This is a National Phase of International Application No. PCT/EP2016/065539, filed Jul. 1, 2016, which claims the benefit of Danish Application No. PA 2015 70444, filed Jul. 6, 2015. The entire contents of the above-referenced applications are expressly incorporated herein by reference.
The present invention pertains to a self adjusting pump for an ice cream freezer, and in particular to a control unit for adaptively controlling the closing pressure of a pump for an ice cream freezer.
Ice cream freezers allow for continuous freezing and whipping of ice cream mix with air to produce ice cream and other frozen desserts. Commonly, an ice cream freezer uses an inlet gear pump to feed ice cream mix into a freezing cylinder. A constant airflow is fed into the cylinder together with the mix. During the passage through the cylinder the air is whipped into the mix by a dasher and inner beater. Refrigerant surrounding the cylinder provides the freezing. Stainless steel blades scrape the frozen ice cream from the inside wall of the cylinder, and a second gear pump pushes the ice cream forward for filling or extrusion.
The operation state of each gear pump is controlled by a mechanically fixed pump cover, which is manually adjustable to some degree. The pump is adjusted by a threaded pin and a fixed nut by which the position of the impeller in relation to the star wheel is controlled, thus adjusting the clearance between the impeller, star wheel and pump cover.
The adjustment process of the pump system in conventional ice cream freezer is cumbersome and may also lead to excessive wear or to high leakage of the pump in case the adjustment is wrongly executed.
Accordingly, an improved pump system for an ice cream freezer would be advantageous.
It is, therefore, an object of the present invention to overcome or alleviate the above described problems.
An idea of the present invention is to remove the need for manual adjustment of the clearance in a pump for an ice cream freezer by allowing for self adjustment of said clearance.
According to an aspect a control unit for adaptively controlling closing pressure of an inlet gear pump of an ice cream freezer is provided. The inlet gear pump comprises a pump casing, an inlet for receiving a liquid food product of ice cream mix, and an outlet for transferring the ice cream mix into a freezing cylinder of the ice cream freezer. The inlet is connected to an impeller driving a star wheel which in turn is connected to the outlet. The pump is closed by supplying a closing air pressure onto a movable pump cover of the pump via at least one hole provided straight through the pump casing, thereby moving said movable pump cover against the star wheel. The control unit is configured to:
receive a first measure of liquid food product supply pressure (PIN, P1) at the inlet of the pump,
receive a second measure of liquid food product outlet pressure (POUT, P2) at the outlet of the pump,
calculate a closing air pressure (PCLOSE) being determined by the differential pressure between the liquid food product outlet pressure (POUT, P2) and the liquid food product supply pressure (PIN, P1) across the pump (10), and
supply the calculated closing air pressure (PCLOSE) to the moveable pump cover by means of an air pressure regulator via the at least one hole in the pump casing, thereby forcing the moveable pump cover against the star wheel thereby closing the pump.
According to a further aspect a control unit for adaptively controlling closing pressure of an outlet gear pump of an ice cream freezer is provided. The outlet gear pump comprises a pump casing, an inlet for receiving a liquid food product of frozen ice cream from a freezing cylinder of the ice cream freezer, and an outlet for transferring the frozen ice cream for filling or extrusion. The inlet is connected to an impeller driving a star wheel which in turn is connected to the outlet. The pump is closed by supplying a closing air pressure onto a moveable pump cover of the pump via at least one hole provided straight through the pump casing, thereby moving said moveable pump cover against the star wheel. The control unit is further configured to:
receive a first measure of liquid food product supply pressure (PIN, P2) at the inlet of the pump,
receive a second measure of liquid food product outlet pressure (POUT, P3) at the outlet of the pump,
calculate a closing air pressure (PCLOSE) being determined by the differential pressure between the liquid food product outlet pressure (POUT, P3) and the liquid food product supply pressure (PIN, P2) across the pump (10), and
supply the calculated closing air pressure (PCLOSE) to the moveable pump cover by means of an air pressure regulator via the at least one hole in the pump casing, thereby forcing the moveable pump cover against the star wheel thereby closing the pump.
According to yet another aspect a gear pump system for an ice cream freezer is provided. The system comprises a gear pump comprising a pump casing, an inlet for receiving a liquid food product of ice cream mix, an outlet for transferring the ice cream mix into a freezing cylinder of the ice cream freezer, wherein the inlet is connected to an impeller driving a star wheel which in turn is connected to the outlet; wherein the pump is closed by supplying a closing aft pressure onto a moveable pump cover of the pump via at least one hole provided straight through the pump casing, thereby moving said moveable pump cover against the star wheel, and a control unit according to one or more other aspects for supplying a calculated closing air pressure (PCLOSE) to the pump by means of the air pressure regulator via the at least one hole in the pump casing.
According to yet another aspect a gear pump system for an ice cream freezer is provided. The system comprises a gear pump comprising a pump casing, an inlet for receiving a liquid food product of frozen ice cream from a freezing cylinder of the ice cream freezer, an outlet for transferring the frozen ice cream for filling or extrusion, wherein the inlet being connected to an impeller driving a star wheel which in turn is connected to the outlet, wherein the pump is closed by supplying a closing air pressure onto a moveable pump cover of the pump via at least one hole provided straight through the pump casing, thereby moving said moveable pump cover against the star wheel. The system further comprises a control unit according to one or more other aspects for supplying a calculated closing air pressure to the pump by means of the air pressure regulator via the at least one hole in the pump casing.
According to another aspect an ice cream freezer comprising the gear pump system and the gear pump system is provided.
According to an aspect a method for adaptively closing a gear pump for an ice cream freezer is provided. The method comprises:
receiving a first measure of liquid food product supply pressure (PIN, P1, P2) at an inlet of the pump;
receiving a second measure of liquid food product outlet pressure (POUT, P2, P3) at an outlet of the pump;
calculating a closing air pressure being determined by the differential pressure between the liquid food product outlet pressure (POUT, P2, P3) and the liquid food product supply pressure (PIN, P1, P2) across the pump; and
supplying the calculated closing air pressure to a moveable pump cover of the pump by means of an air pressure regulator via at least one hole in pump casing (11) of the pump, thereby forcing the moveable pump cover against a star wheel of the pump, thereby closing the pump.
The above, as well as additional objects, features, and advantages of the present invention, will be better understood through the following illustrative and non-limiting detailed description of preferred embodiments of the present invention, with reference to the appended drawings, wherein:
An idea of the present invention is to replace the commonly known mechanically fixed, and manually adjustable pump cover with a movable pump cover which position in the pump is controlled pneumatically. Pneumatic air pressure can be applied on a backside thereof. The air pressure press the pump cover against the star wheel and impeller and thereby closing the pump during operation. The air pressure is controlled by a control unit and adjusted as a function of the differential pressure over the pump.
The pump according to the embodiments is associated with several advantages. For example, it eliminates manual adjustment and thereby the risk for wrong adjustment which can lead to excessive wear or to high leakage of the pump. Furthermore, the wear of the pump is reduced due to adjustment of the closing pressure as a function of the actual differential pressure. Moreover, the functionality of the pump is more accurate function, i.e. allowing for less leakage, due to continuous adjustment during the whole life span of the pump.
The pump casing further comprises at least one first hole 191 provided straight through the pump casing 11, for receiving a pneumatic closing pressure from an air pressure regulator (not shown). The first hole 191 accesses a cavity 171 formed between the closing partition wall 181 and the head portion 161 of the moveable pump cover 16. When pneumatic pressure is introduced into the cavity 171 the head portion 161 is forced against the star wheel 14 while the rod portion 162 sealingly slides relatively to the closing partition wall 181, in a left direction in view of
The pump casing further comprises at least one second hole 192 provided straight through the pump casing 11, for receiving a pneumatic opening pressure from an air pressure regulator (not shown). The second hole 192 accesses a cavity 172 formed between the closing partition wall 181 and the opening partition wall 182. When pneumatic pressure is introduced into the cavity 172 the head portion 161 is forced away from the star wheel 14 as the opening partition wall 182 is forced away from the closing partition wall 181, thereby allowing free flow through the pump during a clean in place (CIP) open state. Hence, in this scenario the rod portion 162 sealingly slides relatively to the closing partition wall 181, in a right direction in view of
The impeller's 13 position is fixed in the self adjusting pump. The closing distance between the star wheel 14 and the impeller is adjusted via controlling the position of the pump cover 16. The position of the pump cover is controlled by the air holes 191 and 192. Adding air through 191 will add pressure to closing side of 182 and 161, thus maintaining a closed CIP state. In this situation there is no air added to 192. To change to the open clean in place state, air is added to 192, and released from 191. This will move the pump cover reverse to open position. When the pump is in the closed CIP state, e.g. the production state, but when air is added to 192, and released from 191, there will be a counter pressure from the product in the pump, that will try to force the pump open. By knowing this pressure of the product it's possible to add just enough air pressure through 191, that will ensure, that the clearance between the star wheel, pump cover and impeller is minimized, thus minimizing the wear on the parts, and giving highest possible performance.
Preferably, the pneumatic pressure introduced through the at least first hole 191 is conversely related to the pneumatic pressure introduced through the at least second hole 192. Hence, when pressure is introduced through the at least first hole 191, pressure will be released from the pump casing through the at least one hole 192.
The pneumatic pressure introduced through the at least first and second holes 191, 192 may be provided by means of an air pressure regulator 100. The air pressure regulator is controlled by a control unit 20 with processing capabilities which adaptively controls the operation mode of the air pressure regulator, and in particular the closing and opening pressure submitted to the pump.
Since in general two pumps are arranged in an ice cream freezer, and at different physical positions in the same, the food product supply pressure and food product outlet pressure may differ for each pump.
For the purpose of the present description, the food product supply pressure for a pump being positioned before the freezing cylinder of an ice cream freezer according to an embodiment is denoted by reference P1. The food product outlet pressure for the same pump is denoted P2. Moreover, the food product supply pressure for a pump being positioned after the freezing cylinder of an ice cream freezer according to an embodiment is denoted by reference P2. The food product outlet pressure for the same pump is denoted P3.
In
In an embodiment, the closing air pressure PCLOSE is based on the following formula:
Closing air pressure[bar]=Differential pressure*0.5+0.5
since by adding pressure to both opening partition wall 182 and head portion 161 the closing force, created by the air pressure, is doubled.
In an embodiment, according to
In an embodiment, according to
Although the above description has been made mostly with reference to pumps for an ice cream freezer, it should be appreciated that the disclosed self adjusting mechanism could be incorporated into pumps for other applications than freezing ice cream, such as various food related products, from dairy and meat industry, but also coffee extract.
Further, the invention has mainly been described with reference to a few embodiments. However, as is readily understood by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the invention, as defined by the appended claims.
Number | Date | Country | Kind |
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2015 70444 | Jul 2015 | DK | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/065539 | 7/1/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2017/005634 | 1/12/2017 | WO | A |
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Entry |
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International Search Report from corresponding PCT Application No. PCT/EP2016/065539 dated Oct. 19, 2016 (2 pages). |
Office Action from corresponding Danish Application No. PA 2015 70444 dated Feb. 12, 2016 (7 pages). |
Number | Date | Country | |
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20190003478 A1 | Jan 2019 | US |