Thermometer and temperature monitoring system
10801897 ยท 2020-10-13
Assignee
Inventors
Cpc classification
G01K1/026
PHYSICS
H04W4/80
ELECTRICITY
G01K3/005
PHYSICS
International classification
G01K1/02
PHYSICS
H04W4/80
ELECTRICITY
Abstract
A temperature monitoring system includes a thermometer and a first communication device. The thermometer counts a monitoring time, executes a measuring procedure to acquire a first temperature value and a second temperature value to determine whether to wirelessly broadcast a temperature information signal, and executes a time interval producing procedure after the measuring procedure to determine a time interval and to determine whether the measuring procedure is terminated. The first communication device receives the temperature information signal from the thermometer. The user may remotely monitor the temperature of a monitored object through the first communication device.
Claims
1. A thermometer, comprising: a first sensing unit configured to sense an internal temperature of a monitored object to produce a first temperature value; a second sensing unit configured to sense an ambient temperature external to the monitored object to produce a second temperature value; an antenna; a wireless communication unit configured to be electrically connected to the first sensing unit, the second sensing unit, and the antenna, wherein the wireless communication unit comprises a memory storing a first previous temperature value and a second previous temperature value, wherein the wireless communication unit counts a monitoring time at first, and executes a measuring procedure to: load the first previous temperature value and the second pervious temperature from the memory; acquire the first temperature value and the second temperature value from the first sensing unit and the second sensing unit; produce and wirelessly broadcast a temperature information signal when a difference between the first temperature value and the first previous temperature value exceeds a first threshold value or when a difference between the second temperature value and the second pervious temperature exceeds a second threshold value, otherwise exit the measuring procedure; after broadcasting the temperature information signal, store the first temperature value and the second temperature value in the memory to respectively replace the first previous temperature value and the second previous temperature value in the memory, and then exit the measuring procedure; wherein the wireless communication unit executes a time interval producing procedure after the measuring procedure to: determine a time interval according to the monitoring time and the second temperature value; and determine whether the measuring procedure is terminated; when the measuring procedure is not terminated, execute the measuring procedure again after the time interval; and when the measuring procedure is terminated, switch to a low power mode; and a battery unit configured to be electrically connected to the wireless communication unit to provide an output voltage to the wireless communication unit; wherein the temperature information signal comprises temperature information, and the temperature information comprises the first temperature value and the second temperature value.
2. The thermometer as claimed in claim 1, wherein the wireless communication unit further comprises: a multiplexor configured to be electrically connected to the first sensing unit and the second sensing unit to receive the first temperature value and the second temperature value, wherein the multiplexor is further electrically connected to the battery unit to receive the output voltage of the battery unit; an analog-to-digital converter (ADC) configured to be electrically connected to the multiplexor to receive analog signals output by the multiplexor, wherein the ADC converts the analog signals to digital signals; a processor configured to be electrically connected to the ADC to receive the digital signals, wherein the processor is further electrically connected to the multiplexor to control the multiplexor to select the first temperature value, the second temperature value or the output voltage of the battery unit as the analog signals outputted to the ADC, wherein the processor is electrically connected to the memory to load the first previous temperature value and the second pervious temperature value; a transceiver configured to be electrically connected between the processor and the antenna, wherein the processor produces and wirelessly broadcasts the temperature information signal through the transceiver and the antenna.
3. The thermometer as claimed in claim 1, further comprising: a shell having an interior to contain the first sensing unit, the second sensing unit, the antenna, the wireless communication unit, and the battery unit being mounted in the interior of the shell, wherein the shell is composed of a metal part and an insulating part; an electrode configured to be mounted on the insulating part of the shell to be electrically insulated from the metal part; wherein the battery unit comprises a power protection element and a battery; wherein the power protection element is electrically connected to the metal part of the shell and the electrode, and the wireless communication unit is electrically connected to the battery through the power protection element.
4. The thermometer as claimed in claim 3, wherein a tip is formed on a terminal of the metal part of the shell; wherein the insulating part is connected to an end of the metal part which is opposite to the tip.
5. The thermometer as claimed in claim 1, wherein the wireless communication unit further executes a communication setting procedure before the measuring procedure to: wirelessly broadcast a beacon signal; determine whether a pairing request is received; when the pairing request is received, determine whether an assigned identifier and a reference signal are received, wherein the reference signal comprises cooking information, and the cooking information comprises a target temperature value, a warning temperature value and a reference finish time; and when the assigned identifier and the reference signal are received, execute the measuring procedure.
6. The thermometer as claimed in claim 5, wherein when the second temperature value gradually drops below a predetermined temperature for a first predetermined time period after the first temperature value exceeds the target temperature value, the measuring procedure is determined to be terminated.
7. The thermometer as claimed in claim 5, wherein when the second temperature value gradually drops below a predetermined temperature for a second predetermined time period after the first temperature value exceeds the warning temperature value, the measuring procedure is determined to be terminated.
8. A temperature monitoring system, comprising: a thermometer, configured to comprise: a first sensing unit configured to sense an internal temperature of a monitored object to produce a first temperature value; a second sensing unit configured to sense an ambient temperature external to the monitored object to produce a second temperature value; an antenna; a wireless communication unit configured to be electrically connected to the first sensing unit, the second sensing unit, and the antenna, wherein the wireless communication unit comprises a memory storing a first previous temperature value and a second previous temperature value, wherein the wireless communication unit counts a monitoring time at first, and executes a measuring procedure to: load the first previous temperature value and the second pervious temperature from the memory; acquire the first temperature value and the second temperature value from the first sensing unit and the second sensing unit; produce and wirelessly broadcast a temperature information signal when a difference between the first temperature value and the first previous temperature value exceeds a first threshold value or when a difference between the second temperature value and the second pervious temperature exceeds a second threshold value; store the first temperature value and the second temperature value in the memory to respectively replace the first previous temperature value and the second previous temperature value in the memory; wherein the wireless communication unit executes a time interval producing procedure after the measuring procedure to: determine a time interval according to the monitoring time and the second temperature value; and determine whether the measuring procedure is terminated; when the measuring procedure is not terminated, execute the measuring procedure again after the time interval; and when the measuring procedure is terminated, switch to a low power mode; and a battery unit configured to be electrically connected to the wireless communication unit to provide an output voltage to the wireless communication unit; and a first communication device, configured to communicate with the thermometer to send an assigned identifier and a reference signal to the thermometer, and to acquire the temperature information signal from the thermometer; wherein the reference signal comprises cooking information, and the cooking information comprises a target temperature value, a warning temperature value and a reference finish time; wherein the temperature information signal comprises temperature information, wherein the temperature information comprises the first temperature value and the second temperature value.
9. The temperature monitoring system as claimed in claim 8, further comprising: a Wi-Fi router; wherein the first communication device is wirelessly connected to the Wi-Fi router; a second communication device, configured to be wirelessly connected to the first communication device via the Wi-Fi router to acquire the temperature information.
10. The temperature monitoring system as claimed in claim 9, further comprising: a cloud server, configured to communicate with the first communication device via the Wi-Fi router and a network; wherein when the first temperature value reaches the warning temperature value, the first communication device sends a first notification signal to the cloud server via the Wi-Fi router and the network; wherein when the first temperature value reaches the target temperature value, the first communication device sends a second notification signal to the cloud server via the Wi-Fi router and the network; wherein when the second temperature value gradually decreases below a first abnormal temperature value or exceeds a second abnormal temperature value, the first communication device sends a third notification signal to the cloud server via the Wi-Fi router and the network; wherein the cloud server further sends the first notification signal, the second notification signal and the third notification signal to the second communication device via the Wi-Fi router and the network.
11. The temperature monitoring system as claimed in claim 8, further comprising: a Wi-Fi router; wherein the first communication device is wirelessly connected to the Wi-Fi router; a cloud server, configured to communicate with the first communication device via the Wi-Fi router and a network; a second communication device, configured to communicate with the cloud server via the network to acquire the temperature information; wherein when the first temperature value reaches the warning temperature value, the first communication device sends a first notification signal to the cloud server via the Wi-Fi router and the network; wherein when the first temperature value reaches the target temperature value, the first communication device sends a second notification signal to the cloud server via the Wi-Fi router and the network; wherein when the second temperature value gradually decreases below a first abnormal temperature value or exceeds a second abnormal temperature value, the first communication device sends a third notification signal to the cloud server via the Wi-Fi router and the network; wherein the cloud server further sends the first, second, and third notification signals to the second communication device via the network.
12. The temperature monitoring system as claimed in claim 8, further comprising: a cloud server; a Wi-Fi router; a third communication device, configured to be wirelessly connected to the thermometer to acquire the temperature information signal, and wirelessly connected to the Wi-Fi router, wherein the first communication device is wirelessly connected to the third communication device via the Wi-Fi router to send the cooking information to the third communication device and to acquire the temperature information from the third communication device; a second communication device; wherein the second communication device acquires the temperature information from the third communication device via the Wi-Fi router when the second communication device is within a coverage range of the Wi-Fi router; wherein the second communication device acquires the temperature information from the cloud server via a network when the second communication device is out of the coverage range of the Wi-Fi router; wherein the third communication device is further configured to communicate with the cloud server via the network and the Wi-Fi router to send the received temperature information to the cloud server; wherein when the first temperature value reaches the warning temperature value, the third communication device sends a first notification signal to the cloud server via the Wi-Fi router and the network; wherein when the first temperature value reaches the target temperature value, the third communication device sends a second notification signal to the cloud server via the Wi-Fi router and the network; wherein when the second temperature value gradually decreases below a first abnormal temperature value or exceeds a second abnormal temperature value, the third communication device sends a third notification signal to the cloud server via the Wi-Fi router and the network; wherein the cloud server further sends the first, second, and third notification signals to the first communication device and the second communication device via the network.
13. The temperature monitoring system as claimed in claim 12, wherein the first communication device, the second communication device or the third communication device determine a remaining time according to a finish time when the first temperature value reaches the target temperature value and a current time when a current first temperature value is measured and transmitted; wherein determination of the remaining time comprises: obtaining a current temperature change rate according to the current first temperature value and a first temperature value received at a previous time; and estimating the remaining time according to the current first temperature value, the current time, the target temperature, a desired temperature of a cooking vessel, the current temperature change rate and an offset value; wherein the desired temperature of the cooking vessel is preprogrammed from the first communication device.
14. The temperature monitoring system as claimed in claim 13, wherein the offset value is further determined according to a plurality of previous temperature change rates.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(15) The present invention relates to a device for monitoring temperature of a monitored object, such as food, wirelessly, and further relates to a thermometer that measures an internal temperature of the food and an ambient temperature of a cooking vessel for cooking the food, and is based on Bluetooth technology, such as Bluetooth Low Energy (BLE) that transmits measured temperatures to a first communication device.
(16) With reference to
(17) Further with reference to
(18) The first sensing unit 11 is configured to sense an internal temperature of the monitored object to produce a first temperature value.
(19) The second sensing unit 12 is configured to sense an ambient temperature external to the food 20 to produce a second temperature value.
(20) The wireless communication unit 14 is configured to be electrically connected to the first sensing unit 11, the second sensing unit 12, and the antenna 13. The wireless communication unit 14 comprises a memory 141 storing a first previous temperature value and a second previous temperature value, and the wireless communication unit 14 counts a monitoring time at first. Further, the wireless communication unit 14 executes a measuring procedure to: load the first previous temperature value and the second pervious temperature from the memory 141; acquire the first temperature value and the second temperature value from the first sensing unit and the second sensing unit; determine whether a difference between the first temperature value and the first pervious temperature value exceeding a first threshold value or whether a difference between the second temperature value and the second pervious temperature value exceeding a second threshold value; produce and wirelessly broadcast a temperature information signal through the antenna when the difference between the first temperature value and the first previous temperature value exceeding the first threshold value or when the difference between the second temperature value and the second pervious temperature value exceeding the second threshold value; store the first temperature value and the second temperature value in the memory 141 to respectively replace the first previous temperature value and the second previous temperature value in the memory 141. In the embodiment, the temperature information signal includes temperature information, and the temperature information includes the first temperature value and the second temperature value.
(21) The wireless communication unit 14 further executes a time interval producing procedure after the measuring procedure to: determine a time interval according to the monitoring time; determine whether the measuring procedure is terminated; when the measuring procedure is not terminated, execute the measuring procedure again after the time interval; when the measuring procedure is terminated, switch to a low power mode. In the embodiment, the wireless communication unit 14 is a BLE module. A temperature monitoring session established by the thermometer 10 includes the measuring procedure, and the time interval producing procedure.
(22) The battery unit 15 is configured to be electrically connected to the wireless communication unit 14 to provide output voltage to the wireless communication unit 14.
(23) Since the thermometer 10 may produce and wirelessly broadcast the temperature information signal through the antenna 13 when the difference between the first temperature value and the first previous temperature value exceeding the first threshold value or when the difference between the second temperature value and the second pervious temperature value exceeding the second threshold value, the first communication device 30 may continuously and wirelessly receive the temperature information from the thermometer 10 to monitor the temperature of the food 20.
(24) Therefore, when the thermometer 10 is used in a closed cooking vessel, the user may remotely monitor the temperature of food 20 through the first communication device 30.
(25) Another objective of the present invention is to provide the thermometer 10 using the battery unit 15 that can withstand high temperatures to power the thermometer 10. As such, the thermometer 10 can operate in a wide temperature range and be used to monitor the temperature of the food 20 when the food 20 is being cooked. For example, the thermometer 10 can operate in an environment with temperatures up to 250 C. and the monitored internal food temperature can be up to 100 C.
(26) Further with reference to
(27) The ADC 143 is connected to the multiplexor 142 to receive analog signals output by the multiplexor 142, and the ADC 143 converts the analog signals to digital signals.
(28) The processor 144 is electrically connected to the memory 141, the multiplexor 142, and the ADC 143. The processor 144 receives the digital signals from the ADC 143, and controls the multiplexor 142 to select the first temperature value, the second temperature value or the output voltage of the battery unit 15 as the analog signals outputted to the ADC 143. The processor 144 may load the first previous temperature value and the second pervious temperature value from the memory 141.
(29) The processor 144 is further electrically connected to the transceiver 145, and is electrically connected to the antenna 13 through the transceiver 145. The processor 144 produces and wirelessly broadcasts the temperature information signal through the transceiver 145 and the antenna 13. In the embodiment, the processor 144 executes a computer program to perform operations comprising the measuring procedure and the time interval producing procedure.
(30) With reference to
(31) The shell 100 has an interior to contain a metal part 1001, which is a stainless steel tube with a tip at one end thereof that can be inserted into the food 20. The shell 100 is made of the metal part 1001 and an insulating part 1002. The insulating part 1002 is connected to an end of the metal part 1001 which is opposite to the tip.
(32) The first sensing unit 11, the second sensing unit 12, the antenna 13, the wireless communication unit 14, and the battery unit 15 are mounted in the interior of the shell 100.
(33) The electrode 101 is mounted on the insulating part 1002 of the shell 100 to be insulated from the metal part 1001.
(34) Namely, the thermometer 10 is placed in a slim enclosure for easy insertion into the food 20.
(35) All temperature-sensitive components of the thermometer 10 are placed in the metal part 1001 of the shell 100 and will be covered by part of the food 20 when used to monitor the food temperature. There are numerous ways for cooking food, and a wide range of cooking temperatures, mostly higher than the temperature-sensitive components can withstand, are set for different cooking methods. For example the cooking temperature of an oven may be as high as 250 C. This temperature will damage all electronic components. However, the temperature inside the food 20 is much lower than this ambient temperature, such as the cooking temperature. For example, to make delicious meat, it is required to keep the food temperature in a range from 60 C. to 95 C., depending on its preparation. Therefore, the temperature-sensitive components of the thermometer 10 can be prevented from damage if these components are placed inside the metal part 1001 of the shell 100 that is inserted into the food 20 when the food is being cooked. The temperature-sensitive components placed inside the metal part 1001 include the first sensing unit 11, the wireless communication unit 14, and the battery unit 15.
(36) The battery unit 15 comprises a power protection element 151 and a battery 152. The power protection element 151 is electrically connected to the metal part 1001 of the shell 100 and the electrode 101, and the wireless communication unit 14 is electrically connected to the battery 152 through the power protection element 151.
(37) The battery 152 is used as a power supply for the thermometer 10. The power protection element 151 is used to protect the battery 152 from being damaged by overcharging, excessive discharge, or excessive current drain.
(38) The insulating part 1002 is used as a handle for easy insertion to and removal from the food 20, and is located outside the food 20 when the thermometer 10 is inserted into the food 20. The antenna 13 and the second sensing unit 12 can both withstand a much higher temperature and are placed in the insulating part 1002. In one embodiment, the insulating part 1002 may be made of a ceramic material. In another embodiment, the insulating part 1002 may be made of a heat resistant plastic.
(39) The electrode 101 is used as a conductor for connecting a Vcc port of a power charger 40 to the battery unit 15 for charging the battery 152, and is attached to the insulating part 1002. When connecting the thermometer 10 to the power charger 40, the metal part 1001 contacts a grounding port of the power charger 40. By connecting the power protection element 151 to the electrode 101, the metal part 1001 and the battery 152, the power protection element 151 is actually operated as a bridge between the battery 152 and the power charger 40. The power protection element 151 also protects the battery 152 from being damaged by disconnecting the battery 152 when abnormal voltage or current drain is detected.
(40) In order to extend battery life, the thermometer 10 is switched to a low power mode or sleep mode, in which power consumption is a few W, when not in use. It is required to wake up the device to monitor the food temperature.
(41) When connecting the thermometer 10 to the power charger 40, the power charger 40 starts charging the battery 152, which results in a voltage increase instantly at a terminal of the power protection unit 151. By detecting this voltage increase via the multiplexor 142 and the ADC 143, the processor 144 can be woken and start executing a communication setting procedure before the measuring procedure to receive a reference signal from the first communication device 30 via a BLE connection.
(42) The processor 144 of the wireless communication unit 14 executes the communication setting procedure before the measuring procedure to: wirelessly broadcast a beacon signal; determine whether a pairing request is received; when the pairing request is received, determine whether an assigned identifier and a reference signal are received; when the assigned identifier and the reference signal are received, execute the measuring procedure. In the embodiment, a communication session established by the thermometer 10 includes the communication setting procedure.
(43) For example, the processor 144 instructs the transceiver 145 to transmit the beacon signal, and the first communication device 30 detects the beacon signal indicating existence of the thermometer 10 and thereafter sends the pairing request to the thermometer 10. After receiving the pairing request from the first communication device 30, the processor 144 stops transmitting the beacon signal, and begins a pairing process with the first communication device 30. During the pairing process, the first communication device 30 sends an assigned identifier and a reference signal to the thermometer 10. The assigned identifier is the identification of the thermometer 10 and will be included in every signal transmitted by the thermometer 10. The reference signal comprises the cooking information to be used for operation of the thermometer 10 to ensure that power consumption can be reduced to extend operating time during a cooking process. The cooking information is programmable via the first communication device 30 and may be related to a food type and a cooking method of the food 20. In one embodiment, the cooking information may include a target temperature value of the food, a desired temperature of the cooking vessel, and a reference finish time. The reference finish time is the time required for cooking the food 20 to the target temperature value. The cooking information may be manually set by the user via the software program being executed on the first communication device 30. In another embodiment, the cooking information may be selected from a database in which a plurality of recipes is stored. After receiving the reference signal, the processor 144 ends the communication setting procedure and starts the temperature monitoring session.
(44) In particular, after completion of the communication setting procedure, the processor 144 performs the measuring procedure and the time interval producing procedure to repeatedly measure temperature of the food 20 and transmit the temperature information signal.
(45) Furthermore, as described above, it is desired to keep power consumption during the cooking process as low as possible to extend the battery life. This objective can be achieved by keeping the operation time of the wireless communication unit 14 as short as possible and keeping the wireless communication unit 14 in the low power mode during most of the cooking process. The wireless communication unit 14 may drain current at the level of only a few A when staying in the low power mode.
(46) With reference to
(47) The line-of-sight propagation range of a BLE signal is limited to about 10 meters, and may be reduced to a shorter range if the food 20 is cooked in an enclosed cooking vessel such as an oven, a BBQ grill, or a smoker. It is desired to extend the wireless connection range so the user can monitor the food temperature from a further distance.
(48) With reference to
(49) With reference to
(50) Furthermore, the food may continuously heat up to a certain degree after the food 20 is removed from the cooking vessel (not shown) as residual heat will transfer from the hotter exterior of the food to the cooler center. In other words, the internal food temperature will rise after the food 20 is removed from the cooking vessel due to carryover cooking. It is recommended to remove the food from the cooking vessel at an internal temperature lower than the desired target temperature value, allowing the residual heat to finish the cooking process. It is therefore desirable to receive a notification when the first temperature value reaches a particular temperature value, called a warning temperature value, which is lower than the target temperature value. Ideally, removing the food 20 from the cooking vessel when the first temperature value reaches the warning temperature value will allow the food 20 to continue to heat up and allow the first temperature value to rise to (or close to) the target temperature value. This particular temperature value may be included in the cooking information of the reference signal and is programmable from the first communication device 30. The warning temperature value may be determined based on a specific recipe, cooking experience, and may be closely related to the cooking temperature, type of food, size of food, and the like. In the embodiment, the warning temperature value is included in the cooking information.
(51) With reference to
(52) With reference to
(53) The first communication device 30 as illustrated in
(54) Further, The first communication device 30 may further send a third notification signal (not shown) to the cloud server 80 when the received ambient temperature meets one of the abnormal conditions specified in the cooking information. The abnormal conditions may include a first abnormal temperature value and a second abnormal temperature value. The second abnormal temperature value is greater than the first the abnormal temperature value. The ambient temperature is indicated by the second temperature value. Therefore, when the received second temperature value gradually decreases below the first abnormal temperature value or exceeds the second abnormal temperature value, a notification received at the second communication device 60 may alert the user to adjust the cooking vessel to be operated in the desired temperature range to ensure that the food is cooked by the preferable cooking process.
(55) In the above exemplary embodiments, the second communication device 60 may be moved to a location where the broadcasted temperature information signal may be received. When receiving the temperature information signal directly from the thermometer 10, the second communication device 60 acquires the temperature data and further sends the temperature data to the first communication device 30, disregarding that the first communication device 30 may also receive the temperature information signal.
(56) With reference to
(57) It is another objective of the present invention to provide a temperature monitoring method executed by the thermometer 10 to reduce power consumption.
(58) With reference to
(59) counting a monitoring time (S101);
(60) executing a measuring procedure (S102);
(61) executing a time interval producing procedure after the measuring procedure (S103).
(62) With reference to
(63) loading a first previous temperature value T.sub.p1 and a second pervious temperature value T.sub.p2 from a memory of the thermometer (S1021);
(64) acquiring a first temperature value T.sub.1 and a second temperature value T.sub.2 (S1022);
(65) when the first temperature value T.sub.1 and the second temperature value T.sub.2 are received, determining whether the difference between the first temperature value T.sub.1 and the first previous temperature value T.sub.p1 exceeds the first threshold value V.sub.TH1, or whether the difference between the second temperature value T.sub.2 and the second pervious temperature value T.sub.p2 exceeds the second threshold value V.sub.TH2 (S1023), if the result is true, proceeding to step S1024, otherwise exiting the measuring procedure and executing the time interval producing procedure (S103);
(66) producing and wirelessly broadcasting a temperature information signal through an antenna of the thermometer when the difference between the first temperature value and the first previous temperature value exceeds the first threshold value or when the difference between the second temperature value and the second pervious temperature exceeds the second threshold value (S1024);
(67) storing the first temperature value and the second temperature value in the memory to respectively replace the first previous temperature value and the second previous temperature value (S1025), and then executing the time interval producing procedure (S103).
(68) With reference to
(69) determining a time interval according to the monitoring time (S1031); and
(70) determining whether the measuring procedure is terminated (S1032);
(71) when the measuring procedure is not terminated, executing the measuring procedure again after the time interval (S1033);
(72) when the measuring procedure is terminated, executing a low power mode (S1034).
(73) In an exemplary embodiment, the time interval is the time between two temperature measurements, and the time interval is determined by the monitoring time and the second temperature value. With reference to
t=t.sub.ij when T.sub.j1<T.sub.2(t.sub.c)T.sub.j and t.sub.i1<t.sub.ct.sub.i
(74) wherein T.sub.2(t.sub.c) is the second temperature value measured and broadcasted at a current time or monitoring time t.sub.c, 1in, and t.sub.0 is the starting time of the temperature monitoring session. Wherein t.sub.i is a predetermined time instant and T.sub.j is a predetermined temperature value. Further, t.sub.ij is a predetermined constant corresponding to the time period (t.sub.i1, t.sub.i) and the temperature range (T.sub.j1, T.sub.j), and is stored in memory 141. In one embodiment, t.sub.m is set to a long cooking time, such as 100 hours, T.sub.0 is set to a low ambient temperature, such as 0 C., and T.sub.n is the highest ambient temperature that the antenna 13 and the second sensing unit 12 of the thermometer 10 can withstand, such as 300 C.
(75) In step 1032, the thermometer 10 determines whether to end the measuring procedure and switch to the low power mode. In one embodiment, the measuring procedure is terminated when the second temperature value gradually drops below a predetermined temperature for a first predetermined time period after the first temperature value exceeding the target temperature value.
(76) In another embodiment, the measuring procedure is tem inated when the second temperature value gradually drops below a predetermined temperature for a second predetermined time period after the first temperature value exceeding the warning temperature value.
(77) It is desired to provide estimation of the finish time or the remaining time of the cooking process so the user can be standby when the first temperature value is close to the target temperature or warning temperature.
(78) With reference to
(79)
(80) Similarly, the temperature change rate at t.sub.c1 can be approximated by:
(81)
(82) For simplicity of description, r.sub.c may be denoted as the current temperature change rate, and r.sub.c1, r.sub.c2, r.sub.c3, etc. refer to the previous temperature change rates. According to the principle of heat transfer and the thermophysical property of the food item (specifically meat), during a cooking process the temperature change rate of the inner portion of the food gradually decreases, namely,
0r.sub.cr.sub.c1r.sub.c2r.sub.c3 . . . ;
(83) Consequently, there exists an offset value .sub.i corresponding to r.sub.ci and r.sub.c+i+1 as:
.sub.i=r.sub.cir.sub.ci+1;
(84) With reference to
(85)
(86) The formula for determining t.sub.f requires a value of r, where rr.sub.c and may be estimated according to the current temperature change rate r.sub.c, a weighting factor and an offset value as:
(87)
(88) where the weighting factor is derived according to the current first temperature value T.sub.c, the target temperature value T.sub.g and the desired temperature of the cooking vessel T.sub.air. In one embodiment, when T.sub.air>150 C. or T.sub.cT.sub.c10 C., =1; otherwise, is given by:
(89)
(90) where .sub.1, .sub.2 and .sub.3 are constant values.
(91) Further, the offset value may be estimated according to a plurality of the previous offset values .sub.i, or a plurality of the previous temperature change rates, such as:
(92)
(93) wherein h is a predetermined integer, and r.sub.ci is temperature change rate at the time t.sub.ci.
(94) In another embodiment, h may further be determined in accordance with the preprogrammed cooking information which includes the desired temperature of the cooking vessel and type of food. For example, set h=3 when roasting beef with an oven in a temperature range from 160 C. to 175 C., and set h=5 when smoking fish in a smoker in a temperature range from 107 C. to 115 C.
(95) The estimated finish time stated above may be performed by the first communication device 30, the third communication device 90, the second communication device 60, or combinations thereof