping device 139 and is wound up on a second pair of winches 148. For purposes of the present invention, the phrase "footprint occupying a single grid cell" is interpreted to mean that the footprint of the luggage handling equipment does not extend into adjacent grid cells in the sense that the wheels of the luggage handling equipment are tracked around the periphery of a single grid cell 10 (see FIG. 2) so that the gripping equipment of the luggage handling equipment can descend into the single grid cell and retrieve containers stored in the grid row.The containers are stored in a container receiving space in the vehicle body of the luggage handling device, which is clearly shown in FIG.

[0038] The battery 142 shown in FIG. 8 is positioned within the second space defined by the first pair 146 and the second pair 148 of winches. The battery 142 is returned toward one of the side walls 136 of the vehicle body 132 such that the battery 142 is partially positioned between the first pair 146 and the second pair 148 of winches, more specifically, between a single winch or spool of the first pair 146 of winches and a single winch of the second pair of winches 148. This allows the battery to be easily replaceable through one of the side walls of the vehicle body 132. In the particular embodiment shown in FIG. 8, the battery 142 is returned toward either the front wall or the rear wall of the vehicle body 132. Furthermore, the location of the battery 142 above the first space 152 within the vehicle body 132 and partially between the first pair 146 and the second pair 148 of winches lowers the center of gravity of the load handling device, thus improving the stability of the load handling device on the grid structure. This is particularly beneficial where the vehicle body of the luggage handling device defines a footprint that occupies a single grid cell. Further details of the location of the battery within the vehicle body, which affects the center of gravity or mass of the luggage handling device, are discussed below.

[0039] The battery 142 of the present invention is secured within the vehicle body 132 by being attached to a tray or subframe 154 shown in Figures 9 and 10. To balance the weight of the battery 142 within the luggage handling apparatus and therefore improve the stability of the luggage handling apparatus, the use of a tray 154 to mount the battery 142 allows the weight of other auxiliary or hardware components to counterbalance the battery within the luggage handling apparatus. In a particular embodiment of the present invention, the battery 142 and the lifting drive assembly 140 are mounted adjacent to each other at opposite ends of the tray 154 such that the weight of the battery 142 counterbalances (countersbalances) the weight of the lifting drive assembly 140. The lifting drive assembly 140 in a particular embodiment of the present invention comprises a single hoist motor. Balancing the weight of the battery 142 and the weight of the lifting drive assembly 140 within the luggage handling apparatus 130 helps stabilize the luggage handling apparatus in an upright position on the track.

[0040] As also shown in Figures 9 and 10 and more particularly in Figures 11 and 12, the batteries are housed in a case or cassette 143. The use of a cassette 143 to house the batteries provides flexibility to house different types of battery cells from various manufacturers such that the batteries are not limited to one particular manufacturer and / or size and / or shape of the battery. The outer walls of the cassette 143 are sized and shaped to fit into a second space above the container receiving space in the vehicle body, while the interior space or cavity of the cassette can be adapted to house different types and / or shapes of batteries or other rechargeable power sources. For example, the exterior shape and / or size can be standardized, while the interior space or cavity of the cassette 143 can be made flexible.

[0041] Additionally, the cassette 143 of the present invention may also house a thermal management system to regulate the temperature of the batteries contained within the cassette, details of which are discussed below. Examples of cassettes 143 of the present invention housing batteries are shown in Figures 11 and 12. In both examples, the cassette or case 143 includes top and bottom walls 156 and side walls 158. The cassette 143 may be fabricated as a unitary body or separate pieces bonded together. Optionally, the cassette 143 is formed from a plastic material.

[0042] The side walls 158 include front and rear walls arranged to provide a quadrilateral footprint. In the particular embodiment of the invention shown in FIGS. 11 and 12, the front or rear wall of the cassette includes at least two terminals 160 corresponding to a positive DC terminal and a negative DC terminal. The at least two terminals 160 are electrically coupled to the stack of battery cells in the cassette and are arranged to electrically couple with a complementary shaped electrical connector in the vehicle body. Locating the at least two terminals at the front or rear of the cassette allows the cassette to be slid into the vehicle body from one of the sides of the vehicle body 132, rather than being lowered from the top of the vehicle body. This allows the batteries to be easily swapped or replaced by simply removing one of the vehicle body side panels and sliding the cassette 143 into a second space between the winch or spool of the lifting mechanism. The at least two terminals 160 are shown as two male portions configured to be received into at least two correspondingly shaped female mating portions in the vehicle body. However, the present invention is not limited to having a male mating portion on the cassette 143 arranged to electrically couple with a female mating portion on the vehicle body, as the reverse arrangement is applicable in the present invention when there is a male mating portion in the vehicle body configured to electrically couple with a female mating portion on the front wall of the cassette 143. To help guide the at least two electrical terminals into engagement with an electrical connector in the vehicle body, one or more guides 162 can be attached to the front or rear wall of the cassette that are received into correspondingly shaped recesses in the vehicle body. The one or more guides 162 can be provided with tapered ends to assist in proper positioning of the at least two terminals 160 into engagement with an electrical connector in the vehicle body.

[0043] When installing or replacing the cassette 143 from the baggage handling device 130, the operator would simply remove one of the side panels of the vehicle body. If there is already a cassette in the body of the baggage handling device, the operator would remove the existing cassette by pulling from the front or rear face of the cassette depending on whether the electrical connector is at the front or rear of the cassette to slide the cassette 143 from its seating area in the second space. The front face is the first face of the cassette and the rear face opposite the front face is defined as the second face of the cassette. The cassette is preferably mounted on a rail or track in the vehicle body to allow the cassette to be easily slid out. The seating area of ​​the cassette in the vehicle body is more clear in FIG. 9. The freshly charged battery is installed into the second space by pushing the cassette along the rail so that the electrical terminals on the second face with the electrical connector engage with the complementary shaped electrical connector in the vehicle body. Side loading of the cassette allows the batteries to be easily replaced.

[0044] Batteries may generate a certain amount of heat whether the battery is in a charging or discharging state. When the heat generated is large, the temperature of the battery exceeds the normal optimal temperature range, leading to reduced performance of the battery and ultimately to a reduced cycling life of the battery. The problem of heat dissipation during battery charging is exacerbated in refrigerated and / or frozen zones of procurement centers where temperatures can reach minus 18°C, since the internal resistance ESR (equivalent series resistance) of the battery increases at low temperatures. Charging can involve delivering a current through the battery of approximately 160 amps at 48 volts. Thus, a small increase in the internal resistance of the battery results in a large amount of heat being generated. For the purposes of this invention, the ideal temperature range for optimal performance of the battery is within the region of 20°C to 40°C. Since the operating temperature of the battery affects the optimal performance of the battery, the heat dissipated from other auxiliary electrical components within the vehicle body will also affect the operating temperature of the battery. As a result, the batteries have traditionally been confined to the exterior walls of the vehicle body, or, as discussed in WO2019 / 206440 (Autostore Technology AS), laterally mounted on the sides of the container receiving space to allow heat from the batteries to dissipate to the outside surroundings, thereby preventing excessive thermal runaway during charging. Since the batteries represent a significant proportion of the weight of the luggage handling apparatus, the location of the batteries within the vehicle body also has an impact on the stability of the luggage handling apparatus in an upright position on the grid. Thus, a balance is struck between ensuring that the operating temperature of the batteries is within the operable range in which the batteries perform optimally, and the stability of the luggage handling apparatus in an upright position on the grid structure. Ideally, it is a priority to have optimal placement of auxiliary components and / or hardware components based on their individual weights to improve the stability of the luggage handling apparatus. The ability to locate the batteries between other auxiliary electrical components and other hardware components within the vehicle body of the luggage handling apparatus is made possible in the present invention by integrating a thermal management system with a temperature regulator within the battery. The cassette 143 provides a cavity for encapsulating the batteries along with an integrated thermal management system with a temperature regulator.

[0045] In certain embodiments of the present invention, the term "battery" encompasses one or more battery cells electrically connected to each other to form a battery pack. The battery includes, but is not limited to, any rechargeable power source. Examples of rechargeable power sources are lithium ion batteries, nickel cadmium batteries, nickel metal hydride batteries, lithium ion polymer batteries, thin film batteries, and lead batteries based on smart battery carbon foam. The present invention is not limited to batteries, and other rechargeable power sources capable of storing charge and delivering power to a motor, such as capacitors, supercapacitors, or a combination of a battery and a supercapacitor (hybrid system), are applicable in the present invention. In certain embodiments of the present invention, for the purposes of the description of the present invention, the rechargeable power source is discussed in terms of a battery.

[0046] Not shown in FIGS. 11 and 12 is that the cassette wall comprises one or more vent holes. The vent holes allow cold air to circulate through the interior space of the cassette 143. The one or more vents can comprise one or more inlet vents and one or more outlet vents. Cold air is drawn through the one or more inlet vents and warm air is discharged from the one or more outlet vents. The interior space of the cassette can optionally be provided with one or more channels (not shown) to allow air to flow through a serpentine path around the interior space of the cassette to maximize the airflow around the battery cells and thus the surface area exposure of the circulating air to remove heat from the batteries. For example, cold air can enter the battery through at least one inlet vent of the cassette and flow along the interior space or cavity of the cassette, and the warm air is removed by exiting through at least one outlet vent. The at least one inlet vent and outlet vent can be formed in any of the cassette walls, such as the bottom and top walls. One or more walls of the cassette can be perforated to provide the inlet vent and / or the outlet vent. The airflow channels can be incorporated into the cassette to allow the airflow to be directed through a serpentine path around the battery cells.

[0047] In order to achieve a better cooling effect of the battery, the thermal management system comprises a temperature regulator to regulate the temperature of the internal space of the cassette. By regulating the temperature of the internal space of the cassette, the temperature of the battery can be regulated to its optimal performance. In a particular embodiment of the present invention, the temperature regulator comprises a fan. Through the rotation of the fan, the air flow is accelerated through the internal space of the cassette so that the air quickly takes away the heat generated in the battery pack. This allows the battery cells to work within a stable temperature range and extend the service life of the battery cells in the battery pack. For the purpose of the present invention, the ideal temperature range for optimal performance of the battery is 20°C to 40°C. In a particular embodiment of the present invention shown in Figures 11 and 12, one or more cooling fans 164, 166 are attached to the front wall of the cassette to accomplish the circulation of airflow through the internal space of the cassette. In the embodiment shown in Figure 11, two fans, namely a first fan 164 and a second fan 166, are attached to the wall of the cassette. A first fan 164 optionally draws cool air into the interior space of cassette 143a, and a second fan 166 draws warm air from the interior space of cassette 143b to the exterior surrounding area. The first and second fans 164, 166 also improve the air flow around the interior spaces of the cassettes so that the airflow quickly carries away heat generated within the battery packs.

[0048] Also shown in FIG. 11 are one or more ducts 168, 170 mounted on the wall of the cassette 143a and having openings that direct or guide the flow of air through the vents by rotation of the fans 164, 166. The fans 164, 166 are mounted on the ducts 168, 170 such that air entering the fans is forced through the vents by being directed through one or more of the ducts. Similarly, warm air drawn by the fans is directed through the ducts and exits the fans. For purposes of the present description, the fans for drawing cool air into the ducts are referred to as inlet fans and the fans for drawing warm air from the ducts are referred to as outlet fans. As shown in FIG. 11, the inlet fan 164 and the outlet fan 166 are each mounted on the ducts such that air is directed through the ducts. Optionally, the inlet fan and the outlet fan can each be mounted in series with the ducts.

[0049] The duct or ducts also allow air to be drawn from or exhausted to different parts of the vehicle body. For example, if cool air is drawn into the interior space of the cassette 143a, the ducting can extend to draw air away from the cooler section of the vehicle body, i.e., away from the electrical and electronic auxiliary components. This prevents warm air from being drawn into one or more of the inlet vents. Similarly, for the outlet vents, the ducting can be shaped to exhaust warm air to an area of ​​the vehicle body away from heat-sensitive electronic components, such as a processor or controller. This is possible if a fan is mounted in series with the ducting.

[0050] The one or more ducts can be separately attached to the cassette. Alternatively, the one or more ducts can be formed integrally with the cassette as a single or integral body. The inlet fan is configured to draw cool air into the cassette's interior space and the outlet fan is configured to extract warm air from the cassette's interior space, although the reverse is also applicable to the present invention, where the inlet fan draws warm air into the cassette's interior space and the outlet fan is configured to exhaust cool air from the cassette's interior space. For example, in a refrigerated or frozen zone of a procurement center, warm air taken from a warm area of ​​the vehicle body can be used to raise the temperature of the batteries to their optimum temperature range, i.e., between 20°C and 40°C. Heat dissipated from the lifting mechanism and / or the drive assembly and / or the motor of the auxiliary electronic components can be harvested or used to warm the batteries to their optimum temperature range. The direction of rotation of the inlet and outlet fans is optionally reversible, such that their role of drawing or exhausting air from the cassette's interior space can be reversed depending on the air temperature in different parts of the vehicle body. For example, different parts of the vehicle body can get heated or cooled compared to other parts in the body depending on whether the duct openings are near auxiliary electronic components or motors. The direction of rotation of one or more fans can be reversed depending on whether cool air needs to be drawn into or expelled from the interior space of the cassette.

[0051] Although the particular embodiment shown in FIG. 11 shows two fans mounted on the front wall of the cassette, a single fan 172 can be used to circulate cool air through the interior space of the cassette 143b shown in the schematic cross-sectional views of FIG. 12 and FIG. 13. Here, the single fan 172 mounted on the wall of the cassette 143b draws cool air from the external surroundings into the interior space of the cassette where cool air is circulated to regulate the temperature of the battery cells 141 and warm air is exhausted through one or more vent holes 174. As also shown in FIG. 13 and as can be seen in FIG. 11 as a battery, multiple battery cells 141 are assembled one on top of the other in a stack and electrically connected to each other either in series or in parallel. When connected in series, the positive terminal of one battery cell is connected to the negative terminal of the next battery cell, such as to position the battery cells in the stack. The link between the electrical connections of adjacent battery cells is provided by a busbar 176, which may comprise a conductor such as copper. Each of the battery cells 141 is spaced apart to allow airflow between the battery cells. For example, one or more spacers (not shown) can be disposed between each of the battery cells. The battery cells are held together in the stack by bus bars 176. The battery cells 141 are shown as elongated battery cells. However, the invention is not limited to the battery cells being elongated cells, but may be cylindrical cells assembled together and contained within cassettes 143b.

[0052] To facilitate heat dissipation from the battery cells 141, a heat sink (not shown) can be thermally coupled to the battery to transfer generated heat from the battery to the external surroundings. The heat sink is typically made from aluminum or copper and can include fins to dissipate generated heat from the battery cells. To further facilitate heat dissipation from the heat sink, one or more fans can direct cool air over the fins of the heat sink, or alternatively, a separate cooling fan can be attached to the heat sink, and more particularly, to the fins of the heat sink, to increase the flow of cool air around the fins.

[0053] Although certain embodiments describe the temperature adjustment device as a fan, other temperature adjustment devices that adjust the temperature of the battery are applicable to the present invention. In addition to cooling the battery, the opposite is true in cold environments, such as in refrigerated or frozen zones of a procurement center, where the temperature of the battery may drop too low, especially during charging, preventing optimal performance of the battery. One or more heating elements, e.g., electrical heating elements, can be used to raise the temperature of the battery to within a predetermined temperature range corresponding to the workable temperature range of the battery, i.e., between 20°C and 40°C. For example, the heating element can be a heating pad.

[0054] To provide both cooling and / or heating, the temperature control device may be a thermoelectric converter comprising one or more Peltier elements that generate heat and / or cooling based on current flow through the Peltier elements. In brief, a Peltier element provides both thermoelectric cooling and heating and typically comprises two unique semiconductors, one n-type and one p-type. Alternating p-type and n-type semiconductor pillars are placed thermally in parallel with each other and electrically in series, then bonded on each side with a heat conducting plate, usually a ceramic which eliminates the need for a separate insulator. When a voltage is applied to the free ends of the two semiconductors, there is a flow of DC current across the semiconductor junction which causes a temperature difference. The side with the cooling plate absorbs heat, which is then carried by the semiconductor to the other side of the device, i.e., the side with the cooling plate moves heat from one side (the heat absorbing side) to the other side (the heat emitting side) so that the heat absorbing side becomes cold and the heat emitting side becomes hot. The polarity on the Peltier element is reversible so that current can flow in the opposite direction, thus reversing the heat absorbing and heat emitting sides of the Peltier element. The Peltier element can draw power from a battery or a separate power source. This allows the same Peltier element to provide both heating and cooling for the battery cell.

[0055] When used as a cooling device, a surface of one or more battery cells is placed in thermal contact with a heat absorbing surface of the Peltier element. Conversely, when used as a heating device, a surface of one or more battery cells is placed in thermal contact with a heat emitting surface of the Peltier element. In a particular embodiment of the invention shown in FIG. 13, two Peltier elements, a first Peltier element 178 and a second Peltier element 180, are shown positioned on the left and right sides of the battery stack and in direct contact with the battery stack to provide both heating and / or cooling of the battery stack. For example, the first Peltier element 178 can be positioned with a heat absorbing surface in thermal contact with the battery stack to provide cooling of the battery stack, and the second Peltier element 180 can be positioned with a heat emitting surface in thermal contact with the battery stack to provide heating of the battery stack. Heating and / or cooling of the battery stack is not limited to two Peltier elements, but can be provided by a single Peltier element if heating and / or cooling is provided by reversing the polarity of the current through the single Peltier element, i.e., by use of a suitable switch.

[0056] Since the ability to remove heat from the heat-emitting side of the Peltier element improves the effectiveness of the Peltier element to cool the battery, one or more fans can direct cool air to the heat-emitting side to encourage the heat-absorbing side of the Peltier element to remain cool. Additionally, a heat sink can be attached to the heat-emitting side of the Peltier element to effect heat dissipation from the heat-emitting side. To further encourage heat dissipation from the heat-emitting side, one or more cooling fans can remove heat from a heat sink attached to the heat-emitting side of the Peltier element.

[0057] The amount of heating or cooling of the battery can be controlled by the magnitude or duration of the current through the Peltier element. For example, by switching the power to the Peltier element either fully on or fully off, and thus pulsing the current through the Peltier element, the heating or cooling of the respective heat emitting and heat absorbing sides can be adjusted. The Peltier element can be driven by a Peltier driver. The Peltier driver can be a voltage source, a current source, a relay, or a transistor. A relay or transistor is used to switch the power to the Peltier element either fully on or fully off. Alternatively, a pulse width modulator (PWM) can be used to adjust the switching of power to the Peltier element either on or off. The PWM output signal can consist of a periodic square wave with a variable "on time". This "on time", when expressed as a percentage of the period of the square wave, is known as the duty cycle. The power to the Peltier element can be adjusted by varying the duty cycle of the square wave. Further details of the Peltier element's ability to regulate the temperature of the battery are discussed below.

[0058] Returning to the components of the thermal management system not shown in FIG. 13, the thermal management system comprises one or more temperature sensors disposed in the cassette in the vicinity of the battery, more particularly between the battery cells, to measure the temperature of the battery. The signal from the one or more temperature sensors is read by a temperature reader and used to regulate the temperature regulator. The temperature reader 204 reads and interprets the temperature indication provided by the one or more temperature sensors 202 and generates a temperature signal, which is fed back to a controller 208 shown in FIG. 14. The temperature sensor 202 may be any type of temperature measurement known in the art for measuring the temperature of a rechargeable power source, in this case a battery. For example, the temperature sensor may be, but is not limited to, a thermistor, such as an NTC thermistor or a PTC thermistor, or a thermocouple, such as a K-type thermocouple. Also shown in FIG. 13 is a thermal management system 179 comprising a controller for controlling at least one temperature regulator 172 housed in the cassette. However, the controller does not have to be housed in the cassette, but can be housed in the body of the baggage handling device. A communications port (not shown) may be present on the cassette for communicatively coupling to a controller external to the cassette.

[0059] FIG. 14 shows a simplified block diagram of a thermal management system 200 according to a first embodiment of the present invention. The output from the temperature sensor 202 is fed back to a temperature reader 204, which interprets the output to provide a temperature signal. The temperature signal provides an indication of the temperature of the battery. One or more temperature sensors 202 can be disposed between the battery cells to provide a more accurate measurement of the battery's temperature. The temperature reader 204 sends the temperature signal to a controller 208, which uses the temperature signal to drive a temperature regulator 206 to regulate the temperature of the battery within a predetermined temperature range. The predetermined range is within the working range of the battery, i.e., between 20° C. and 40° C. Above 40° C., the battery's ability to hold a charge decreases. One or more flags can be set up to inform a user that the temperature of the battery is outside its ideal working range. For example, one or more flags can be set up where the controller 208 notifies an operator when a temperature reading from one or more temperature sensors 202 reaches 65° C., an indication of overheating, and 80° C., an indication of thermal runaway. On the cooler side, the controller can notify an operator when a temperature reading from a temperature sensor records a reading of −80° C., indicating a possible failure as a result of electrolyte freezing in the battery.

[0060] In response to the signal from the temperature sensor 202, the controller 208 can then instruct one or more temperature regulators 206 to regulate the temperature of the battery. As discussed above, the temperature regulators 206 can be one or more fans, one or more heating elements, and / or one or more thermoelectric converters, such as Peltier elements, to maintain the temperature of the battery within a workable range. The controller 208 can be any processing device known in the art. A typical example is, but is not limited to, a microprocessor. The processor can be communicatively coupled to a computer-readable medium, such as a memory device. The memory can be any storage device generally known in the art, including, but not limited to, RAM, computer-readable media, magnetic storage media, optical storage media, or other electronic storage media that can be used to store data and instructions accessed by the processor. The one or more processors of the controller can execute instructions stored in the ROM and / or RAM to regulate the temperature of the battery in response to the temperature signal from the temperature reader 204. The controller 208 forms part of the thermal management system 200 of the present invention and may therefore be included within the cassette or outside the cassette, for example within the body of the luggage handling device. For example, the thermal management system may comprise a communication module capable of communicating wirelessly over a network. The network may comprise a local area network (LAN), a wide area network (WAN), or any other type of network. Temperature signals and commands to regulate the temperature regulation device 208 may be sent wirelessly over the network to an externally located controller. The controller may be included with the vehicle body or, alternatively, may be separate from the vehicle body.In addition to the at least two charge-receiving terminals discussed above, there may be a third connection on the vehicle body communicatively coupled to the temperature reader 204 and the temperature regulator 206 for communicating and receiving signals related to the health of the battery, as well as communicating signals related to the temperature of the battery, as well as receiving signals from the controller 208 to operate the at least one temperature regulator 206. The controller may comprise a PID (proportional, integral, derivative) controller or a PI (proportional, integral) controller to regulate the temperature of the battery within a set temperature value by controlling the operation of the at least one temperature regulator.

[0061] In a first embodiment of the present invention, the controller 208 is configured to activate the temperature regulator 206 in response to the temperature signal from the temperature reader 204 being outside of the working temperature range. For example, if the temperature is high, the controller activates the operation of one or more cooling fans until the temperature of the battery drops within the working range. As discussed above, the controller can control the speed and direction of rotation of the fan to control the degree of cooling to the battery contained within the cassette. A heat sink can be used in combination with the fan to promote heat dissipation from the battery. Conversely, if the temperature of the battery is too low, the controller 208 can activate a heating element to increase the temperature of the battery. The controller can command the activation of multiple temperature regulators shown in FIG. 15 to regulate the temperature of the battery. These include, but are not limited to, one or more fans, heating elements, and / or one or more thermoelectric converters (Peltier elements). The controller can include a PID controller (proportional, integral, and derivative) to regulate the temperature of the battery to a predetermined set temperature value.

[0062] 15, the thermal management system 201 is shown to include a first temperature regulator 206 and a second temperature regulator 207. The first temperature regulator 206 may be a cooling fan and the second temperature regulator 207 may be a heating element. A controller 208 may regulate the temperature of the battery within an operable range by controlling the operation of one or more fans and / or heating elements.

[0063] FIG. 16 is an adaptation of a simplified block diagram of the thermal management system shown in FIG. 14 and FIG. 15, in which at least one temperature adjustment device of the thermal management system 300 comprises a Peltier element 306. In the particular embodiment shown in FIG. 16, the heat absorbing side 312 or cooling side of the Peltier element 306 is in direct contact with a rechargeable power source 314, e.g., a battery, such that heat generated by one or more battery cells of the battery is thermally conducted to the heat absorbing side of the Peltier element 306. The physical contact between the battery and the heat absorbing side of the Peltier element helps to keep the battery cool. In another embodiment of the invention, a conductive plate (not shown) can be disposed between the heat absorbing side 312 of the Peltier element 306 and the battery 314. The controller 308 is configured to control a Peltier driver 316 to drive the at least one Peltier element 306. The Peltier driver 316 can be a voltage source, a current source used to drive the at least one Peltier element or a connection to a power source of a battery or another power source. The cooling of the heat absorbing surface can be controlled by switching the power to the at least one Peltier element 306 on and off. As discussed above, the Peltier driver 316 can include a pulse wave modulator (PWM) to generate pulses of power to drive the at least one Peltier element 316 and thereby regulate the cooling of the heat absorbing surface. The duty cycle (the "on" time of the Peltier element) of the square wave generated by the PWM can be varied by the controller to vary the power to the at least one Peltier element. The longer the duty cycle, the greater the cooling effect of the heat absorbing surface, since the heat absorbing surface remains cool for a longer period of time and thus during the cooling of the battery. Similarly, the frequency of the square wave controls the number of "cooling bursts" from the Peltier element and therefore the cooling of the battery. The controller 308 can be instructed to vary the duty cycle and / or the frequency of the duty cycle of the signal from the PWM to regulate the temperature of the battery. The controller may include a PID or PI controller to vary the duty cycle and / or frequency of the signal from the PWM so that the temperature of the battery drops to within a predetermined set temperature value.

[0064] As heat is transferred from the heat absorbing side of the at least one Peltier element to the heat emitting side, heat may optionally be removed from the heat emitting side 310 by being placed in thermal contact with a heat sink. Additionally, the heat emitting side 310 of the at least one Peltier element may be disposed in the path of air blown by one or more fans, thus aiding the heat absorbing side of the at least one Peltier element to more efficiently cool the battery.

[0065] Not shown in FIG. 16 is that the polarity of the current through the at least one Peltier element can be reversed (the direction of the current is reversed) so that the heat absorbing side becomes the heat emitting side to cause warming of the battery. This is especially true in the refrigeration or freezer department of a procurement center. As with the heat absorbing side (cooling side), the controller controls the Peltier driver to adjust the current to the at least one Peltier element to adjust the heating of the battery. Reversing the direction of the current through the at least one Peltier element allows a single element to perform both cooling and heating of the battery in response to a temperature signal from a temperature reader. Switching the polarity of the at least one Peltier element can be accomplished using a relay or other suitable switch.

[0066] However, heating and cooling of the battery can be provided by two separate Peltier elements, a first Peltier element for cooling the battery and a second Peltier element for heating the battery. The advantage of having a first Peltier element and a second Peltier element for both heating and cooling the battery is that the effectiveness of heating or cooling at least one Peltier element can be improved by treating both sides of the Peltier element. In the case of cooling, the heat absorbing side can be improved by treating the heat emitting side to take heat away from the heat emitting side, e.g. a sink and / or a fan. Similarly, the heat emitting side, which warms the battery, can be improved by insulating the heat absorbing side.

[0067] The present invention can also utilize the Seebeck effect of the thermoelectric converter to determine the temperature of the battery. The current generated as a result of the temperature difference between the heat emitting side and the heat absorbing side of the thermoelectric converter can be used to determine the temperature of the battery, i.e., the temperature difference across the semiconductor. One side of the thermoelectric element can be exposed to the ambient temperature, and the opposing side of the thermoelectric converter can be in thermal contact with the battery. The temperature difference between the opposing sides of the thermoelectric converter generates a current at the junction of the thermoelectric converter, which is read by a temperature reader to determine the temperature of the battery.

[0068] Although certain embodiments of the present invention describe the thermal management system as integrated into a cassette housing the rechargeable power source, the temperature of the rechargeable power source can be controlled external to the cassette. In another embodiment of the present invention, the thermal management system can be integrated into the vehicle body of the luggage handling device. For example, the temperature sensor can include an infrared camera mounted within the vehicle body and configured to determine the temperature of the rechargeable power source by detecting infrared energy emitted from the rechargeable power source. Temperature readings from the infrared camera can be used by the controller to activate one or more temperature adjustment devices described above in response to the temperature signal being outside of a predetermined temperature range.

[0069] The thermal management system of the present invention can be powered by a rechargeable power source. Alternatively, the thermal management system of the present invention can be powered by power delivered by a charging station whenever the rechargeable power source of the luggage handling device is being charged at the charging station. Power to the thermal management system includes, but is not limited to, a temperature regulator and / or a temperature sensor and / or controller. The charging station includes a charging head configured to cooperate with a charging point on the luggage handling device. When the luggage handling device moves to a grid cell where the charging station is installed, contact is made between a charging contact pad on the upper surface of the luggage handling device and a charging contact of the charging head. An electric charge is applied from the charging contact to the luggage handling device through the charging contact pad mounted on the upper surface of the luggage handling device. During charging of the rechargeable power source, an electric charge is applied to the thermal management system of the present invention to power the components of the thermal management system. Typically, the charging station delivers an electric charge of about 160 amps at 48 volts. The likelihood of thermal runaway of a rechargeable power source is higher when the battery is charging than when the battery is discharging during operation of the baggage handling equipment on the grid structure. The internal resistance of the rechargeable power source, especially the battery, changes with temperature and increases at low temperatures. The likelihood of heating during battery charging increases in the refrigerated and / or frozen sections of the procurement center than in any other area of ​​the procurement center. In a worst case scenario, this would lead to thermal runaway and possible decomposition of battery components. The thermal management system of the present invention becomes more important during battery charging. During charging of the rechargeable power source at the charging station, the thermal management system of the present invention can be used to monitor the temperature status of the battery and activate one or more of the temperature adjustment devices if the temperature of the rechargeable power source falls outside of a predetermined temperature range. To conserve charge in the rechargeable power source, charge from the charging station can be used to deliver power to the thermal management system. Charge can be siphoned off from the charge delivered to the rechargeable power source.Alternatively, a separate charge collector with at least two (positive and negative) charge collector contacts that cooperate with corresponding charge providing contacts at the charging station to supply power to the thermal management system can be integrated on the vehicle body.

[0070] A combination of the different temperature regulators discussed above can be used to control the temperature of the rechargeable power source. For example, a Peltier element can be used in combination with one or more cooling fans. The one or more temperature sensors can be thermocouples or thermistors or other temperature sensors based on the semiconductor thermocouple Seebeck effect as generally known in the art or as discussed above. The temperature reader can be integrated into the controller where a voltage signal from the temperature sensor is interpreted by the controller to provide a temperature reading. Stability of baggage handling equipment When operating on a grid structure, the baggage handling device can reach speeds of up to 2m / s 2It can accelerate and reach a maximum speed of 4 m / s. Furthermore, the luggage handling device can change direction in both X and Y directions on the grid structure, which can sometimes be abrupt. It is therefore essential that the luggage handling device is stable on the grid structure, as the forces encountered during acceleration and changes of direction on the grid structure can cause the luggage handling device to topple. To increase the stability of the luggage handling device, the center of mass of the luggage handling device is kept as low as possible. There are various means in the art to achieve a low center of mass. These include increasing the footprint of the body of the luggage handling device beyond the dimensions of a single grid cell to extend into adjacent grid cells to place the batteries, which represents a large proportion of the weight of the luggage handling device to the side of the container receiving space. However, a problem with luggage handling devices whose footprint of the body of the luggage handling device occupies the space of a single grid cell of the grid structure (so-called single-cell luggage handling devices) is that the luggage handling device is relatively unstable on the grid structure. The problem of instability is exacerbated when the batteries become larger, as the center of mass is elevated, i.e., higher center of gravity. If the luggage handling device is affected by a gravitational field, the center of mass is equal to the center of gravity of the luggage handling device. Therefore, the locations of the center of mass and the center of gravity are equal.

[0071] In a particular embodiment of the invention relating to Figures 6-10 and Figures 17-19, the cassette 143 of the invention is positioned in the vehicle body 132 such that the center of mass 320 of the luggage handling apparatus (indicated by a dot in Figure 17) is in the space occupied by the cassette. For the purposes of the invention, the measurement of the center of mass is made relative to the center point of the vehicle body. In three dimensions, the center point of the luggage handling apparatus represented by the Cartesian coordinates X,Y,Z shown in Figures 17 and 18 is 0,0,0. The location of the center of mass is shown in Figure 18 as a small dot 320 along the intersection of two perpendicular planes that pass through the body of the luggage handling apparatus. As shown in Figure 17, for the purposes of the description of the invention, the Y direction runs vertically along the Y axis. The X and Z directions run transversely in a horizontal plane. The coordinate in the Y direction therefore determines the point whether the center of mass is above or below the first space - the first space being the container receiving space. The labelling of the X, Y and Z axes is shown in FIG. 17 but may be different, for example the Z axis may be the Y axis, in which case the coordinate in the Z direction determines the position of the centre of mass in the vertical direction.

[0072] In a particular embodiment of the invention, the cassette 143 housing the rechargeable power source is installed directly above the first space 152 for housing the container. By positioning the cassette directly above the first space 152 for housing the container, the center of mass 322 of the luggage handling device is in the second space 142b housing the cassette. Although not completely, the cassette is directly above the first space, improving the stability of the single cell luggage handling device operable on a grid structure. By positioning the battery directly above the first space, substantially centered between the opposing side walls of the vehicle body, the shift of the center of mass of the luggage handling device when it is carrying a payload becomes less dramatic.

[0073] Table 1 below shows the coordinates of the center of mass of the luggage handling device defined by the displacement of the center of mass from the center point of the luggage handling device. In a particular embodiment of the invention, the mass of the cassette containing the batteries is in the range of 30 kg to 35 kg. Position 1 in Table 1 represents the center of mass of the luggage handling device without the cassette. In a particular embodiment of the invention, the center of mass of the luggage handling device without the cassette is in the first space for storing the container. Thus, the luggage handling device is more stable without the cassette. The mass of the cassette when installed in the vehicle body raises the center of mass and therefore affects the stability of the luggage handling device, but the particular position of the cassette substantially in the middle between the opposing side walls of the vehicle body reduced this effect. In a particular embodiment of the invention, the cassette is installed substantially in the middle of the opposing side walls of the vehicle body and is mounted on a tray just above the first space described with reference to Figures 6 to 10. When the cassette is installed in the vehicle body, the location of the center of mass, indicated by the Y coordinate from positions 2 and 3 in Table 1, moves to the second space, i.e., into the second space just above the first space. The location of the center of mass moves down when the luggage handling device is carrying a payload, as indicated by position 4 in Table 1. In this case, the location of the center of mass moves to the first space, making the luggage handling device more stable on the grid structure. Thus, the center of mass of the luggage handling device changes between being in the second space and being in the first space depending on whether the luggage handling device is carrying a container with a payload or not. By locating the center of mass in the battery receiving space (second space), the stability of the luggage handling device is therefore determined by the location of the battery in the vehicle body. Placing the battery as low as possible in the vertical direction, determined by the Y coordinate, improves the stability of the luggage handling device on the grid structure. Since the first space is configured to house the container during operation of the load handling device within the storage system, in certain embodiments of the invention, the battery is positioned above and in close vertical proximity to the first space, i.e., directly above the first space. Movement or adjustment of the center of mass is minimized by locating the battery directly above the first space.This reduces the impact on the instability of the luggage handling equipment when mounting the battery within the vehicle body. In certain embodiments of the present invention, mounting the battery directly above the first space changes the center of mass to the second space, the battery receiving space.

[0074] To further improve the stability of the luggage handling apparatus on the grid structure, the luggage handling apparatus comprises a lower portion and an upper portion. The cassette is mounted in the upper portion of the luggage handling apparatus, and a wheel assembly comprising a first set and a second set of wheels is mounted in the lower portion of the luggage handling apparatus. The luggage handling apparatus 230 further comprises a chassis or frame comprising a weight 234 in the lower portion of the luggage handling apparatus. In a particular embodiment of the invention, the weight 234 is a wheel mounting plate. The first and second sets of wheels 134 are mounted to the wheel mounting plate 234 shown in FIG. 19. The wheel mounting plate 234 is fabricated such that the weight of the chassis or frame is concentrated towards the lower portion of the luggage handling apparatus. Although not shown in FIG. 19, the vehicle body comprises side panels attached to the chassis.

[0075] In a particular embodiment of the invention shown in FIG. 19, the wheel mounting plate 234 represents a separate part of the vehicle body 232 and comprises a heavy metal plate, for example by increasing the thickness of the material used to fabricate the wheel mounting plate and / or the type of material used. The wheel mounting plate 234 shown in FIG. 19 comprises a first pair and a second pair of opposing metal plates for mounting the first and second sets of wheels 134, 135, respectively. The weight of the wheel mounting plate is greater than the weight of the cassette 143 housing the rechargeable power source. By concentrating the weight of the luggage handling device 230 towards the lower part of the luggage handling device, for example at the base or bottom of the luggage handling device, the stability of the luggage handling device is improved, compensating for the weight of the cassette above the first space in the single cell luggage handling device.

[0076] Alternatively, the chassis or frame of the load handling apparatus comprises an upper portion and a lower portion. The cassette 143 is mounted in the upper portion of the chassis and the wheel assembly is mounted in the lower portion of the chassis. The mass of the chassis in the lower portion is greater than the mass of the chassis in the upper portion.

[0077] The stability of the luggage handling apparatus with respect to Figures 6-10 and Figures 17-19 is described for a cassette-accommodated rechargeable power source, but the same effect can be achieved when the rechargeable power source is installed solely above the first space such that the center of mass is within the second space, i.e., the second space is not limited to only housing a cassette, but may only be a rechargeable power source. As discussed above, the rechargeable power source may be a battery or a supercapacitor or both. Although the description describes a cassette, the battery alone may also represent a significant proportion of the weight of the luggage handling apparatus and thus affect the stability of the luggage handling apparatus when the footprint of the luggage handling apparatus occupies a single grid cell. Thus, having the center of mass within the second space for housing a cassette also applies when the second space is housed by a battery.

[0078] [Table 1]

[0079] Further aspects of the present invention may be described with reference to the following numbered clauses.

[0080] Clause 1. A load handling apparatus 30 for lifting and moving one or more stacked containers 10 within a storage system comprising a grid framework structure 14 supporting a plurality of tracks 22 arranged in a grid pattern to define a grid structure 15 above one or more stacks 12 of containers, the grid pattern comprising a plurality of grid cells 17, each of the one or more stacks of containers 12 being located within the footprint of only a single grid cell 17, the load handling apparatus 30 comprising: A) a drive mechanism operatively arranged to move the load handling equipment 30 on the grid structure 15; B) a vehicle body 132 having a footprint that, in use, substantially occupies only a single grid cell 17 within the storage system; and said vehicle body 132: i) a rechargeable power source 142 for powering the drive mechanism; ii) the first space 152 and the second space 142b are configured to house the container 10, and the rechargeable power source 142 is housed within the second space 142b; iii) a lifting device comprising a lifting drive assembly 140 and a gripping device 39 configured, in use, to releasably grip the container 10 and lift the container 10 from the stack 12 into the first space 152; Accommodates Equipped with Here, the rechargeable power source 142 is positioned above the first space 152 such that the center of mass of the luggage handling apparatus is within the second space 142b.

[0081] Clause 2. The luggage handling apparatus 30 of clause 1, wherein the centre of mass 320 of the luggage handling apparatus 30 deviates from the centre point of the luggage handling apparatus 30 by a range of -10mm to -13mm in the X direction, a range of 440mm to 490mm in the Y direction and a range of 4.5mm to 6mm in the Z direction.

[0082] Clause 3. The luggage handling apparatus 30 of clause 2, wherein the first space 152 houses the container 10 such that a centre of mass 320 of the luggage handling apparatus 30 is displaced away from a centre point of the luggage handling apparatus by -12mm to 13mm in the X direction, by 470mm to 475mm in the Y direction and by 5.0mm to 5.6mm in the Z direction.

[0083] Clause 4. The baggage handling apparatus 30 of clause 3, wherein the container 10 is equipped with a payload having a weight of approximately 35 kg such that the centre of mass 320 of the baggage handling apparatus is displaced away from a centre point of the baggage handling apparatus by -10 mm to 11 mm in the X direction, by 440 mm to 450 mm in the Y direction and by 4.5 mm to 5.0 mm in the Z direction.

[0084] Clause 5. The load handling apparatus 30 of any of clauses 1 to 4, wherein the rechargeable power source 142 displaces the center of gravity 320 of the load handling apparatus by 40mm to 45mm in the X direction, 50mm to 60mm in the Y direction, and 5mm to 7mm in the Z direction.

[0085] Clause 6. The luggage handling apparatus 30 of any of clauses 1 to 5, wherein the rechargeable power source 142 is mounted substantially centrally between a pair of opposing side walls 158 of the vehicle body 132.

[0086] Clause 7. The load handling apparatus 30 of clause 6, wherein the lifting apparatus comprises a first pair of spools 146 separately carrying the first pair of lifting tethers and a second pair of spools 148 separately carrying the second pair of lifting tethers, the first and second pairs of spools 146, 148 being driven by a lifting drive assembly 140 to raise or lower the gripping apparatus 39 relative to the vehicle body 132, and wherein the first pair of spools 146 are spaced from the second pair of spools 148 to define a second space 142b such that the rechargeable power source 142 is partially located between the first pair of spools 146 and the second pair of spools 148.

[0087] Clause 8. The load handling apparatus (30) of clause 7, wherein the rechargeable power supply (142) and the lifting drive assembly (140) are mounted in the same horizontal plane.

[0088] Clause 9. The load handling apparatus 30 of clauses 7 or 8, wherein the rechargeable power supply 142 and the lift drive assembly 140 are mounted on the tray 154.

[0089] Clause 10. The luggage handling apparatus 30 of any of clauses 1 to 9, wherein the second space 142b is accessible from outside the vehicle body 132 such that the rechargeable power source 142 is removable from outside the vehicle body.

[0090] Clause 11. The luggage handling apparatus (30) of clause 10, wherein the rechargeable power source (142) is removable from the vehicle body (132) by pulling from the first side of the rechargeable power source (142).

[0091] Clause 12. The load handling apparatus of clause 11, wherein the lifting drive assembly is mounted adjacent a second side of the rechargeable power source, the second side opposing the first side.

[0092] Clause 13. The baggage handling apparatus 30 of any of clauses 10 to 12, wherein the rechargeable power source 142 is mounted on the rail.

[0093] Clause 14. The load handling apparatus 30 of any of clauses 1 to 13, wherein the vehicle body 132 has walls on all sides and, in use, forms a quadrilateral footprint that occupies substantially only a single grid cell in the storage system.

[0094] Clause 15. The baggage handling apparatus 30 of any of clauses 1 to 14, wherein the drive assembly comprises a wheel assembly 134 comprising a first set of wheels 34 for moving the baggage handling apparatus 30 in a first direction and a second set of wheels 36 for moving the baggage handling apparatus 30 in a second direction.

[0095] Clause 16. The load handling apparatus 30 of clause 15, wherein the vehicle body 132 comprises a chassis having an upper portion and a lower portion, the rechargeable power source 142 is mounted within the upper portion and the wheel assembly 134 is mounted within the lower portion, and wherein a mass of the chassis within the lower portion of the chassis is greater than a mass of the chassis within the upper portion.

[0096] Clause 17. The load handling apparatus of clause 15, wherein the chassis comprises a wheel mounting plate, the wheel assembly is mounted to the wheel mounting plate, and the mass of the wheel mounting plate is greater than the mass of the rechargeable power source.

[0097] Clause 18. The load handling apparatus 30 of clause 17, wherein the wheel mounting plate 234 comprises a first pair of opposing plates and a second pair of opposing plates such that the first set of wheels 34 is mounted to the first pair of opposing plates and the second set of wheels 36 is mounted to the second set of opposing plates.

[0098] Clause 19. The load handling apparatus 30 of any of clauses 1 to 18, wherein the rechargeable power source 142 comprises a plurality of rechargeable power cells electrically connected to each other and housed within a case to define a cassette 143.

[0099] Clause 20. The baggage handling apparatus 30 of clause 19, wherein the rechargeable power cell comprises a battery cell.

[0100] Clause 21. A first set of tracks 22a and a second set of tracks 22b running transversely to the first set of tracks 22a in a substantially horizontal plane to form a grid pattern 15 having a plurality of grid spaces or grid cells 17; a plurality of stacks of containers 12 positioned under a first set of parallel tracks 22a and a second set of parallel tracks 22b, wherein each of the stacks of containers 12 occupies a single grid space or grid cell 17; a load handling device (30) according to any one of clauses 1 to 20 arranged to traverse along a first set (22a) of tracks and a second set (22b) of tracks over a plurality of grid spaces or grid cells (17) such that, when positioned above a stack of containers (12) occupying said grid spaces or grid cells (17), the lifting device is configured to lift at least one container (10) from said stack of containers (12); A storage system comprising: The following is a summary of the claims as originally filed: [1] A load handling apparatus (30) for lifting and moving one or more stacked containers (10) within a storage system comprising a grid framework structure (14) supporting a plurality of tracks arranged in a grid pattern to define a grid structure 15 above one or more stacks (12) of containers, said grid pattern comprising a plurality of grid cells (17), said load handling apparatus (30) comprising: A) a drive mechanism operatively arranged to move the load handling device (30) on the grid structure (15); B) i) a container receiving space (152) located above the track; ii) a lifting device comprising a lifting drive assembly (140) and a gripping device (39) configured, in use, to releasably grip a container (10) and lift said container (10) from said stack (12) and into said container receiving space (152); iii) a cassette (143) containing a rechargeable power source (142) for powering said drive mechanism; A vehicle body (132) that accommodates the above, Equipped with wherein the luggage handling equipment (30) is equipped with a thermal management system (200) having a temperature sensor (202) and at least one temperature adjustment device (206) configured to maintain the temperature of the rechargeable power source (142) within a predetermined temperature range in response to a signal from the temperature sensor (202). [2] The luggage handling apparatus (30) described in [1], wherein the at least one temperature adjustment device (206) is provided with at least one cooling fan. [3] The luggage handling device (30) described in [2], wherein the at least one cooling fan comprises a first cooling fan (164) for supplying cool air to the internal space of the cassette and a second cooling fan (166) for drawing warm air from the internal space of the cassette. [4] The luggage handling apparatus (30) of [2] or [3], wherein the thermal management system further comprises a heat sink thermally coupled to the rechargeable power source (142), the heat sink comprising a plurality of heat dissipation fins, and wherein the at least one cooling fan is configured to blow cool air across the heat dissipation fins. [5] A luggage handling apparatus (30) as described in any one of [1] to [4], wherein the cassette (143) is provided with one or more vents. [6] A luggage handling apparatus (30) as described in any of [1] to [5], wherein the temperature control device (206) is in proximity to the rechargeable power source (142) and comprises at least one heating element contained within the cassette (143). [7] A luggage handling apparatus (30) as described in any one of [1] to [6], wherein the at least one temperature adjustment device (206) comprises at least one thermoelectric device. [8] The luggage handling apparatus (30) described in [7], wherein the at least one thermoelectric device comprises at least one Peltier element (306) having a heat absorbing surface and a heat emitting surface facing each other. [9] The luggage handling apparatus (30) of [8], wherein the at least one Peltier element (306) is configured to selectively cool and / or heat the rechargeable power source (142) by switching polarity.

[10] The luggage handling device (30) of [8], wherein the at least one Peltier element (306) comprises a first Peltier element and a second Peltier element, the first Peltier element being positioned such that a heat absorbing surface of the first Peltier element is adjacent to a first portion of the rechargeable power source, and the second Peltier element being positioned such that the heat emitting surface is adjacent to a second portion of the rechargeable power source (142).

[11] A luggage handling device (30) as described in any of [8] to

[10] , wherein the heat radiating surface of the at least one Peltier element (306) is thermally coupled to a heat sink.

[12] The luggage handling apparatus (30) of

[11] , further comprising a fan configured to blow air onto the heat sink.

[13] A luggage handling device (30) as described in any one of [8] to

[12] , wherein the at least one Peltier element (306) is driven by a Peltier driver (316).

[14] The luggage handling apparatus (30) of

[13] , wherein the Peltier driver (316) comprises a pulse width modulator for regulating the current to the at least one Peltier element (306).

[15] The luggage handling apparatus (30) of any of [1] to

[14] , wherein the thermal management system (200) further comprises a controller (208) coupled to the temperature sensor (202) and the at least one temperature adjustment device (206), the controller (208) being configured to adjust the temperature reading of the temperature sensor (202) within the predetermined temperature range.

[16] A luggage handling apparatus (30) as described in any of [1] to

[15] , wherein the rechargeable power source (142) comprises at least one of a battery and / or a capacitor, each of the at least one battery and / or capacitor comprising a plurality of cells.

[17] a first set of tracks (22a) and a second set of tracks (22b) running transversely to the first set of tracks (22a) in a substantially horizontal plane to form a grid pattern (15) having a plurality of grid spaces or grid cells (17); a plurality of stacks (12) of containers positioned under said first set (22a) of tracks and said second set (22b) of tracks, wherein each of said stacks (12) of containers occupies a single grid space or grid cell; a load handling apparatus (30) according to any one of [1] to

[16] , arranged to traverse along the first set of tracks (22a) and the second set of tracks (22b) over a plurality of grid spaces or grid cells (17) such that, when positioned above a stack of containers (12) occupying said grid spaces or grid cells (17), said lifting apparatus is configured to lift at least one container (10) from the stack of containers (12); A storage system comprising:

Claims

1. 1. A load handling apparatus (30) for lifting and moving one or more stacked containers (10) within a storage system comprising a grid framework structure (14) supporting a plurality of tracks arranged in a grid pattern to define a grid structure (15) above one or more stacks (12) of containers, said grid pattern comprising a plurality of grid cells (17), said load handling apparatus (30) comprising: A) a drive mechanism operatively arranged to move the load handling device (30) on the grid structure (15); B) i) a container receiving space (152) located above said track; ii) a lifting device comprising a lifting drive assembly (140) and a gripping device (39) configured, in use, to releasably grip a container (10) and lift said container (10) from said stack (12) into said container receiving space (152); iii) a cassette (143) housing a rechargeable power source (142) for powering said drive mechanism, wherein said rechargeable power source comprises at least one battery comprising one or more battery cells; A vehicle body (132) that houses the above, Equipped with the luggage handling equipment (30) comprises a thermal management system (200) comprising a temperature sensor (202), at least one temperature adjustment device (206), and a controller (208), the controller (208) being coupled to the temperature sensor (202) and the at least one temperature adjustment device (206) and configured to maintain the temperature of the rechargeable power source (142) within a predetermined temperature range in response to a signal from the temperature sensor (202); 13. The luggage handling apparatus of claim 12, wherein the at least one temperature adjustment unit comprises at least one thermoelectric device, the at least one thermoelectric device comprising at least one Peltier element having opposing heat absorbing and heat emitting surfaces, wherein the heat absorbing surface or the heat emitting surface of the Peltier element is in thermal contact with the one or more battery cells of the rechargeable power source, the at least one Peltier element being driven by a Peltier driver comprising a pulse width modulator configured to generate pulses of power to drive the at least one Peltier element, and the controller configured to control the “pulsing” and / or duration of current through the at least one Peltier element to control the amount of heating and / or cooling of the heat emitting and heat absorbing surfaces.

2. The baggage handling equipment (30) of claim 1, wherein the at least one temperature adjustment device (206) comprises at least one cooling fan.

3. 3. The baggage handling apparatus (30) of claim 2, wherein the at least one cooling fan comprises a first cooling fan (164) for supplying cool air to an interior space of the cassette and a second cooling fan (166) for drawing warm air from the interior space of the cassette.

4. 4. The baggage handling apparatus (30) of claim 2 or 3, wherein the thermal management system further comprises a heat sink thermally coupled to the rechargeable power source (142), the heat sink comprising a plurality of heat dissipation fins, and wherein the at least one cooling fan is configured to blow cool air across the heat dissipation fins.

5. 5. A load handling apparatus (30) according to any one of claims 1 to 4, wherein the cassette (143) is provided with one or more vents.

6. 6. The baggage handling apparatus (30) of claim 1, wherein the temperature control device (206) comprises at least one heating element in the vicinity of the rechargeable power source (142) and contained within the cassette (143).

7. 7. The baggage handling device (30) of claim 1, wherein the at least one Peltier element (306) comprises a first Peltier element and a second Peltier element, the first Peltier element being positioned such that the heat absorbing surface of the first Peltier element is proximate to a first portion of the rechargeable power source, and the second Peltier element being positioned such that the heat emitting surface is proximate to a second portion of the rechargeable power source (142).

8. 8. The baggage handling apparatus (30) of claim 1, wherein the heat radiating surface of the at least one Peltier element (306) is thermally coupled to a heat sink.

9. 9. The baggage handling apparatus (30) of claim 8, further comprising a fan configured to blow air across the heat sink.

10. 10. The baggage handling apparatus (30) of claim 1, wherein the rechargeable power source (142) comprises at least one of a battery and / or a capacitor, each of the at least one of the batteries and / or capacitors comprising a plurality of cells.

11. 11. The luggage handling device (30) of claim 10, further comprising an airflow channel incorporated into the cassette, the cassette configured to allow airflow to be directed through a serpentine path around a plurality of cells of the battery.

12. a first set of tracks (22a) and a second set of tracks (22b) running transversely to the first set of tracks (22a) in a substantially horizontal plane to form a grid pattern (15) comprising a plurality of grid spaces or grid cells (17); a plurality of stacks of containers (12) positioned under said first set of tracks (22a) and said second set of tracks (22b), wherein each of said stacks of containers (12) occupies a single grid space or grid cell; a load handling apparatus (30) according to any one of claims 1 to 11, arranged to traverse along the first set of tracks (22a) and the second set of tracks (22b) over a plurality of grid spaces or grid cells (17) such that, when positioned above a stack of containers (12) occupying said grid spaces or grid cells (17), said lifting apparatus is configured to lift at least one container (10) from the stack of containers (12); A storage system comprising:

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