WO2016165579A1 - 一种提高网速速率的方法、系统及终端适配器、终端 - Google Patents

一种提高网速速率的方法、系统及终端适配器、终端 Download PDF

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Publication number
WO2016165579A1
WO2016165579A1 PCT/CN2016/078698 CN2016078698W WO2016165579A1 WO 2016165579 A1 WO2016165579 A1 WO 2016165579A1 CN 2016078698 W CN2016078698 W CN 2016078698W WO 2016165579 A1 WO2016165579 A1 WO 2016165579A1
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Prior art keywords
signal
network
high frequency
terminal
network signal
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PCT/CN2016/078698
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English (en)
French (fr)
Inventor
蔡成亮
许志伟
罗玲
林佳
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中兴通讯股份有限公司
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Publication of WO2016165579A1 publication Critical patent/WO2016165579A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/0001Systems modifying transmission characteristics according to link quality, e.g. power backoff
    • H04L1/0002Systems modifying transmission characteristics according to link quality, e.g. power backoff by adapting the transmission rate
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received

Definitions

  • the present invention relates to the field of communications, and in particular, to a method, system, terminal adapter, and terminal for increasing a network speed rate.
  • the invention provides a method, a system, a terminal adapter and a terminal for increasing the network speed rate, so as to at least solve the problem that the network speed can be superimposed and the network speed rate can be increased.
  • a method for increasing a network speed rate including:
  • Coupling the high frequency network signal to an alternating current circuit and transmitting separating the high frequency network signal on the alternating current circuit and demodulating, obtaining a high frequency network demodulated signal, and transmitting the signal to the terminal; demodulating the signal to the high frequency network Modulation is performed to superimpose and couple the modulated high frequency network modulated signal with the network signal received by the terminal from the antenna.
  • the receiving the broadband network signal, modulating the broadband network signal into a high-frequency network signal; coupling the high-frequency network signal to the AC circuit and transmitting the specific information includes: connecting the broadband network through the PLC communication conversion device The signal is modulated into an OFDM or GSMK high frequency network signal; the above OFDM or GSMK high frequency signal is coupled to a 220V AC circuit for transmission.
  • the high-frequency network signal is separated and demodulated on the AC circuit to obtain a high-frequency network demodulation signal
  • the transmission to the terminal further includes: separating the alternating current on the alternating current circuit, and performing step-down to DC.
  • the AC circuit is a 220V AC circuit
  • the DC power is 5V DC.
  • the network signal received by the terminal from the antenna includes at least one of the following: a wireless network letter. No., mobile data network signal.
  • a system for increasing a network speed rate including:
  • a communication conversion device configured to receive a broadband network signal, modulate the broadband network signal into a high frequency network signal; and couple the high frequency network signal to an AC circuit and transmit the terminal;
  • the terminal adaptation device is configured to be separated on the AC circuit Deriving a high-frequency network signal and demodulating, obtaining a high-frequency network demodulation signal, and transmitting to the terminal;
  • the terminal is configured to modulate the high-frequency network demodulation signal, and modulate the modulated high-frequency modulation network signal and the terminal from the antenna The received network signal is superimposed and coupled.
  • the high frequency network signal is an OFDM or GSMK high frequency network signal.
  • the AC circuit voltage is 220V.
  • the terminal adaptation device is further arranged to separate the alternating current on the alternating current circuit and to step down to a direct current.
  • the network signal received by the terminal from the antenna includes at least one of the following: a wireless network signal, and a mobile data network signal.
  • a terminal adapter including:
  • the demodulation and separation module is configured to separate and demodulate the high frequency network signal of the AC circuit to obtain a high frequency network demodulation signal;
  • An AC/DC conversion module configured to convert the remaining AC current separated by the demodulation and separation module into a DC current
  • a transmission module configured to transmit the high frequency network demodulation signal.
  • a terminal including:
  • a modulation module configured to modulate the received high frequency network demodulated signal to obtain a high frequency network modulated signal identical to the network signal received by the terminal from the antenna;
  • the aggregation module is configured to superimpose and couple the modulated high frequency network modulation signal and the network signal received by the terminal from the antenna.
  • a technical solution for accessing a superposed wired network through a wireless network is provided.
  • the invention solves the defects that the related technology can only use a single network to access the Internet, thereby improving the network speed and improving the user experience.
  • FIG. 1 is a flow chart of a method for increasing a network speed rate according to an embodiment of the present invention
  • FIG. 2 is a system architecture diagram for increasing a network speed rate according to an embodiment of the present invention
  • FIG. 3 is a structural block diagram of a mobile terminal adapter according to an embodiment of the present invention.
  • FIG. 4 is a block diagram showing the structure of a mobile terminal adapter in accordance with a preferred embodiment of the present invention.
  • FIG. 5 is a specific working flow chart of a mobile terminal adapter according to a preferred embodiment of the present invention.
  • FIG. 6 is a structural block diagram of a mobile terminal according to an embodiment of the present invention.
  • FIG. 7 is a structural block diagram of a mobile terminal according to a preferred embodiment of the present invention.
  • FIG. 8 is a block diagram showing a specific connection structure of a mobile terminal aggregation module according to a preferred embodiment of the present invention.
  • FIG. 9 is a flow chart showing a signal enhancement operation of a mobile terminal according to a preferred embodiment of the present invention.
  • FIG. 10 is a flow chart showing the operation of increasing the network speed rate after network signal aggregation according to a preferred embodiment of the present invention.
  • the present invention provides a method for improving the user's Internet access rate through a wireless network + wired connection, and the method is not limited to the above two network modes.
  • the wired broadband signal ADSL is converted into an indoor 220V AC power network after being converted by the PLC device, and the user receives the wired broadband signal through the adapter, and the antenna receives the wireless WIFI signal, and the user can use the cable at this time.
  • the super-fast network rate after ADSL+WIFI is superimposed; in another scenario, the user receives the wired broadband signal through the adapter, and the antenna receives the mobile network (4G) signal. At this time, the user can use the ultra-high-speed network rate superimposed by ADSL+4G.
  • step S102 is a flow chart of a method of increasing a rate of a network speed in accordance with an embodiment of the present invention. As shown in FIG. 1, the method includes: step S102 to step S108:
  • S102 Receive a broadband network signal, and modulate the broadband network signal into a high frequency network signal.
  • the wired broadband network signal is first modulated into an OFDM or GSMK high frequency network signal by a PLC (Power Line Communication) communication conversion device.
  • PLC Power Line Communication
  • S104 coupling the high frequency network signal to an AC circuit and transmitting the signal
  • the modulated OFDM or GSMK high frequency network signal is coupled to a 220V AC circuit such that the alternating current network carrying the high frequency network signal is provided on the alternating current network within the subscriber room.
  • S106 Separating the high frequency network signal on the AC circuit and demodulating, obtaining a high frequency network demodulation signal, and transmitting the signal to the terminal.
  • the AC power is removed and the voltage is reduced to a DC current.
  • S108 Modulate the high frequency network demodulation signal, and superimpose and couple the modulated high frequency network modulation signal and the network signal received by the terminal from the antenna.
  • an embodiment of the terminal can perform terminal charging, and another embodiment can receive a digital network signal transmitted from the adapter; thereafter, the terminal modulates the digital network signal received from the adapter, and modulates it into The high-frequency modulation signal of the network (WIFI or 4G) that the terminal is using, the two are aggregated to form a modulated signal with a wider bandwidth, and then input into the existing demodulation circuit of the mobile terminal to increase the bandwidth of the terminal. effect.
  • WIFI or 4G The high-frequency modulation signal of the network
  • FIG. 2 is a system architecture diagram for increasing a network speed rate according to an embodiment of the present invention. As shown in Figure 2, the system includes:
  • the communication conversion device 20 is configured to receive a broadband network signal, modulate the broadband network signal into a high frequency network signal, and couple the high frequency network signal to an alternating current circuit for transmission;
  • the communication conversion device is a PLC (Power Line Communication) communication conversion device that modulates a wired broadband network signal into an OFDM or GSMK high frequency network signal. And the modulated OFDM or GSMK high frequency network signal is coupled to the 220V AC circuit, so that the alternating current network carrying the high frequency network signal is provided on the alternating current network in the user room.
  • PLC Power Line Communication
  • the terminal adaptation device 21 is configured to separate the high frequency network signal on the AC circuit and demodulate it to obtain a high frequency network demodulation signal, and transmit the signal to the terminal.
  • the terminal 22 is configured to modulate the high frequency network demodulation signal, and superimpose and couple the modulated high frequency modulation network signal and the network signal received by the terminal from the antenna.
  • the terminal adaptation device 21 is a terminal adapter.
  • the terminal adapter shall have the function of separating the high frequency network signal on the 220V AC, and transmitting the separated signal to the terminal through the USB signal line.
  • 3 is a structural block diagram of a mobile terminal adapter according to an embodiment of the present invention. As shown in FIG. 3, the terminal adapter of the preferred embodiment of the present invention includes a separate demodulation module 30, an AC/DC conversion module 31, and a transmission module 32.
  • the separation demodulation module 30 is configured to separate the high frequency modulation signal from the 220V high voltage alternating current and demodulate the high frequency modulation signal; the AC/DC conversion module 31 is configured to separate the demodulation separation module. The remaining AC current is stepped down to a DC current.
  • the 220V AC voltage is converted to a 5V DC voltage for charging by the mobile terminal; the transmission module 32 is configured to transmit the high frequency network demodulation signal and DC power.
  • the preferred embodiment is transmitted to the terminal via a Data line in a 5V USB cable, and the usual adapter Data line is left unused.
  • the demodulation and separation module 401 is respectively connected to the AC/DC conversion module 402 and the USB interface 403, and is set to have a high transmission.
  • the 220V voltage of the frequency modulation signal is demodulated and separated;
  • the ACDC conversion module 402 is connected to the signal separation module 401, and is configured to convert the remaining 220V AC voltage of the signal demodulation and separation module 401 into a 5V DC voltage for terminal charging;
  • the USB interface 403 Connected to the demodulation and separation module 401, configured to transmit the digital signal demodulated and separated on the alternating current to the wireless terminal;
  • wireless The terminal 404 is connected to the adapter USB interface 403 through a USB cable, and is configured to receive and demodulate the separated digital signal and charge.
  • FIG. 5 is a specific working flow chart of a mobile terminal adapter according to a preferred embodiment of the present invention; as shown in FIG. 5, the workflow includes: S501: a mobile terminal adapter receives a 220V alternating current with a high frequency signal on a power line by inserting a socket.
  • S502 The mobile terminal adapter separates the high frequency signal from the 220V alternating current through the demodulation separation module; S503: separates the remaining 220V alternating current to the AC/DC module for stepping down to 5V direct current; S504: the terminal is charged by USB The line receives 5V DC voltage for terminal charging; S505: Demodulates and separates the high frequency signal into a transmittable low frequency digital signal; S506: The digital signal is transmitted to the terminal USB interface through the Data line of the charger interface.
  • FIG. 6 is a structural block diagram of a mobile terminal according to an embodiment of the present invention.
  • the mobile terminal includes a modulation module 60 configured to modulate a received high frequency network demodulation signal, and obtain a terminal and receive the antenna from the antenna.
  • the high frequency network modulation signal is the same as the network signal; the aggregation module 61 is arranged to superimpose and couple the modulated high frequency network modulation signal and the network signal received by the terminal from the antenna.
  • the mobile terminal includes a modulation module 701 connected to the aggregation module 702, and configured to modulate a wideband digital signal obtained by the wireless terminal from the charger interface.
  • the high-frequency signal conforms to the wireless network currently used by the wireless terminal;
  • the aggregation module 702 is connected to the modem 703 of the terminal, and is configured to perform the high-frequency signal modulated by the modulation module 701 and the wireless modulated signal that the terminal receives using the antenna.
  • the aggregation is transmitted to the terminal modem 703;
  • the modem device 703 is connected to the aggregation module 702, and is configured to demodulate the aggregated high-frequency modulation signal and transmit it to the terminal baseband circuit for use by the user.
  • the signal enhancement module 801 is respectively connected to a charger interface 803, and is configured to receive low frequency numbers transmitted from a charger interface 803Data line.
  • the communication information is modulated into a high frequency signal consistent with the wireless network being used by the terminal;
  • the signal enhancement module 801 is coupled to the antenna 804, configured to receive the wireless communication signal received from the antenna 804, and to interface with the modulated charger 803
  • the transmitted signal is aggregated;
  • the terminal modem module 802 is connected to the signal enhancement module 801, and is configured to receive the aggregated signal transmitted by the signal enhancement module 801 and perform demodulation for use by the user.
  • FIG. 9 is a flowchart of a signal enhancement operation of a mobile terminal according to a preferred embodiment of the present invention. As shown in FIG. 9, the workflow includes:
  • the terminal receives the low frequency digital signal transmitted from the adapter through the Data signal line on the charging line;
  • the terminal signal enhancement module modulates the low frequency digital signal into a high frequency modulated signal consistent with the wireless network that the terminal is using;
  • the signal enhancement module aggregates the high frequency signals with the same two modulation modes
  • the demodulated signal enters the original baseband circuit of the terminal for processing and is used by the user to access the Internet.
  • FIG. 10 is a flowchart of a method for increasing a network speed after network signal aggregation according to a preferred embodiment of the present invention. As shown in FIG. 10, the process includes:
  • S1001 ADSL access to the wired broadband signal is available for users to access the Internet;
  • the wired broadband signal ADSL is modulated into a high frequency modulation signal by a PLC (Power Line Communication) conversion device, and loaded on 220V AC power;
  • PLC Power Line Communication
  • S1003 Connect the adapter to any socket in the room to receive 220V AC with high frequency modulation signal
  • the adapter separates and demodulates the obtained 220V alternating current with high frequency modulated signal into a low frequency signal that can be transmitted through a 5V DC data line;
  • S1005 The terminal re-modulates the received low-frequency signal into a modulated signal consistent with the 4G mobile network, and aggregates with the 4G mobile network signal to generate a higher-frequency modulated signal with a higher rate;
  • the terminal demodulates the received high-rate modulated signal for use by the user to access the Internet. At this time, the user uses the network speed of the mobile 4G network speed + broadband network ADSL;
  • the terminal terminal re-modulates the received low-frequency signal into a modulation signal consistent with the WIFI network, and aggregates with the WIFI network signal to generate a higher-frequency modulated signal with a higher rate;
  • the terminal demodulates the received high-rate modulated signal for use by the user to access the Internet. At this time, the user uses the network speed of the WIFI network speed + broadband network ADSL;
  • the user can achieve a higher speed Internet experience under the wired network bandwidth.
  • the user needs to purchase a special adapter, and the adapter can be used as a universal adapter, and can also be used to improve the use of the network speed tool without terminal restrictions.
  • the terminal needs to have the application function, it only needs to add a modulation aggregation module.
  • the module only has one end connected to the antenna, one end is connected to the USB charging interface, and one end is connected to the modem.
  • the connection position is clear, the function is easy to be added, and it can also be used as a plug-in peripheral device. .
  • modules or steps of the present invention described above can be implemented by a general-purpose computing device that can be centralized on a single computing device or distributed across a network of multiple computing devices. Alternatively, they may be implemented by program code executable by the computing device such that they may be stored in the storage device by the computing device and, in some cases, may be different from the order herein.
  • the steps shown or described are performed, or they are separately fabricated into individual integrated circuit modules, or a plurality of modules or steps thereof are fabricated as a single integrated circuit module.
  • the invention is not limited to any specific combination of hardware and software.
  • the foregoing technical solution provided by the embodiment of the present invention provides a method for increasing a network speed rate, including: receiving a broadband network signal, modulating the broadband network signal into a high frequency network signal; and coupling the high frequency network signal To the AC circuit and transmitting; separating the high-frequency network signal on the AC circuit and demodulating, obtaining a high-frequency network demodulation signal, and transmitting to the terminal; modulating the high-frequency network demodulation signal, the modulated high The frequency network modulated signal and the network signal received by the terminal from the antenna are superimposed and coupled.

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Abstract

发明提供了一种提高网速速率的方法、系统及终端适配器、终端,以至少解决能够叠加网络,提高网速速率的问题。根据本发明的一方面,提供了一种提高网速速率的方法,包括:接收宽带网络信号,将所述宽带网络信号调制成高频网络信号;将所述高频网络信号耦合至交流电路上并进行传输;在上述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端;对上述高频网络解调信号进行调制,将调制后的高频网络调制信号和终端从天线接收的网络信号进行叠加耦合。

Description

一种提高网速速率的方法、系统及终端适配器、终端 技术领域
本发明涉及通信领域,具体而言,涉及一种提高网速速率的方法、系统及终端适配器、终端。
背景技术
近年来随着智能终端的不断发展,无线电技术的不断进步,用户通过无线终端上网已经成为人们生活的一部分。以前,用户可以使用宽带ADSL网络通过电脑PC进行网页浏览,享受着告诉宽带业务;现今,用户在家中通过WIFI无线网络同样可以使用无线终端享受和有线宽带媲美的网络速率,但就算是宽带ADSL,还是WIFI的无线网络都会有极限值。如果我们能够在已有的网络基础上加上另一种网络,做到两个网络甚至更多网络叠加的可能,那么就可以让用户有着超高速的上网体验了。
针对相关技术中把两种不同的网络叠加起来提高网速,目前尚未提出有效的解决方案。
发明内容
本发明提供了一种提高网速速率的方法、系统及终端适配器、终端,以至少解决能够叠加网络,提高网速速率的问题。
根据本发明的一实施例,提供了一种提高网速速率的方法,包括:
接收宽带网络信号,将所述宽带网络信号调制成高频网络信号;
将所述高频网络信号耦合至交流电路上并进行传输;在上述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端;对上述高频网络解调信号进行调制,将调制后的高频网络调制信号和终端从天线接收的网络信号进行叠加耦合。
在本发明的实施例中,上述接收宽带网络信号,将上述宽带网络信号调制成高频网络信号;将上述高频网络信号耦合至交流电路上并进行传输具体包括:通过PLC通信转换设备将宽带网络信号调制成OFDM或GSMK高频网络信号;将上述OFDM或GSMK高频信号耦合至220V交流电路上并进行传输。
在本发明的实施例中,在上述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端还包括:在上述交流电路上分离出交流电,并且进行降压成直流电流。
在本发明的实施例中,上述交流电路为220V交流电路,上述直流电为5V直流电。
在本发明的实施例中,上述终端从天线接收的网络信号包括以下至少之一:无线网络信 号、移动数据网络信号。
根据本发明的一实施例,提供了一种提高网速速率的系统,包括:
通信转换装置,设置为接收宽带网络信号,将上述宽带网络信号调制成高频网络信号;并且将上述高频网络信号耦合至交流电路上并进行传输;终端适配装置,设置为在上述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端;终端,设置为对上述高频网络解调信号进行调制,将调制后的高频调制网络信号和终端从天线接收的网络信号进行叠加耦合。
在本发明的实施例中,高频网络信号为OFDM或GSMK高频网络信号。
在本发明的实施例中,交流电路电压为220V。
在本发明的实施例中,终端适配装置还设置为在所述交流电路上分离出交流电,并且进行降压成直流电流。
在本发明的实施例中,上述终端从天线接收的网络信号包括以下至少之一:无线网络信号、移动数据网络信号。
根据本发明的一实施例,提供了一种终端适配器,包括:
解调分离模块,设置为将交流电路的高频网络信号分离出来并解调,得到高频网络解调信号;
AC/DC转换模块,设置为将所述解调分离模块分离剩下的交流电流降压转化为直流电流;
传输模块,设置为传输所述高频网络解调信号。
根据本发明的一实施例,提供了一种终端,包括:
调制模块,设置为对接收到的高频网络解调信号进行调制,得到和终端从天线接收到的网络信号一样的高频网络调制信号;
聚合模块,设置为把所述调制后的高频网络调制信号和终端从天线接收的网络信号进行叠加耦合。
根据本发明实施例,提供了通过无线网络接入叠加有线网络的技术方案。解决了相关技术中只能用单一网络上网的缺陷,从而能够提高网速速率,提高用户体验。
附图说明
此处所说明的附图用来提供对本发明的进一步理解,构成本申请的一部分,本发明的示意性实施例及其说明用于解释本发明,并不构成对本发明的不当限定。在附图中:
图1为根据本发明实施例的提高网速速率的方法流程图;
图2为根据本发明实施例的提高网速速率的系统架构图;
图3是本发明实施例的移动终端适配器的结构框图;
图4是本发明优选实施例的移动终端适配器的结构框图;
图5是本发明优选实施例的移动终端适配器具体工作流程图;
图6是本发明实施例的移动终端的结构框图;
图7是本发明优选实施例的移动终端的结构框图;
图8是本发明优选实施例的移动终端聚合模块具体连接结构框图;
图9是本发明优选实施例的移动终端信号增强工作的流程图;
图10是本发明优选实施例的网络信号聚合后提高网速速率的工作流程图。
具体实施方式
需要说明的是,在不冲突的情况下,本申请中的实施例及实施例中的特征可以相互组合。下面将参考附图并结合实施例来详细说明本发明。本发明提供了一种通过无线网络+有线连接的方式来提高用户上网速率的方法,且该方法不局限于以上两种网络模式。
本发明中涉及的一种场景,在用户家中,有线宽带信号ADSL通过PLC设备转换后加载到室内220V交流电力网络,用户通过适配器接收有线宽带信号,天线接收无线WIFI信号,此时用户便可使用ADSL+WIFI叠加后的超高速网络速率;另外一种情景,用户通过适配器接收有线宽带信号,天线接收移动网络(4G)信号,此时用户便可使用ADSL+4G叠加后的超高速网络速率。
图1为根据本发明实施例的提高网速速率的方法的流程图。如图1所示,该方法包括:步骤S102至步骤S108:
S102:接收宽带网络信号,将所述宽带网络信号调制成高频网络信号;
在本发明的一个优选实施例中,首先通过PLC(Power Line Communication)通信转换设备将有线宽带网络信号调制成OFDM或GSMK高频网络信号。
S104:将所述高频网络信号耦合至交流电路上并进行传输;
在本发明的一个优选实施例中,将调制成的OFDM或GSMK高频网络信号耦合至220V交流电路上,这样用户室内的交流电网络上就具备了携带高频网络信号的交流电。
S106:在所述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端。
在本发明的一个优选实施例中,除了在所述交流电路上分离出高频网络信后以外,还分 离出交流电,并且进行降压成直流电流。
S108:对所述高频网络解调信号进行调制,将调制后的高频网络调制信号和终端从天线接收的网络信号进行叠加耦合。
在本发明的一个优选实施例中,终端一实施例可以进行终端充电,另一实施例可以接收从适配器传输的数字网络信号;此后终端将从适配器接收到的数字网络信号进行调制,调制成与终端正在使用的网络(WIFI或4G)一样的高频调制信号,将两者进行聚合形成一路带宽更宽的调制信号,再输入到移动终端现有的解调电路中,达到增加终端上网带宽的效果。此时,用户就能使用到比有线宽带及无线网络更快的网络速度。
图2为根据本发明实施例的提高网速速率的系统架构图。如图2所示,该系统包括:
通信转换装置20,设置为接收宽带网络信号,将所述宽带网络信号调制成高频网络信号,并且将所述高频网络信号耦合至交流电路上并进行传输;
在本发明的一个优选实施例中,该通信转换装置为PLC(Power Line Communication)通信转换设备,该设备将有线宽带网络信号调制成OFDM或GSMK高频网络信号。并且将调制成的OFDM或GSMK高频网络信号耦合至220V交流电路上,这样用户室内的交流电网络上就具备了携带高频网络信号的交流电。
终端适配装置21,设置为在所述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端。
终端22,设置为对所述高频网络解调信号进行调制,将调制后的高频调制网络信号和终端从天线接收的网络信号进行叠加耦合。
在本发明的一个优选实施例中,该终端适配装置21为终端适配器。终端适配器应具备分离220V交流电上高频网络信号的功能,将分离后的信号通过USB信号线传输给终端。图3是本发明实施例的移动终端适配器的结构框图,如图3所示,本发明优选实施例的终端适配器包括分离解调模块30,AC/DC转换模块31,传输模块32。
其中分离解调模块30,设置为将高频调制信号从220V的高压交流电上分离出来,并且将高频调制信号进行解调;AC/DC转换模块31,设置为将所述解调分离模块分离剩下的交流电流降压转化为直流电流,优选实施例中是将220V交流电压转换成5V直流电压供移动终端充电;传输模块32,设置为传输所述高频网络解调信号和直流电。优选实施例是通过5V USB线中的Data线传输给终端,通常的适配器Data线是悬空无用的。
图4是本发明优选实施例的移动终端适配器的结构框图,如图4所示,解调分离模块401分别与AC/DC转换模块402和USB接口403连接,设置为将传输过来的带有高频调制信号的220V电压进行解调分离;ACDC转换模块402与信号分离模块401连接,设置为将信号解调分离模块401分离剩下的220V交流电压转化成5V直流电压供终端充电;USB接口403与解调分离模块401连接,设置为将交流电上解调分离出来的数字信号传输到无线终端;无线 终端404通过USB线与适配器USB接口403连接,设置为接收解调分离出的数字信号及充电。
图5是本发明优选实施例的移动终端适配器具体工作流程图;如图5所示,该工作流程包括:S501:移动终端适配器通过插入插座,从而接收到电力线上带有高频信号的220V交流电;S502:移动终端适配器通过解调分离模块将高频信号从220V交流电上分离出来;S503:分离剩下的220V交流电传出到AC/DC模块进行降压成5V直流电;S504:终端通过USB充电线得到5V直流电压进行终端充电;S505:解调分离的高频信号为可传输的低频数字信号;S506:数字信号通过充电器接口的Data线传输给终端USB接口。
在本发明的一个优选实施例中终端22应具备将通过USB线接收到的适配器解调后的通信信号进行进一步调制功能;另外,将调制后的通信信号连同终端从天线接收的调制信号进行叠加耦合。图6是本发明实施例的移动终端的结构框图,如图6所示,该移动终端包括调制模块60,设置为对接收到的高频网络解调信号进行调制,得到和终端从天线接收到的网络信号一样的高频网络调制信号;聚合模块61,设置为把所述调制后的高频网络调制信号和终端从天线接收的网络信号进行叠加耦合。
图7是本发明优选实施例的移动终端的结构框图,如图7所示,该移动终端包括调制模块701与聚合模块702连接,设置为将无线终端从充电器接口中得到的宽带数字信号调制成与目前无线终端正在使用的无线网络一致的高频信号;聚合模块702与终端的调制解调器703连接,设置为将调制模块701调制的高频信号和天线接收到的终端正在使用的无线调制信号进行聚合,并传输给终端调制解调装置703;调制解调装置703与聚合模块702连接,设置为解调聚合后的高频调制信号,并传输到终端基带电路供用户使用。
图8是本发明优选实施例的移动终端聚合模块具体连接结构框图,如图8所示,信号增强模块801分别与充电器接口803连接,设置为接收从充电器接口803Data线传输来的低频数字通信信息,并调制成与终端正在使用的无线网络一致的高频信号;信号增强模块801与天线804连接,设置为接收从天线804接收到的无线通信信号,并与调制过的充电器接口803传输来的信号进行聚合;终端调制解调模块802与信号增强模块801连接,设置为接收信号增强模块801传输来的聚合信号并进行解调供用户使用。
移动终端把信号聚合后,进行信号增强。图9是本发明优选实施例的移动终端信号增强工作的流程图,如图9所示,该工作流程包括:
S901:终端通过充电线上的Data信号线接收从适配器传输来的低频数字信号;
S902:终端信号增强模块将低频数字信号调制成和终端正在使用的无线网络一致的高频调制信号;
S903:信号增强模块将两路调制方式一致的高频信号进行聚合;
S904:聚合后的高速高频信号传输到终端原有的调制解调模块进行解调处理;
S905:解调后的信号进入终端原先的基带电路中进行处理并供用户上网使用。
图10是本发明优选实施例的网络信号聚合后提高网速速率的工作流程图,如图10所示,该流程包括:
S1001:有线宽带信号ADSL接入室内,可供用户上网使用;
S1002:有线宽带信号ADSL通过PLC(电力线通信)转换设备调制成高频调制信号,并加载在220V交流电上;
S1003:将适配器连接在室内任一的插座上,用来接收带有高频调制信号的220V交流电;
S1004:适配器将得到的带有高频调制信号的220V交流电进行分离并解调成可通过5V直流数据线路传输的低频信号;
S1005:终端将接收的低频信号再调制成和4G移动网络一致的调制信号,并与4G移动网络信号进行聚合生成速率更高的高频调制信号;
S1006:终端将接收到的聚合后的高速率调制信号进行解调后供用户上网使用,此时用户使用的便是比移动4G网路速度+宽带网络ADSL的网络速率;
S1007:终端终端将接收的低频信号再调制成和WIFI网络一致的调制信号,并与WIFI网络信号进行聚合生成速率更高的高频调制信号;
S1008:终端将接收到的聚合后的高速率调制信号进行解调后供用户上网使用,此时用户使用的便是比WIFI网络速度+宽带网络ADSL的网络速率;
此时,根据以上步骤,用户便可在有线的网络带宽下实现更高速的上网体验。在本项发明中,用户需要购买特殊的适配器,而适配器可以作为通用适配器使用,也可以用于提高网速工具使用不受终端限制。如果需要终端具备该应用功能,只需增加一个调制聚合模块,该模块只是一端连接天线、一端连接USB充电接口、一端连接调制解调器,连接位置清晰、功能易增加解除,也可作为即插外设装置。
显然,本领域的技术人员应该明白,上述的本发明的各模块或各步骤可以用通用的计算装置来实现,它们可以集中在单个的计算装置上,或者分布在多个计算装置所组成的网络上,可选地,它们可以用计算装置可执行的程序代码来实现,从而,可以将它们存储在存储装置中由计算装置来执行,并且在某些情况下,可以以不同于此处的顺序执行所示出或描述的步骤,或者将它们分别制作成各个集成电路模块,或者将它们中的多个模块或步骤制作成单个集成电路模块来实现。这样,本发明不限制于任何特定的硬件和软件结合。
以上所述仅为本发明的优选实施例而已,并不用于限制本发明,对于本领域的技术人员来说,本发明可以有各种更改和变化。凡在本发明的精神和原则之内,所作的任何修改、等同替换、改进等,均应包含在本发明的保护范围之内。
工业实用性
基于本发明实施例提供的上述技术方案,提供了一种提高网速速率的方法,包括:接收宽带网络信号,将所述宽带网络信号调制成高频网络信号;将所述高频网络信号耦合至交流电路上并进行传输;在上述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端;对上述高频网络解调信号进行调制,将调制后的高频网络调制信号和终端从天线接收的网络信号进行叠加耦合。

Claims (12)

  1. 一种提高网速速率的方法,包括:
    接收宽带网络信号,将所述宽带网络信号调制成高频网络信号;
    将所述高频网络信号耦合至交流电路上并进行传输;
    在所述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端;
    对所述高频网络解调信号进行调制,将调制后的高频网络调制信号和终端从天线接收的网络信号进行叠加耦合。
  2. 根据权利要求1所述的一种提高网速速率的方法,其中所述接收宽带网络信号,将所述宽带网络信号调制成高频网络信号;
    将所述高频网络信号耦合至交流电路上并进行传输具体包括:通过PLC通信转换设备将宽带网络信号调制成OFDM或GSMK高频网络信号;将所述OFDM或GSMK高频信号耦合至220V交流电路上并进行传输。
  3. 根据权利要求2所述的一种提高网速速率的方法,其中在所述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端还包括:在所述交流电路上分离出交流电,并且进行降压成直流电流。
  4. 根据权利要求3所述的一种提高网速速率的方法,其中所述交流电路为220V交流电路,所述直流电为5V直流电。
  5. 根据权利要求1所述的一种提高网速速率的方法,其中所述终端从天线接收的网络信号包括以下至少之一:无线网络信号、移动数据网络信号。
  6. 一种提高网速速率的系统,包括:
    通信转换装置,设置为接收宽带网络信号,将所述宽带网络信号调制成高频网络信号;并且将所述高频网络信号耦合至交流电路上并进行传输;
    终端适配装置,设置为在所述交流电路上分离出高频网络信号并解调,得到高频网络解调信号,并且传输给终端;
    终端,设置为对所述高频网络解调信号进行调制,将调制后的高频调制网络信号和终端从天线接收的网络信号进行叠加耦合。
  7. 根据权利要求6所述的一种提高网速速率的系统,其中所述高频网络信号为OFDM或GSMK高频网络信号。
  8. 根据权利要求6或7所述的一种提高网速速率的系统,其中所述交流电路电压为220V。
  9. 根据权利要求6或7所述的一种提高网速速率的系统,其中所述的终端适配装置还设置为 在所述交流电路上分离出交流电,并且进行降压成直流电流。
  10. 根据权利要求6或7所述的一种提高网速速率的系统,其中所述终端从天线接收的网络信号包括以下至少之一:无线网络信号、移动数据网络信号。
  11. 一种终端适配器,包括:
    解调分离模块,设置为将交流电路的高频网络信号分离出来并解调,得到高频网络解调信号;
    AC/DC转换模块,设置为将所述解调分离模块分离剩下的交流电流降压转化为直流电流;
    传输模块,设置为传输所述高频网络解调信号。
  12. 一种终端,包括:
    调制模块,设置为对接收到的高频网络解调信号进行调制,得到和终端从天线接收到的网络信号一样的高频网络调制信号;
    聚合模块,设置为把所述调制后的高频网络调制信号和终端从天线接收的网络信号进行叠加耦合。
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