The invention relates to a novel type of electric radiator element for the production of energy-efficient applications and radiator heating flanges and to radiator heating pipes for energy efficient solar heating systems in the extra-low-voltage and low-voltage range having integrated radiators.
Known electrical heating conductors, heating wires, heating elements, heating flanges and heating rods, also electrical heating cell conductors, according to the state of the art have the disadvantage that due to the characteristics of heating resistors new eco-design products with reduced energy consumption cannot be realized without losses, because for the heating of a particular electrical resistance of defined dimensions to a certain temperature, at least a certain power is required.
A significant environmentally protective energy saving and reduction of primary energy demand for electric heating elements and their applications, such as heating flanges or heating rods for heating systems, is not possible according to the prior art without loss of size and power.
The present invention is based on the object of creating a new radiator element, the dimensions and heating power of which is increased without additional energy consumption. The radiator element is to respond and heat up quickly, be maintenance-free, and with the smallest possible connected loads have the highest possible energy savings potential and the lowest possible consumption of primary energy.
The foregoing object is achieved with the features of independent claims. Advantageous embodiments are specified in the dependent claims.
A radiator element having multiple heating zones comprises at least one electric heating resistor and/or heating resistor segment, which is electrically connected to at least one tubular diffuse radiator made of a highly electrically conductive and highly heat conductive material, preferably metal with the lowest possible electrical resistance. Preferably, one segment of an electrical heating resistor is arranged between two tubular radiators.
The tubular diffuse radiators are conductively and radiatively heated to the temperature of the heating resistor without consuming additional electrical energy. The heating power of the charged radiators is proportional to temperature, cross-section and length.
The heating power of the heating resistor and/or resistor segment is supported by the radiators with the same temperature radiation, whereby the total heating power of the radiator elements is multiplied.
In a further embodiment for manufacturing a radiator heating rod or radiator heating flange, at least one resistor segment is arranged with at least one radiator in a metal tube so that the casing of the tube is heated by the radiators and the interposed resistor segments by isotropic thermal radiation.
In a further embodiment the radiator heating rod or radiator heating flange is embedded in magnesium oxide, wherein the radiators are appropriate in size and in solid form. In a further embodiment, the radiators are made in the form of brass tubes.
The diffuse radiators may be of any shape, dimensions and material properties, and are preferably made of highly thermally conductive aluminum tubes for maximum temperature up to 500° C. At least one tubular radiator is electrically and thermally connected to at least one resistor segment of any material, any shape, power and dimension, preferably by crimping.
Radiator elements with multiple heating zones can be made in any form, of any material, having any dimensions and any heating power and are preferably used for new eco-design applications such as energy efficient and environmentally friendly heating systems, energy efficient heating rods, heating flanges or ceramic heating elements.
In the drawings:
As illustrated, a radiator element (100) comprises at least one resistor segment (1) and at least one radiator (3). The radiator element (100) may have one or more heating zones. The radiator element (100) comprises at least one electrical heating resistor and/or heating resistor segment (1) electrically and thermally conductively connected in series to at least one radiator (3) by a connecting means (2). The radiator element (100) is electrically connected by connection cables (7).
A radiator element (100) with multiple heating zones comprises a plurality of heating resistor segments (1) that are electrically and thermally connected in series with a plurality of radiators (3). The radiator element (100) is electrically connected by connection cables (7). A respective segment of a heating resistor (1) may be formed of at least two twisted heating resistance wires and arranged electrically and heat-conductingly between two radiators (3).
The radiator heating element (100) may be arranged in a pipe (8) to form a heating tube and/or heating flange. Supply lines (7) may extend from the ends of the pipe (8) to provide an electrical connection. The radiator element (100) may be disposed in a ceramic bed (9).
The radiator (3) may be made of an aluminum tube. The radiator (3) may be formed from a solid aluminum bar. The radiator (3) may be electrically connected at the ends by crimping (2) with the heating resistor and/or heating resistor segment.
The heating resistor (1) may pass through a tubular radiator (3) and be electrically and thermally connected with the radiator (3) by crimping (2) at the tube ends.
The tubular radiator (3) may be made of aluminum and electrically connected by galvanized/silver plated wire ferrules (5) with supply lines (7) by crimping (2.1).
The supply lines (7), the crimping (2.1), and the ends of the radiators (3) that are crimped with the connection lines (7) may be are electrically insulated by braided glass sleeves (4). An aluminum tube (6) may be arranged over the braided glass sleeve insulation (4) and firmly attached by pinching or crimping with the tubular radiator (3).
The supply lines (7) may be formed of an insulated copper wire cable and may be insulated using a braided glass sleeve.
The radiator element (100) may be arranged in a tube (8) in magnesium oxide (10) for the formation of a heating tube and/or heating flange.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2012/003119 | 7/24/2012 | WO | 00 | 5/27/2015 |
Publishing Document | Publishing Date | Country | Kind |
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WO2014/015883 | 1/30/2014 | WO | A |
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