CYG1414 — Composite Free-Field Pressure Transmitter
In pulsating or water-hammer service, a pressure snubber protects the transducer from spikes that would otherwise shorten its life.
CYG1414 Composite Free-Field Transmitter: Reflected and Side-On Pressure
One probe that captures total (reflected) pressure and free-field side-on pressure at the same station, at the same instant. Total channel 2–100 MPa; field channel 0.3–100 MPa; up to 1000 kHz natural frequency and 0.2 µs rise time. Cavity-less flush diaphragms, amplified 0–5 V output. Anti-IR optical option.

What a Composite Free-Field Transmitter Is
A blast wave has two pressures worth recording. The side-on (free-field) pressure is what the undisturbed wave carries as it passes; the total, or reflected, pressure is what a surface facing the wave actually feels. The ratio between them drives blast loading on structures and is the heart of reflection and Mach-stem studies. The CYG1414 reads both at one station, so the two records share a clock and a position and the reflection coefficient falls straight out of the data.
The CYG1414 is the composite member of the CYG400 piezoresistive dynamic pressure family. A streamlined, non-reflective probe roughly 400 mm long carries two cavity-less flush diaphragms: a total-pressure port at the tip facing the wave, and a side-on field-pressure port on the body. A patented back-supported seal mounts each element, so neither channel has a trapped cavity to ring and smear the rising edge. The electronics sit in a Ø25 mm housing behind the probe.
The total channel spans 2 to 100 MPa and the field channel 0.3 to 100 MPa, so one probe brackets both the reflected and the incident pressure of a high-energy blast. For single-point free-field pressure in air, use the CYG412 high-pressure free-field sensor; for underwater work, the CYG1413 underwater transmitter.
CYG1414 Technical Specifications
| Group | Parameter | Value |
|---|---|---|
| Sensing | Technology | MEMS piezoresistive silicon strain bridge |
| Diaphragm | Stainless steel, fully flush, cavity-less | |
| Anti-light interference | Anti-IR optical coating (option F4) | |
| Range & Speed | Range span | Total 2–100 MPa; field 0.3–100 MPa |
| Natural frequency | 150–1000 kHz (range-matched, per channel) | |
| Rise time | 1 µs to 0.2 µs (tightens with range) | |
| Accuracy | Transmitter accuracy | 0.5% / 1.0% FS (selectable) |
| Non-linearity | ±0.5% … ±1% FS | |
| Temperature drift | Zero 0.02–0.05 %FS/°C; sensitivity 0.02–0.05 %FS/°C | |
| Power & Output | Power | ±15 VDC |
| Output | Amplified 0–5 V (independent total and field channels) | |
| Mechanical | Probe form | Streamlined non-reflective probe ≈400 mm, Ø25 mm housing |
| Channels | 2 – total (reflected) + field (side-on), independent outputs | |
| Wetted material | Silicon + stainless steel; non-corrosive media | |
| Environment | Operating temp | −40 to +85°C; −55 to +125°C (special fill); 2000°C / 100 ms transient |
| Compensated temp | 10 to 70°C |
Two Channels: Total (Reflected) and Field (Side-On) Pressure
The CYG1414 carries two independent channels. The total (reflected) channel spans 2 to 100 MPa; the field (side-on) channel spans 0.3 to 100 MPa. Pick each full scale about 30 to 50% above the peak you expect on that channel. The reflected peak runs several times the side-on peak, so the two channels are usually ordered at different ranges.
| Total (reflected) range | Natural frequency | Rise time |
|---|---|---|
| 2 MPa | 240 kHz | 1 µs |
| 4 MPa | 320 kHz | 0.5 µs |
| 6 MPa | 320 kHz | 0.5 µs |
| 10 MPa | 320 kHz | 0.5 µs |
| 20 MPa | 450 kHz | 0.3 µs |
| 40 MPa | 600 kHz | 0.3 µs |
| 60 MPa | 800 kHz | 0.2 µs |
| 100 MPa | 1000 kHz | 0.2 µs |
The field channel reads the lower side-on pressure of the same wave and starts at 0.3 MPa, so it resolves the incident pulse while the total channel captures the reflected peak. Both channels are range-matched in natural frequency, so they stay time-aligned through the rising edge.
| Field (side-on) range | Natural frequency | Rise time |
|---|---|---|
| 0.3 MPa | 150 kHz | 1 µs |
| 0.6 MPa | 150 kHz | 1 µs |
| 1 MPa | 180 kHz | 1 µs |
| 2 MPa | 240 kHz | 1 µs |
| 6 MPa | 320 kHz | 0.5 µs |
| 10 MPa | 360 kHz | 0.5 µs |
| 20 MPa | 450 kHz | 0.3 µs |
| 40 MPa | 600 kHz | 0.3 µs |
| 60 MPa | 800 kHz | 0.2 µs |
| 100 MPa | 1000 kHz | 0.2 µs |
At the high end both channels reach 1000 kHz natural frequency and 0.2 µs rise time, so even the fastest reflected transient registers on the rising edge. The field channel extends lower, to 0.3 MPa, so the incident side-on pulse stays resolved even when it is a fraction of the reflected peak.
Where the CYG1414 Is Used
The 20–100 MPa band is built for one job: near-field, high-energy detonation. Peak pressure runs into the tens of MPa, and the rising edge lands somewhere between a few tenths of a microsecond and a microsecond.
Reflection-Coefficient Studies
Measuring reflected and side-on pressure at one station to derive the reflection coefficient and its dependence on incidence angle and peak overpressure.
Mach-Stem & Wave Interaction
Resolving the transition from regular to Mach reflection, where the incident and reflected fronts merge and the side-on and total records diverge.
Structural Blast Loading
Capturing the reflected load a face actually sees alongside the free-field pressure that defines the threat, for armor and protective-structure qualification.
Shock-Tube Reflected + Incident
Recording incident and end-wall reflected pressure together in driver-section and high-enthalpy shock tubes to anchor strong-shock and gas-dynamic models.
Blast-Injury Research
Free-field side-on exposure paired with the reflected load on a surrogate surface, for blast-injury thresholds and protective-equipment evaluation.
Explosive Output Characterization
Quantifying charge output by both incident impulse and reflected peak at a fixed standoff, for propellant, pyrotechnic, and high-explosive screening.
Installation: Aligning the Total and Field Ports
A composite probe only reads both channels cleanly if you aim and support it right. Three rules cover most free-field setups.
Port alignment. Point the tip total-pressure port straight at the source so it takes the wavefront square; the side-on field port then sits parallel to the flow and reads the undisturbed pressure. Past about 15° off-axis both channels drift, the total low and the field high, so aim carefully and log the angle.
Mount support. Hold the probe at the Ø25 mm housing with a stake, a wave-aligned tripod, or a mast clamp; never clamp the slim probe shaft, which would add a bending mode and ring the rising edge. Route both channel cables clear of the line between probe and source.
Standoff distance. Set the probe at the radial distance you want to characterize, fix it precisely, and log it with the shot. Pressure falls off steeply with distance, so a 10% error in standoff becomes a 20-30% error in pressure. The ≈400 mm probe puts the support well behind the ports, out of the wave.
CYG1414 Ordering Code
Standard order format:
CYG1414 <total-range> <field-range> <accuracy> <cable> <anti-IR> <custom>
| Segment | Code | Meaning |
|---|---|---|
| Total range | 2 … 100 | Reflected-channel full scale in MPa |
| Field range | 0.3 … 100 | Side-on-channel full scale in MPa |
| Accuracy | P4 / P5 | 0.5% / 1.0% FS |
| Cable | C1 / CS | Direct lead / double-shielded twisted anti-interference cable (recommended outdoor) |
| Anti-IR | F4 | Anti-IR optical coating (recommended for near-field detonation) |
| Custom | Q | Custom cable length, special temperature, or custom thread |
Worked example: CYG1414 100 20 P4 CS F4 Q — total channel 0–100 MPa, field channel 0–20 MPa, 0.5% accuracy, double-shielded cable, anti-IR optical coating, custom 25 m cable length per attached sheet.
CYG1414 FAQ
Technical Support
Three background guides for engineers specifying or commissioning a CYG1414 composite probe. Open in a new tab; the deep-dives complement the spec-and-selection focus of this page.
Ready to Specify a CYG1414?
Send us the expected reflected and side-on peaks, the radial standoff, the ambient temperature range, and whether near-field IR flash is in play. Our pressure-instrument engineers will reply with CYG1414 total and field ranges, an ordering code, and lead time.
Our engineers usually reply within 12 business hours.



