WO2001033722A1 - Procede et dispositif d'emission de donnees - Google Patents
Procede et dispositif d'emission de donnees Download PDFInfo
- Publication number
- WO2001033722A1 WO2001033722A1 PCT/JP2000/007787 JP0007787W WO0133722A1 WO 2001033722 A1 WO2001033722 A1 WO 2001033722A1 JP 0007787 W JP0007787 W JP 0007787W WO 0133722 A1 WO0133722 A1 WO 0133722A1
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- WO
- WIPO (PCT)
- Prior art keywords
- data transmission
- data
- temperature
- signal
- transmission device
- Prior art date
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/02—Transmitters
- H04B1/03—Constructional details, e.g. casings, housings
- H04B1/036—Cooling arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/0001—Systems modifying transmission characteristics according to link quality, e.g. power backoff
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/0001—Systems modifying transmission characteristics according to link quality, e.g. power backoff
- H04L1/0002—Systems modifying transmission characteristics according to link quality, e.g. power backoff by adapting the transmission rate
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04M—TELEPHONIC COMMUNICATION
- H04M1/00—Substation equipment, e.g. for use by subscribers
- H04M1/72—Mobile telephones; Cordless telephones, i.e. devices for establishing wireless links to base stations without route selection
- H04M1/724—User interfaces specially adapted for cordless or mobile telephones
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02D—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
- Y02D30/00—Reducing energy consumption in communication networks
- Y02D30/50—Reducing energy consumption in communication networks in wire-line communication networks, e.g. low power modes or reduced link rate
Definitions
- the present invention relates to a portable data transmission apparatus and a data transmission method for transmitting data wirelessly.
- BACKGROUND ART In recent years, the development of a data transmission device that is portable and capable of transmitting and receiving information by wireless communication has been significantly advanced. Among them, portable terminals used in mobile phone systems and personal handyphone systems (PHS) are rapidly spreading.
- PHS personal handyphone systems
- the above-mentioned portable terminal When transmitting information, especially when transmitting packetized data continuously, the above-mentioned portable terminal is used in accordance with a rise in the temperature of an internal circuit due to frequent data transmission processing. However, the internal temperature of the portable terminal rises.
- a conventional data transmission apparatus particularly a portable terminal
- distortion at the time of data transmission increases due to an increase in the internal temperature described above. Or, the gain during data transmission is disturbed. For this reason, in a conventional portable terminal, an increase in the internal temperature adversely affects power control and the like.
- conventional portable terminals need to be designed for heat dissipation in anticipation of rising internal temperatures. In other words, even if packetized data is transmitted intermittently rather than continuously, a design that can withstand continuous transmission is required. For this reason, the conventional portable terminal had problems in that it was difficult to further reduce the size of the housing or when the manufacturing cost was increased.
- the present invention has been proposed in view of such a conventional situation, is capable of suppressing heat generation, simplifying the heat radiation design, and reducing the size of the housing and manufacturing at low cost. It is an object of the present invention to provide a data transmission device and a data transmission method capable of transmitting data.
- a data transmission device that achieves the above object is a portable data transmission device that wirelessly transmits data, comprising: a data transmission processing control unit that controls a transmission process of data to be transmitted; And an internal temperature detecting means for detecting the temperature of the data, and a temperature monitoring means for controlling the data transmission processing control means in accordance with the detected temperature supplied from the internal temperature detecting means.
- the data transmission device as described above controls the data transmission processing according to the internal temperature detected by the internal temperature detecting means.
- a data transmission apparatus that achieves the above-mentioned object is a portable data transmission apparatus that transmits data wirelessly, comprising: a data encoding unit, an internal temperature detection unit, and an internal temperature detection unit. Temperature monitoring means for controlling the data encoding means according to the detected temperature.
- the data transmission apparatus controls data encoding in accordance with the internal temperature detected by the internal temperature detecting means.
- a data transmission method for achieving the above-mentioned object is a data transmission method for transmitting data by radio, wherein an internal temperature is detected, and a data transmission process is performed in accordance with the detected internal temperature. Control.
- the data transmission method described above controls the data transmission process in accordance with the detected internal temperature.
- a data transmission method for achieving the above object is a data transmission method for transmitting data wirelessly, wherein an internal temperature is detected, and the data encoding process is controlled according to the detected temperature.
- the data transmission method described above controls the data encoding process in accordance with the detected internal temperature.
- FIG. 2 is a flowchart showing a process when the data transmission apparatus shown as the first embodiment inputs data and transmits the data by radio.
- FIGS. 3A to 3C are schematic diagrams showing a packet data transmission method of the data transmission device according to the present invention, and FIG. 3A shows that the data transmission device 1 transmits packet data at the highest frequency and density.
- Bucket data for transmission FIG. 3B shows a bucket data transmission method when the data transmission apparatus 1 transmits data at a certain transmission interval determined by the temperature monitoring circuit 8
- FIG. FIG. 4 is a schematic diagram showing a packet data overnight transmission method when the data transmission device 40 transmits data at a certain transmission bit rate determined by the temperature monitoring circuit 42.
- FIG. 4 is a block diagram illustrating a configuration of a data transmission device shown as a second embodiment of the present invention.
- FIG. 5 is a flowchart showing a process when the data transmission apparatus shown as the second embodiment inputs data and transmits the data wirelessly.
- FIG. 6 is a block diagram illustrating a configuration of a data transmission measure shown as the third embodiment of the present invention.
- FIG. 7 is a flowchart showing steps when the data transmission apparatus shown as the third embodiment inputs data and transmits the data wirelessly.
- FIG. 8 is a block diagram illustrating a configuration of a data transmission apparatus shown as a fourth embodiment of the present invention.
- FIG. 9 is a flowchart showing steps when the data transmission apparatus shown as the fourth embodiment inputs data and transmits it by radio.
- FIG. 10 is a block diagram illustrating a configuration of a data transmission apparatus shown as a fifth embodiment of the present invention.
- FIG. 11 is a flowchart showing steps when the data transmission apparatus shown as the fifth embodiment inputs data and transmits it wirelessly.
- FIG. 12 is a block diagram illustrating a configuration of a data transmission device shown as a sixth embodiment of the present invention.
- FIG. 13 is a flowchart showing a process when the data transmission apparatus shown as the sixth embodiment inputs data and transmits the data wirelessly.
- FIG. 14 is a block diagram illustrating the configuration of the data transmission device shown as the seventh embodiment of the present invention.
- FIG. 15 is a flowchart showing a process when the data transmission apparatus shown as the seventh embodiment inputs data and wirelessly transmits the data.
- FIG. 16 is a block diagram illustrating a configuration of a data transmission device shown as an eighth embodiment of the present invention.
- FIG. 17 is a flowchart showing steps when the data transmission apparatus shown as the eighth embodiment inputs data and transmits the data wirelessly.
- FIG. 18 is a block diagram illustrating a configuration of a data transmission device shown as a ninth embodiment of the present invention.
- FIG. 19 is a flowchart showing steps when the data transmission apparatus shown as the ninth embodiment inputs data and transmits the data wirelessly.
- FIG. 20 is a block diagram illustrating the configuration of the data transmission device shown as the tenth embodiment of the present invention.
- FIG. 21 is a flowchart showing a process when the data transmission apparatus shown as the tenth embodiment inputs data and transmits it by radio.
- FIG. 22 is a block diagram illustrating the configuration of the data transmission device shown as the eleventh embodiment of the present invention.
- FIG. 23 is a flowchart showing a process when the data transmission apparatus shown as the first embodiment inputs data and transmits it by radio.
- FIG. 24 is a block diagram illustrating a configuration of a data transmission device shown as a 12th embodiment of the present invention.
- FIG. 25 is a flowchart showing a process when the data transmission apparatus shown as the 12th embodiment inputs data and transmits it by radio.
- a data transmission apparatus to which the present invention is applied controls data transmission processing or data encoding processing in accordance with the detected internal temperature. It is a portable terminal that transmits and receives data wirelessly. In the following, only the transmission system is described, and the description of the reception system is omitted.
- FIG. 1 is a block diagram showing a specific configuration of a first embodiment of a data transmission apparatus to which the present invention is applied. Note that the solid line in the figure indicates the flow of the data, and the broken line indicates the flow of the control signal.
- the data transmission device 1 includes an input / output circuit 2, a data processing control circuit 3, It includes a baseband signal processing unit 4, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, and a temperature monitoring circuit 8.
- the input / output circuit 2 receives a control signal from the data processing control circuit 3 and outputs the control signal to, for example, an external PC (Personal Computer) 9. Further, the bucketed data is input from the PC 9, and the input data is supplied to the data processing control circuit 3.
- the PC 9 may be provided as an information processing circuit or the like inside the data transmission device 1 such as a portable terminal.
- the data processing control circuit 3 has an internal memory for storing the packet data, controls the flow of packet data, controls retransmission, and sets the upper limit of the data transmission interval input from the temperature monitoring circuit 8 described later.
- the data transmission interval is determined based on the data.
- the operation of the data processing control circuit 3 will be described.
- the data processing control circuit 3 monitors the state of the internal memory, and when the memory becomes empty, requests a new packet data from the information processing device 11 via the input / output circuit 2. , Store new packet data in memory. When the memory is filled with the packet data, a packet data is output to the base-span signal processing circuit 10. If the transmission of the bucket data has failed, the same bucket data is output to the spanned signal processing circuit 10 again. If the transmission of the packet data is successful, the memory is cleared, a new packet data is requested from the information processing device 11 via the input / output circuit 2, and the information processing device 11 transmits the packet data. Store the new bucket data in memory.
- the data processing control circuit 3 sets the bucket data transmission interval at a data transmission interval that does not exceed the upper limit of the data transmission interval from the temperature monitoring circuit 8.
- the packet data flow and retransmission control are performed so that the packet data is output to the spanned signal processing circuit 10.
- the data processing control circuit 3 controls the transmission interval of the bucket data on the basis of the information of the upper limit value of the data transmission interval from the temperature monitoring circuit 8. It is also possible to input the data itself and control the transmission interval of the bucket data according to the temperature information. Specifically, a data request command sent from the data processing control circuit 3 to the PC 9 via the input / output circuit 2 is controlled in accordance with the temperature information. The data sent from 9 through the input / output circuit 2 to the data processing control circuit 3 may be adjusted to control the transmission interval of the packet data.
- the baseband signal processing unit 4 has a baseband signal processing circuit 10 and an output control circuit 11.
- the paceband signal processing circuit 10 generates a baseband signal from the data supplied from the data processing control circuit 3, and supplies the baseband signal to the RF signal modulation circuit 5.
- the output control circuit 11 sends a signal indicating that the data processing state is changed according to the data transmission interval to be transmitted according to a value indicating the upper limit of the data transmission interval supplied from the data processing control circuit 3, as will be described later.
- the signal is supplied to the signal modulation circuit 5 and the signal amplifier 6.
- the output control circuit 11 sets the signal amplifier 6 to a bypass operation, and For example, the power supply to the amplifier 6 is stopped, and a signal for transition to the power saving state is supplied to the signal amplifier 6.
- the RF signal modulation circuit 5 modulates the paceband signal supplied from the paceband signal processing circuit 10 and generates an RF (Radio Frequency) signal for transmission on a carrier wave.
- the RF signal modulation circuit 5 supplies the RF signal to the signal amplifier 6.
- the RF signal modulation circuit 5 is supplied from the output control circuit 11 with a signal to change the modulation processing state when performing modulation from the baseband signal to the RF signal.
- the RF signal modulation circuit 5 performs a modulation process according to the signal.
- the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5. Further, the signal amplifier 6 is supplied with a signal from the output control circuit 11 to change the amplification processing state when amplifying the RF signal. The signal amplifier 6 performs an amplification process according to this signal. The amplified RF signal is transmitted wirelessly to the outside via the antenna 12.
- the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts the detected temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 8.
- the temperature monitoring circuit 8 compares the detected temperature input from the temperature detection sensor 7 with a previously stored target temperature value, and determines an upper limit value of the data transmission interval. That is, when the temperature input from the temperature detection sensor 7 is lower than the target temperature value, the temperature monitoring circuit 8 raises the upper limit of the data transmission interval, and checks the temperature input from the temperature detection sensor 7. If it is higher than the target temperature value, the upper limit of the data transmission interval is reduced, and a control signal indicating the determined upper limit is supplied to the data processing control circuit 3.
- the input data is transmitted through a series of steps shown in FIG. Sent by radio.
- step S1 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts this temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 8.
- step S2 the temperature monitoring circuit 8 determines whether or not the temperature value indicated by the electric signal input from the temperature detection sensor 7 is lower than a previously stored target temperature value. If the temperature value indicated by the electric signal is lower than the target temperature value, the process proceeds to step S3, and the upper limit value of the data transmission interval is increased. On the other hand, if the temperature value indicated by the electric signal is higher than the target temperature value, the process proceeds to step S4, and the upper limit value of the transmission interval between days is reduced.
- the data processing control circuit 3 inputs a control signal indicating the upper limit value of the data transmission interval determined in the temperature monitoring circuit 8.
- step S5 the data processing control circuit 3 requests new packet data from the PC 9 via the input / output circuit 2.
- step S6 the PC 9 sends the packetized data to the data processing control circuit 3 via the input / output circuit 2 based on the data request signal.
- step S7 the data processing control circuit 3 determines the transmission interval of the packet data within a range not exceeding the upper limit, and in this data transmission interval, the packet to the baseband signal processing circuit 10 is determined. It outputs the converted data.
- step S8 information on the data transmission interval supplied from the data processing control circuit 3 is input to the output control circuit 11.
- step S9 the output control circuit 11 It is determined whether the data transmission interval is within a certain period. If the bucketed data has been transmitted within a certain period, the process proceeds to step S12. On the other hand, if the data transmission interval is longer than a certain period, or if there is no bucket data to be transmitted, in step S11, the output control circuit 11 stops the power supply to the signal amplifier 6, etc. Then, the signal amplifier 6 is changed to the rest state.
- step S12 the baseband signal processing circuit 10 generates a baseband signal from the data input from the data processing control circuit 3, and supplies the baseband signal to the RF signal modulation circuit 5.
- step S13 the RF signal modulation circuit 5 modulates the baseband signal input from the paceband signal processing circuit 10, and generates an RF signal for transmission on a carrier wave.
- step S14 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the overnight transmission device 1 controls the transmission interval of the bucketed data so that the detected temperature of the signal amplifier 6 does not exceed a preset target temperature value. Thereby, the data transmission device 1 is controlled so that the temperature of the signal amplifier 6 does not exceed the target temperature value. Therefore, it is not necessary for the overnight transmission device 1 to perform heat dissipation design in accordance with the maximum value of the heat generation temperature, and the heat dissipation mechanism can be simplified. As a result, not only can the data transmission device 1 be further reduced in size and weight, but also the production cost can be reduced.
- FIG. 3A shows a packet data transmission method when the data transmission device 1 transmits the packet data at the highest frequency and density
- FIG. 3B shows the data transmission device 1.
- 9 shows a packet data overnight transmission method when data is transmitted at a certain transmission interval determined by the temperature monitoring circuit 8.
- T b e the buffer 1 5 provided in an inner portion of the data processing control circuit 3 indicates the empty state
- T b f shows a state in which the buffer 1 5 is satisfied ing.
- the data transmission processing control circuit 3 transmits data at a transmission interval that does not exceed the maximum transmission data transmission interval determined by the temperature monitoring circuit 8.
- the packetized data is supplied to the baseband signal processing circuit 10.
- the data processing control circuit 3 packetizes the data and outputs it as a bucket data 16 at.
- the data transmission device on the receiving side acknowledges the data transmission device 1 on the transmitting side with an ACK (acknowledgement; acknowledgment) 1 ⁇ a! Supply.
- Data transmission device 1 transmits the packet Tode evening 1 6 a!, After receiving the ACK 1 7 a! From the receiving side of the de Isseki transmission device, after a period n a, next packet data 1 8 a! To the input / output circuit.
- De Isseki transmission device 1 does not receive the ACK 1 7 a 2 from the data transmission device on the receiving side with respect to packet data 1 6 a 2, until receiving the ACK 1 7 a 2, packet data 1 6 a Repeat the retransmission of 2 .
- de Isseki transmission device 1 Upon receiving the ACK 1 7 a 2, de Isseki transmission device 1, the period n a Later, it supplies the next packet data 1 8 a 2 to input-output circuit.
- the packet data 16 is transmitted as shown in FIG. transmitted, after receiving the ACK 1 7 from the receiving side of the data transmission device, spaced apart by period n b, and transmits the next packet with Dinner Isseki 1 8 bt.
- the data transmission device 1 if the data transmission device 1 does not receive the ACK 17 b 2 from the data transmission device on the receiving side for the packet data 16 b 2 , the packet data until the ACK 17 b 2 is received. Repeat retransmission of 1 6 b 2 .
- the data transmission device 1 Upon receiving the ACK 17 b 2 , the data transmission device 1 supplies the next packet data 18 b 2 to the input / output circuit at intervals of the period n b .
- the data transmission device 20 shown in FIG. 4 as a second embodiment according to the present invention has the same basic configuration as the data transmission device 1 of the first embodiment shown in FIG.
- the data transmission device 1 is different from the data transmission device 1 in that an ambient temperature detection circuit 21 for detecting a temperature is provided. Therefore, the same components as those of the data transmission device 1 previously shown in FIG. 1 are denoted by the same reference numerals, and detailed description will be omitted.
- the solid line in the figure indicates the flow of data, and the broken line indicates the flow of control signals.
- the data transmission device 20 includes an input / output circuit 2, a data processing control circuit 3, a baseband signal processing unit 4, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an antenna 1 2, an ambient temperature detection circuit 21, and a temperature monitoring circuit 22.
- the ambient temperature detection circuit 21 detects the ambient temperature, converts this ambient temperature into an electric signal, and supplies it to the temperature monitoring circuit 22.
- the temperature monitoring circuit 22 compares the temperature difference between the detected temperature input from the temperature detection sensor 7 and the temperature detected by the ambient temperature detection circuit 21 with a previously stored target temperature difference, and stores the data. Determine the upper limit of the transmission interval. That is, when the temperature difference between the detected temperature input from the temperature detection sensor 7 and the ambient temperature detected by the ambient temperature detection circuit 21 is smaller than the target temperature difference, the temperature monitoring circuit 22 transmits data. The upper limit value of the interval is raised, and if it is larger than the target temperature difference, the upper limit value of the data transmission interval is reduced, and a control signal indicating the determined upper limit value is supplied to the data processing control circuit 2.
- step S15 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts this temperature into an electric signal, and supplies it to the temperature monitoring circuit 22.
- the ambient temperature detecting circuit 21 detects the ambient temperature, converts the ambient temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 22.
- step S16 the temperature monitoring circuit 22 detects a temperature difference between the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the ambient temperature indicated by the electric signal input from the ambient temperature detection circuit 21. I do.
- step S17 the temperature monitoring circuit 22 determines whether the temperature difference is smaller than a previously stored target temperature difference. If the above temperature difference is smaller than the target temperature difference, go to step S18. Go ahead and raise the upper limit of the data transmission interval. On the other hand, if the above temperature difference is larger than the target temperature difference, the process proceeds to step S19, and the upper limit value of the transmission interval for one night is reduced.
- step S20 the data processing control circuit 3 requests new packet data from the PC 9 via the input / output circuit 2.
- step S21 the PC 9 sends the packetized data to the data processing control circuit 3 via the input / output circuit 2 based on the data request signal.
- step S22 the data overnight processing control circuit 3 determines the transmission interval of the packet data overnight within a range not exceeding the above upper limit, and in this data transmission interval, the data transmission interval for the baseband signal processing circuit 10 is determined. Outputs bucketed data.
- step S23 information on the data transmission interval supplied from the data processing control circuit 3 is input to the output control circuit 11.
- step S24 the output control circuit 11 determines whether the transmission interval of the bucketed data is within a certain period. If the bucketed data has been transmitted within a certain period, the process proceeds to step S26. On the other hand, if the data transmission interval is longer than a certain period or if there is no bucket to be transmitted, in step S26, the output control circuit 11 turns off the power supply to the signal amplifier 6. The signal amplifier 6 is caused to transition to the hibernation state by, for example, stopping.
- step S27 the baseband signal processing circuit 10 encodes the data input from the data processing control circuit 3 into a baseband signal, and supplies the baseband signal to the RF signal modulation circuit 5.
- step S28 the RF signal modulation circuit 5
- the baseband signal input from the signal processing circuit 10 is modulated to generate an RF signal to be transmitted on a carrier wave.
- step S29 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the data transmission device 20 controls the transmission interval of the bucketed data so that the difference between the temperature of the signal amplifier 6 and the ambient temperature does not exceed a preset target temperature difference. I do.
- the data transmission device 20 is controlled so that the difference between the ambient temperature and the internal temperature does not exceed the target temperature difference. Therefore, the data transmission device 20 can simplify the heat radiation mechanism and the temperature control mechanism, and can maintain the internal temperature at an appropriate temperature according to the ambient temperature.
- the data transmission device 20 can not only achieve further reduction in the size and weight of the housing, but also reduce the manufacturing cost.
- the data transmission device 30 shown in FIG. 6 has the same basic configuration as the data transmission device 1 of the first embodiment shown in FIG. The difference from the data transmission device 1 of the first embodiment is that a calendar storage circuit 31 for storing a temperature value is provided.
- the same components as those of the data transmission device 1 shown in FIG. 1 are denoted by the same reference numerals, and detailed description is omitted.
- the solid line in the figure shows the flow of data over time, and the broken line shows the flow of control signals.
- the data transmission device 30 includes an input / output circuit 2 and a data processing control circuit 3
- a baseband signal processing unit 4 an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an antenna 12, a power render storage circuit 31 and a temperature monitoring circuit 32. Is provided.
- the calendar storage circuit 31 stores a target temperature value corresponding to the date and time, and selects the target temperature value at that time from the date and time and supplies it to the temperature monitoring circuit 32.
- the temperature monitoring circuit 32 compares the detected temperature indicated by the electric signal input from the temperature detection sensor 7 with the target temperature value selected by the calendar storage circuit 31 to determine the upper limit of the data transmission interval. . That is, if the detected temperature indicated by the electric signal input from the temperature detection sensor 7 is lower than the target temperature value selected by the calendar storage circuit 31, the temperature monitoring circuit 32 The upper limit is raised, and if it is higher than the target temperature value, the upper limit of the data transmission interval is reduced, and a control signal indicating the determined upper limit is supplied to the data processing control circuit 2.
- the data transmission device 30 including the components that function as described above, input data is wirelessly transmitted through a series of steps illustrated in FIG.
- step S30 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts this temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 32.
- the calendar storage circuit 31 supplies a target temperature value corresponding to the date and time to the temperature monitoring circuit 32.
- step S31 the temperature monitoring circuit 32 stores the temperature value indicated by the electric signal input from the temperature detection sensor 7 in the calendar storage circuit 31 and selects the target temperature selected in accordance with the date and time. Determine if it is lower than the value.
- the temperature value indicated by the electric signal is If it is lower than the threshold, the process proceeds to step S32, and the upper limit of the data transmission interval is increased.
- step S33 the upper limit value of the transmission interval in the night is reduced.
- step S34 the data processing control circuit 3 requests a new packet data from the PC 9 via the input / output circuit 2.
- step S35 the PC 9 sends the packetized data to the data processing control circuit 3 via the input / output circuit 2 based on the data request signal.
- step S36 the data processing control circuit 3 determines the packet data transmission interval within a range that does not exceed the upper limit, and buckets the baseband signal processing circuit 10 with this data transmission interval. It outputs the converted data.
- step S37 information on the data transmission interval supplied from the data processing control circuit 3 is input to the output control circuit 11.
- step S38 the output control circuit 11 determines whether the transmission interval of the packetized data is performed within a certain period. If the bucketed data has been transmitted within a certain period, the process proceeds to step S41. On the other hand, if the data transmission interval is longer than a certain period, in step S40, the output control circuit 11 stops the signal amplifier 6 by stopping power supply to the signal amplifier 6, for example. State.
- step S41 the paceband signal processing circuit 10 encodes the data input from the data processing control circuit 3 into a baseband signal, and supplies the baseband signal to the RF signal modulation circuit 5.
- step S42 the RF signal modulation circuit 5 modulates the baseband signal input from the baseband signal processing circuit 10, and generates an RF signal to be transmitted on a carrier wave.
- step S43 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the data transmission device 30 controls the transmission interval of the packetized data so that the temperature of the signal amplifier 6 does not exceed the target temperature value selected according to the date and time. .
- the transmission apparatus 30 is controlled so that the internal temperature does not exceed a target temperature value determined according to the date and time. Therefore, the data transmission device 30 can simplify the heat radiation mechanism and the temperature control mechanism, and can maintain the internal temperature at an appropriate temperature in accordance with the date and time temperature information.
- the overnight transmission device 30 not only can achieve a further reduction in size and weight of the housing size, but also can reduce the manufacturing costs.
- the data transmission device 40 shown in FIG. 8 has the same basic configuration as the data transmission device 1 shown in FIG. 1, but the data processing control circuit 41
- the data transmission device 1 is different from the data transmission device 1 in that the data transmission bit rate is controlled according to the value indicating the upper limit of the supplied data transmission bit rate. Therefore, the same components as those of the data transmission device 1 previously shown in FIG. 1 are denoted by the same reference numerals, and detailed description is omitted.
- the solid line in the figure indicates the flow of data over time, and the broken line indicates the flow of control signals.
- the data transmission device 40 has an input / output circuit 2 and baseband signal processing. And a signal amplifier 6, a temperature amplifier 7, a temperature detection sensor 7, an antenna 12, a data processing control circuit 41, and a temperature monitoring circuit 42.
- the device includes a baseband signal processing circuit 43 and an output control circuit 11.
- the data processing control circuit 41 supplies the control signal supplied from the data processing control circuit 41 to the external PC 9.
- the data processing control circuit 41 inputs the data packetized in the PC 9 via the input / output circuit 2.
- the baseband signal processing unit 4 includes a baseband signal processing circuit 43 and an output control circuit 11, and the baseband signal processing circuit 43 receives a control signal from a temperature monitoring circuit 42 described later. Then, the control signal is supplied to the data processing control circuit 41.
- the baseband signal processing circuit 43 encodes the data supplied from the data processing control circuit 41 into a baseband signal, and supplies the baseband signal to the RF signal modulation circuit 5.
- the temperature monitoring circuit 42 compares the detected temperature indicated by the electric signal input from the temperature detection sensor 7 with a previously stored target temperature value, and determines the upper limit of the data transmission bit rate. That is, if the temperature input from the temperature detection sensor ⁇ is lower than the target temperature value, the temperature monitoring circuit 42 raises the upper limit value of the data transmission bit rate, and the temperature input from the temperature detection sensor 7 If is higher than the target temperature value, the upper limit value of the transmission bit rate for one night is reduced, and a control signal indicating the determined upper limit value is supplied to the paceband signal processing circuit 43.
- step S44 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts the temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 8.
- step S45 the temperature monitoring circuit 8 determines whether or not the temperature value indicated by the electric signal input from the temperature detection sensor 7 is lower than a previously stored target temperature value.
- the process proceeds to step S46, and the upper limit value of the transmission bit rate in the night is increased.
- the process proceeds to step S47, and the upper limit value of the transmission bit rate for one night is reduced.
- step S48 the data processing control circuit 41 requests a new bucket data from the PC 9 via the input / output circuit 2.
- step S49 the PC 9 outputs the packetized data to the data processing control circuit 41 via the input / output circuit 2.
- step S50 the data processing control circuit 41 determines the data transmission bit rate, notifies the baseband signal processing circuit 43, and packetizes the data to the baseband signal processing circuit 43. Output data.
- step S51 the output control circuit 11 Information about the data transmission bit rate supplied from the logical control circuit 41 is input.
- step S52 the output control circuit 11 determines whether the instantaneous transmission bit rate of the bucketed data is larger or smaller than a certain threshold. If the instantaneous transmission bit rate is higher than the threshold, in step S53, a signal indicating that the output power is to be changed according to the instantaneous transmission bit rate of the packetized data is increased. Supplied to width instrument 6. When the instantaneous bit rate of the packetized data decreases, a signal to reduce the output power is supplied to the signal amplifier 6.
- step S54 the output control circuit 11 stops the power supply to the signal amplifier 6, 6 is changed to the sleep state.
- step S55 the baseband signal processing circuit 43 performs baseband processing on the packetized data input from the data processing control circuit 41 by performing baseband processing.
- the signal is supplied to the RF signal modulation circuit 5.
- step S56 the RF signal modulation circuit 5 modulates the baseband signal input from the paceband signal processing circuit 10, and generates an RF signal for transmission on a carrier wave.
- step S57 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- FIG. 3C shows a bucket data transmission method when the data transmission device 40 transmits data at a certain transmission bit rate determined by the temperature monitoring circuit 42.
- T b e the buffer 1 5 provided inside of the data processing control circuit 4 1 indicates the empty state
- T b f shows a state where Badzufa 1 5 is satisfied.
- the data processing control circuit 41 indicates the maximum value of the transmission bit rate over time determined by the temperature monitoring circuit 8.
- a control signal is input, a packetized data is output according to the control signal.
- the data transmission device 40 transmits data at a certain transmission bit rate determined by the temperature monitoring circuit 42, the data processing control circuit 41, as shown in FIG.
- the data transmission bit rate is determined within a range not exceeding the upper limit of the data transmission bit rate. It notifies the baseband signal processing circuit 43 and outputs the packetized data to the baseband signal processing circuit 43.
- the data transmission device 40 transmits the packet data 45 ai to the data transmission device (not shown) on the receiving side, and after receiving the ACK 46 ai from the data transmission device on the receiving side. Then send the next bucket tonight 47 a.
- Isseki transmitter 4 0 De, if it does not receive an ACK 4 6 a 2 from the data transmission device on the receiving side against the packet with Dinner Isseki 4 5 a 2, until it receives an ACK 4 6 a 2 Repeat the retransmission of the bucket towel 4 5 a 2 .
- Data transmission device 4 0 receives the ACK 4 6 a 2, the following path Transmit the packet data 4 7 a 2.
- the transmission bit rate is determined by the temperature monitoring circuit 42 in accordance with the temperature of the signal amplifier 6, and when the temperature of the signal amplifier 6 is higher than the target temperature value, the transmission bit rate increases and the target temperature becomes higher. If it is lower, the transmission bit rate will be lower. That is, when the temperature is lower than the target temperature value of the signal amplifier 6, the overnight transmission device 1 transmits packet data at a high density, and when higher than the target temperature value, transmits the packet data at a low density.
- the data transmission device 40 transmits the packetized data transmission bit rate so that the detected temperature of the signal amplifier 6 does not exceed the preset target temperature value. Is supplied to PC 9 to control. Thereby, the data transmission device 40 is controlled so that the temperature of the signal amplifier 6 does not exceed the target temperature value. Therefore, the transmission device 40 does not need to perform heat radiation design in accordance with the maximum value of the heat generation temperature, and the heat radiation mechanism can be simplified. In addition, the data transmission device 40 can not only achieve a further reduction in size and weight of the housing, but also reduce the manufacturing cost.
- a data transmission device 50 shown in FIG. 10 has the same basic configuration as the data transmission device 40 shown in FIG. 8, but has an ambient temperature detection device for detecting an ambient temperature.
- the difference from the data transmission device 1 is that the circuit 51 is provided with the circuit 51. Therefore, the same components as those of the data transmission device 40 shown in FIG. 1 are denoted by the same reference numerals, and detailed description thereof will be omitted.
- the solid line in the figure indicates the flow of data, and the broken line indicates the flow of control signals.
- Data transmission device 50 has input / output circuit 2 and baseband signal processing It includes a unit 4, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an antenna 12, an ambient temperature detection circuit 53, and a temperature monitoring circuit 54.
- the baseband signal processing section 4 includes a baseband signal processing circuit 51 and an output control circuit 11.
- the ambient temperature detection circuit 53 detects the ambient temperature, converts this ambient temperature into an electric signal, and supplies it to the temperature monitoring circuit 54.
- the temperature monitoring circuit 54 calculates the temperature difference between the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the ambient temperature detected by the ambient temperature detection circuit 53, and the target temperature difference stored in advance. By comparison, determine the upper limit of the transmission bit rate for one night. That is, the temperature monitoring circuit 54 determines that the temperature difference between the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the ambient temperature detected by the ambient temperature detection circuit 53 is smaller than the target temperature difference. If this is the case, raise the upper limit of the data transmission bit rate, and if it is greater than the target temperature difference, lower the upper limit of the transmission bit rate for a day to process the control signal indicating the determined upper limit. Supply to control circuit 52.
- the input data is wirelessly transmitted through a series of steps illustrated in FIG.
- step S58 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts the temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 54.
- the ambient temperature detecting circuit 53 detects the ambient temperature, converts the ambient temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 54.
- step S59 the temperature monitoring circuit 54 A temperature difference between the detected temperature indicated by the electric signal input from 7 and the ambient temperature indicated by the electric signal input from the ambient temperature detection circuit 53 is detected.
- step S60 the temperature monitoring circuit 54 determines whether the temperature difference is smaller than a previously stored target temperature difference. If the above temperature difference is lower than the target temperature value, the process proceeds to step S61 to increase the upper limit of the data transmission bit rate. On the other hand, if the temperature value indicated by the electric signal is higher than the target temperature value, the process proceeds to step S62, and the upper limit value of the data transmission bit rate is reduced.
- step S63 the overnight processing control circuit 52 requests new packet data to the PC 9 via the input / output circuit 2.
- step S64 the PC 9 outputs the bucketed data to the data processing control circuit 52 via the input / output circuit 2.
- step S65 the overnight processing control circuit 52 determines the data transmission bit rate, notifies the baseband signal processing circuit 51, and buckets the data to the baseband signal processing circuit 51. Outputs coded data.
- step S66 information on the data transmission bit rate supplied from the data processing control circuit 52 is input to the output control circuit 11.
- step S67 the output control circuit 11 determines whether the instantaneous transmission bit rate of the packetized data is larger or smaller than a certain threshold. If the instantaneous transmission bit rate is greater than the threshold, in step S68, a signal indicating that the output power is to be changed according to the instantaneous transmission bit rate of the packetized data is transmitted. Supply to signal amplifier 6. Also, the instantaneous bit of packetized data When the speed is reduced, a signal to reduce the output power is supplied to the signal amplifier 6.
- step S69 the output control circuit 11 stops the power supply to the signal Transition to hibernation.
- step S70 the baseband signal processing circuit 51 converts the bucketed data input from the data processing control circuit 52 into a baseband signal that does not exceed the upper limit of the transmission bit rate. And supplies it to the RF signal modulation circuit 5.
- step S71 the RF signal modulation circuit 5 modulates the baseband signal input from the baseband signal processing circuit 51, and generates an RF signal for transmission on a carrier wave.
- step S72 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the data transmission device 50 controls the transmission bit rate of the bucketed data so that the difference between the temperature of the signal amplifier 6 and the ambient temperature does not exceed a preset target temperature difference. Control.
- the data transmission device 50 is controlled such that the difference between the ambient temperature and the internal temperature does not exceed the target temperature difference. Therefore, the data transmission device 50 can simplify the heat radiation mechanism and the temperature adjustment mechanism, and can maintain the internal temperature at an appropriate temperature according to the surrounding temperature.
- the data transmission device 50 not only achieves a further reduction in size and weight of the housing, but also reduces costs for manufacturing.
- a data transmission device 60 shown in FIG. 12 has a basic configuration similar to that of the data transmission device 40 shown in FIG.
- a target temperature value corresponding to a date and time is set. It differs from the data transmission device 40 in that it has a stored calendar storage circuit 61. Therefore, the same components as those of the data transmission device 40 shown in FIG. 7 are denoted by the same reference numerals, and detailed description will be omitted.
- the solid line in the figure indicates the flow of data, and the broken line indicates the flow of control signals.
- the data transmission device 60 includes an input / output circuit 2, a baseband signal processing unit 4, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an antenna 12 and a calendar storage circuit 6. 1, a data processing control circuit 62, and a temperature monitoring circuit 64.
- the baseband signal processing unit 4 includes a baseband signal processing circuit 63 and an output control circuit 11.
- the calendar storage circuit 61 stores a target temperature value corresponding to the date and time, and selects the target temperature value at that time from the date and time and supplies it to the temperature monitoring circuit 64.
- the temperature monitoring circuit 64 compares the detected temperature indicated by the electric signal input from the temperature detection sensor 7 with the target temperature value selected by the calendar storage circuit 61, and determines the upper limit value of the data transmission interval. . That is, when the detected temperature indicated by the electric signal input from the temperature detection sensor 7 is lower than the target temperature value selected by the calendar storage circuit 61, the temperature monitoring circuit 64 Raise the upper limit of the bit rate, and if it is higher than the target temperature value, lower the upper limit of the data transmission bit rate and send a control signal indicating the determined upper limit to the baseband signal processing circuit 63 And supply.
- input data is transmitted wirelessly through a series of steps illustrated in FIG.
- step S73 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts the temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 64.
- the calendar storage circuit 61 supplies a target temperature value corresponding to the date and time to the temperature monitoring circuit 64.
- step S74 the temperature monitoring circuit 64 determines the target temperature at which the temperature value indicated by the electric signal input from the temperature detection sensor 7 is selected according to the date and time stored in the calendar storage circuit 61. Determine if it is lower than the value. If the temperature value indicated by the electric signal is lower than the target temperature value, the process proceeds to step S75 to increase the upper limit of the data transmission bit rate. On the other hand, if the temperature value indicated by the electric signal is higher than the target temperature value, the process proceeds to step S76, and the upper limit value of the data transmission bit rate is reduced.
- step S77 the data processing control circuit 62 requests new packet data to the PC 9 via the input / output circuit 2.
- step S78 the PC 9 outputs the packetized data to the data processing control circuit 62 via the input / output circuit 2.
- step S79 the data processing control circuit 62 determines the data transmission bit rate, notifies the baseband signal processing circuit 63, and sends a packet to the baseband signal processing circuit 63. Outputs coded data.
- step S80 the output control circuit 11 receives information on the data transmission bit rate supplied from the data processing control circuit 62. Is entered.
- step S81 the output control circuit 11 determines whether the instantaneous transmission bit rate of the packetized data is larger or smaller than a certain threshold. If the instantaneous transmission bit rate is greater than the threshold value, in step S82, a signal indicating that the output power is to be changed according to the instantaneous transmission bit rate of the packetized data is transmitted. Supply to signal amplifier 6. Further, when the instantaneous bit rate of the packetized data decreases, a signal to reduce the output power is supplied to the signal amplifier 6.
- step S83 the output control circuit 11 stops the power supply to the signal amplifier 6, 6 is changed to the sleep state.
- step S84 the baseband signal processing circuit 63 converts the packetized data input from the data processing control circuit 62 into a pace band within a range not exceeding the upper limit of the transmission bit rate. And supplies it to the RF signal modulation circuit 5.
- step S85 the RF signal modulation circuit 5 modulates the baseband signal input from the baseband signal processing circuit 63, and generates an RF signal for transmission on a carrier wave.
- step S86 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5 and wirelessly transmits the amplified RF signal via the antenna 12.
- the data transmission device 60 operates so that the temperature of the signal amplifier 6 does not exceed the target temperature value selected according to the date and time. Controls the transmission bit rate of bucketed data. As a result, the data transmission device 60 is controlled such that the internal temperature does not exceed the target temperature value determined corresponding to the date and time. Therefore, the data transmission device 60 can simplify the heat radiation mechanism and the temperature control mechanism, and can maintain the internal temperature at an appropriate temperature in accordance with the date and time temperature information. . In addition, the data transmission device 60 can achieve not only a further reduction in the size and weight of the housing but also a reduction in manufacturing costs.
- a data transmission device 70 shown in FIG. 14 has a basic configuration similar to that of the data transmission device 1 shown in FIG. 1, but includes a dividing circuit 71 for dividing data and a divided circuit 71.
- the data processing control circuit 76 is characterized in that it controls the maximum value of the amplitude of the synthesized signal. ing.
- the data transmission device 70 includes an input / output circuit 2, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an output control circuit 11, an antenna 12, a division circuit 71, First base-span signal processing circuit 7 2, a second paceband signal processing circuit 73, a third baseband signal processing circuit 74, a synthesizing circuit 75, an amplitude control circuit 76, and a temperature monitoring circuit 77. Prepare.
- the dividing circuit 71 divides the packetized data supplied from the input / output circuit 2 into a plurality of channels, for example, three channels.
- the signal is supplied to the second baseband signal processing circuit 73 and the third baseband signal processing circuit 74, which are different from each other in these paceband signal processing circuits 32, 33, and 34.
- the signals are spread-modulated by spreading codes, for example, code 1, code 2 and code 3, and these spread-modulated three-channel signals are supplied to a synthesizing circuit 75 described later.
- the combining circuit 75 receives three baseband signals from each baseband signal processing circuit, combines the three baseband signals to generate a combined signal, and supplies the combined signal to the amplitude control circuit 76.
- the amplitude control circuit 76 receives a control signal from a temperature monitoring circuit 77 described later and controls the maximum value of the amplitude of the synthesized signal supplied from the synthesis circuit 75 based on the control signal, that is, the amplitude limit. I do.
- the temperature monitoring circuit 77 compares the detected temperature indicated by the electric signal input from the temperature detection sensor ⁇ with a previously stored target temperature value, and determines the maximum value of the amplitude of the combined signal. That is, when the temperature input from the temperature detection sensor 7 is lower than the target temperature value, the temperature monitoring circuit 77 raises the upper limit value of the maximum value of the amplitude of the combined signal, and the temperature input from the temperature detection sensor 7 If is higher than the target temperature value, the upper limit value of the maximum value of the amplitude of the combined signal is reduced, and a control signal indicating the determined upper limit value is supplied to the amplitude control circuit 76.
- the input data is transmitted wirelessly through a series of steps shown in FIG.
- step S87 the input / output circuit 2 inputs the notched data from the PC 9, and supplies this data to the division circuit 71.
- step S88 the dividing circuit 71 divides the bucketed data input from the input / output circuit 2 into three channels, and processes the data of each channel into a first paceband signal processing circuit. 72, a second base-span signal processing circuit 73, and a third base-span signal processing circuit 74.
- each baseband signal processing circuit 72, 73, 74 spread-modulates the input data with a different spreading code (code 1, code 2, code 3). These spread modulated signals are supplied to the synthesizing circuit 75.
- step S90 the synthesizing circuit 75 synthesizes the signals from the baseband signal processing circuits 72 to 74, and supplies the obtained synthesized signal to the amplitude control circuit 76.
- step S91 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts the detected temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 77.
- step S92 the temperature monitoring circuit 77 determines whether or not the detected temperature indicated by the electric signal input from the temperature detection sensor 7 is lower than a previously stored target temperature value. If the detected temperature indicated by the electric signal is lower than the target temperature value, proceed to step S93, If the detected temperature indicated by the electric signal is higher than the target temperature value by raising the upper limit value of the maximum value of the amplitude of the synthesized signal and the power supply voltage of the signal amplifier 6, the process proceeds to step S94, and The upper limit of the maximum amplitude and the power supply voltage of the signal amplifier 6 are reduced, and a control signal indicating the determined upper limit is supplied to the amplitude control circuit 76.
- step S95 the amplitude control circuit 76 inputs a control signal indicating the upper limit of the maximum value of the amplitude of the composite signal determined by the temperature monitoring circuit 77.
- the amplitude control circuit 76 performs an amplitude limiting process on the synthesized signal based on the control signal, and supplies the resultant signal to the RF signal modulation circuit 5.
- step S96 the RF signal modulation circuit 5 modulates the paceband signal input from the amplitude control circuit 76 into an RF signal for transmission on a carrier wave, and supplies the RF signal to the signal amplifier 6.
- step S97 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the data transmission device 70 controls the upper limit value of the maximum value of the amplitude of the combined signal so that the detected temperature of the signal amplifier 6 does not exceed the preset target temperature value. Thereby, the data transmission device 70 is controlled so that the temperature of the signal amplifier 6 does not exceed the target temperature value. Therefore, the data transmission device 70 does not need to perform heat radiation design in accordance with the maximum value of the heat generation temperature, and the heat radiation mechanism can be simplified. Further, the data transmission device 70 can achieve further reduction in size and weight of the housing.
- the data transmission device 80 shown in FIG. 16 has the same basic configuration as the data transmission device 70 shown in FIG. It is characterized in that it has an ambient temperature detection circuit 81 for detecting the temperature. Therefore, the same components as those of the data transmission device 70 shown in FIG. 13 are denoted by the same reference numerals, and detailed description will be omitted.
- the solid line in the figure indicates the flow of data, and the broken line indicates the flow of control signals.
- the data transmission device 80 includes an input / output circuit 2, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an output control circuit 11, an antenna 12, a division circuit 71, A first baseband signal processing circuit 72, a second baseband signal processing circuit 73, a third paceband signal processing circuit 74, a synthesis circuit 75, an amplitude control circuit 76, An ambient temperature detection circuit 81 and a temperature monitoring circuit 82 are provided.
- the ambient temperature detection circuit 81 detects the ambient temperature, converts this ambient temperature into an electric signal, and supplies it to the temperature monitoring circuit 82.
- the temperature monitoring circuit 82 includes a temperature difference between the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the ambient temperature indicated by the electric signal input from the ambient temperature detection circuit 81, and a target value stored in advance. By comparing with the temperature difference, the maximum value of the amplitude of the synthesized signal is determined. That is, the temperature monitoring circuit 82 determines that the temperature difference between the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the ambient temperature indicated by the electric signal input from the ambient temperature detection circuit 81 is smaller than the target temperature difference.
- the input data is transmitted through a series of steps shown in FIG. Sent by radio.
- step S98 the input / output circuit 2 inputs the data converted into a pocket from the PC 9, and supplies the data to the dividing circuit 71.
- step S99 the dividing circuit 71 divides the packetized data input from the input / output circuit 2 into three channels, and converts the data of each channel into a first baseband signal processing circuit. 72, a second baseband signal processing circuit 73, and a third baseband signal processing circuit 74.
- each paceband signal processing circuit 72, 73, 74 spread-modulates the input data with a different spreading code (code 1, code 2, code 3). These spread-modulated signals are supplied to a synthesizing circuit 75.
- step S101 the synthesizing circuit 75 synthesizes the signals from the baseband signal processing circuits 72 to 74 and supplies the obtained synthesized signal to the amplitude control circuit 76. .
- step S102 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts the detected temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 77. Further, the ambient temperature detecting means 81 detects the ambient temperature, converts the ambient temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 82.
- step S103 the temperature monitoring circuit 82 determines the temperature difference between the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the ambient temperature indicated by the electric signal input from the ambient temperature detection circuit 81. Is detected.
- step S104 the temperature monitoring circuit 82 determines that the temperature difference is It is determined whether the difference is smaller than a previously stored target temperature difference. If the above temperature difference is lower than the target temperature value, the process proceeds to step S105, and the upper limit value of the maximum value of the amplitude of the combined signal and the power supply voltage of the signal amplifier 6 are increased. On the other hand, when the temperature difference is higher than the target temperature value, the process proceeds to step S106, and the upper limit value of the maximum value of the amplitude of the combined signal and the power supply voltage of the signal amplifier 6 are reduced.
- step S107 the amplitude control circuit 76 inputs a control signal indicating the upper limit of the maximum value of the amplitude of the composite signal determined by the temperature monitoring circuit 82.
- the amplitude control circuit 76 performs an amplitude limiting process on the synthesized signal based on the control signal, and supplies the resultant signal to the RF signal modulation circuit 5.
- step S108 the RF signal modulation circuit 5 modulates the baseband signal input from the amplitude control circuit 76 into an RF signal for transmission on a carrier wave, and supplies the RF signal to the signal amplifier 6. .
- step S109 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the data transmission device 80 controls the upper limit of the maximum value of the amplitude of the composite signal so that the difference between the temperature of the signal amplifier 6 and the ambient temperature does not exceed a preset target temperature difference. I do.
- the data transmission device 80 is controlled such that the difference between the ambient temperature and the internal temperature does not exceed the target temperature difference. Therefore, the data transmission device 80 can simplify the heat radiation mechanism and the temperature adjustment mechanism, and can maintain the internal temperature at an appropriate temperature according to the surrounding temperature.
- the data transmission device 80 can not only achieve a further reduction in the size and weight of the housing, but also reduce the manufacturing costs.
- a data transmission device 90 shown in FIG. 18 has a basic configuration similar to that of the data transmission device 70 shown in FIG.
- a target temperature value corresponding to a date and time is set.
- the feature is that a calendar storage circuit 91 for storing is provided. Therefore, the same components as those of the data transmission device 70 previously shown in FIG. 13 are denoted by the same reference numerals, and detailed description is omitted.
- the solid line in the figure indicates the flow of data, and the broken line indicates the flow of control signals.
- the data transmission device 90 includes an input / output circuit 2, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an output control circuit 11, an antenna 12, a division circuit 71, A first baseband signal processing circuit 72, a second baseband signal processing circuit 73, a third baseband signal processing circuit 74, a synthesizing circuit 75, and an amplitude control circuit 76; , A power render storage circuit 91, and a temperature monitoring circuit 92.
- the calendar storage circuit 91 stores a target temperature value corresponding to the date and time, selects a target temperature value at that time from the date and time, and supplies the selected target temperature value to the temperature monitoring circuit 92.
- the temperature monitoring circuit 92 compares the detected temperature indicated by the electric signal input from the temperature detection sensor 7 with the target temperature value selected by the calendar storage circuit 91, and determines the upper limit value of the maximum value of the amplitude of the combined signal. To determine. That is, if the detected temperature indicated by the electric signal input from the temperature detection sensor 7 is lower than the target temperature value selected by the calendar storage circuit 91, the temperature monitoring circuit 92 The upper limit of the maximum value is increased, and if it is higher than the target temperature, the upper limit of the maximum value of the combined signal is reduced and a control signal indicating the determined upper limit is supplied to the amplitude control circuit 76 .
- the data transmission device 90 including the units that function as described above, input data is transmitted wirelessly through a series of steps illustrated in FIG.
- step S110 the input / output circuit 2 inputs bucketed data from the PC 9, and supplies this data to the dividing circuit 71.
- step S111 the dividing circuit 71 divides the bucketed data input from the input / output circuit 2 into three channels, and divides the data of each channel into a first baseband signal processing circuit. 72, a second paceband signal processing circuit 73, and a third baseband signal processing circuit 74.
- each baseband signal processing circuit 72, 73, 74 spread-modulates the input data with a different spreading code (code 1, code 2, code 3). These spread-modulated signals are supplied to a synthesizing circuit 75.
- step S113 the synthesizing circuit 75 synthesizes the signals from the respective baseband signal processing circuits 72 to 74, and supplies the obtained synthesized signal to the amplitude control circuit 76.
- step S114 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts the detected temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 77.
- the calendar storage circuit 91 supplies the target temperature value stored corresponding to the date and time to the temperature monitoring circuit 77.
- step S115 the temperature monitoring circuit 92 determines whether the detected temperature indicated by the electric signal is lower than a target temperature value selected according to the date and time. The detected temperature indicated by the electric signal is the target temperature value If it is lower than this, the process proceeds to step S116, and the upper limit value of the maximum value of the amplitude of the combined signal and the power supply voltage of the signal amplifier 6 are increased. On the other hand, when the detected temperature indicated by the electric signal is higher than the target temperature value, the process proceeds to step S117, and the upper limit value of the maximum value of the amplitude of the combined signal and the power supply voltage of the signal amplifier 6 are reduced.
- step S118 the amplitude control circuit 76 inputs a control signal indicating the upper limit of the maximum value of the amplitude of the composite signal determined by the temperature monitoring circuit 92.
- the amplitude control circuit 76 performs an amplitude limiting process on the synthesized signal based on the control signal, and supplies the resultant signal to the RF signal modulation circuit 5.
- step S 119 the RF signal modulation circuit 5 modulates the baseband signal input from the amplitude control circuit 76 into an RF signal for transmission on a carrier wave and supplies the RF signal to the signal amplifier 6 .
- step S120 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the transmission device 90 sets the upper limit value of the maximum value of the amplitude of the composite signal so that the temperature of the signal amplifier 6 does not exceed the target temperature value selected according to the date and time. Control. As a result, the data transmission device 90 is controlled so that the internal temperature does not exceed a target temperature value determined according to the date and time. Therefore, the data transmission device 90 can simplify the heat radiation mechanism and the temperature control mechanism, and can maintain the internal temperature at an appropriate temperature based on the date and time information. In addition, the data transmission device 90 not only can realize a further reduction in size and weight of the housing size, but also can reduce the manufacturing cost.
- the data transmission apparatus 100 shown in FIG. 20 includes a baseband signal processing unit 4, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an antenna 12, and an audio signal input / output circuit 1. 0, an audio CODEC circuit 102, and a temperature monitoring circuit 103.
- the baseband signal processing unit 4 has a baseband signal processing circuit 10 and an output control circuit 11.
- the audio signal input circuit 101 receives an external audio signal, and supplies the audio signal to an audio CODEC circuit 102 described later.
- the audio CODEC circuit 102 encodes the audio signal supplied from the audio signal input circuit into audio data and supplies it to the baseband signal processing circuit 10.
- the temperature monitoring circuit 103 compares the detected temperature indicated by the electric signal input from the temperature detection sensor 7 with a previously stored target temperature value, and determines the encoded bit rate in the voice CODEC circuit 102. Determine the upper limit of. That is, when the detected temperature indicated by the electric signal input from the temperature detection sensor 7 is lower than the target temperature value stored in advance, the temperature monitoring circuit 103 sets the upper limit value of the encoded bit rate. Increase, if the temperature is higher than the target temperature, lower the upper limit of the encoding bit rate Then, a control signal indicating the determined upper limit value is supplied to the audio CODEC circuit 102.
- an input audio signal is transmitted wirelessly through a series of steps illustrated in FIG.
- the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts this temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 112.
- step S122 the temperature monitoring circuit 112 determines whether the temperature value indicated by the electric signal input from the temperature detection sensor 7 is lower than the previously stored target temperature value of the temperature. . If the temperature value indicated by the electric signal is lower than the target temperature value, the process proceeds to step S123, where the upper limit value of the data encoding bit rate and the encoding bit rate in the paceband signal processing circuit 10 are set. Pull up. On the other hand, if the temperature value indicated by the electric signal is higher than the target temperature value, the process proceeds to step S124, where the upper limit value of the data encoding bit rate and the encoding in the baseband signal processing circuit 10 are performed. Reduce bit speed.
- step S125 the audio CODEC circuit 102 determines the state of the audio signal including the silent state within a range not exceeding the upper limit of the data encoding bit rate determined by the temperature monitoring circuit 112.
- the coding bit rate for each frame which is the coding unit, is determined in accordance with the transmission bit rate, and information on the transmission bit rate corresponding to the coding bit rate for each frame is transmitted to the baseband signal processing circuit 10.
- the audio data is encoded at the encoding bit rate for each frame and output to the baseband signal processing circuit 10.
- the output control circuit 11 detects the presence or absence of audio data in the audio C0 DEC circuit 102.
- step S127 the output control circuit 11 determines whether or not the transmission of the audio data is performed at regular intervals.
- the process proceeds to step S128, and the pace band signal processing circuit 10 determines the encoding bit determined in step S125 above.
- a baseband signal is generated from the encoded voice data based on the speed, and data to be transmitted is supplied to the RF signal modulation circuit 5.
- step S129 the output control circuit 11 stops the power supply to the RF signal modulation circuit 5 and the signal amplifier 6, for example. Then, the RF signal modulation circuit 5 and the signal amplifier 6 are shifted to the rest state.
- step S130 the RF signal modulation circuit 5 modulates the paceband signal input from the baseband signal processing circuit 10 and generates an RF signal for transmission on a carrier wave.
- step S131 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the data transmission apparatus 100 sets the upper limit value of the encoding bit rate of the audio data so that the detected temperature of the signal amplifier 6 does not exceed a preset target temperature value. Control. As a result, the data transmission apparatus 100 is controlled so that the temperature of the signal amplifier 6 does not exceed the target temperature value. Therefore, the data transmission device 100 does not need to design a heat radiation in accordance with the maximum value of the heat generation temperature. Can be simplified. In addition, the data transmission device 100 can not only achieve a further reduction in size and weight of the housing, but also reduce the manufacturing cost.
- a data transmission device 110 shown in FIG. 22 has a basic configuration similar to that of the data transmission device 100 shown in FIG. 20, but detects an ambient temperature. It is characterized by having ambient temperature detecting means 1 1 1. Therefore, the same components as those of the data transmission apparatus 100 previously shown in FIG. 1 are denoted by the same reference numerals, and detailed description thereof will be omitted.
- the solid line in the figure indicates the flow of data, and the broken line indicates the flow of control signals.
- the data transmission device 110 includes a paceband signal processing unit 4, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an antenna 12, an audio signal input / output circuit 101, An audio CODEC circuit 102, an ambient temperature detecting circuit 111, and a temperature monitoring circuit 112 are provided.
- the baseband signal processing unit 4 has a baseband signal processing circuit 10 and an output control circuit 11.
- the ambient temperature detection circuit 111 detects the ambient temperature, converts this ambient temperature into an electric signal, and supplies it to the temperature monitoring circuit 112.
- the temperature monitoring circuit 112 includes a temperature difference between the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the ambient temperature detected by the ambient temperature detection circuit 111, and a target temperature stored in advance. Compare the difference to determine the encoding bit rate of the audio data. That is, the temperature monitoring circuit 112 has a temperature difference between the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the ambient temperature detected by the ambient temperature detection circuit 111 smaller than the target temperature difference. The upper limit of the encoding bit rate of the audio data. If the temperature is higher than the target temperature difference, the upper limit of the audio data encoding bit rate is reduced, and a control signal indicating the determined upper limit is supplied to the audio CODEC circuit 102.
- the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts this temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 112.
- the ambient temperature detecting circuit 111 detects the ambient temperature, converts the ambient temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 112.
- step S133 the temperature monitoring circuit 112 detects the temperature difference between the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the ambient temperature input from the ambient temperature detection circuit 111. I do.
- step S134 the temperature monitoring circuit 112 determines whether the temperature difference is smaller than a previously stored target temperature difference. If the temperature difference is lower than the target temperature value, the flow advances to step S135 to increase the upper limit of the encoding bit rate of the audio data and the transmission bit rate in the paceband signal processing circuit 10. On the other hand, if the temperature difference is higher than the target temperature value, the process proceeds to step S136, where the upper limit value of the encoding bit rate of the audio data and the transmission bit rate in the baseband signal encoding circuit 11 are set. Pull down.
- step S137 the audio CODEC circuit 102 determines the state of the audio signal including the silent state within a range that does not exceed the upper limit of the data encoding bit rate determined by the temperature monitoring circuit 112.
- the coding bit rate for each frame which is a coding unit, is determined, and information on the transmission bit rate corresponding to the coding bit rate for each frame is sent to the baseband signal processing circuit 10, and The audio data is encoded at each encoding bit rate and output to the baseband signal processing circuit 10.
- step S138 the output control circuit 11 detects the presence or absence of audio data in the audio C • DEC circuit 102.
- step S139 the output control circuit 11 determines whether or not the transmission of the audio data is performed at regular intervals. If the voice data is transmitted at regular intervals, the process proceeds to step S140, and the pace band signal processing circuit 10 sets the encoded bit rate determined in step S125 above. A baseband signal is generated from the encoded voice data based on the encoded data, and the data to be transmitted is supplied to the RF signal modulation circuit 5. On the other hand, if the supply of the audio data is not performed for a certain period of time, in step S141, the output control circuit 11 stops the power supply to the RF signal modulation circuit 5 and the signal amplifier 6. As a result, the RF signal modulation circuit 5 and the signal amplifier 6 are shifted to the rest state. In step S142, the RF signal modulation circuit 5 modulates the paceband signal input from the baseband signal processing circuit 10, and generates an RF signal to be transmitted on a carrier wave.
- step S143 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the data transmission device 110 operates so that the difference between the temperature of the signal amplifier 6 and the ambient temperature does not exceed a preset target temperature difference. Controls the upper limit of the encoding bit rate of audio data. As a result, the data transmission device 110 is controlled so that the difference between the ambient temperature and the internal temperature does not exceed the target temperature difference. Therefore, the data transmission device 110 can simplify the heat radiation mechanism and the temperature adjustment mechanism, and can maintain the internal temperature at an appropriate temperature according to the ambient temperature. Further, the data transmission device 110 can not only achieve further reduction in size and weight of the housing, but also reduce the manufacturing cost.
- the data transmission apparatus 120 shown in FIG. 24 as the 12th embodiment has the same basic configuration as the data transmission apparatus 100 shown in FIG.
- a target temperature corresponding to the date and time is set. It is characterized in that it has a calendar storage circuit 121 storing values. Therefore, the same components as those of the data transmission apparatus 100 previously shown in FIG. 1 are denoted by the same reference numerals, and detailed description thereof will be omitted.
- the solid line in the figure indicates the flow of data, and the broken line indicates the flow of control signals.
- the data transmission apparatus 120 includes a baseband signal processing unit 4, an RF signal modulation circuit 5, a signal amplifier 6, a temperature detection sensor 7, an antenna 12, and an audio signal input / output circuit 101. , An audio CODEC circuit 102, a calendar storage circuit 121, and a temperature monitoring circuit 122.
- the baseband signal processing unit 4 has a baseband signal processing circuit 10 and an output control circuit 11.
- the calendar storage circuit 122 stores a target temperature value corresponding to the date and time, and selects the target temperature value at that time from the date and time and supplies it to the temperature monitoring circuit 122.
- the temperature monitoring circuit 122 is configured to detect the detected temperature indicated by the electric signal input from the temperature detection sensor 7 and the target temperature selected by the calendar storage circuit 122.
- the upper limit value of the maximum value of the amplitude of the composite signal is determined by comparing with the degree value. That is, when the detected temperature indicated by the electric signal input from the temperature detection sensor 7 is lower than the target temperature value selected by the calendar storage circuit 121, the temperature monitoring circuit 122 is deactivated.
- the upper limit of the encoding bit rate is increased, and if it is higher than the target temperature value, the upper limit of the encoding bit rate of the data is decreased, and a control signal indicating the determined upper limit is sent to the amplitude control circuit 76. And supply.
- step S144 the temperature detection sensor 7 detects the temperature of the signal amplifier 6, converts this temperature into an electric signal, and supplies the electric signal to the temperature monitoring circuit 122.
- the calendar storage circuit 122 supplies a target temperature value corresponding to the date and time to the temperature monitoring circuit 122.
- step S145 the temperature monitoring circuit 122 sets the temperature input from the temperature detection sensor 7 to the target temperature value selected according to the date and time stored in the calendar storage circuit 122. Is determined to be lower than If the detected temperature indicated by the electric signal is lower than the target temperature value, the process proceeds to step S146, where the upper limit of the encoding bit rate of the audio data and the transmission bit in the paceband signal processing circuit 10 are set. Increase the speed. On the other hand, if the detected temperature indicated by the electric signal is higher than the target temperature value, the process proceeds to step S147, where the upper limit of the encoding bit rate of the audio data and the transmission bit in the baseband signal processing circuit 10 are set. Speed down.
- step S148 the voice CODEC circuit 102 Monitoring circuit 1 1 2 Encoding bit per frame, which is the encoding unit, according to the state of the audio signal including the silent state, within the upper limit of the encoding bit rate of the data that is determined.
- the base station determines the speed, and sends information on the transmission bit speed according to the coding bit speed for each frame to the baseband signal processing circuit 10 to convert the audio data at the coding bit speed for each frame. Encode and output to paceband signal processing circuit 10.
- step S149 the output control circuit 11 detects the presence or absence of audio data in the audio CODEC circuit 102.
- step S150 the output control circuit 11 proceeds to step S151, if the transmission of the audio data is performed at regular intervals, and the pace band signal processing circuit 10 Based on the encoding bit rate determined in 25, a base-span signal is generated from the encoded audio data, and data to be transmitted is supplied to the RF signal modulation circuit 5.
- step S152 the output control circuit 11 stops the power supply to the RF signal modulation circuit 5 and the signal amplifier 6, for example. Then, the RF signal modulation circuit 5 and the signal amplifier 6 are shifted to the rest state.
- step S153 the RF signal modulation circuit 5 modulates the baseband signal input from the baseband signal processing circuit 10 and generates an RF signal for transmission on a carrier wave.
- step S154 the signal amplifier 6 amplifies the RF signal input from the RF signal modulation circuit 5, and wirelessly transmits the amplified RF signal via the antenna 12.
- the data transmission device 120 sets the upper limit of the encoding bit rate of the audio data so that the temperature of the signal amplifier 6 does not exceed the target temperature value selected according to the date and time. Control. As a result, the overnight transmission device 60 is controlled such that the internal temperature does not exceed a target temperature value determined according to the date and time. Therefore, the data transmission apparatus 120 can simplify the heat radiation mechanism and the temperature adjustment mechanism, and can maintain the internal temperature at an appropriate temperature based on the date and time information. In addition, the data transmission device 120 can not only achieve further reduction in size and weight of the housing size, but also reduce the manufacturing cost.
- the data transmission apparatus is a portable data transmission apparatus that transmits data wirelessly, and a data transmission processing control that controls a transmission rate of data to be transmitted.
- Control means internal temperature detecting means for detecting the internal temperature; and temperature monitoring means for controlling the data transmission processing control means in accordance with the detected temperature indicated by the electric signal supplied from the internal temperature detecting means.
- the data transmission device can control heat generation inside the data transmission device by controlling the data transmission rate according to the detected internal temperature.
- the data transmission device according to the present invention can simplify the heat radiation mechanism and reduce the size of the housing. In addition, it can be manufactured at low cost.
- a data transmission device is a portable data transmission device for transmitting data wirelessly, wherein a data encoding unit, an internal temperature detection unit, and a detection unit indicated by an electric signal supplied from the internal temperature detection unit. Temperature monitoring means for controlling the data encoding means according to the output temperature.
- the data transmission device can control heat generation inside the data transmission device by controlling data encoding according to the detected internal temperature.
- the data transmission device according to the present invention can simplify the heat radiation design, and can reduce the size of the housing. Further, it can be manufactured at low cost.
- a data transmission method is a data transmission method for wirelessly transmitting data, wherein an internal temperature is detected, and a data transmission process is controlled according to the detected internal temperature.
- the data transmission method according to the present invention can control heat generated in the process of transmitting data by controlling the data transmission process in accordance with the detected internal temperature. .
- the data transmission method according to the present invention can simplify the heat radiation step.
- the data transmission apparatus using the data transmission method according to the present invention can reduce the size of the housing. Furthermore, it can be manufactured at low cost.
- a data transmission method is a data transmission method for transmitting data wirelessly, wherein an internal temperature is detected, and the data encoding process is controlled according to the detected temperature.
- the data transmission method can control heat generated in the step of transmitting data by controlling the data encoding process according to the detected internal temperature. This allows
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Description
Claims
Priority Applications (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP00971801A EP1143627A4 (en) | 1999-11-05 | 2000-11-06 | METHOD AND DEVICE FOR TRANSMITTING DATA |
KR1020017008214A KR20010093228A (ko) | 1999-11-05 | 2000-11-06 | 데이터 전송장치 및 데이터 전송방법 |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP31588799 | 1999-11-05 | ||
JP11/315887 | 1999-11-05 |
Publications (1)
Publication Number | Publication Date |
---|---|
WO2001033722A1 true WO2001033722A1 (fr) | 2001-05-10 |
Family
ID=18070810
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/JP2000/007787 WO2001033722A1 (fr) | 1999-11-05 | 2000-11-06 | Procede et dispositif d'emission de donnees |
Country Status (4)
Country | Link |
---|---|
EP (1) | EP1143627A4 (ja) |
KR (1) | KR20010093228A (ja) |
CN (1) | CN1338153A (ja) |
WO (1) | WO2001033722A1 (ja) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2007096925A (ja) * | 2005-09-29 | 2007-04-12 | Kyocera Corp | 通信端末、移動体通信システム及び通信制御方法 |
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US20080059658A1 (en) * | 2006-06-29 | 2008-03-06 | Nokia Corporation | Controlling the feeding of data from a feed buffer |
US7698578B2 (en) | 2006-06-29 | 2010-04-13 | Nokia Corporation | Temperature-dependent power adjustment of transmitter |
GB0613118D0 (en) * | 2006-06-30 | 2006-08-09 | Nokia Corp | Controlling a mobile device |
US8086229B2 (en) | 2008-02-25 | 2011-12-27 | Telefonaktiebolaget L M Ericsson (Publ) | Alleviating mobile device overload conditions in a mobile communication system |
GB2461556A (en) * | 2008-07-03 | 2010-01-06 | Artimi Ltd | Controlling throughput to control temperature in an ultrawideband (UWB) transceiver circuit |
US8953696B2 (en) | 2008-08-05 | 2015-02-10 | Intel Corporation | Signal decoding systems |
CN101571839A (zh) * | 2009-05-22 | 2009-11-04 | 中兴通讯股份有限公司 | 一种控制数据传输设备温度的方法、系统及数据传输设备 |
CN104040312B (zh) * | 2012-01-25 | 2017-05-10 | 三菱电机株式会社 | 半导体元件的温度检测系统及半导体模块及半导体模块系统 |
GB2508851B (en) * | 2012-12-12 | 2015-02-18 | Broadcom Corp | Apparatus, methods and computer programs for thermal management of user equipment coupled to a vehicle |
US20160183117A1 (en) * | 2014-12-17 | 2016-06-23 | Mediatek Inc. | Method and apparatus for throttling uplink data based on temperature state |
CN113157208A (zh) | 2017-07-24 | 2021-07-23 | 三星电子株式会社 | 存储设备及对包括其的电子设备的温度控制 |
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- 2000-11-06 CN CN00803067A patent/CN1338153A/zh active Pending
- 2000-11-06 KR KR1020017008214A patent/KR20010093228A/ko not_active Application Discontinuation
- 2000-11-06 EP EP00971801A patent/EP1143627A4/en not_active Withdrawn
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JP2007096925A (ja) * | 2005-09-29 | 2007-04-12 | Kyocera Corp | 通信端末、移動体通信システム及び通信制御方法 |
JP4624227B2 (ja) * | 2005-09-29 | 2011-02-02 | 京セラ株式会社 | 通信端末、移動体通信システム及び通信制御方法 |
US8494512B2 (en) | 2005-09-29 | 2013-07-23 | Kyocera Corporation | Communication terminal, mobile communication system, and communication control method |
Also Published As
Publication number | Publication date |
---|---|
KR20010093228A (ko) | 2001-10-27 |
CN1338153A (zh) | 2002-02-27 |
EP1143627A4 (en) | 2003-08-06 |
EP1143627A1 (en) | 2001-10-10 |
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