Apparatus and method for roasting and discharging coffee beans
The coffee bean roasting apparatus addresses inefficiencies and safety concerns by using a movable sidewall discharge port to efficiently propel beans out with minimal energy, facilitating safe and easy further processing.
Patent Information
- Application Number
- JP2022580116
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-07-24
- Filing Date
- 2021-06-24
- Publication Date
- 2026-01-08
- Estimated Expiration
- 2041-06-24
AI Technical Summary
Existing coffee bean roasting systems require manual handling of roasted beans, which is inefficient and poses safety risks due to the hot nature of the beans, and automating their removal is difficult due to the weight and agitation caused by airflow.
A coffee bean roasting apparatus with a sidewall discharge port that is movable between closed and open positions, allowing beans to be propelled out by airflow without increasing airflow velocity or pressure, positioned lower than the top to minimize energy use, and optionally automated or manually operated.
The apparatus efficiently discharges roasted beans with reduced energy consumption, optimizing size and safety, enabling easy further processing without direct handling, and reducing the risk of injury.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an apparatus for roasting coffee beans, a system comprising such an apparatus, and a method for discharging coffee beans. [Background technology]
[0002] Roasting coffee beans transforms unroasted coffee beans into roasted coffee beans. Unroasted coffee beans are typically green and / or dried coffee beans, while roasted coffee beans contribute, inter alia, to the flavor of a coffee beverage prepared from (ground) roasted coffee beans. Coffee bean roasting can be large-scale, but also small-scale. In small-scale coffee bean roasting, a customer-facing business (store, coffee shop, etc.) or a customer, e.g., a coffee beverage consumer, roasts the coffee beans. Consumer coffee bean roasting is of great interest because consumers can roast coffee beans at home, for example, as a hobby, to try different flavor profiles and to ensure that the coffee beans are particularly freshly roasted.
[0003] Once the roasting of coffee beans is complete, the roasted coffee beans need to be provided for further processing, such as grinding and / or preparing a coffee beverage (e.g., coffee extraction). Removal of the roasted coffee beans is typically done manually. However, this is undesirable because a user manually handling the roasted coffee beans may be injured by touching hot parts of the machine and / or the (hot) roasted coffee beans. Furthermore, manual handling of roasted coffee beans is not very efficient, as the user must remove the coffee beans from the coffee roasting machine and manually load the roasted coffee beans into further equipment, such as a coffee grinder and / or coffee beverage machine, for further processing.
[0004] Removal of the roasted coffee beans from the apparatus may be performed automatically. However, due to the relatively large weight of each roasted coffee bean (e.g., compared to ground coffee in powder form), a certain amount of energy is required to propel the coffee beans and thereby remove them from the chamber. Furthermore, automating the removal of the roasted coffee beans is very difficult, especially because the airflow for roasting and / or cooling the coffee beans agitates the coffee beans inside the apparatus.
[0005] It is therefore an object of the present invention to provide an apparatus and method that overcomes the above-mentioned drawbacks, i.e., in particular, to provide consumers with a more efficient and convenient roasting of coffee beans, especially when the roasted coffee beans require further processing.
[0006] These and other objects that will become apparent on reading the following description are solved by the subject matter of the independent claims. The dependent claims refer to preferred embodiments of the invention. Summary of the Invention
[0007] According to a first aspect of the present invention, there is provided an apparatus for roasting coffee beans. The apparatus includes a chamber in which coffee beans can be received for roasting, and a device for generating an airflow to agitate the coffee beans received by the chamber. The chamber is defined by a bottom, a top, and a sidewall extending from the bottom to the top, the sidewall including a discharge (or ejection) port selectively movable between a closed position and an open position, such that when the ejection port is in the open position, the airflow generated by the device can propel the coffee beans through the ejection port to eject (i.e., eject) them from the chamber.
[0008] Thus, the device specifically facilitates operating only the discharge port to release (or expel) the roasted coffee beans from the chamber (and thus from the device). The discharge port therefore functions as a "trap door." In other words, therefore, it may not be necessary to change the airflow generated by the device to release the roasted coffee beans from the chamber. Specifically, the device therefore does not need to operate to increase the velocity and / or pressure of the airflow (e.g., airflow for roasting and / or cooling) to release the roasted coffee beans from the chamber. Furthermore, because the discharge port is not located at the top but (at least partially) on the sidewall, less potential energy is used to transport the roasted coffee beans vertically to the discharge port to release them from the chamber. The sidewall on which the discharge port is located further ensures that, when the discharge port is in the open position, the coffee beans propelled by the airflow can move along the sidewall to the discharge port and then be released from the chamber.
[0009] In short, as a result, the apparatus can operate with less power or energy, particularly for releasing the roasted coffee beans. Therefore, the device (e.g., fan) that generates the airflow in the chamber can be made smaller, which in turn eliminates the need to enlarge the device or its motor. The overall size of the apparatus can also be optimized, thereby making the apparatus (or machine) more compact. Furthermore, the apparatus provides a convenient solution for the user to easily release the roasted coffee beans for further processing, particularly without having to directly touch the roasted coffee beans and / or without colliding with or interfering with the optionally provided temperature sensor. Therefore, the risk of the user's hands coming into contact with hot parts of the apparatus is also reduced.
[0010] The discharge port may be located closer to the bottom than the top, and therefore requires particularly little energy to discharge the coffee beans from the chamber, as the beans do not need as much potential energy to move vertically to be discharged from the chamber.
[0011] Additionally or alternatively, the discharge port is positioned a distance from the bottom that is in the range of 0% to 5%, 5% to 10%, 10% to 20%, 20% to 30%, 30% to 40%, 40% to 50%, 50% to 60%, 60% to 70%, or 70% to 80% of the height of the chamber, where the height of the chamber is from the bottom to the top of the chamber. Therefore, particularly little energy is required to discharge the coffee beans from the chamber, as they do not need much potential energy to move vertically in order to be discharged from the chamber.
[0012] The discharge port may be manually movable between a closed position and an open position. Thus, a user can move the discharge port between the closed and open positions using only the muscles of the user's hand, for example. Furthermore, movement of the discharge port between the closed and open positions does not therefore need to depend on the availability of electrical components (e.g., a drive unit) and / or power. Thus, the discharge port also facilitates simplified maintenance of the device.
[0013] Additionally or alternatively, the device may include a drive unit (e.g., an (electric) motor) configured to move the discharge port between the closed position and the open position. Thus, the user does not need to use his or her muscle strength to move the discharge port between the closed position and the open position. Thus, the discharge port can be moved very easily between the closed position and the open position. In addition, the drive unit facilitates enabling automation of the movement of the discharge port between the closed position and the open position.
[0014] The discharge port may be slidably movable to move the discharge port between a closed position and an open position, whereby by sliding the discharge port the discharge port can be configured so that it does not protrude from the side wall, making the device particularly compact.
[0015] Additionally or alternatively, the discharge port may be pivotally movable to move the discharge port between the closed and open positions. Thus, the discharge port may be movable about an axis of rotational movement, which may extend vertically or horizontally. Thus, the discharge port may be easily moved between the closed and open positions.
[0016] The sidewall may be movable, for example pivotally movable, to move the discharge port between a closed position and an open position. For example, a part of the discharge port, e.g., a cover element, is stationary, and the sidewall includes an opening, whereby moving the sidewall moves the opening relative to the cover element. The cover element may then completely cover this opening in the closed position, and in the open position, the sidewall is moved so that the opening is at least partially uncovered, whereby coffee beans can be propelled through the opening and discharged from the chamber. Since the sidewall is typically larger than the discharge port, particularly with respect to the contact surface for moving the corresponding part, moving the discharge port between the closed and open positions, for example manually or by a drive unit (see above), is simplified. Of course, in other examples, a part of the discharge port, e.g., the cover element, moves, and the sidewall is stationary. Furthermore, both a part of the discharge port (e.g., the cover element) and the sidewall (e.g., the opening) may move relative to each other to move the discharge port between the open and closed positions.
[0017] The device may be adapted to generate a heated airflow to roast coffee beans received by the chamber. In other words, the airflow generated by the device can carry heat that is transferred to the coffee beans to roast them, i.e., to bring about a chemical reaction for (roasting) the coffee beans. The apparatus may comprise a heater for heating air, whereby the so heated air is blown by the device into the chamber to generate the heated airflow. Thus, the apparatus is very easily controllable to selectively supply a heated airflow for roasting the coffee beans. In particular, the heater may be located downstream with respect to the airflow generated by the device.
[0018] Additionally or essentially, the device may be adapted to generate an airflow for cooling the coffee beans received by the chamber. For example, the device conveys unheated (ambient fresh) air into the chamber to generate an airflow for cooling the coffee beans. The airflow then contacts the (already roasted) coffee beans, thereby transferring heat from the coffee beans to the airflow, thereby cooling the coffee beans. For example, the heater may simply be stopped or turned off to generate an airflow for cooling the coffee beans.
[0019] The device may comprise a control unit for switching the device between a roasting mode and a discharging mode, wherein in the roasting mode the discharge port is in a closed position and in the discharging mode the discharge port is in an open position. Thus, the control unit facilitates that the device may automatically switch between the roasting mode and the discharging mode, for example, after a certain time for roasting the coffee beans has elapsed. Thus, roasting the coffee beans and discharging the coffee beans is simplified.
[0020] In the roasting mode, the apparatus may be configured to roast coffee beans received by the chamber, for example, by the device generating a heated airflow within the chamber.
[0021] In the discharge mode, the apparatus may be configured to use the airflow generated by the device to propel the coffee beans through the discharge port and out of the chamber, for example the same airflow used in the roast mode may be used in the discharge mode to propel the coffee beans through the discharge port and out of the chamber.
[0022] At least the cross section of the side wall comprising the discharge port may have an at least partially circular or elliptical shape. This cross-sectional shape is very advantageous for propelling the coffee beans along the side wall and subsequently to the discharge port in order to discharge them from the chamber. The coffee beans then discharged through the discharge port can then move in a direction tangential to the shape of the cross section. For example, a portion of the circular or elliptical cross section merges continuously with the discharge port, in particular with the opening of the discharge port. Preferably, said cross section has a closed circular or elliptical shape.
[0023] The bottom may include an air inlet through which the device is configured to blow air to create an air flow inside the chamber, thus allowing the device to be positioned very effectively within the apparatus.
[0024] The top of the chamber may be provided with an outlet that is selectively movable between a closed position and an open position, and in the open position, the outlet allows air and / or coffee chaff to be discharged from the chamber. In other words, the outlet can function as a ventilation section for the chamber. By moving this outlet to the closed position, it is possible to very easily strengthen a portion of the air flow for propelling the coffee beans through the discharge port without strengthening the (total) flow of air generated by the device. That is, the portion of the air flow for discharging air and / or chaff from the chamber can be very easily redirected to discharge the coffee beans through the discharge port.
[0025] The apparatus may further comprise a chaff collector configured to collect coffee bean chaff, for example via the outlet, the apparatus preferably being adapted to propel the chaff into the chaff collector using an airflow. As it is desirable for the roasted coffee beans to be discharged from the chamber without any chaff, the chaff collector provides an easy means of separating the chaff from the roasted coffee beans and collecting the chaff. The chaff collector may then be removed or detached from the apparatus, and the chaff may then be removed from the chaff collector and, for example, disposed of in a trash bin or used for other chaff disposal.
[0026] The device may be a home appliance device. Thus, the device may be designed for use in a home kitchen, for example, placed next to a coffee grinder and / or a beverage preparation machine. In other words, the device may be a home solution for coffee roasting.
[0027] According to a second aspect of the present invention there is provided a system comprising the apparatus as described above and a further apparatus operatively connected to the apparatus for processing coffee beans discharged from the apparatus through the discharge port.
[0028] The system thus facilitates that the user of the system does not have to manually, in particular with his hands, handle the coffee beans from the device to be used in the further device. Thus, the user of the system can very easily roast coffee beans and further process the coffee beans so roasted. For example, the system may be a home appliance device and / or may be provided as a (single) unit.
[0029] The further apparatus may include (or may be) a grinder for grinding (roasted) coffee beans. The grinder thus converts the roasted coffee beans into ground coffee (e.g., in powder form), which can then be used to prepare a coffee beverage by coffee extraction. Additionally or alternatively, the further apparatus may include (or may be) a beverage preparation machine for preparing a beverage from the coffee beans, e.g., by coffee extraction. For example, if a grinder is present, the beverage preparation machine may be operatively connected to the grinder for preparing a coffee beverage from the ground coffee. The grinder and the beverage preparation machine may be provided as a unit and / or formed integrally.
[0030] According to a third aspect of the present invention, there is provided a method for discharging coffee beans from a chamber in which coffee beans are received for roasting, the chamber being defined by a bottom, a top, and a sidewall extending from the bottom to the top. The method includes generating an airflow to agitate and preferably roast or cool the coffee beans received by the chamber, and moving a discharge port located in or on the sidewall of the chamber to an open position so that the airflow discharges the coffee beans from the chamber through the discharge port.
[0031] The descriptions and advantages of the apparatus apply equally to the method. In particular, the method results in only having to operate the discharge port to discharge the (roasted) coffee beans from the chamber, i.e. there is no particular need to vary the velocity or pressure of the airflow to propel the coffee beans out of the chamber. [Brief explanation of the drawings]
[0032] The present invention will now be described, by way of example only, with reference to the accompanying drawings in which:
[0033] [Figure 1] 1 is a schematic perspective view of an apparatus according to a preferred embodiment of the present invention; [Figure 2]2 is a schematic perspective view of a different device according to the preferred embodiment shown in FIG. 1, with parts of the device omitted to show the chamber and the discharge port in a different position. [Figure 3] 2 is a schematic perspective view of a different device according to the preferred embodiment shown in FIG. 1, with parts of the device omitted to show the chamber and the discharge port in a different position. [Figure 4] 2 is a schematic perspective view of a different device according to the preferred embodiment shown in FIG. 1, with parts of the device omitted to show the chamber and the discharge port in a different position. [Figure 5] 2 is a schematic perspective view of a different device according to the preferred embodiment shown in FIG. 1, with parts of the device omitted to show the chamber and the discharge port in a different position. [Figure 6] 2 is a schematic perspective view of a different device according to the preferred embodiment shown in FIG. 1, with parts of the device omitted to show the chamber and the discharge port in a different position. [Figure 7] 2 is a schematic perspective view of a different device according to the preferred embodiment shown in FIG. 1, with parts of the device omitted to show the chamber and the discharge port in a different position. [Figure 8] 2 is a schematic perspective view of a different device according to the preferred embodiment shown in FIG. 1, with parts of the device omitted to show the chamber and the discharge port in a different position. [Figure 9] 2 is a schematic perspective view of a different device according to the preferred embodiment shown in FIG. 1, with parts of the device omitted to show the chamber and the discharge port in a different position. [Figure 10] 2 is a schematic perspective view of a different embodiment of the device shown in FIG. 1, showing the top of the device in an enlarged view. [Figure 11]2 is a schematic perspective view of a different embodiment of the device shown in FIG. 1, showing the top of the device in an enlarged view. [Figure 12] 2 is a schematic perspective view of the apparatus according to the preferred embodiment shown in FIG. 1, further comprising a chaff collector; [Figure 13] 1 is a schematic perspective view of an apparatus according to a further preferred embodiment of the present invention; [Figure 14] 1 is a schematic perspective view of a system according to a preferred embodiment of the present invention; [Figure 15] 15 is a schematic perspective cross-sectional view (along a horizontal section) of a system according to the preferred embodiment shown in FIG. 14, in particular to illustrate the functional connections between the device and further devices. [Figure 16] 15 is a schematic perspective cross-sectional view (along a vertical cross section) of the system according to the preferred embodiment shown in FIG. 14. [Figure 17] 1 is a schematic perspective view of an exemplary mechanism for a device according to a preferred embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0034] 1 to 13 exemplarily show a preferred embodiment of the apparatus 1. The apparatus 1 is adapted to roast coffee beans. More specifically, the apparatus 1 is adapted to transform unroasted coffee beans, for example, in the form of green coffee beans and / or dried coffee beans, into roasted coffee beans. More specifically, roasting the coffee beans changes the chemical and physical properties of the unroasted coffee beans to produce the characteristic flavor of the roasted coffee beans and, consequently, the characteristic flavor of a coffee beverage prepared from the roasted coffee beans. That is, roasting the coffee beans results in the specific taste of the roasted coffee beans, for example, through the Maillard reaction and other chemical reactions. Therefore, the process of roasting the coffee beans precedes other processes necessary for preparing a coffee beverage, such as coffee grinding and / or coffee brewing.
[0035] The exemplary illustrated device 1 is adapted for small-scale coffee roasting and is therefore not specifically a large-scale (industrial) roaster or roasting machine. Device 1 is therefore particularly suitable for use in business-to-customer (e.g., coffee shops) and / or at the customer's end, who is typically a consumer of coffee drinks. Device 1 is therefore preferably a household appliance. Device 1 can thus be used in the home or kitchen, particularly on a countertop, for example, next to or (functionally) integrated into a coffee grinder and / or beverage preparation machine. Device 1 therefore has a size and weight that allows it to be carried by preferably one person, particularly without the need for a dedicated transport mechanism.
[0036] The apparatus 1 comprises a chamber 10 capable of receiving coffee beans therein for roasting. For example, the chamber 10 is defined by a bottom 11, a top 12, and a sidewall 13 extending from the bottom 11 to the top 12. Thus, when coffee beans are received by the chamber 10, the coffee beans are preferably supported on the bottom 11 and at least partially in contact with the sidewall 13. The chamber 10 has a design that allows heat and / or heated air to come into contact with the coffee (unroasted) beans in order to roast them. For example, the bottom 11 and / or the sidewall 13 are made of a material with a relatively high thermal conductivity, such as a material containing or consisting of a metal. The bottom 11 and / or the sidewall 13 may be provided with a plurality of holes, which facilitate the flow of heat and / or air (for heating and / or cooling) into the chamber 10 and the processing of the coffee beans accordingly.
[0037] The top 12 may preferably be defined by the distal end of the sidewall 13 and / or may be located opposite the bottom 11. For example, the top 12 may extend in a plane. The top 12 may comprise or be an opening for accessing the chamber 10. In this manner, coffee beans can be removed from and / or added to the chamber 10 via the top 12, i.e., the chamber 10 can be filled with coffee beans via the top 12. The chamber 10 may additionally or alternatively be filled with coffee beans via openings, for example, located in the sidewall 13 and / or the bottom 11. For example, the apparatus 1 may be adapted to be operatively connected to a hopper that contains unroasted coffee beans, i.e., green and / or dried coffee beans. The unroasted coffee beans may then move from the hopper, e.g., an opening, into the chamber 10 to be received in the chamber 10 for roasting. For example, the hopper may be arranged such that the unroasted coffee beans move from the hopper into the chamber 10 by gravity alone.
[0038] Chamber 10 may be removably attached to device 1, for example, by form and / or friction fit. For example, device 1 may comprise a container, which comprises chamber 10 such that chamber 10 is removably attached to device 1. For example, the container may comprise a handle for manually handling the container, and thus chamber 10, for example, to remove chamber 10 from device 1 and / or to attach chamber 10 to device 1.
[0039] As is particularly apparent from FIG. 1 , the device 1 may include a housing 20 for housing at least the chamber 10. For example, the housing 20 has a base 21 and a top 22, and the chamber 10 is configured such that the top 12 (of the chamber 10) is disposed on or is the top 22 of the housing 20. Thus, the top 12 is preferably flush with the top 22 defined by the distal end of the housing 20. The housing 20 may also include a sidewall 23 extending from the bottom 21 to the top 22 and preferably circumferentially surrounding the chamber 10. The housing 20 is not limited to a particular shape. The housing 20 may have an asymmetric or symmetric shape. For example, the housing 20 has a substantially cylindrical or (frusto)conical shape.
[0040] As is clear from FIG. 1 , the housing 20 may be divided, i.e., provided in several parts. For example, the housing 20 comprises a lower part 24 and an upper part 25. The upper part 25 is preferably detachably attached to the lower part 24, for example by foam and / or friction fit. The upper part 25 preferably houses at least a portion of the chamber 10 and / or comprises the top part 22. For example, the upper part 25 and the chamber 10 are arranged concentrically. The lower part 24 may house at least a portion of the chamber 10 and / or comprise the bottom part 21 of the housing 20. The lower part 24 may house components for roasting coffee beans within the chamber, such as an (air-generating) device and / or a heater (see below). That is, the lower part 24 may be a roaster. The lower part 24 and the upper part 25 may have the same cross-section. In this manner, the lower portion 24 and the upper portion 25 may form a geometric (symmetrical) form, such as, for example, a cylinder, when the portions 24, 25 are assembled together. The housing 20, and in particular the side wall 23, may comprise a plurality of air vents, for example, evenly distributed across the side wall 23. The air vents serve to cool the components housed by the housing 20. The air vents therefore particularly aid in transferring heat from the chamber 10, thereby cooling the chamber 10. Preferably, the lower portion 24 forms the bottom or support of the device 1. The lower portion 24 may thus be designed to allow the device 1 to be placed on a surface (such as a tabletop) and / or to be positioned relative to or on a beverage preparation machine. Preferably, the bottom 21 is adapted to be placed on a surface such as a tabletop and / or may be configured to be attached (e.g., attached by form and / or friction fit, etc.) to or on a further device, such as a grinder and / or a beverage preparation machine.
[0041] The apparatus 1 further comprises a device (not shown) for generating an air flow inside the chamber 10 in order to agitate the coffee beans received by the chamber 10. In particular, the device may be a fan and / or the device may be adapted to generate an air flow inside the chamber 10 using fluidized bed technology. For example, the coffee beans may be moved by the device (not shown) so that they do not move against the side walls of the chamber. 13 Towards the side wall 13 , and optionally towards the top 12 of the chamber. Agitating the coffee beans in the chamber 10 may be advantageous, in particular for improving the roasting and / or cooling of the coffee beans. The device may be adapted to generate a heated air flow to roast the coffee beans received by the chamber 10. For example, the apparatus 1 or the (air flow generating) device may further comprise a heater that heats (fresh) air, and the device conveys or blows this heated air into the chamber 10. Thus, the (hot) air flow comes into contact with the coffee beans, thereby causing a chemical and / or physical reaction to roast the coffee beans. Additionally or alternatively, the device may be adapted to generate an air flow to cool the (already roasted) coffee beans received by the chamber 10. For example, to cool the coffee beans, the air flow generated by the device is not heated (e.g., by simply controlling the heater to be stopped or turned off), whereby, for example, only (fresh) air, e.g., ambient air, is blown into the chamber 10.
[0042] The device is not limited to being placed in a particular position, as long as the device is able to generate an air flow in the chamber 10. For example, the bottom 11 may be provided with an air inlet, e.g., in the form of a (single) hole or multiple holes. The device may then be configured such that the air flow generated by the device flows from the device through the air inlet into the chamber 10, thereby generating an air flow inside the chamber 10. Thus, the bottom 11 may be placed between the chamber 10 and the device on one side, and optionally between the heater on the other side. The air inlet may be located between the sidewall13 Preferably, the discharge port 30 is not located at the same height as the distal end of the chamber 10, i.e., the air inlet may be located in a part of the bottom 11 offset away from the chamber 10, such as in a recess in the bottom 11. When the discharge port 30 is located in the bottom 11, i.e., when there is substantially no distance between the discharge port 30 and the bottom 11, the discharge port 30 may be located away from the air inlet. In other words, the discharge port 30 may be located above the (hot) air inlet. Preferably, the housing 20, for example the lower (housing) part 24, houses the device and / or heater. In other examples, the upper (housing) part 25 may also house the device and / or heater.
[0043] According to the present invention, the side wall 13 includes a discharge port 30. As seen in FIGS. 2-9, the discharge port 30 is selectively movable between a closed position (see, for example, FIGS. 2 and 3) and an open position (see, for example, FIGS. 4-6 and 8). For example, the discharge port 30 includes an opening 31 and a cover element 32, whereby the cover element 32 selectively covers (completely) or does not cover (at least partially) the opening 31. Thus, when the cover element 32 (completely) covers the opening 31, the discharge port 30 is preferably in a closed position, whereas when the cover element 32 does not (at least partially) cover the opening 31, the discharge port 30 is preferably in an open position. The opening 31 may be disposed on or within the side wall 13, i.e., as an opening extending through the side wall 13. The cover element 32 may be disposed on the side wall 13 or may be disposed separately from the side wall 13. 2 to 9, the cover element 32 may be arranged inside the chamber 10, for example on a surface of the side wall 13 oriented towards the inside of the chamber 10. In other examples, the cover element 32 may also be arranged outside the chamber 10, for example on a surface of the side wall 13 facing away from the chamber 10.
[0044] In the closed position, coffee beans agitated by the air flow cannot spill out of the chamber 10 through the discharge port 30. For example, moving or agitating coffee beans cannot be propelled through the discharge port 30 because the cover element 32 covers the opening 31. In this way, the coffee beans may come into contact with the cover element 32 but cannot spill out of the chamber 10 through the opening 31. Thus, in the closed position, the air flow generated by the device can roast and / or cool the coffee beans received by the chamber 10.
[0045] In the open position of the discharge port 30, coffee beans received by the chamber 10 can be propelled through the discharge port 30 by the airflow generated by the device and, as a result, discharged from the chamber 10, specifically in a direction away from the apparatus 1. When the discharge port 30 is in the open position, the discharge port 30 is adapted to allow one or more coffee beans to be discharged simultaneously through the discharge port 30. As can be seen, for example, in FIG. 4 , the cover element 32 at least partially covers an opening 31 for discharging coffee beans from the chamber 10. The opening 31 and the cover element 32 may thus define an opening, which may be smaller than the opening 31, through which one or more coffee beans can be discharged simultaneously. This opening therefore has the size of at least one coffee bean. Preferably, in the open position, the cover element 32 does not cover the opening 31 at all, so that the entire area of the opening 31 can be used to discharge coffee beans from the chamber 10. For example, as is evident from FIG. 5, in the open position the cover element 32 may only partially cover the opening 31 so that the opening 31 is only half open.
[0046] Thus, the coffee beans discharged from the chamber 10 through the discharge port 30 move away from the chamber 10, in particular away from the side wall 13. The coffee beans thus discharged can now be used for further processing, for example in a dedicated jug, and / or for grinding and / or for preparing a coffee beverage, for example coffee extraction. For example, the coffee beans discharged from the chamber 10 are directed into a conduit or pipe 33 configured to guide the coffee beans for further processing. The conduit 33 may guide the coffee beans to a location different from the chamber 10, for example outside the apparatus 1, preferably for processing in a further apparatus, such as a grinder for grinding the coffee beans and / or a beverage preparation machine for preparing a beverage from the coffee beans or ground coffee made from the coffee beans. The conduit 33 may be located away from the discharge port 30 or may be directly coupled to the discharge port 30, for example directly to the opening 31. The conduit 33 may extend through the housing 20, for example through the upper housing part 25. For example, the conduit 33 may extend from the interior of the housing 20 in which the chamber 10 is located to the exterior of the housing 20. The conduit 33 may have any design or form suitable for guiding the released coffee beans, such as a nozzle, slide, channel, pipe, tube or hose design or form.
[0047] The coffee beans may be discharged from the chamber 10 in a direction that intersects or does not intersect the side wall 13. Preferably, the coffee beans are discharged from the chamber 10 through the discharge port 30 in a direction that is substantially tangential to the extent of the side wall 13 and / or the discharge port 30, e.g., the opening 31. The direction of discharge of the coffee beans through the discharge port 30, and thus out of the chamber 10, may be provided by the direction of the air flow generated by the (air generating) device and / or by the side wall 13. Preferably, the side wall 13 is appropriately designed to facilitate advantageous discharge of the coffee beans through the discharge port 30. For example, at least the cross section of the side wall 13 comprising the discharge port 30 (i.e., the surface of the side wall 13 oriented towards the interior of the chamber 10, also referred to as the "inner surface") has an at least partially circular or elliptical shape. Preferably, the entire cross section is in the form of a closed circle or ellipse. Due to the cross-sectional shape being at least partly circular or elliptical, coffee beans in contact with the side wall 13 can move smoothly along the side wall 13 and then be discharged from the discharge port 30. In this way, the coffee beans can be discharged through the discharge port 30 in a direction that is specifically tangential to the circular or elliptical shape. Preferably, the side wall 13, at least the inner surface of the side wall 13, has the same cross section along the (symmetry) axis of the chamber 10.
[0048] The discharge port 30 may be positioned closer to the bottom 11 of the chamber 10 than to the top 12, as can be seen in FIG. 8 , for example. In a most preferred example, the discharge port 30 is positioned adjacent to or at the bottom 11. If the discharge port 30 includes an opening 31, the lower edge of the opening 31 may in turn be defined by the bottom 11. Positioning the discharge port 30 close to the bottom 11 is preferred, so that the device does not need to provide much energy to generate an airflow capable of propelling each coffee bean along a long vertical direction to release the coffee beans from the chamber 10. In other words, it does not need to use much potential energy to release the coffee beans from the chamber 10. Generally, the discharge port 30 may be positioned at a certain distance from the bottom 11. The distance may be measured from the bottom 11 to the lower edge of the discharge port 30, beyond which the coffee beans move to be released from the chamber 10. For example, the lower edge may be the lower edge of the opening 31. The distance may be within the range of 0% to 5%, 5% to 10%, 10% to 20%, 20% to 30%, 30% to 40%, 40% to 50%, 50% to 60%, 60% to 70%, 70% to 80% of the height of the chamber 10, where the height of the chamber 10 is measured from the bottom 11 to the top 12 of the chamber 10.
[0049] The opening 31 may have an elongated shape, such as a slit shape. However, in general, the opening 31 is not limited to a specific shape as long as one or more coffee beans can be simultaneously released through the opening 31. For example, the opening 31 may have a circular, oval, polygonal, square, and / or rectangular shape. The opening 31 may extend, in particular, along the periphery of the side wall 13. Thus, the opening 31 may extend along the circumferential direction. The cover element 32 has at least the size of the opening 31, so that the cover element 32 can adequately cover the opening 31. For example, the shape of the cover element 32 corresponds to the shape of the opening 31, so that the cover element 32 can have, for example, a round shape. The cover element 32 may also have an elongated shape. The cover element 32 may be made from an (elongated) piece of material having, for example, a rectangular shape. The piece of material may be a sheet, for example, a metal sheet. The piece of material may be formed or bent to correspond to the opening 31. For example, the cover element 32 may be a flap, an aperture, or a door, and / or may have a thin structure.
[0050] The discharge port 30 may be slidably movable to move the discharge port 30 between a closed position and an open position. The discharge port 30 may be configured, for example, to move the discharge port 30 between a closed position and an open position by operating or moving the discharge port 30 with a sliding motion defined by a sliding element having only one degree of freedom. For example, the cover element 32 may be configured on the side wall 13 such that the cover element 32 can slide relative to the side wall 13, thereby selectively covering or uncovering the opening 31. Additionally or alternatively, the discharge port 30 may be pivotally movable to move the discharge port 30 between a closed position and an open position. For example, the opening 31 and / or the cover element 32 may be configured to be pivotally movable (i.e., rotatably) about a particular axis of motion. Preferably, the axis of motion extends vertically or horizontally. The axis of motion may be, for example, an axis of symmetry of the chamber 10.
[0051] The opening 31, i.e., the side wall 13 comprising the opening 31, and the cover element 32 may be movable relative to one another to move the discharge port 30 between a closed position and an open position. For example, one of the opening 31 (i.e., the side wall 13) and the cover element 32 remains stationary (relative to the device 1), while the corresponding other of the opening 31 and the cover element 32 moves. In another example, both the opening 31 and the cover element 32 move to move relative to one another. Thereby, in particular, the side wall 13 may be movable, for example pivotally movable, to move the discharge port 30 between a closed position and an open position. In this way, the side wall 13 may be movably supported, for example rotatably supported. The side wall 13 may be movably supported on the housing 20, for example on the lower housing portion 24.
[0052] The discharge port 30 may be manually movable between the closed position and the open position. That is, the discharge port 30 is preferably adapted so that the (hand) muscle strength of the user of the device 1 is the only means by which the discharge port 30 can be moved between the closed position and the open position. For example, the discharge port 30 comprises an operating element for manually moving the discharge port 30 between the closed position and the open position. The operating element may be, for example, a protrusion 34. The protrusion 34 may be arranged on the cover element 32 or may be, for example, integrally formed with the cover element 32. For example, the cover element 32 may be configured such that the operating element, for example in the form of a protrusion 34, is provided on the opening 31 or (side wall 13 The operating element or protrusion 34 is configured to extend outwardly relative to the chamber 10 through a further opening 35 (which extends through the opening 31). The operating element or protrusion 34 can therefore also be used as a stop to limit the relative movement between the opening 31 and the cover element 32.
[0053] Additionally or alternatively, the device 1 may include a drive unit 36 (e.g., a motor drive) for moving the discharge port 30 between the closed position and the open position. The drive unit 36 may include an (electric) motor 37 and / or a transmission 38, which is adapted to transmit power from the motor 37 to the discharge port 30 to move the discharge port 30 between the closed position and the open position. For example, the drive unit 36 moves the cover element 32 to cover or uncover the opening 31, thereby appropriately moving the discharge port 30 between the closed position and the open position, respectively. In a preferred embodiment of the device 1 illustrated by way of example, as can be seen in FIG. 8 , the drive unit 36 is adapted to transmit power to the side wall 13 (e.g., to an outer surface of the side wall 13), thereby moving the side wall 13 and moving the discharge port 30 between the open position and the closed position. For example, the drive unit 36 may be engaged with the side wall 13, for example, by a transmission 38, such that (rotational) movement of the drive unit 36 drives (rotational) movement of the side wall 13 to move the discharge port 30 between the closed and open positions. The transmission 38 of the drive unit 36 may comprise one or more gears that engage with teeth configured on the side wall 13 on one side and a motor of the drive unit 36 on another side. 37 It fits together.
[0054] The drive unit 36 is not limited to being disposed in a particular position. Preferably, the drive unit 36 is disposed within the housing 20, for example, within the lower portion 24 and / or the upper portion 25. The drive unit 36 is preferably not disposed within the chamber 10. For example, the drive unit 36 is disposed between the side wall 13 and a side wall of the housing 20, for example, the side wall 23.
[0055] The apparatus 1 may also comprise a control unit (not shown) for appropriately controlling the roasting and discharge of the coffee beans, in particular according to a control program including, for example, a predetermined roasting and / or temperature profile. The control unit may in particular be adapted to switch the apparatus 1 between a roasting mode and a discharge mode. In the roasting mode, the discharge port 30 is in a closed position and / or the apparatus 1 is configured to roast the coffee beans received by the chamber 10, for example by appropriately controlling an (air flow generating) device to generate a heated air flow inside the chamber 10. For example, the control unit controls or activates both the device and the heater to provide the heated air flow inside the chamber 10. The control unit is therefore in particular operatively connected to the device and / or the heater.
[0056] The control unit may be configured to keep the device 1 in roast mode based on a predetermined roasting program (or profile), which may be stored in the control unit. The predetermined roasting program may, for example, include process parameters for roasting the coffee beans received by the chamber 10. The process parameters may include the temperature, speed and / or pressure of the (heated) airflow, and / or a specific (total) time for roasting and / or cooling the coffee beans. For example, the control unit may be configured to automatically switch the device 1 to the discharge mode after a specific time has elapsed. When the control unit switches the device 1 to the discharge mode, the control unit may automatically switch the discharge port 30 to the open position. Thus, the control unit may be operatively connected to the discharge port 30, in particular to the drive unit 36 of the discharge port 30, in order to appropriately control the movement of the discharge port 30 between the closed and open positions. The control unit may also be operated by a user, for example by means of a user interface as described below, in order to (manually) switch between the roast mode and the discharge mode.
[0057] Thus, in the discharge mode, the apparatus 1 is configured to use the airflow generated by the device to propel the coffee beans through the discharge port 30 and discharge them from the chamber 10. The control unit may be configured to control the heater to be switched off or deactivated in the discharge mode. The control unit may be configured such that the apparatus 1 remains in the discharge mode until the control unit receives a signal to leave the discharge mode, for example to switch to a roasting mode. For example, the signal may be a user input signal received, for example, from a user interface. The control unit may also be adapted to switch the apparatus 1 to a different mode, such as a cooling mode, in which the discharge port 30 is in a closed position and the heater is controlled to be deactivated. The control unit may be located within the housing 20, for example in the lower part 24 and / or the upper part 25.
[0058] As exemplarily shown in FIG. 13 , the device 1 may comprise a user interface 60. The user interface 60 facilitates a user of the device 1 to control the device 1 accordingly, in particular for roasting and / or discharging coffee beans, i.e., for moving the discharge port 30 between a closed position and an open position. The user interface 60 is preferably operatively connected to a control unit, such that the control unit can receive user inputs or signals from the user interface 60, for example, for switching between a roasting mode and a discharging mode. The user interface 60 may comprise one or more (e.g., no more than four) control elements 61 for controlling the device 1, for example, in the form of one or more buttons or other touch-sensitive elements (such as a touchscreen). For example, the one or more control elements 61 include a control element for starting the roasting process, i.e., for switching to the roasting mode, and a control element for stopping the roasting process, e.g., for switching to the cooling mode and / or the discharging mode. The control element 61 may also comprise a control element for turning on (and off) the power of the device 1 (e.g., an on / off control element). The user interface is preferably located on the user side of the device 1. The user side of the device 1 is preferably the front side of the device 1 and / or the side of the device 1 where the coffee beans are released from the chamber 10.
[0059] The device 1 may further comprise a power inlet, for example in the form of a power plug, via which energy can be supplied to parts of the device 1 that require energy, such as electrical energy (voltage and / or current). These parts are in particular the devices, the heater, the drive unit 36, the control unit and / or the user interface 60. The power plug may be provided on the rear side of the device 1 and / or on the housing 20, for example on the lower part 24 or the upper part 25. The rear side of the device 1 may be the side of the device 1 opposite to the user side.
[0060] As seen particularly in FIGS. 10 and 11 , the top 12 may include an outlet 14 selectively movable between a closed position and an open position. In the open position, the outlet 14 allows (hot or cold) air and / or coffee chaff (also referred to as “chaff”) to be released from the chamber 10. Unroasted coffee beans typically have a (green and / or dried) skin, especially when first harvested from the coffee plant. The chaff may also be referred to as the shell of the coffee bean. During roasting of the coffee beans, this skin peels off from the coffee beans and thus remains as chaff. That is, the high temperatures, particularly during roasting, allow the chaff to be easily removed from the coffee beans without requiring additional work. It is desirable that this chaff of such roasted coffee beans not remain with the roasted coffee beans, for example, because consumers do not want chaff inside the grinder and / or beverage preparation machine and therefore inside the coffee beverage; therefore, the chaff is preferably released from the chamber 10 and collected, for example, outside the apparatus 1. Thus, no chaff remains in the final product, which is roasted coffee beans.
[0061] That is, the airflow generated by the device propels the air and / or chaff toward the top 12, where it is then released through the outlet 14 and, thus, from the chamber 10. The outlet 14 may be a diaphragm. The outlet 14 may include a movable element 15 and one or more openings 16, which are movable relative to one another to move the outlet 14 between a closed position and an open position. For example, the element 15 moves relative to the (stationary) opening 16. The element 15 may also be configured to be rotatable relative to the opening 16. In the closed position, the element 15 then preferably (fully) covers the opening 16, and in the open position, the element 15 at least partially uncovers the opening 16, thereby allowing the air and / or chaff to be released from the chamber 10. In the closed position, substantially no, or at least a reduced amount, airflow flows through the outlet 14. Thus, the entire or at least an incremental amount of the airflow generated by the device can be used, for example, to propel the coffee beans released from the chamber 10. Preferably, the one or more openings 16 are located or formed in the top 22 of the housing 20. The element 15 may be movably attached to the housing 20 or to the upper housing part 25, for example to the top 22.
[0062] The outlet 14 is preferably operatively connected to a control unit, whereby the control unit can (automatically) operate the outlet 14 to move between the closed and open positions. For example, the control unit may be configured such that the outlet 14 is (only) moved to the open position in the roast mode. Additionally or alternatively, the control unit may be configured such that the outlet 14 is (only) in the closed position in the discharge mode. Additionally or alternatively, the outlet 14 may be adapted to be manually operated to move between the closed and open positions of the outlet.
[0063] As can be seen in Fig. 12, the apparatus 1 may further comprise a chaff collector 50 for collecting chaff from the roasted coffee beans produced by the chamber 10. The chaff collector 50 is preferably arranged so that the chaff flows from the chamber 10 through the outlet 14 to the chaff collector 50 and is collected by the chaff collector 50. The chaff collector 50 may comprise a compartment in which the chaff is collected and which prevents the chaff from returning to the chamber 10. For example, the chaff collector 50 may comprise an inlet which allows only one-way flow of the chaff so that the chaff is collected by the chaff collector 50. The inlet thereby allows the flow of the chaff 50 into the compartment while preventing the flow of the chaff out of the compartment, specifically towards the chamber 10. To provide particularly good collection of chaff by the chaff collector 50, the chaff collector 50 and the device may be arranged accordingly to each other. For example, the device may be configured such that the airflow generated by the device propels the coffee bean chaff towards the chaff collector 50 so that the chaff is collected by the chaff collector 50 .
[0064] The chaff collector 50 may be designed such that the chaff collector 50, or a compartment, if present, can be selectively opened to discard or otherwise use the collected chaff. The chaff collector 50 may be removably arranged, whereby the chaff collector 50 can be removed from the device 1, for example, to easily discard the chaff. For example, the chaff collector 50 is removably attached to the housing 20 (e.g., the top 22 of the housing 20), for example, by a shape and / or friction fit, or by correspondingly designed attachment elements. The chaff collector 50 may thus form the top of the device 1.
[0065] 14 to 16 exemplarily show a system 100 according to a preferred embodiment of the present invention. System 100 comprises apparatus 1 as described above and a further apparatus which in this preferred embodiment is a beverage preparation machine 101, for example a (fully) automatic beverage preparation machine. Apparatus 1 is operatively connected to beverage preparation machine 101 such that beverage preparation machine 101 is able to process coffee beans discharged from apparatus 1 through discharge port 30. That is, beverage preparation machine 101 prepares a beverage from the discharged coffee beans. In another example, the further apparatus may also be a different apparatus for processing the discharged coffee beans, for example a grinder for grinding the coffee beans.
[0066] The apparatus 1 is operatively connected to the beverage preparation machine 101 such that the coffee beans discharged from the chamber 10 can be moved to the beverage preparation machine 101 by an air flow generated by an (air flow generating) device of the apparatus 1. The coffee beans can therefore move directly from the apparatus 1 through the beverage preparation machine 101, in particular without any additional manipulation of the coffee beans. For example, the apparatus 1 comprises a conduit 33, whereby the coffee beans move at least along the conduit 33 from the apparatus 1 into the beverage preparation machine 101 for further processing of the (roasted) coffee beans. As is particularly apparent from FIG. 16 , the conduit 33 may be connected to a hopper 102 (e.g. designed in the form of a chimney), whereby the roasted coffee beans moving through the conduit 33 are discharged from the conduit 33 and filled into the hopper 102. The hopper 102 may be provided integrally with the beverage preparation machine 101 and / or the hopper 102 may be provided detachably with respect to or on the beverage preparation machine 101. The hopper 102 and / or the connection between the conduit 33 and the hopper 102 are preferably sealed so that substantially no air can enter the hopper 102 and the hopper 102 Therefore, the roasted coffee beans filled in the hopper 102 can be kept freshly roasted for a relatively long time.
[0067] The beverage preparation machine 101 preferably comprises a grinder for grinding the coffee beans released from the apparatus 1. For example, the coffee grinder is configured so that a hopper 102 feeds the coffee beans to the coffee grinder, for example by gravity, moving the coffee beans from the hopper 102 to the grinder. The grinder thus grinds the coffee beans into ground coffee, and the beverage preparation machine 101 can then prepare a coffee beverage from the ground coffee. For example, the beverage preparation machine 101 further comprises one or more beverage preparation modules, such as a water tank, a water pump, and / or a heater, for preparing a coffee beverage from roasted coffee beans, i.e., from ground coffee. As is evident from FIG. 14 , the beverage preparation machine 101 may comprise a beverage dispensing side 103 for dispensing the coffee beverage. The dispensing side 103 may comprise, for example, an outlet 104 for dispensing the coffee beverage and / or a support or tray 105 on which a coffee cup can be placed, so that the coffee cup is filled with the coffee beverage dispensed from the machine 101, for example from the outlet 104.
[0068] The beverage preparation machine 101 comprises a housing 106 in which at least a portion of the beverage preparation module can be arranged. The housing 106 has a bottom 107 and a top 108. The bottom 107 is preferably adapted to allow the beverage preparation machine 101, and thus the system 100, to be placed on a surface such as a tabletop in a home or kitchen. The device 1 is preferably arranged on the top 108 of the housing 106. Thus, the device 1 can be arranged very efficiently relative to the beverage preparation machine 101.
[0069] As is apparent from Figures 14 and 16, the device 1 may comprise a hopper 2 (e.g., in the form of a coffee (bean) inlet chamber and / or cylinder) adapted to (sealably) accommodate green coffee beans. The hopper 2 is connected to the chamber 10, so that the coffee beans accommodated in the hopper 2 can move into the chamber 10 (for subsequent roasting), e.g., by gravity alone. For example, the coffee beans accommodated in the hopper 2 can move into the chamber 10 via a port (also referred to as "inlet port 3") selectively movable between a closed position and an open position. Thus, in the open position, green coffee beans can move from the hopper 2 into the chamber 10 via this port, while in the closed position, green coffee beans cannot move from the hopper 2 into the chamber 10. This port may be operatively connected to a control unit, so that the control unit can control this port to a closed or open position. For example, the control unit controls this port to be open before switching to the roasting mode. Additionally or alternatively, the port may also be manually, i.e., muscle-movable, to move it to a closed or open position. However, the hopper 2 is not required. For example, the green coffee beans may be loaded directly into the chamber 10, i.e., manually.
[0070] As can be seen in FIG. 17 , the device 1 may include a mechanism 17 for moving at least the discharge port 30 between a closed position and an open position. The mechanism 17 includes a sidewall 13, which preferably partially defines the chamber 10. The bottom 11 is preferably not an integral part of the mechanism 17, and is therefore preferably provided separately from the mechanism 17. The mechanism 17 is preferably arranged to be movable (e.g., rotatable), such that the sidewall 13 is also arranged to be movable. This allows the discharge port 30 to be moved between a closed position and an open position by moving the mechanism 17, and thus the sidewall 13. It can also be seen in FIG. 17 that the mechanism 17 can be moved by a drive unit 36, for example, by the drive unit 36 camming with optional teeth arranged on the mechanism 17 or the sidewall 13. Thus, in order to move the discharge port 30 between the closed and open positions by the mechanism 17, the side wall 13 preferably comprises an opening 31, thereby also moving the opening 31, for example relative to the cover element 32 (see above).
[0071] Thus, mechanism 17 facilitates the discharge of coffee beans from chamber 10 via discharge port 30. Mechanism 17 can also facilitate the introduction of unroasted coffee beans into chamber 10. Thus, mechanism 17 may be adapted to be (rotatably) movable to at least a first position and a second position, where in the first position, discharge port 30 (only) is in an open position, and in the second position, (coffee bean) introduction port 3 (only) (see above) is in an open position. Thus, in the first position, introduction port 3 is preferably in a closed position, and in the second position, introduction port 30 is preferably in a closed position. In the second position, unroasted coffee beans can enter chamber 10 for subsequent roasting. Unroasted coffee beans are preferably fed (by gravity) from hopper 2 into chamber 10 via introduction port 3. The introduction port 3 may be or comprise an opening (e.g., a hole or slot) formed or drilled in side wall 13. Thus, in the open position of the input port 3, the opening is not covered, i.e., not blocked, so that unroasted coffee beans can be input into the chamber 10 via the input port 3, whereas in the closed position, the opening is covered, i.e., blocked, so that unroasted coffee beans cannot be input into the chamber 10 via the input port 3.
[0072] The mechanism 17 may be adapted to move (e.g., rotate) to a position (e.g., a position in addition to the first and second positions, i.e., a third position) in which coffee bean chaff can flow towards the chaff collector 50 to be collected by the chaff collector 50. For example, the mechanism 17 may comprise one or more (e.g., only two) chaff ports 51 (e.g., at least partially disposed in the side wall 13), which, in the (third) position, allows chaff to move or flow (by an air flow generated by the device) through the chaff port 51 towards the chaff collector 50 to be collected by the chaff collector 50. Thus, in this position, the (respective) chaff port 51 is in an open position. In any position other than the (third) position, e.g., the first and second positions, the chaff port 51 is preferably in a closed position. In this closed position, the air flowing through the chaff port 51 towards the chaff collector 50 is (significantly) reduced or blocked, so that the air flow is advantageously redirected, for example to discharge coffee beans from the chamber 10 through the discharge port 30. In the closed position of the chaff port 51, chaff preferably cannot flow from the chamber 10 through the chaff port 51 towards the chaff collector 50. In the closed position of the chaff port 51, chaff collected by the chaff collector 50 is prevented from returning into the chamber 10 via the chaff port 51. The chaff port 51 may be or may comprise an opening (e.g., a slot or hole) formed or drilled in the side wall 13. In this way, in the open position of the chaff port 51, the opening is not covered, i.e., not blocked, so that airflow and chaff can flow through the opening toward the chaff collector 50 for chaff collection, and in the closed position, the opening is covered, i.e., blocked, so that airflow and chaff cannot flow through the opening toward the chaff collector 50 for chaff collection.
[0073] The side wall 13 may have a cross section that includes both the input port 3 and the chaff port 51. In other words, the input port 3 and the chaff port 51 may be located at substantially the same height relative to the height of the chamber 10, for example, at the top of the chamber 10. It is preferable that the discharge port 30 is not located in the cross section of the side wall 13 that includes the input port 3 and / or the chaff port 51. In other words, the discharge port 30 on one side and the input port 3 and / or the chaff port 51 on the other side may be located at different heights relative to the height of the chamber 10, for example, the discharge port 30 may be located at a lower height than the input port 3 and / or the chaff port 51. The teeth of the mechanism 17 that cam with the drive unit 36 are preferably located between the discharge port 30 and the chaff port 51.
[0074] Thus, mechanism 17 is preferably a redirecting mechanism that can move to different positions corresponding to different states of apparatus 1 during operation, such as a coffee-introducing state (for injecting green coffee beans into chamber 10), a coffee-roasting state (for collecting chaff from the coffee beans being roasted), and a coffee-discharging or ejecting state (for ejecting the roasted coffee beans). Mechanism 17 causes the airflow generated by the device to be redirected advantageously, specifically for the specific function of each state (roasting, ejection, etc.). Mechanism 17 therefore functions as an airflow selector. Mechanism 17 is not limited to a particular form. For example, mechanism 17 may have the form of a ring, a tank, and / or a sleeve, and thus mechanism 17 may be a redirecting ring.
[0075] It will be apparent to those skilled in the art that the illustrated embodiment is only a preferred embodiment; however, other designs of the apparatus 1 or the system 100 may also be used. In particular, features of the system 100, such as the hopper 2 and / or the hopper 102 and / or the grinder, may also be features of the apparatus 1.
Claims
1. An apparatus (1) for roasting coffee beans, comprising: a chamber (10) capable of receiving coffee beans therein for roasting; a device for generating an air flow to agitate the coffee beans received by the chamber, the chamber (10) is defined by a bottom (11), a top (12) and a sidewall (13) extending from the bottom (11) to the top (12), the sidewall (13) comprising a discharge port (30) selectively movable between a closed position and an open position, such that when the discharge port (30) is in the open position, the air flow generated by the device can propel the coffee beans through the discharge port (30) and discharge them from the chamber (10); the bottom (11) comprises an air inlet, and the device is configured to blow air through the air inlet to generate the air flow inside the chamber (10); The discharge port (30) is located closer to the bottom (11) than to the top (12). Device (1).
2. 2. The device (1) of claim 1, wherein the discharge port (30) is manually movable between the closed position and the open position, and / or the device (1) comprises a drive unit (36) configured to move the discharge port (30) between the closed position and the open position.
3. 3. The device (1) of claim 1 or 2, wherein the discharge port (30) is slidably or pivotably movable to move the discharge port (30) between the closed position and the open position, and / or the side wall (13) is movable to move the discharge port (30) between the closed position and the open position.
4. 4. The apparatus (1) according to any one of claims 1 to 3, wherein the device is adapted to generate a heated air flow for roasting the coffee beans received by the chamber (10) and / or the device is adapted to generate an air flow for cooling the coffee beans received by the chamber (10).
5. 5. The device (1) according to any one of claims 1 to 4, wherein the device (1) comprises a control unit for switching the device (1) between a roasting mode and a discharge mode, wherein in the roasting mode the discharge port (30) is in the closed position and in the discharge mode the discharge port (30) is in the open position.
6. 6. The device (1) according to claim 5, wherein in the roasting mode, the device (1) is configured to roast the coffee beans received by the chamber (10).
7. 7. The apparatus (1) according to claim 5 or 6, wherein in the discharge mode, the apparatus (1) is configured to use the air flow generated by the device to propel the coffee beans through the discharge port (30) and discharge them from the chamber (10).
8. The device (1) according to any one of the preceding claims, wherein at least the cross section of the side wall (13) comprising the discharge port (30) has an at least partly circular or elliptical shape.
9. 9. The device (1) of any one of claims 1 to 8, wherein the top (12) comprises an outlet (14) selectively movable between a closed position and an open position, wherein in the open position the outlet (14) allows air and / or coffee chaff to be discharged from the chamber (10).
10. The apparatus (1) according to any one of the preceding claims, further comprising a chaff collector (50), said chaff collector (50) configured to collect chaff from the coffee beans.
11. A system (100) comprising the device (1) according to any one of claims 1 to 10 and a further device, said further device being operatively connected to said device (1) for processing the coffee beans discharged from said device (1) through said discharge port (30).
12. 12. The system (100) according to claim 11, wherein the further device comprises a grinder for grinding the coffee beans and / or wherein the further device comprises a beverage preparation machine (101) for preparing a beverage from the coffee beans.
13. 1. A method for discharging coffee beans from a chamber (10) in which the coffee beans are received for roasting, the chamber (10) being defined by a bottom (11) having an air inlet, a top (12) and a sidewall (13) extending from the bottom (11) to the top (12), the method comprising: generating an air flow to stir and / or roast the coffee beans received by the chamber (10), wherein air is blown through the air inlet to generate the air flow inside the chamber (10); moving a discharge port (30) provided in the side wall (13) of the chamber (10) closer to the bottom (11) than to the top (12) to an open position, whereby the air flow propels the coffee beans through the discharge port (30) and discharges them from the chamber (10); A method comprising:
Citation Information
Patent Citations
Full automatic coffee extractor
JP1989190317A
Method and device for roasting food
JP1992502405A
Apparatus for roasting coffee beans
US20130276637A1