This application is a 371 application of the International PCT application serial no. PCT/JP2019/001743, filed on Jan. 22, 2019, which claims the priority benefits of Japan Patent Application No. 2018-037074, filed on Mar. 2, 2018. The entirety of each of the above-mentioned patent applications is hereby incorporated by reference herein and made a part of this specification.
The present invention relates to a heating device that includes a heater configured to heat an item, a temperature detection unit configured to detect a temperature of the heated item, and a temperature adjustment unit configured to control the heater. Also, the invention relates to a method for detecting a failure in a heating device.
In the related art, a method for detecting a failure in a feedback system on the basis of an actual temperature measurement value in a temperature control loop and a temperature prediction value predicted using a model has been proposed as a technology for detecting a failure in a heating device. For example, Patent Literature 1 discloses a method of determining a state of a control target with reference to a behavior in a control transient state, a representative example of which is a step response.
[Patent Literature 1]
According to a method for determining a state of a control target on the basis of a behavior of a feedback system when a transient state is caused to occur as disclosed in Patent Literature 1, it is not possible to detect the extent of the respective changes related to heat retention of a heated item.
Thus, an objective of the invention is to provide a heating device and a failure detecting method of a heating device capable of detecting a change related to heat retention of a heated item.
As an example of the disclosure, there is provided a heating device that includes a heater configured to heat an item, a temperature detection unit configured to detect a temperature of the heated item, and a temperature adjustment unit configured to control the heater on the basis of a detected value of the temperature detection unit and a target temperature so that the temperature of the heated item reaches the target temperature, the heating device including; a system gain change rate calculation unit configured to obtain a temperature increase value of the heated item from the detected value of the temperature detection unit, obtain a system gain, which is a ratio of the temperature increase value of the heated item with respect to electric power inputted to the heater, and obtain, as a system gain change rate, a rate of change from an initial value of the system gain; and a heat retention change rate calculation unit configured to obtain a rate of change in heat retention of the heated item from the system gain change rate.
With this configuration, it is possible to detect a change related to heat retention of the heated item.
Also, in the example of the disclosure, the heating device further includes: a heater resistance value change rate calculation unit configured to obtain a resistance value of the heater from a voltage and a current applied to the heater and obtain, as a heater resistance value change rate, a rate of change from an initial value of the resistance value, and the heat retention change rate calculation unit obtains the rate of change in heat retention of the heated item from the system gain change rate and the heater resistance value change rate.
With this configuration, it is possible to detect deterioration of the heater in the heating device and a change related to heat retention of the heated item.
In addition, in the example of the disclosure, the heating device further includes: a heater voltage change rate calculation unit configured to obtain, as a heater voltage change rate, a rate of change from an initial value of a voltage applied to the heater, and the heat retention change rate calculation unit obtains the rate of change in heat retention of the heated item from the system gain change rate and the heater voltage change rate.
With this configuration, it is possible to detect a variation in voltage applied to the heater and a change related to heat retention of the heated item.
Also, in the example of the disclosure, the heating device further includes: a heater voltage change rate calculation unit configured to obtain, as a heater voltage change rate, a rate of change from an initial value of a voltage applied to the heater, and the heat retention change rate calculation unit obtains the rate of change in heat retention of the heated item from the system gain change rate, the heater resistance value change rate, and the heater voltage change rate.
With this configuration, it is possible to detect deterioration of the heater in the heating device, a variation in voltage applied to the heater, and a change related to heat retention of the heated item.
Also, in the example of the disclosure, the heating device further includes: a heat retention failure detection unit configured to detect a failure in the heat retention by comparing the heat retention change rate with a threshold for the heat retention change rate. With this configuration, it is possible to detect a failure related to heat retention of the heated item.
Also, in the example of the disclosure, the heating device further includes: a heater resistance value failure detection unit configured to detect a failure in the resistance value of the heater by comparing the heater resistance value change rate with a threshold value for the heater resistance value change rate. With this configuration, it is possible to detect a failure in the resistance value of the heater.
Also, in the example of the disclosure, the heating device further includes: a heater voltage failure detection unit configured to detect a failure in the voltage applied to the heater by comparing the heater voltage change rate with a threshold value for the heater voltage change rate. With this configuration, it is possible to detect a failure in voltage applied to the heater.
Also, according to an example of the disclosure, there is provided a failure detecting method of a heating device that includes a heater configured to heat an item, a temperature detection unit configured to detect a temperature of the heated item, and a temperature adjustment unit configured to control the heater on the basis of a detected value of the temperature detection unit and a target temperature so that the temperature of the heated item reaches the target temperature, the failure detecting method including: obtaining a temperature increase value of the heated item from the detected value of the temperature detection unit, obtaining a system gain, which is a ratio of the temperature increase value of the heated item with respect to electric power inputted to the heater, and obtaining, as a system gain change rate, a rate of change from an initial value of the system gain; and obtaining a rate of change in heat retention of the heated item from the system gain change rate and detecting a failure in the heating device depending on whether or not the rate of change in heat retention exceeds a threshold value.
With this configuration, it is possible to detect a change related to heat retention of the heated item and a failure in heating device.
According to the invention, it is possible to detect a change related to heat retention of the heated item.
(A) of
(A) of
(A) of
Hereinafter, an embodiment for carrying out the invention will be described with reference to some drawings.
First, an example to which the invention is applied will be described with reference to
As illustrated in
The temperature adjustment unit 30 includes a system gain change rate calculation unit, a heater resistance value change rate calculation unit, a heater voltage change rate calculation unit, and a heat retention change rate calculation unit. The system gain change rate calculation unit obtains a temperature increase value of the heated item 1 from the detected value of the temperature detection unit 20, obtains a system gain, which is a ratio of the temperature increase value of the heated item 1 with respect to electric power inputted to the heater 10, and obtains a rate of change from an initial value of the system gain. The heater resistance value change rate calculation unit obtains a resistance value of the heater 10 from a voltage and a current applied to the heater 10 and obtains a rate of change from an initial value of the resistance value. The heater voltage change rate calculation unit obtains a rate of change in voltage applied to the heater 10 from an initial value thereof. Also, the heat retention change rate calculation unit obtains a rate of change in heat retention of the heated item from the system gain change rate, the heater resistance value change rate, and the heater voltage change rate.
Next, a configuration of the heating device according to the embodiment of the invention will be described with reference to the drawing. As described above,
As represented in
The item 1 is a heating unit of a packaging machine configured to heat a resin and package an article, for example. The heater 10 and the temperature detection unit 20 are provided in the heating unit.
The temperature adjustment unit 30 includes a voltage-temperature conversion unit 31 configured to convert a voltage output from the temperature detection unit 20 into a temperature information signal, an operation amount-PWM conversion unit 32 configured to perform PWM control on the solid state switch 40, and an operation amount conversion unit 33. The operation amount conversion unit 33 is a PID controller and obtains the amount of operation through PID control on the basis of temperature information and target temperature information obtained by the voltage-temperature conversion unit 31.
In addition, the operation amount conversion unit 33 performs an arithmetic operation as the system gain change rate calculation unit, an arithmetic operation as the heater resistance value change rate calculation unit, an arithmetic operation as the heater voltage change rate calculation unit, and an arithmetic operation as the heat retention change rate calculation unit. These arithmetic operations will be described in detail below.
(A) of
As illustrated in (A) of
(A) of
In this manner, the system gain, which will be described later, varies due to a change, that is “loosening” in an attachment state of the heater 10 and an attachment state of the cover. In other words, the system gain may vary from the initial state with utilization of the heating device.
(A) of
In this manner, the system gain, which will be described later, varies due to a change, that is “loosening” in a state of an attachment portion of the temperature detection unit 20. In other words, the system gain may vary from the initial state with utilization of the heating device.
Here, if the difference between the target temperature and the ordinary temperature is represented as ΔPV, and the stable amount of operation is represented as MV, a system gain K is represented by the following equation since the system gain is a ratio of the temperature increase value of the heated item 1 with respect to the electric power inputted to the heater 10.
K=ΔPV/MV
Here, if the gain related to a heat transmission coefficient between the item 1 and the temperature detection unit 20 is represented as B, the voltage applied to the heater 10 is represented as V, and the resistance value of the heater 10 is represented as R, the system gain K is also represented by the following equation.
K=B×V2/R
The resistance value R of the heater 10 is obtained by
R=V/i
where the heater voltage is represented as V, and the heater current is represented as i.
If the system gain at a timing at which the system gain change rate is obtained is represented as K′, the rate of change in gain related to the heat transmission coefficient between the item 1 and the temperature detection unit 20 is represented as a, the rate of change in heater voltage is represented as b, and the rate of change in heater resistance value is represented as c, the system gain K′ after a variation is represented by the following equation.
K′=aB×(bV)2/cR
Also, if the initial system gain is represented as K, and the system gain at the timing at which the system gain change rate is obtained is represented as K′, the system gain change rate d is represented by the following equation.
d=K′/K
=ab2/c
In addition, it is possible to state that the rate of change a in the gain related to the heat transmission coefficient between the item 1 and the temperature detection unit 20 is a rate of change in heat retention of the item 1. Therefore, it is possible to obtain the rate of change a in heat retention using the following equation.
a=cd/b2
An arithmetic operation performed by the operation amount conversion unit 33 illustrated in
If an initial resistance value of the heater 10 is represented as R, and a resistance value at a timing at which the heater resistance value change rate is obtained is represented as R′, the heater resistance value change rate calculation unit obtains the heater resistance value change rate c using the following equation.
c=R′/R
In addition, an arithmetic operation performed as the heater voltage change rate calculation unit is as follows.
If an initial voltage applied to the heater 10 is represented as V, and a voltage at the timing at which the heater voltage change rate is obtained is represented as V′, the heater voltage change rate calculation unit obtains the heater voltage change rate b using the following equation.
b=V′/V
In addition, the rate of change a in heat retention is obtained from the system gain change rate d, the heater resistance value change rate c, and the heater voltage change rate b.
As illustrated in
In a state in which the heater resistance value change rate c exceeds a predetermined threshold value, the resistance value of the heater 10 is regarded as being “abnormal”. When c>1.2, for example, the heater resistance value is regarded as being abnormal.
Also, in a state in which the heater voltage change rate b exceeds a predetermined threshold value, the heater voltage is regarded as being “abnormal”. For example, the heater voltage is regarded as being abnormal when b<0.9 or b>1.1.
Also, in a state in which the rate of change a in heat retention exceeds a predetermined threshold value, the are regarded as being “abnormal”. For example, the heat retention are regarded as being abnormal when a<0.74.
In this manner, any of the abnormal states can individually be detected.
Also, there is a concern that in a case in which properties (system gain) of the heating device, that is, the heater voltage, the heater resistance value, the heat retention, and the like have varied, temperature control performance may be degraded due to the variations. However, in a state in which the given heater voltage change rate, the heater resistance value change rate, and the rate of change in heat retention are small, it is possible to maintain the temperature control performance by calculating a proportional band (P in PID control) again from the new heater voltage, heater resistance value, and heat retention.
Finally, it is a matter of course that the above description of the embodiment for carrying out the invention has been provided only for illustrative purposes in terms of all points and is not intended to be restrictive. It is possible for those skilled in the art to appropriately add modifications and changes. Although the amount of variation from the initial value is obtained for each parameter to detect a failure in the aforementioned example, for example, it is not necessary to fix at which point a value is defined as the initial value. For example, a system gain at a timing at which the target temperature is reset may be defined as an initial value of the system gain, a resistance value of the heater at that timing may be defined as an initial value of the heater resistance value, and a heater voltage at that timing may be defined as an initial value of the heater voltage.
Number | Date | Country | Kind |
---|---|---|---|
2018-037074 | Mar 2018 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2019/001743 | 1/22/2019 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2019/167473 | 9/6/2019 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3315063 | Ihlenfeldt | Apr 1967 | A |
5681494 | Suzuki et al. | Oct 1997 | A |
11003150 | Wada | May 2021 | B2 |
20070119846 | Girelli et al. | May 2007 | A1 |
20200187304 | Yamada | Jun 2020 | A1 |
20210093065 | Mafuve | Apr 2021 | A1 |
Number | Date | Country |
---|---|---|
1645158 | Jul 2005 | CN |
1834817 | Sep 2006 | CN |
1847786 | Oct 2006 | CN |
101990707 | Mar 2011 | CN |
103875308 | Jun 2014 | CN |
104955178 | Sep 2015 | CN |
106248075 | Dec 2016 | CN |
107427080 | Dec 2017 | CN |
2569660 | Jun 2019 | GB |
2001265447 | Sep 2001 | JP |
2001265448 | Sep 2001 | JP |
2003167605 | Jun 2003 | JP |
2007293474 | Nov 2007 | JP |
2008025958 | Feb 2008 | JP |
2008217317 | Sep 2008 | JP |
2010003133 | Jan 2010 | JP |
4481953 | Jun 2010 | JP |
2011232025 | Nov 2011 | JP |
M406757 | Jul 2011 | TW |
201606252 | Feb 2016 | TW |
WO-2016080039 | May 2016 | WO |
Entry |
---|
“Office Action of China Counterpart Application”, dated Jun. 30, 2021, with English translation thereof, p. 1-p. 12. |
“Search Report of Europe Counterpart Application”, dated Oct. 22, 2021, p. 1-p. 7. |
“International Search Report (Form PCT/ISA/210) of PCT/JP2019/001743 ,” dated Apr. 16, 2019, with English translation thereof, pp. 1-4. |
“Written Opinion of the International Searching Authority (Form PCT/ISA/237) of PCT/JP2019/001743,” dated Apr. 16, 2019, with English translation thereof, pp. 1-6. |
Office Action of Taiwan Counterpart Application, with English translation thereof, dated Nov. 7, 2019, pp. 1-6. |
Number | Date | Country | |
---|---|---|---|
20210136872 A1 | May 2021 | US |