The invention relates to heating devices based on electric heating and forced air circulation and configured to heat a storage tank filled with a material, which needs to be in a liquid form in order to be used, for example, in a low pressure dispensing machine for processing polyurethane or other thermoset polymers.
Usually, the low pressure or high pressure dispensing machine, also called meter-mix or casting machine, comprises at least two component circuits and each component circuit comprises a storage tank containing one component to be heated to obtain a liquid form with a determined viscosity. The dispensing machine comprises a precision gear pump, a hose going to the mixing head and generally back from it.
Generally, the heating device for heating storage tank of this kind of machines, comprises a main chamber in which the storage tank is at least partially integrated, and as well as the metering elements connected to the storage tank. The main chamber of the heating device comprises heating electrical resistances configured to heat the air enclosed in the main chamber and a blower, which is configured to allow the heated air to circulate into the main chamber, in order to heat the storage tank and metering elements.
This kind of arrangement is advantageous because it is simple to implement, the technology used to heat the storage tank is not expensive compared to other heating technologies such as double-walled device with heating fluid (water, oil, glycol) and all elements of the arrangement (storage tank and metering elements) are heated with the same device. However, the heat transfer of the airflow is generally poor, and several hours are needed to heat the material contained in the storage tank in order to be at a targeted temperature and viscosity. Moreover, at elevated temperatures above 80° Celsius, the poor conductivity and heat transfer capacity generate a high gradient and it is difficult to bring the material temperature inside the storage tank at the targeted set point.
Based on the above, the aim of the invention is to provide an improved heating device, which is simple to conceive and to operate, the heating time of a storage tank being reduced significantly compared to traditional heating device, by improving heat exchange near the storage tank.
For this purpose, one object of the invention is an arrangement comprising a storage tank filled with a material, a heating device configured to heat the storage tank, said heating device comprising:
characterized in that the arrangement further comprises a guiding sleeve element arranged in the main chamber at a distance from the storage tank, forming a peripheral space around the storage tank, the guiding sleeve element having a cylindrical shape creating a ring section on more than half of the storage tank height and being configured to guide the gaseous fluid delivered in the main chamber to the peripheral space such that the gaseous fluid will have the highest possible speed compatible with the fan acceptable pressure drop.
Thanks to the arrangement according to the invention, the heated gaseous fluid is guided throughout the internal volume of the casing in order to improve the heat transfer with the storage tank. Indeed, the guiding sleeve element is shaped to receive the storage tank, and the heated flow is guided inside said guiding sleeve element in a peripheral space formed between storage tank exterior wall and the guiding sleeve element's internal surface. This space allows the heated gaseous fluid to be at the nearest possible to the storage tank exterior wall with an increased speed in order to increase heat transfer and heating speed. Thanks to the invention, the heating time of the storage tank is dramatically reduced by 40 to 60% compared to the traditional technology with a similar installed power, and is allowing a considerably improved heat exchange. Advantageously, the gaseous fluid is air.
According to a feature of the invention, the casing comprises a double-walled structure, in order to be thermally insulated. According to a feature of the invention, the casing comprises a door to allow access to the storage tank and the metering elements, such as a pump, ducts for conveying the material contained into the storage tank, valves, filter, sensors, etc. . . . . According to a feature of the invention, the arrangement may comprise a single accessible casing.
According to a feature of the invention, the casing comprises at a sidewall, an upper wall and a lower wall delimiting the internal volume.
According to a feature of the invention, the casing can have a cylindrical shape or polygonal shape or any shape fitting the storage tank and components to be heated.
According to a feature of the invention, the guiding sleeve element being shaped in order to have the fastest speed and the higher contact surface creating a pressure drop compatible with the blower to keep an optimal flow. For example, the guiding sleeve element can have a cylindrical shape creating a ring section on more than half of the storage tank height or a polygonal shape.
According to another feature of the invention, the metering elements comprise a pump is configured to allow the circulation of the material from the storage tank to a dispensing element, the pump being arranged in the main chamber of the heating device.
According to a feature of the invention, metering elements, such as a pump, ducts for conveying the liquid material contained into the storage tank, valves, filter, sensors, etc . . . , can be advantageously arranged in the main chamber of the heating device.
Thanks to this arrangement, the pump and ducts conveying the material are also heated by the heated flow delivered in the main chamber by the blower, in order to maintain the liquid aspect of the material even if it is out of the storage tank.
According to a feature of the invention, the heating device comprises an upper cavity arranged above the guiding sleeve element and extending along a transverse axis of the casing. Preferentially, the upper cavity is extending in the upper part of the internal volume of the casing, along the upper wall of the casing. The said upper cavity allows the circulation of the flow towards the suction duct.
According to a feature of the invention, the upper cavity is in fluidic communication with the guiding sleeve element. According to a feature of the invention, the upper cavity is in fluidic communication with the suction duct.
According to a feature of the invention, the blower is positioned in the lower part of the internal volume of the casing, in the suction duct.
According to a feature of the invention, the guiding sleeve element comprises an internal surface arranged all around the external wall of the storage tank.
According to a feature of the invention, the guiding sleeve element comprises a first extremity being in communication with the main chamber and a second extremity, opposite to the first extremity, leading to the upper cavity.
According to a feature of the invention, the suction duct comprises a first segment extending from the upper part of the internal volume to the intermediate part of the internal volume.
According to a feature of the invention, the suction duct comprises one or several segments of duct, which are shaped according to the elements housed therein.
According to a feature of the invention, the suction duct comprises a second segment extending from the intermediate part of the internal volume to the lower part of the internal volume. Advantageously, the first segment of the suction duct has a cross-section reduced compared to the cross-section of the second segment. The difference between the two cross-sections allows increasing debit flow upstream the blower in order to increase the heating process of the gaseous fluid.
According to a feature of the invention, the heating element is arranged upstream from the blower and preferentially in the suction duct. Preferentially, the at least one heating element is arranged in the suction duct in the intermediate part or in the upper part of the internal volume, in order to heat gaseous fluid upstream from the main chamber. This arrangement allows heating a small volume of gaseous fluid at an increased debit flow, which increase the speed of the heating process to reach a targeted temperature value. Advantageously, the gaseous fluid to be heated is from the upper cavity of the heating device.
According to a feature of the invention, the heating element is an electrical resistance, which is simple, standard and less expensive than other technologies.
According to a feature of the invention, the heating device comprises several heating elements.
According to a feature of the invention, the heating device comprises a control unit configured to control the at least one heating element and/or the blower.
According to a feature of the invention, the heating device comprises a temperature sensor configured to measure the temperature of the gaseous fluid inside the internal volume.
According to a feature of the invention, the control unit cooperates with the temperature sensor to keep the gaseous fluid temperature at a determined set point. Thus, the temperature sensor measures temperature inside the internal volume and sends the measurements to the control unit which controls the heating element (s) and/or the blower in order to reach the determined temperature set point.
According to a feature of the invention, when the temperature of the gaseous fluid is at a targeted set point, the control unit shuts the heating elements. When the temperature of the gaseous fluid is under the targeted value, the control unit controls the heating elements in order to increase the temperature of the gaseous fluid.
According to a feature of the invention, the flow speed is determined by the control unit in order to be adapted to the heating elements to optimize heat transfer. For example, when targeted temperature is reached, the flow speed could be lower (half fan peed for example) in order to save energy by reduced thermal losses and motor consumption.
The invention has also for object a dispensing machine for processing polymers from at least two circuits-component, comprising at least a first circuit-component equipped with an arrangement according to the invention.
The invention will be better-understood thanks to the detailed specification hereinafter, which describes several embodiments of the invention as examples and based on the following figures.
The arrangement 200 according to the invention, comprises a heating device 1 configured to heat at least one storage tank 100 as illustrated in
The heating device 1 further comprises at least one heating element 20, preferentially several heating elements 20, arranged at least partially in the internal volume of the casing 10 and configured to heat an airflow. In the shown embodiment, the heating elements 20 are electrical resistances but the invention is not limited to this embodiment.
The heating device 1 further comprises a blower fan 30 configured to create an airflow by sucking air from at least the upper part 10a and to deliver sucked air in the main chamber 14.
The internal volume can be divided in three parts namely upper part 10a, intermediate part 10b and lower part 10c according to a longitudinal axis Y-Y of the casing 10. Said parts 10a, 10b, 10c are illustrated schematically in
A shown in
The air suction duct 40 comprises a first segment 41 extending from the upper part 10a to the intermediate part 10b and a second segment 42 extending from the intermediate part 10b to the lower part 10c, the first segment 41 having a cross-section reduced compared to the cross-section of the second segment 42, as shown in
According to the present embodiment of the arrangement of the invention, said arrangement further comprises a guiding sleeve element 50 arranged in the main chamber 14 at a distance from the storage tank 100, forming a peripheral air space 51 around the storage tank 100, the guiding sleeve element 50 being configured to guide the air delivered in the main chamber 14 to the peripheral air space 51 at nearest possible, taking into account acceptable pressure drop to the external wall of the storage tank 100 as shown in
According to an embodiment of the invention, the heating device 1 may include an upper cavity 17 arranged above the guiding sleeve element 50 and extending along a transverse axis X-X of the casing 10, preferentially in the upper part 10a 10, along the upper wall 12 of the casing 10, as shown in
As shown in
According to the invention, the arrangement 200 illustrated in
A shown in
According to an embodiment of the invention, metering elements 101, 102, such as a pump 101, ducts 102 for conveying the liquid material contained into the storage tank 100, valves, filter, sensors, etc . . . , can be advantageously arranged in the main chamber 14 of the heating device 1, in order to be also heated by the heated airflow.
According to a preferred embodiment of the invention, with a fan and a heating power similar to those used in the prior art and parameters as described in Experimental part [49], to reach a temperature of 80° c. with a two hundred liters storage tank 100, unexpectedly, a dramatic improvement has been measured as the time to reach the targeted temperature has been divided by two with a product real temperature closer to the set point, demonstrating the efficiency of this new heating device 1 by forced-air circulation.
In
In other examples (not shown), the parameters can vary: the air fan power can be between 200 and 2000 W for a blower fan output between 500 to 2000 m3/h and a pressure drop between 200 and 2000 Pa. For this kind of ranges the measurements can be:
In other examples (not shown), the parameters can vary: the air fan power can be between 200 and 750 W for a blower fan output between 500 to 1500 m3/h and a pressure drop between 300 and 1000 Pa. For this kind of ranges the measurements can be:
In the example illustrated in
| Number | Date | Country | Kind |
|---|---|---|---|
| 18305588.8 | May 2018 | EP | regional |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/EP2019/062087 | 5/10/2019 | WO | 00 |