The present invention relates to a radiant heating device for a vehicle that heats passengers using radiant heat.
As a radiant heating device for a vehicle, ones disclosed in Patent Documents 1 and 2 listed below are known.
A radiant heating device 100 disclosed in the Patent Document 1 includes, as shown in
A radiant heating device 110 disclosed in the Patent Document 2 includes, as shown in
A radiant heating device is utilizes as a supplemental heating unit of a blower-type air-conditioner. In an air-conditioner, air outside a passenger compartment (outside air) or air inside a passenger compartment (inside air) is introduced into the air-conditioner, and then supplied to the passenger compartment after conditioned to be desired-temperature conditioned air in an air-conditioning unit.
However, the heated air blown to the passenger compartment flows as shown by an arrow in
Especially, as shown in
Therefore, an object of the present invention is to provide a radiant heating device for a vehicle that can provide warm comfort to a passenger in both of an outside air intake mode and an inside air intake mode of a blower-type air-conditioner.
An aspect of the present invention provides A radiant heating device for a vehicle that includes a radiant heater that radiates radiant heat toward a passenger and is provided together with an air-conditioner that selectively introduces air outside a passenger compartment or air inside the passenger compartment and then supplies conditioned air generated from the introduced air into the passenger compartment, wherein the radiant heating device includes a controller that differentiates a radiant energy amount of the radiant heater when the introduced air into the air-conditioner is the air outside the passenger compartment from when the introduced air is the air inside the passenger compartment.
According to the radiant heating device, the radiant energy amount of the radiant heater can be set so as to obtain desired warm feeling when the air-conditioner introduces air outside a passenger compartment (an outside air intake mode) and when introduces air inside a passenger compartment (an inside air intake mode), so that the passenger can be provided with warm comfort feeling both in the outside air intake mode and in the inside air intake mode of the air-conditioner.
Here, it is preferable that the radiant heater includes a plurality of heating sections that radiate heat toward regions of the passenger, respectively.
Further, it is preferable that the controller adjusts radiant energy amounts of the plurality of heating sections between when the introduced air into the air-conditioner is the air outside the passenger compartment and when the introduced air is the air inside the passenger compartment.
Furthermore, it is preferable that one of the plurality of heating sections radiate radiant heat toward any of knees, calves and thighs of the passenger.
Alternatively, it is preferable that the plurality of heating sections radiate radiant heat toward thighs, knees, shins, toes, calves, heels, a thigh-sideface and a ankle-sideface of the passenger, respectively.
In addition, it is preferable that the radiant heater radiates radiant heat toward the passenger on a rear seat.
In addition, it is preferable that the radiant heating device further includes an operational panel for operating the radiant heater.
In addition, it is preferable that the operational panel includes an adjustment switch for adjusting a radiant energy amount of the radiant heater.
Alternatively, it is preferable that the operational panel includes a switch for setting a radiant energy amount of the radiant heater to maximum.
In addition, it is preferable that the air-conditioner is capable of operating a normal heating operation and an economical heating operation, and the controller, in the economical heating operation, operates the radiant heater when a passenger is seated on a rear seat, and doesn't operate the radiant heater when no passenger is seated on a rear seat.
In addition, it is preferable that the controller controls a radiant energy amount of the radiant heater by a pulse width modulation control.
In addition, it is preferable that the radiant heater includes a plurality of electric heating wires having different patterns, and the controller adjusts a radiant energy amount of the radiant heater by changing over energization to the electric heating wires.
A first embodiment will be explained with reference to
The air-conditioner 1 includes an air-conditioner unit 3 in an inside of a center console panel 2 (see
In the air-conditioner unit 3, a blower, an evaporator and a heater are disposed sequentially from upstream to downstream along an introduced airflow. Outside air or inside air is introduced into the air-conditioner unit 3 due to suction by the blower. The air (the outside air or the inside air) introduced into the sir-conditioner unit 3 is made to desired-temperature conditioned air (heated air or cooled air) by being cooled by the evaporator and/or heated by the heater. The desired-temperature conditioned air is blown out from an outlet port(s) (not shown) provided at a foreside in the passenger compartment. In addition, a drafter inlet 5 is disposed on a rear parcel 4 in the passenger compartment, and a drafter outlet(s) 6 is disposed in a trunk room (see
The radiant heating device 10 includes, as shown in
Each of the radiant heaters 11 is configured of first to fourth electric heating pads 13 to 16. The first electric pad 13 is disposed on a back face of a seatback 7a and a seat cushion 7b of a front seat 7. The second electric heating pad 14 is disposed on a front face of a seat cushion 8b of a rear seat 8. The third electric heating pad 15 is disposed on an interior face of a door 9a. The fourth electric heating pad 16 is disposed on an interior face of a side sill 9b.
The first electric heating pad 13 includes heating sections 13a to 13d vertically divided into four segments. The four heating sections 13a to 13d are a heating section for thigh 13a, a heating section for knee 13b, a heating section for shin 13b, and a heating section for toe 13d sequentially from the top. The heating sections 13a to 13d radiate radiant heat to regions of a passenger A on the rear seat 8, respectively. The second electric heating pad 14 includes heating sections 14a and 14b vertically divided into two segments. An upper one of the two is a heating section for calf 14a, and a lower one is a heating section for heel 14b. The heating sections 14a and 14b radiate radiant heat to regions of the passenger A on the rear seat 8, respectively. The third heating pad 15 is a heating section for thigh-sideface 15 as a whole, and radiates radiant heat to a side face of thigh of the passenger A on the rear seat 8. The fourth heating pad 16 is a heating section for ankle-sideface 16 as a whole, and radiates radiant heat to a side face of ankle of the passenger A on the rear seat 8.
Each of the electric heating pads 13 to 16 has, as shown in
The two operational panels 30 are disposed on a center console (not shown) on a side of rear seats. Each of the operational panels 30 includes, as shown in
Next, a control system of the radiant heating device 10 will be explained. As shown in
Next, controls of the radiant heating device 10 will be explained. The controller 40 controls the radiant heaters 11 the left and right rear seats 8 based on processes shown in a flowchart in
First, when the rear seat heating switch 31 is turned on (YES in step S1), it is judged whether or not the MAX HOT switch 33 is being turned on (step S2). If the MAX HOT switch 33 is being turned on (YES in step S2), maximum energizing powers are supplied to the first to fourth electric heating pads 13 to 16 (step S3). On the other hand, if the MAX HOT switch 33 is being turned off (NO in step S2), the air intake mode of the air-conditioner 1 is judged (step S4).
If in the outside air intake mode, energizing powers for the input pattern A are supplied to the heater sections 13a to 16 (step S5). During the energization with the input pattern A, an operation to the adjustment switch 32a or 32b is always monitored (step S6). If the adjustment switch 32a or 32b is operated during the energization with the input pattern A (YES in step S6), a radiant energy amount is increased or decreased by 10% per one level of turning up or down of temperature (step S7).
On the other hand, if in the inside air intake mode, energizing powers for the input pattern B are supplied to the heater sections 13a to 16 (step S8). During the energization with the input pattern B, an operation to the adjustment switch 32a or 32b is always monitored (step S9). If the adjustment switch 32a or 32b is operated during the energization with the input pattern B (YES in step S9), a radiant energy amount is increased or decreased by 10% per one level of turning up or down of temperature (step S10).
When the air-conditioner 1 is operated in its heating operation with the outside air intake mode, as show in
If the radiant heating device 10 is operated in the heating operation of the air-conditioner 1 like this, radiant energy that can provide desired warm feeling in each of the air intake modes is radiated to the passenger(s) A on the rear seat(s) 8 from the radiant heater(s) 11. As a result, it becomes possible to provide warm comfort feeling to the passenger A on the rear seat 8 both in the outside air intake mode and in the inside air intake mode.
Since the radiant heater 11 includes plural heating sections 13a to 16 for radiating plural regions of the passenger A, respectively, finely-tuned heating can be made and thereby feeling of warm comfort can be improved.
Radiant energy of the plural heating sections 13a to 16 is independently adjustable, radiant energy amounts of heating sections 13a to 16 are adjusted in the inside air intake mode and in the outside air intake mode, respectively. Since warm feeling by the air-conditioner 1 for each of regions of a lower body is different between in the outside air intake mode and in the inside air intake mode, the passenger A can feel improved warm comfort through supplemental heating according to the regions by using the radiant heating device 10.
One of the plural heating sections 13a to 16 is the heating section for knee 13b that radiates heat toward knees of the passenger A on the rear seat 8. Although the heated air from the air-conditioner 1 flows through circumference of the knees of the passenger A in the outside air intake mode, but doesn't flow through the circumference of the knees of the passenger A in the inside air intake mode. Therefore, the radiant energy toward the knees of the passenger A is set low in the outside air intake mode and set high in the inside air intake mode, so that warm comfort feeling for knee can be provided in the both air intake modes.
One of the plural heating sections 13a to 16 is the heating section for calf 14a that radiates heat toward calves of the passenger A on the rear seat 8. The heated air from the air-conditioner 1 flows through circumference of the knees of the passenger A and then flows upward in the outside air intake mode, and cool air near a floor surface is drawn by this flow of the heated air and thereby flows through circumference of the calves of the passenger A (see a dashed arrow in
One of the plural heating sections 13a to 16 is the heating section for thigh 13a that radiates heat toward thighs of the passenger A on the rear seat 8. The heated air from the air-conditioner 1 flows through circumference of the knees of the passenger A and then flows upward in the outside air intake mode, and cool air near a floor surface is drawn by this flow of the heated air and thereby flows through circumference of the thighs of the passenger A (see a dashed arrow in
The plural heating sections 13a to 16 radiate heat toward thighs, knees, shins, toes, calves, heels, a thigh-sideface and a ankle-sideface of a passenger A on the rear seat 8, respectively. Therefore, since it can perform a heating operation appropriate to the regions (thighs, knees, shins, toes, calves, heels, a thigh-sideface and a ankle-sideface) of a lower body of the passenger A in the outside air intake mode and in the inside air intake mode, warm comfort feeling can be improved.
The radiant heater 11 is configured to radiate heat toward a passenger A on the rear seat 8. A passenger B on the front seat 7 can get heating by the air-conditioner 1 sufficiently. On the other hand, the passenger A on the rear seat 8 cannot always get heating by the air-conditioner 1 sufficiently, but can get radiant heat from the radiant heater 11. Therefore, it can be possible to provide warm comfort feeling to both of the passengers A and B on the front seat(s) 7 and the rear seat(s) 8.
As shown in a [Table 2] below, comfort (for a whole body and a lower body) experiments for a passenger A on the rear seat 8 were made with the radiant heater operated and not-operated under a condition where the air-conditioner 1 was operated so as to provide comfort feeling to a passenger B on the front seat 7 in the outside air intake mode. In the experiments, several people evaluated comfort with point ratings as a passenger A on the rear seat 8, and an averaged value is calculated. The point ratings for the comfort evaluation were “very hot”=+3, “hot”=+2, “slightly hot”=+1, “appropriate”=0, “slightly cold”=−1, “cold”=−2, and “very cold”=−3. According to results of the experiments, passengers A on the rear seat 8 felt “slightly cold” for a whole body and a lower body when the radiant heater 11 is not operated. On the other hand, the passengers A on the rear seat 8 felt comfort intermediate between “slightly hot” and “appropriate” for a whole body and a lower body when the radiant heater 11 is operated. Namely, the radiant heating device 10 improves comfort in the outside air intake mode for a passenger A on the rear seat 8 (and passengers B on the front seat 7 also felt appropriate comfort).
As shown in a [Table 3] below, experiments were made also in the inside air intake mode similarly to the above experiments in the outside air intake mode. According to results of the experiments, passengers A on the ear seat 8 felt “slightly cold” for a whole body and “cold” for a lower body when the radiant heater 11 is not operated. On the other hand, the passengers A on the rear seat 8 felt “appropriate” for a whole body and a lower body when the radiant heater 11 is operated. Namely, the radiant heating device 10 improves comfort in the inside air intake mode for a passenger A on the rear seat 8 (and passengers B on the front seat 7 also felt appropriate comfort).
As explained above, the radiant heating device 10 includes the operational panels 30 for the radiant heaters 11. Therefore, since an operational setting can be changed according to a passenger A, a heating operation preferable for the passenger A can be done.
The operational panel(s) 30 includes the adjustment switches 32a and 32b for adjusting a radiant energy amount of the radiant heater 11. Although warm comfort that a passenger A on the rear seat 8 feels may varies from person to person even in the same temperature, the passenger A can operate preferable heating by the adjustment switches 32a and 32b.
In addition, the operational panel(s) 30 also includes the MAX HOT switch 33 for setting a radiant energy amount of the radiant heater 11 to maximum. Therefore, a passenger A on the rear seat 8 can operate a heating operation for quickly heating the inside of the passenger compartment.
As explained above, a radiant energy amount of the radiant heater 11 is controlled with a PWM control. Therefore, the radiant energy amount of the radiant heater 11 can be changed and adjusted.
A second embodiment will be explained with reference to
An air-conditioning system in the present embodiment includes, similarly to the above first embodiment, a blower-type air-conditioner 1 and a radiant heating device 10 for a vehicle, but the air-conditioner 1 can perform an economical heating operation in addition to a normal heating operation. Therefore, as shown in
In addition, seat occupant sensors (not shown) each detects whether or not a passenger A is seated thereon are is installed in the left and right rear seats 8 in addition to the operational panels 30. Data detected by the seat occupant sensors are input to the controller 40 of the radiant heating device 10 together with air intake mode data (the outside air intake mode or the inside air intake mode) of the air-conditioner 1 and operational data of the operational panels 30.
Next, controls of the radiant heating device 10 will be explained. The controller 40 controls the radiant heaters 11 for the left and right rear seats 8 based on processes shown in a flowchart in
First, it is judged whether or not the economical heating switch 39 is being turned on in the auto mode (the auto switch 38 is being turned on) (step S11). If the economical heating switch 39 is being turned off (NO in step S11), an all-seat preferential air-conditioning control (normal heating operation) is operated (step S13). In the all-seat preferential auto air-conditioning control, a heating operation that takes into account the rear seats 8 in addition to the front seats 7 is operated regardless of whether or not a passenger(s) A seats on the rear seat(s) 8. Specifically, the radiant heating device 10 is controlled based on operated states of the operational panels 30 similarly to the above first embodiment (steps S21 to S30). Explanations of controls in the steps S21 to S30 after the step S13 are omitted, because they are identical to controls in the steps S1 to S10 in the above first embodiment.
On the other hand, if the economical heating switch 39 is being turned on (YES in step S11), a front-seat preferential auto air-conditioning control (economical heating operation) is operated (step S12). In the front-seat preferential auto air-conditioning control, it is firstly judged whether or not a passenger A is seated on the rear seat 8 (step S14). If no passenger A is seated on the rear seat 8 (NO in step S14), it is not needed to operate the radiant heaters 11 of the radiant heating device 10 and thereby the all-seat preferential heating operation that takes into account only the front seats 7 is operated without operating the radiant heaters 11. Namely, the control in the step S12 (the front-seat preferential auto air-conditioning control) is processed only by the air-conditioner 1 and the radiant heating device 11 is not operated in a case where the step S14 is disaffirmed, so that it saves energy (becomes economical).
On the other hand, if a passenger A is seated on the rear seat 8 (YES in step S14), the radiant heating device 10 is controlled based on operated states of the operational panels 30 similarly to the above first embodiment (steps S21 to S30). Explanations of controls in the steps S21 to S30 after the affirmation of the step S13 are omitted, because they are identical to controls in the steps S1 to S10 in the above first embodiment.
Also according to the present embodiment, functions and advantages similar to those in the above first embodiment can be obtained.
Further, the air-conditioner 1 can operate the economical heating operation in addition to the normal heating operation. In the economical heating operation, the radiant heating device 10 is operated based on operated states of the operational panels 30 when a passenger A is seated on the rear seat 8, and the radiant heating device 10 is not operated when no passenger A is seated on the rear seat 8. Therefore, since the radiant heating device 10 is not operated for the rear seats 8 on which no passenger A is seated, it saves energy (become economical).
(Modified Example of Radiant Heater)
A modified example of the radiant heater 11 will be explained with reference to
As shown in
Each of the electric heating pads 13A, 14A, (15) and (16) includes the plural patterns of the electric heating wires 21A to 21D and so on, radiant energy amounts of the electric heating pads 13A, 14A, (15) and (16) can be easily adjusted by changing over energization to the plural patterns of the electric heating wires 21A to 21D and so on.
Note that, although the radiant heating device 10 is configured to warm a passenger(s) A on the rear seat(s) 8 in the above first and second embodiments, it may be configured to warm a passenger(s) B on the front seat(s) 7.
Number | Date | Country | Kind |
---|---|---|---|
2010-124136 | May 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2011/061052 | 5/13/2011 | WO | 00 | 11/20/2012 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2011/152187 | 12/8/2011 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5590540 | Ikeda et al. | Jan 1997 | A |
6897417 | Usselman et al. | May 2005 | B1 |
7120353 | Schaeffer et al. | Oct 2006 | B2 |
8362398 | Heiden et al. | Jan 2013 | B2 |
20070215589 | Berger | Sep 2007 | A1 |
20080046146 | Brekke et al. | Feb 2008 | A1 |
20090289045 | Hotary | Nov 2009 | A1 |
20090320416 | Tischhauser | Dec 2009 | A1 |
20100176110 | Ogino et al. | Jul 2010 | A1 |
20100258645 | Hioki et al. | Oct 2010 | A1 |
20110042988 | Alpert | Feb 2011 | A1 |
20110127246 | Heiden et al. | Jun 2011 | A1 |
20120267354 | Okamoto et al. | Oct 2012 | A1 |
20120292301 | Anzai et al. | Nov 2012 | A1 |
20130106147 | Lazanja et al. | May 2013 | A1 |
20130119042 | Eisenhour et al. | May 2013 | A1 |
20130334202 | Li et al. | Dec 2013 | A1 |
20140083672 | Rollinson et al. | Mar 2014 | A1 |
20140187140 | Lazanja et al. | Jul 2014 | A1 |
Number | Date | Country |
---|---|---|
35 32 492 | Mar 1987 | DE |
299 23 543 | Mar 2001 | DE |
0 214 517 | Mar 1987 | EP |
0 857 593 | Aug 1998 | EP |
2009-166828 | Mar 1987 | JP |
08-244443 | Sep 1996 | JP |
2008-254665 | Sep 1996 | JP |
2006-224813 | Aug 2006 | JP |
2008-006955 | Jan 2008 | JP |
2009-067224 | Apr 2009 | JP |
2009-178247 | Aug 2009 | JP |
WO 2009075063 | Jun 2009 | WO |
Number | Date | Country | |
---|---|---|---|
20130068440 A1 | Mar 2013 | US |