Multi-gain-step digital step attenuator
US-2024007083-A1 · Jan 4, 2024 · US
US9478984B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9478984-B2 |
| Application number | US-201313961978-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 8, 2013 |
| Priority date | Mar 19, 2013 |
| Publication date | Oct 25, 2016 |
| Grant date | Oct 25, 2016 |
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An electrically programmable load having an impedance value dependent on a received control word. The electrically programmable load has several parallel load units. Each load unit has one or more load unit element who receive a control word component of the control word and have a load unit element impedance value which depends on a control word component value of the control word component, where the control word component value is one of three or more different biasing values.
Opening claim text (preview).
The invention claimed is: 1. An electrically programmable load having an impedance value dependent on a received control word, the electrically programmable load comprising a plurality of parallel load units, each load unit comprising at least one load unit element, each load unit element being arranged to receive a control word component of said control word and having a load unit element impedance value which depends on a control word component value of said control word component, wherein said control word component value is one of three or more different biasing values. 2. The electrically programmable load according to claim 1 , wherein at least one load unit comprises two or more load unit elements. 3. The electrically programmable load according to claim 1 , wherein said control word component value is one of three different biasing values, each load unit element having a maximum admittance of Y U,max for a first one of said three different biasing values, an intermediate admittance of Y U,min for a second one of said three different biasing values, or a minimum admittance of Y U,min , for a third one of said three different biasing values, and the following relation holds: Y U,max =αY U,min Y U,mid =βY U,min β=α/p, where p is a real number larger than 1. 4. The electrically programmable load according to claim 1 , wherein each of said each load unit elements comprises two voltage dependent capacitors. 5. The electrically programmable load according to claim 1 , wherein the impedance value is a linear function of the control word. 6. The electrically programmable load according to claim 1 , wherein the impedance value is a non-linear function of the control word such that another circuit parameter has a linear relationship with said control word. 7. The electrically programmable load according to claim 1 , wherein a processor is connected to load unit elements, arranged to generate a control word and to provide said control word component of said control word to said load unit elements. 8. A method of operating an electrically programmable load having an impedance value dependent on a received control word, the electrically programmable load comprising a plurality of parallel load units, each load unit comprising at least one load unit element having a load unit element impedance value which depends on a control word component value of a respective control word component, the method comprising the steps of: providing said respective control word component to each load unit element, said control word component value being one of three or more different biasing values. 9. The method of operating an electrically programmable load according to claim 8 , wherein at least one load unit comprises two or more load unit elements. 10. The method of operating an electrically programmable load according to claim 8 , wherein said control word component value is one of three different biasing values, each load unit element having a maximum admittance of Y U,max for a first one of said three different biasing values, an intermediate admittance of Y U,mid for a second one of said three different biasing values, or a minimum admittance of Y U,min for a third one of said three different biasing values, and the method comprises generating said three different biasing values such that the following relation holds: Y U,max =αY U,min Y U,mid =βY U,min β=α/p, where p is a real number larger than 1. 11. The method of operating an electrically programmable load according to claim 8 , wherein each of said each load unit elements comprises two voltage dependent capacitors. 12. The method of operating an electrically programmable load according to claim 8 , wherein the impedance value is a linear function of the control word. 13. The method of operating an electrically programmable load according to claim 8 , wherein the impedance value is a non-linear function of the control word such that another circuit parameter has a linear relationship with said control word. 14. The method according to claim 8 , further comprising the steps of: providing an electrically programmable load and, providing a processor connected to load unit elements, arranged to generate a control word and to provide said control word component of said control word to said load unit elements.
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