Gas chromatograph mass spectrometer
A gas chromatograph mass spectrometer includes a gas chromatograph part including a separation column, a mass spectrometer part, and a controller configured to control at least an ionization part of the mass spectrometer part. The ionization part includes an ion source box having a space for ionizing the components flowing out from an outlet of the separation column in the inside, a heater for adjusting a temperature of an ion source box, and a filament that is arranged outside of the ion source box and generates an electron for ionizing the components flowing out from the outlet of the separation column. The controller is configured to, after applying voltage to the filament, adjust a temperature of the ion source box affected by heat emitted from the filament to a predetermined temperature by controlling output of the heater in relation to magnitude of heat generation of the filament.
1 . A gas chromatograph mass spectrometer comprising:
a gas chromatograph part configured to generate sample gas from an injected sample and to separate components in the sample gas from each other by a separation column;
a mass spectrometer part including an ionization part for ionizing the components flowing out from an outlet of the separation column of the gas chromatograph part and a detection part for detecting the components ionized in the ionization part; and
a controller configured to control at least the ionization part,
wherein the ionization part of the mass spectrometer part includes:
an ion source box having a space for ionizing the components flowing out from the outlet of the separation column therein;
a heater for adjusting a temperature of the ion source box; and
a filament that is arranged outside of the ion source box and generates an electron for ionizing components flowing out from the outlet of the separation column,
the controller is configured to perform feedback control of an output of the heater so that the temperature of the ion source box is adjusted to a predetermined temperature, and
the controller is further configured, after an analysis starts and voltage is applied to the filament, to determine a correction amount of the output of the heater for cancelling temperature increasing of the ion source box due to heat from the filament based on a magnitude of current flowing through the filament, a magnitude of voltage applied to the filament, or a magnitude of emission current, and to correct the output of the heater, which is based on the feedback control, using the correction amount.
2 . The gas chromatograph mass spectrometer according to claim 1 , further comprising:
a correlation data holder that holds correlation data between any of the magnitude of voltage applied to the filament, the magnitude of current flowing through the filament, and the magnitude of emission current which is an amount of electrons emitted from the filament, and a correction amount of output of the heater necessary for canceling influence of the filament on a temperature of the ion source box, wherein
the controller is configured to correct output of the heater so as to cancel influence of the filament on a temperature of the ion source box using the correlation data held in the correlation data holder.
3 . The gas chromatograph mass spectrometer according to claim 1 , wherein the controller is configured to start voltage application to the filament after flowing out of a solvent from the outlet of the separation column is completed.
4 . The gas chromatograph mass spectrometer according to claim 3 , wherein the controller is configured to detect completion of flowing out of a solvent from the outlet of the separation column based on elapsed time from injection of a sample in the gas chromatograph part.