A METHOD AND SYSTEM FOR PROCESSING SEEDS INTO A PASTE-LIKE FOOD PRODUCT
20230255246 · 2023-08-17
Inventors
- Erik Börjesson (Lund, SE)
- Helena ARPH (Södra Sandby, SE)
- Jan LINDQVIST (Helsingborg, SE)
- Karmini BHATT (Lund, SE)
Cpc classification
B01F35/92
PERFORMING OPERATIONS; TRANSPORTING
A23L11/05
HUMAN NECESSITIES
A23L11/01
HUMAN NECESSITIES
International classification
A23L11/00
HUMAN NECESSITIES
Abstract
A method for processing seeds into a paste-like food product is presented. The method comprises mixing the seeds into the paste-like product by using a mixer, heating the paste-like product by using the mixer, transferring the paste-like product to a tank, and circulating the paste-like product over the tank and a heat exchanger through which a cooling media flows, such that the paste-like product is cooled.
Claims
1. A method for processing seeds into a paste-like food product, said method comprising mixing the seeds into the paste-like product by using a mixer heating the paste-like product by using the mixer, transferring the paste-like product to a tank, and circulating the paste-like product over the tank and a heat exchanger through which a cooling media flows, such that the paste-like product is cooled.
2. The method according to claim 1, wherein the seeds are chickpeas and the paste-like food product is a mixture comprising ground chickpeas and tahina.
3. The method according to claim 1, wherein a temperature of the paste-like product fed from the mixer is in the range of 40 to 100° C., or is in the range of 60 to 90° C.
4. The method according to claim 1, comprising moving the paste-like product horizontally in the tank by using an agitator.
5. The method according to claim 1, wherein the heat exchanger is a tubular heat exchanger.
6. The method according to claim 5, wherein the tubular heat exchanger is a multitube heat exchanger having multiple inner tubes provided in an outer tube, the paste-like product flowing in the inner tubes and the cooling media flowing in outer tube.
7. The method according to claim 1, comprising mixing a second batch of seeds into a second batch of paste-like food product by using the mixer, and heating the second batch of paste-like product by using the mixer, while at the same time circulating over the tank and the heat exchanger the paste-like product previously mixed, heated and transferred to the tank.
8. The method according to claim 7, comprising transferring the second batch of paste-like product to an alternate tank.
9. The method according to claim 1, wherein the paste-like product is fed through the inner tubes of the heat exchanger with a velocity that is in the range of 0.1 to 0.6 m/s.
10. The method according to claim 1, wherein each of the inner tubes has a straight section having a length (L) that is less than 8 meter.
11. The method according to claim 1, wherein each of the inner tubes has a cross-sectional area that is less than 5 cm.sup.2.
12. The method according to claim 1, further comprising, prior to the step of transferring the paste-like product to the tank, passing the paste-like food product through a holding cell placed downstream the mixer and upstream the tank, to secure that the paste-like food product is kept at a predetermined temperature for a minimum period of time.
13. A system for processing seeds into a paste-like product, said system comprising a mixer arranged to mix the seeds into the paste-like product and to heat the paste-like product, a first fluid line arranged to transfer the paste-like product from the mixer to a tank, a second fluid line arranged to circulate the paste-like product over the tank and a heat exchanger that is configured to receive cooling media for cooling the paste-like product.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Embodiments of the invention will now be described, by way of example, with reference to the accompanying schematic drawings, in which
[0033]
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION
[0038]
[0039] The seeds 102 can be fed into a mixer 106. Before being fed into the mixer 160, the seeds 102 may be processed in different ways. For instance, in the current example of hummus, the chickpeas can be soaked in water before being fed into the mixer 106. The mixer 106 can be provided with a grinder element (not illustrated) such that the seeds can be grinded as they are fed into the mixer 106. The mixer may be a high shear mixer, which provides for an efficient mixing of the seeds and possible other ingredients, such as tahina, vegetable oil and spices in case hummus is produced.
[0040] To eliminate microorganisms that can deteriorate the food product, heat is be provided by having the mixer 106 provided with a jacket in which a heat transfer fluid may be provided, such as hot water or steam. Thus, the food product may be mixed and heated simultaneously or subsequently by the same piece of equipment. As an example, a temperature of the paste-like product 104 fed from the mixer 106 is 40-100° C., more particularly 60-90° C. Steam may also be injected into the mixer 106.
[0041] After being mixed and heated, the food product 104 can be fed into a tank 108. The tank 108 is in turn fluidly connected to a heat exchanger 110 such that the food product 104 can be circulated over the tank 108 and the heat exchanger 110. The heat exchanger 110 may be a tubular heat exchanger (THE). An advantage with this is that a cooling time of approximately 45-60 minutes for a 2000-3000 kg batch can be achieved, that the pressure drop is lower compared to e.g. a scraped surface heat exchanger (SSHE) and at a lower equipment cost compared to e.g. the SSHE.
[0042] To provide a steady flow of the food product 104, an alternate tank 112 may be provided. As the tank 108, the alternate tank 112 is also fluidly connected to the heat exchanger 110 such that the food product can be circulated over the heat exchanger 110 and the alternate tank 112. Having two tanks in this way provides for that while the food product is fed out from the tank 108, the food product 104 in the alternate tank 112 can be cooled by circulating over the heat exchanger 110, and vice versa. In addition to providing the steady flow to equipment downstream, a utilization rate of the heat exchanger 110 and the mixer 106 can be kept high.
[0043] A valve arrangement 114a, 114b, 114c can be used for switching between circulation over the tank 108 and the heat exchanger 110, and the alternate tank 112 and the heat exchanger 110. In the illustrated example, a first valve 114a is provided in connection to the tank 104, a second valve 114b in connection to the heat exchanger 110, and a third valve 114c in connection to the alternate tank 112.
[0044] Further, a holding cell 115, sometimes referred to as holding tube, can be provided downstream the mixer 106 and upstream the tank 104 and alternate tank 112. Having the holding cell 115 is advantageous in that it can be assured that the food product is kept at a pre-determined temperature for a minimum period of time. This is accomplished by using a defined length and cross-sectional area for the holding tube 115, and by controlling the rate by which product is pumped through the holding tube 115.
[0045] To feed the food product 104 from the mixer 106 to the tank 108, the heat exchanger 110 and the alternate tank 112, a combination of pipes, pumps 151, 152, 153 and valves 114a, 114b, 114c may be used. This combination may form a first fluid transfer arrangement 116 providing for that the food product 104 can be fed to the tank 108, the heat exchanger 110 and the alternate tank 112, a second fluid transfer arrangement 118 that can provide for that the food product 104 can be recirculated over the tank 108 and the heat exchanger 110, a third fluid transfer arrangement 120 that can provide for that the food product 104 can be recirculated over the alternate tank 112 and the heat exchanger 110, and, provided that a filling machine 122 is placed downstream the tank 108 and alternate tank 112, a fourth fluid transfer arrangement 124 that can provide for that the food product 104, after being cooled, can be fed to the filling machine 122 from the tank 108 and the alternate tank 112.
[0046] An advantage with the system 100 is that a steady flow of the food product 104 can be provided to the filling machine 122. This is advantageous in that a buffer tank for the filling machine 122 can be omitted. The tank 108 and the alternate tank 112 may function as the buffer tank for the filing machine 122.
[0047] As illustrated by bolded arrows in
[0048] With reference to
[0049] As illustrated in
[0050]
[0051] Returning to
[0052] Further, a first fluid line 140 that is arranged to transfer the paste-like product 104 from the mixer 106 to the tank 108 is provided. A second fluid line 141, 142 is arranged to circulate the paste-like product 104 over the tank 108 and the heat exchanger 110 that is configured to receive cooling media 132 for cooling the paste-like product 104. This second fluid line 141, 142 can comprise a tank-to-heat exchanger pipe 141, providing for that the food product can be fed from the tank to the heat exchanger 110, and a heat exchanger-to-tank pipe 142, providing for that the food product 104 can be fed from the heat exchanger 110 to the tank 108. A third fluid line 144, 145 can be arranged to circulate the paste-like product 104 over the alternate tank 112 and the heat exchanger 110. This third fluid line 144, 145 can comprise a heat exchanger-to-alternate tank pipe 144, providing for that the food product can be fed from the heat exchanger 110 to the alternate tank 112, and an alternate tank-to-heat exchanger pipe 145, providing for that the food product 104 can be fed from the alternate tank 112 to the heat exchanger 110.
[0053]
[0054] Next, in a third step 206, the paste-like food product can be transferred to the tank 108. Thereafter, to cool the paste-like food product 104, in a fourth step 208, the paste-like product 104 can be circulated over the tank 108 and the heat exchanger 110 through which the cooling media 132 flows, such that the paste-like product 104 is cooled.
[0055] Optionally, in a fifth step 210, the paste-like product 104 can be horizontally moved in the tank 108 by using the agitator 126. An advantage with this is that the product 104 is cooled down evenly, that is, the risk of having product 104 in the tank 108 that is not circulated is reduced.
[0056] In addition, in a sixth step 212, a second batch of seeds 102 may be mixed into a second batch of paste-like food product 104 by using the mixer 106, and, in a seventh step 214, the second batch of paste-like product 104 can be heated by using the mixer 106, at the same time as the fourth step 208 is performed, i.e. circulating 208 the paste-like product 104 previously mixed, heated and transferred to the tank 108 over the tank 108 and the heat exchanger 110. In an eighth step 216, the second batch of paste-like product 104 may be transferred to the alternate tank 112.
[0057] Further, prior to the third step 206, the paste-like food product 104 may pass 218 through the holding cell 115 placed downstream the mixer 106 and upstream the tank 108, to secure that the paste-like food product 104 is kept at a predetermined temperature for a minimum period of time.
[0058] From the description above follows that, although various embodiments of the invention have been described and shown, the invention is not restricted thereto, but may also be embodied in other ways within the scope of the subject-matter defined in the following claims.