The invention relates generally to an apparatus for refrigerated shipping, and more particularly to containers for keeping product at cryogenic temperatures during transportation of said product.
There is a multitude of circumstances which necessitate the use of a temperature controlled container. One of the primary applications is the transportation of goods that require refrigerated or cryogenic temperatures during transit from one place to another. Certain items are in demand far from areas where the items are manufactured or processed. These items require transportation to the site where the items will be used or purchased. If the items are perishable, refrigerating or freezing the item during their transport becomes necessary. These items can include food items, medical items, industrial chemicals that require a cool ambient temperature, and other various perishable goods. There is a need to ship these items in a temperature controlled environment so when the goods reach their destination they maintain their original properties as packaged. Not all items shipped require the same temperature during shipping. Further, there is a need to be able to ship these items within various temperature ranges inside the same container.
Additional objects, advantages and novel features of the invention will be set forth in part in the description which follows; and in part will become apparent to those skilled in the art upon examination of the following; or may be learned by practice of the invention. The objects and advantages of the invention may be realized and attained by means of the instrumentalities and combinations particularly pointed out in the appended claims.
The active cryo container accommodates combination freezer/refrigerator transport. The current invention contains multiple storage areas. Each storage area is capable of maintaining product at a refrigerated or cryogenic temperature independent of the temperature needs of the adjacent material storage sections.
The control system on board the active cryo container monitors and controls each individual material storage section inside the container. If the temperature moves outside user programmed limits, the control system activates a circulating fan associated with the chamber that has moved out of thermal tolerance. When temperatures go back to acceptable levels, the fan is deactivated. The container is constantly monitored and controlled in this manner while the system is active. If the temperature in at least one material storage section goes above preset limits, an alarm will emit a sound informing a user that temperature limits are out of control for the active cryo container. A visual alert can also be emitted if temperature limits are exceeded.
In one embodiment, a battery provides the power needed to run the control system interface. In another embodiment, the active cryo container can have its power supplied from a vehicle's onboard 12 volt power supply. Additionally at least one battery 52 is a removable and rechargeable battery that has the option of being removed to allow simple charging.
A bunker section and the various material storage sections are divided by divider walls. Upon the activation of a circulating fan, cooling air is displaced from the bunker section to various material storage sections depending on thermal needs. This is accomplished by a circulating fan moving the warmer air internal to material storage sections down to bunker section 28.
The bunker section contains a cooling vector material. In the preferred embodiment, this cooling vector material is solid dry ice. Solid dry ice cools the ambient air encompassing it, therefore reducing the temperature in said bunker section. When the circulating fan blows air into the bunker section from the material storage sections through a duct, the air cooled by said dry ice in said bunker section is displaced up to said material storage sections. The actuation of this fan is controlled by said control system when it senses the temperature internal to said material storage sections has gone above preset values.
The purpose of the foregoing Abstract is to enable the public, and especially the scientists, engineers, and practitioners in the art who are not familiar with patent or legal terms or phraseology, to determine quickly from a cursory inspection, the nature and essence of the technical disclosure of the application. The Abstract is neither intended to define the invention of the application, which is measured by the claims, nor is it intended to be limiting as to the scope of the invention in any way.
Still other features and advantages of the present invention will become readily apparent to those skilled in this art from the following detailed description describing preferred embodiments of the invention, simply by way of illustration of the best mode contemplated by carrying out my invention. As will be realized, the invention is capable of modification in various obvious respects all without departing from the invention. Accordingly, the drawings and description of the preferred embodiments are to be regarded as illustrative in nature, and not as restrictive in nature.
While the invention is susceptible of various modifications and alternative constructions, certain illustrated embodiments thereof have been shown in the drawings and will be described below in detail. It should be understood, however, that there is no intention to limit the invention to the specific form disclosed, but, on the contrary, the invention is to cover all modifications, alternative constructions, and equivalents falling within the spirit and scope of the invention as defined in the claims.
The active cryo container accommodates combination freezer/refrigerator transport. The container itself is manufactured with a rugged exterior shell to protect from physical hazards that may arise during transportation. Further, all hardware and control systems are recessed to eliminate damage during loading and transit.
The current invention contains multiple storage areas. Each storage area is capable of maintaining product at a refrigerated or cryogenic temperature independent of the temperature needs of the adjacent material storage sections. Insulated divider walls can be placed into different positions accommodating varying cargo requirements. A divider wall can also be placed on top of the bunker section allowing the entire unit to be used as either refrigerator or freezer depending on temperature requirements.
The control system on board the active cryo container monitors and controls each individual material storage section inside the container. If temperatures move outside user programmed limits, the control system activates circulating fan associated with the chamber that has moved out of thermal tolerance. When temperatures go back to acceptable levels, the fan is deactivated.
A multiple storage section temperature control system allows the unit to transport products at different temperatures. Systems are programmable to maintain various temperatures from ambient to as cold as −109° F. Built in visual and audible alarms alert users of temperatures that fall outside set ranges. In one embodiment, the control system is powered by a removable and rechargeable battery that has the option of being removed to allow simple charging.
In the following description and in the figures, like elements are identified with like reference numerals. The use of “or” indicates a non-exclusive alternative without limitation unless otherwise noted. The use of “including” means “including, but not limited to,” unless otherwise noted.
If the temperature in at least one material storage section 24 goes above preset limits, alarm speaker 54 will emit a sound informing a user that temperature limits are out of control for the active cryo container. A visual alert will also be displayed if temperature limits are exceeded. Further, said control system is configured to display to the user which material storage section 24 has gone above preset temperature limits. In an embodiment, at least one battery 52 provides the power needed to run control system interface 48. In another embodiment, the active cryo container can have its power supplied from a vehicle's on board 12 volt power supply. Additionally at least one battery 52 is a removable and rechargeable battery that has the option of being removed to allow simple charging.
Internal to rigid foam 44 is duct 40. In duct 40, circulating fan 36 can be seen. In the embodiment shown, circulating fan 36 is a squirrel cage style fan. Upon the activation of circulating fan 36, cooling air is displaced from bumper section 28 to various material storage sections 24. This is accomplished by circulating fan 36 moving the warmer air internal to material storage sections 24 down to bunker section 28.
Bunker section 28 in an embodiment contains a cooling vector material. In this case, this cooling vector material is solid dry ice. Solid dry ice cools the ambient air encompassing it, therefore reducing the temperature in bunker section 28. When circulating fan 36 blows air to bunker section 28 from material storage sections 24 through duct 40, the air cooled by the dry ice in bunker section 28 is displaced up to material storage sections 24. The actuation of this fan is controlled by control system 48 when it senses the temperature internal to material storage sections 24 has gone above preset values previously established. When the internal temperature to material storage sections 24 comes within the preset values, control system 48 will deactivate circulating fan 36, in turn ceasing the transfer of cooling air from bunker section 28 to material storage section 24. Control system 48 uses thermal sensor 60 to determine temperature levels in said material storage sections 24.
Control system 48 continues to monitor the internal temperature of storage sections 24; when, again, the temperature goes above a present limit, control system 48 will activate circulating fan 36, once again cooling off material storage sections 24. In another embodiment, multiple ducts 40 and cooling fans 36 can be assigned to various material storage sections 24 to control each individual material storage section independent of each other. Therefore, multiple material storage sections can be assigned multiple temperature values in which control system 48 will continue to monitor and keep within temperature limits through the activation and deactivation of each assigned circulating fan 36 to the individual material storage sections 24.
In an embodiment, all ducting fans and control systems and power requirements are mounted inside zero-clearance door 18. This allows for rapid repair should a system malfunction as to the door just needs to be replaced to rectify the malfunction.
The exemplary embodiments shown in the figures and described above illustrate but do not limit the invention. It should be understood that there is no intention to limit the invention to the specific form disclosed; rather, the invention is to cover all modifications, alternative constructions, and equivalents falling within the spirit and scope of the invention as defined in the claims. Hence, the foregoing description should not be construed to limit the scope of the invention, which is defined in the following claims.
While there is shown and described the present preferred embodiment of the invention, it is to be distinctly understood that this invention is not limited thereto but may be variously embodied to practice within the scope of the following claims. From the foregoing description, it will be apparent that various changes may be made without departing from the spirit and scope of the invention as defined by the following claims.