Electric heater comprising four independent heating regions
11535087 · 2022-12-27
Assignee
Inventors
- Daniele Baseggio (Poirino, IT)
- Ilario Grosso (Poirino, IT)
- Luca Bergamo (Poirino, IT)
- Annunziata Bruna Lorusso (Poirino, IT)
Cpc classification
B60H1/2225
PERFORMING OPERATIONS; TRANSPORTING
F24H9/1872
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B2203/02
ELECTRICITY
B60H2001/2228
PERFORMING OPERATIONS; TRANSPORTING
F24H3/0429
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60H1/22
PERFORMING OPERATIONS; TRANSPORTING
F24H3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/1863
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A positive temperature coefficient electric heater for a vehicle includes a support part, a control circuitry, and a first and a second radiating layers overlapping one another, each radiating layer having a plurality of heating rods extending from the support part and connected in parallel to the control circuitry. Each radiating layer has a first layer sector and a second layer sector controlled independently of one another. The radiating layers may be controlled independently of one another. In the first radiating layer, the second section of the heating rods is capable of generating greater thermal power than the first section of the heating rods and, in the second radiating layer, the first section of the heating rods is capable of generating greater thermal power than the second section of the heating rods.
Claims
1. A positive temperature coefficient electric heater for a vehicle, the positive temperature coefficient electric heater comprising a support part and a control circuitry housed within the support part, and a first radiating layer and a second radiating layer superimposed to each other and configured to be passed through by an air flow, each radiating layer comprising a plurality of heating rods, extending from the support part and connected in parallel to the control circuitry, each of the heating rods having a first section adjacent to the support part and a second section far from the support part, wherein each radiating layer comprises a first layer sector and a second layer sector controllable independently of each other through the control circuitry, wherein the first and second radiating layers are connected in parallel to the control circuitry and are controllable independently of each other through the control circuitry, and wherein the heating rods are configured in such a way that, in the first radiating layer, the second section of the respective heating rods is capable of generating a greater thermal power than the first section of the respective heating rods and, in the second radiating layer, the first section of the respective heating rods is capable of generating a greater thermal power than the second section, of the respective heating rods.
2. The positive temperature coefficient electric heater of claim 1, wherein each of the heating rods comprises a string of thermistors connected in parallel, wherein the first section and the second section of the heating rods of the first radiating layer have respective configurations of thermistors capable of generating thermal powers different from each other, and wherein the first section and the second section of the heating rods of the second radiating layer have respective configurations of thermistors capable of generating thermal powers different from each other.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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DETAILED DESCRIPTION
(5)
(6) The heater 100 comprises a support part 101 designed to allow the heater 100 to be mounted on an air-conditioning unit (not shown) such that the heater 100 is arranged inside a duct for distributing air in order to intercept a flow of air to be heated. The heater 100 also comprises a control circuitry 102 housed in the support part 101 and shown schematically by a rectangle in
(7) The heater 100 also comprises a first and a second radiating body or layer 110 and 120 that overlap and are designed such that a substantially orthogonal flow of air flows therethrough, the direction of which is shown by arrow F in
(8) Each radiating layer 110, 120 comprises a plurality of heating rods, which are indicated by 115 and 115′ in relation to the first radiating layer 110, and by 125 and 125′ in relation to the second radiating layer 120. The heating rods 115, 115′, 125, 125′ extend from the support part 101 and are connected in parallel with the control circuitry 102. Each heating rod 115, 115′, 125, 125′ comprises a string of PTC elements or thermistors connected in parallel (not shown). The PTC elements are arranged inside each heating rod 115, 115′, 125, 125′ such that the thermal power is imbalanced between a section that is adjacent to the support part 101, hereinafter referred to as the first section and indicated by reference numbers 115a, 115a′, 125a, 125a′ in
(9) A sub-unit formed by the heating rods of the first radiating layer 110, which are indicated by 115, identifies a first sector of the active region of the first radiating layer 110. This first sector is formed by two heating zones, indicated by A1 and C1 in
(10) The first sector formed by the heating zones A1 and C1 and the second sector formed by the heating zones B1 and D1 may be controlled independently of one another by means of the control circuitry 102.
(11) A sub-unit formed by the heating rods of the second radiating layer 120, which are indicated by 125, identifies a first sector of the active region of the second radiating layer 120. This first sector is formed by two heating zones, indicated by A2 and C2 in
(12) In the second radiating layer 120, the first sector formed by the heating zones A2 and C2 and the second sector formed by the heating zones B2 and D2 may be controlled independently of one another by means of the control circuitry 102.
(13) Furthermore, the radiating layers 110 and 120 may be controlled independently of one another by means of the control circuitry 102.
(14) The four heating zones A1, B1, C1 and D1 of the first radiating layer 110 overlap the four heating zones A2, B2, C2 and D2 of the second radiating layer 120, respectively, such that four heating zones are defined in the heater 100 overall: a first one, formed by overlapping zones A1 and A2, a second one, formed by overlapping zones B1 and B2, a third one, formed by overlapping zones C1 and C2, and a fourth one, formed by overlapping zones D1 and D2.
(15) The thermal power in the first radiating layer 110 may be imbalanced such that, in zones A1 and B1 of the first radiating layer 110, which are adjacent to the support part 101, the thermal power generated by the heating rods 115, 115′ is low, for example close to zero, and in zones C1 and D1 of the first radiating layer 110, which are remote from the support part 101, the thermal power generated by the heating rods 115, 115′ is high, for example a few thousand watts. Inversely, the thermal power in the second radiating layer 120 may be imbalanced such that, in zones A2 and B2 of the second radiating layer 120, which are adjacent to the support part 101, the thermal power generated by the heating rods 125, 125′ is high, for example a few thousand watts, and in zones C2 and D2 of the second radiating layer 120, which are remote from the support part 101, the thermal power generated by the heating rods 125, 125′ is low, for example close to zero.
(16) The heater may be designed such that zones A1 and B1 of the first radiating layer 110 and zones C2 and D2 of the second radiating layer 120 are not able to generate thermal power (for example by configuring them such that they are devoid of PTC elements) and such that zones C1 and D1 of the first radiating layer 110 and zones A2 and B2 of the second radiating layer 120 are each able to generate a power of 2000 W.
(17) If the first sector (A1+C1) of the first radiating layer 110 is activated, for example, it will have a concentrated power of 2000 W in the quadrant formed by the overlapping zones C1 and C2.
(18) Even if a concentrated power of 2000 W were to be desired in the quadrant formed by the overlapping zones B1 and B2, it would suffice to turn on the second sector (B2+D2) of the second radiating layer 120.
(19) This would result in all the other combinations.
(20) The present invention is not intended to be limited to the embodiments described and illustrated herein, but may be modified in terms of its shape and arrangement of parts, structural details and function, without thereby departing from the scope of protection, as described and claimed herein.