“some combination supplies were CGK, Reynaert is a combination, therefore Reynaert was CGK”
“95. The LTE standard was still under development in December 2007. Not all of the transmitter performance requirements had been standardised. It had been decided that LTE would use OFDMA in the downlink and SC-FDMA in the uplink, with QPSK, 16QAM and (for the uplink, eventually) 64QAM modulation schemes, which would require a transmitter with high modulation accuracy (and therefore low EVM – for example it was likely that 12.5% would be required for 16QAM) and high PAPR. There were to be a number of different transmission bands at different carrier frequencies, with different bandwidths, including 5, 10, 15 and 20 MHz (a substantial increase over the 3.84 MHz bandwidth of WCDMA). The maximum output power requirements were likely to be in the range of +25 to +27 dBm (i.e. about 0.5 W). The ACLR requirements would depend on the bandwidth of the transmission band, but for a 20 MHz bandwidth it was likely that the requirement would be for a -30 dB difference between the power in the central 18 MHz of the transmission band and the power in the 25 MHz above or below the transmission band. (Nauta 1 §192, Crols 2 §5.49) 96. In LTE a resource block is the smallest unit of physical resources. The bandwidth of a single RB is 180kHz, made up of 12 subcarriers (each with a bandwidth of 15 kHz) in the frequency domain and 1 slot (0.5 ms) in the time domain. (Nauta 1 §193; Crols 1 §6.86)”
“[0004] Components in the power supply signal path induce noise to the amplitude component of the transmission signal, and the noise appears as additional amplitude modulation in the transmission signal after the power-amplification. In modern wireless telecommunication systems using variable-bandwidth transmissions, spurious emissions caused by the noise will result in interference between adjacent frequency resource blocks allocated to different communication links and, thereby, reduce the overall capacity of the system. Accordingly, there is need to reduce the noise power in the power supply signal to obtain more effective power-amplification.”
“When the power of a signal processed in the filter circuit is high (as in the output stage of the SMPS unit 116), it is advantageous to connect switches to ground on one end.”
“[0026] An advantage of providing the analog low-pass filter 200 between the DAC 114 and the SMPS 116 is that the low-pass filter 200 filters signal components outside the bandwidth allocated to the terminal but also spurious signal components caused by non-idealities of the DAC 114 before the amplitude component is applied to the SMPS unit 116 for power signal generation. Additionally, high integration level of the low-pass filter 200 is achieved. If the low-pass filter 200 were located after the SMPS unit 116, the low-pass filter 200 would have to handle high-level currents which would degrade the integration level of the low-pass filter 200. [0027] Accordingly, the SMPS generates a power supply signal for the power amplifier 110 from the low-pass filtered amplitude component. The low-pass filter 200 may be implemented in a separate integrated circuit, or it may be applied to the same integrated circuit together with the SMPS 116. Moreover, the low-pass filter 200 is integrated into the circuitry of the SMPS and the low-pass filtering is carried out before or during the generation of the power supply signal under the control of the amplitude component. In an embodiment where the low-pass filter is integrated into the SMPS unit 116, the feedback loop of the SMPS unit may be configured to perform the low-pass filtering with the selected filtering parameters. The low-pass filtering may be performed either in a feed-forward path or in a feedback path of the SMPS unit. Furthermore, the low-pass filter 200 may be implemented in the same integrated circuit together with the DAC 114.”
“135. Jarvinen presents a multimode device using a polar architecture transmitter, for example for GSM, EDGE and WCDMA. The modes use different bandwidths, as listed at [0032] et seq. (where “BW” is the bandwidth): 136. Jarvinen explains at [0010] and [0012] that choice of filter components is a compromise, and a fixed filter may be non-optimum. It presents its idea at [0026]: ‘An aspect of this invention provides a low-pass filter having a bandwidth that is variable according to the modulation bandwidth.’ 137. This is achieved in Jarvinen with a power supply having a variable bandwidth low pass filter. Crols 2 at 7.57 reproduces its figure 3, with a red arrow denoting the “power supply signal”
“Critical parameters are … Phase and amplitude bandwidth (BW) as it directly affects the design of the BB low pass filters, the transmit PLL loop BW and the BW of the CMOS PA controller. The minimum required BW for the amplitude and phase parts is approximately twice the symbol rate, which for EDGE is 270.833 ksps.”