
The Saturn V instrument unit is a ring-shaped structure fitted to the top of the
Saturn V
Saturn V is a retired American super heavy-lift launch vehicle developed by NASA under the Apollo program for human exploration of the Moon. The rocket was human-rated, with three stages, and powered with liquid fuel. It was flown from 1 ...
rocket's third stage (
S-IVB
The S-IVB (pronounced "S-four-B") was the third stage on the Saturn V and second stage on the Saturn IB launch vehicles. Built by the Douglas Aircraft Company, it had one J-2 rocket engine. For lunar missions it was fired twice: first for Earth ...
) and the
Saturn IB
The Saturn IB (also known as the uprated Saturn I) was an American launch vehicle commissioned by the National Aeronautics and Space Administration (NASA) for the Apollo program. It uprated the Saturn I by replacing the S-IV second stage (, 43, ...
's second stage (also an S-IVB). It was immediately below the SLA ''(Spacecraft/Lunar Module Adapter)'' panels that contained the
Apollo Lunar Module
The Apollo Lunar Module (LM ), originally designated the Lunar Excursion Module (LEM), was the lunar lander spacecraft that was flown between lunar orbit and the Moon's surface during the United States' Apollo program. It was the first crewed s ...
. The instrument unit contains the guidance system for the Saturn V rocket. Some of the electronics contained within the instrument unit are a
digital computer
A computer is a machine that can be programmed to carry out sequences of arithmetic or logical operations (computation) automatically. Modern digital electronic computers can perform generic sets of operations known as programs. These progra ...
, analog flight control computer, emergency detection system, inertial guidance platform, control accelerometers, and control rate gyros. The instrument unit (IU) for Saturn V was designed by NASA at Marshall Space Flight Center (MSFC) and was developed from the Saturn I IU. NASA's contractor to manufacture the Saturn V Instrument Unit was International Business Machines (
IBM).
One of the unused instrument units is currently on display at the
Steven F. Udvar-Hazy Center in
Chantilly, Virginia
Chantilly is a census-designated place (CDP) in western Fairfax County, Virginia. The population was 24,301 as of the 2020 census. Chantilly is named after an early-19th-century mansion and farm, which in turn took the name of an 18th-century ...
. The plaque for the unit has the following inscription:
The Saturn V rocket, which sent astronauts to the Moon, used inertial guidance, a self-contained system that guided the rocket's trajectory. The rocket booster had a guidance system separate from those on the command and lunar modules. It was contained in an instrument unit like this one, a ring located between the rocket's third stage and the command and lunar modules. The ring contained the basic guidance system components—a stable platform, accelerometers, a digital computer, and control electronics—as well as radar, telemetry, and other units.
The instrument unit's stable platform was based on an experimental unit for the German V-2 rocket of World War II. The Bendix Corporation
Bendix Corporation is an American manufacturing and engineering company which, during various times in its existence, made automotive brake shoes and systems, vacuum tubes, aircraft brakes, aeronautical hydraulics and electric power systems, ...
produced the platform, while IBM designed and built the unit's digital computer.
Specifications
*Diameter: 260 inches (6.6 m)
*Height: 36 inches (914 mm)
*Weight at launch: ~4,400 lb (1996 kg)
Mission history
There was no instrument unit for Saturn I Block I boosters (SA-1 to SA-4). Guidance and control equipment was carried in canisters on top of the S-I first stage, and included the ST-90 stabilized platform, made by Ford Instrument Company and used in the
Jupiter missile
The PGM-19 Jupiter was the first nuclear armed, medium-range ballistic missile (MRBM) of the United States Air Force (USAF). It was a liquid-propellant rocket using RP-1 fuel and LOX oxidizer, with a single Rocketdyne LR79-NA (model S-3D) ro ...
.
The IU made its debut with SA-5, the first Saturn I Block II launch. The first version of the IU was in diameter and high, and was both designed and built by MSFC. Guidance, telemetry, tracking and power components were contained in four pressurized, cylindrical containers attached like spokes to a central hub.
MSFC flew version 2 of the IU on SA-8, 9 and 10. Version 2 was the same diameter as version 1, but only high. Instead of pressurized containers, the components were hung on the inside of the cylindrical wall, achieving a reduction in weight.
The last version, number 3, was in diameter and tall. It was designed by MSFC but manufactured by IBM in their factory at Huntsville, and flew on all Saturn IB and Saturn V launches. This is the version that is on display in Washington, Huntsville, Houston, and the
Apollo/Saturn V Center.
Mission profile
Saturn Apollo flight profiles varied considerably by mission. All missions began, however, with liftoff under power of the first stage. To more smoothly control engine ignition, thrust buildup and liftoff of the vehicle, restraining arms provided support and hold down at four points around the base of the S-IC stage. A gradual controlled release was accomplished during the first six inches of vertical motion.
After clearing the launch tower, a flight program stored in the
launch vehicle digital computer
The Launch Vehicle Digital Computer (LVDC) was a computer that provided the autopilot for the Saturn V rocket from launch to Earth orbit insertion. Designed and manufactured by IBM's Electronics Systems Center in Owego, New York, it was one of th ...
(LVDC) commanded a roll of the vehicle to orient it so that the subsequent pitch maneuver pointed the vehicle in the desired azimuth. The roll and pitch commands were controlled by the stored program, and were not affected by navigation measurements. Until the end of the S-IC burn, guidance commands were functions only of time.
First stage cutoff and stage separation were commanded when the IU received a signal that the tank's fuel level had reached a predetermined point. Guidance during the second and third stage burns depended both on time and navigation measurements, in order to achieve the target orbit using the minimum fuel.
Second stage engine cutoff was commanded by the IU at a pre-determined fuel level, and the stage was separated. By this time, the vehicle had reached its approximate orbital altitude, and the third stage burn was just long enough to reach a circular
parking orbit
A parking orbit is a temporary orbit used during the launch of a spacecraft. A launch vehicle boosts into the parking orbit, then coasts for a while, then fires again to enter the final desired trajectory. The alternative to a parking orbit is ''di ...
.
During crewed Apollo missions, the vehicle coasted in Earth orbit for 2-4 passes as the crew performed checks of systems status and other tasks, and as ground stations tracked the vehicle. During the hour and a half after launch, tracking stations around the world had refined estimates of the vehicle's position and velocity, collectively known as its state vector. The latest estimates were relayed to the guidance systems in the IU, and to the Command Module Computer in the spacecraft. When the Moon, Earth, and vehicle were in the optimum geometrical configuration, the third stage was reignited to put the vehicle into a translunar orbit. For Apollo 15, for example, this burn lasted 5 minutes 55 seconds.
After translunar injection came the maneuver called transposition, docking, and extraction. This was under crew control, but the IU held the S-IVB/IU vehicle steady while the Command/Service Module (CSM) first separated from the vehicle, rotated 180 degrees, and returned to dock with the Lunar Module (LM). When the CSM and LM had "hard docked" (connected by a dozen latches), the rearranged spacecraft separated from the S-IVB/IU.
The last function of the IU was to command the very small maneuver necessary to keep the S-IVB/IU out of the way of the spacecraft. On some missions the S-IVB/IU went into high Earth or Solar orbit, while on others it was crashed into the Moon; seismometers were left on the Moon during Apollo 11, 12, 14, 15, and 16, and the S-IVB/IUs of Apollo 13, 14, 15, 16, and 17 were directed to crash. These impacts provided impulses that were recorded by the seismometer network to yield information about the geological structure of the Moon.
Subsystems
The IU consists of six subsystems: structure, guidance and control, environmental control, emergency detection, radio communications (for telemetry, tracking, and command), and power.
Structure
The basic IU structure is a short cylinder, 36 inches high and in diameter, fabricated of an aluminum alloy honeycomb sandwich material thick. The cylinder is manufactured in three 120-degree segments, which are joined by splice plates into an integral structure. The top and bottom edges are made from extruded aluminum channels bonded to the honeycomb sandwich. This type of construction was selected for its high strength to weight ratio, acoustical insulation, and thermal conductivity properties. The IU supported the components mounted on its inner wall and the weight of the Apollo spacecraft above (the Lunar Module, the Command Module, the Service Module, and the Launch Escape Tower). To facilitate handling the IU before it was assembled into the Saturn, the fore and aft protective rings, 6 inches tall and painted blue, were bolted to the top and bottom channels. These were removed in the course of stacking the IU into the Saturn vehicle. The structure was manufactured by North American Rockwell in Tulsa, Oklahoma. Edward A. Beasley was the I.U. Program Manager.
The IU is divided into 24 locations, which are marked on the interior by numbers 1–24 on the aluminum surface just above the blue flange.
Guidance and control
The Saturn V launch vehicle was guided by navigation, guidance, and control equipment located in the IU. A space stabilized platform (the
ST-124-M3 inertial platform at location 21) measured acceleration and attitude. A
launch vehicle digital computer
The Launch Vehicle Digital Computer (LVDC) was a computer that provided the autopilot for the Saturn V rocket from launch to Earth orbit insertion. Designed and manufactured by IBM's Electronics Systems Center in Owego, New York, it was one of th ...
(LVDC at location 19) solved guidance equations, and an analog flight control computer (location 16) issued commands to steer the vehicle.
The attitude of the vehicle was defined in terms of three axes:
*The roll axis (X) runs from tail to nose and was vertical at time of launch.
*The pitch axis (Y) is at right angles to the roll axis, and is marked on the exterior of the IU by +Y above the viewport, outside location 21.
*The yaw axis (Z) is at right angles to both the pitch and roll axis, and is marked by +Z outside location 3.
The
ST-124-M3 inertial platform contains three
gimbal
A gimbal is a pivoted support that permits rotation of an object about an axis. A set of three gimbals, one mounted on the other with orthogonal pivot axes, may be used to allow an object mounted on the innermost gimbal to remain independent of ...
s: the outer gimbal (which can rotate 360° about the roll or X axis of the vehicle), the middle gimbal (which can rotate ±45° about the yaw or Z axis of the vehicle), and the inner or inertial gimbal (which can rotate 360° about the pitch or Y axis of the vehicle). The inner gimbal is a platform to which are fixed several components:
*Two vertical alignment pendulums sent signals before launch to ground support equipment, which generated signals to the platform gyro torque generators to level the inner gimbal. The vertical alignment system levelled the platform to an accuracy of ±2.5
arc second
A minute of arc, arcminute (arcmin), arc minute, or minute arc, denoted by the symbol , is a unit of angular measurement equal to of one degree. Since one degree is of a turn (or complete rotation), one minute of arc is of a turn. The nau ...
s.
*Two
prism
Prism usually refers to:
* Prism (optics), a transparent optical component with flat surfaces that refract light
* Prism (geometry), a kind of polyhedron
Prism may also refer to:
Science and mathematics
* Prism (geology), a type of sedimentary ...
s, one fixed and one
servo
Servo may refer to:
Mechanisms
* Servomechanism, or servo, a device used to provide control of a desired operation through the use of feedback
** AI servo, an autofocus mode
** Electrohydraulic servo valve, an electrically operated valve that c ...
-driven, were used with an external
theodolite
A theodolite () is a precision optical instrument for measuring angles between designated visible points in the horizontal and vertical planes. The traditional use has been for land surveying, but it is also used extensively for building and ...
which sighted through the viewport outside location 21 to set the
azimuth
An azimuth (; from ar, اَلسُّمُوت, as-sumūt, the directions) is an angular measurement in a spherical coordinate system. More specifically, it is the horizontal angle from a cardinal direction, most commonly north.
Mathematicall ...
of the inner gimbal before launch. The azimuth could be set to an accuracy of ±5 arc seconds.
*Three single-degree-of-freedom
gyroscopes have their input axes aligned along an
orthogonal
In mathematics, orthogonality is the generalization of the geometric notion of '' perpendicularity''.
By extension, orthogonality is also used to refer to the separation of specific features of a system. The term also has specialized meanings in ...
inertial coordinate system. Three signal generators, fixed to the output axis of each gyro, generated electrical signals proportional to the
torque
In physics and mechanics, torque is the rotational equivalent of linear force. It is also referred to as the moment of force (also abbreviated to moment). It represents the capability of a force to produce change in the rotational motion of t ...
disturbances. The signals were transmitted through the servo electronics which terminated in the gimbal pivot servotorque motors. The servoloops maintained the inner gimbal rotationally fixed in inertial space. That is, while the vehicle rolled, pitched, and yawed, the inner gimbal remained in the same attitude to which it was set just before launch. Though it was being translated during the launch and orbit process, it was rotationally fixed.
*Three integrating
accelerometer
An accelerometer is a tool that measures proper acceleration. Proper acceleration is the acceleration (the rate of change of velocity) of a body in its own instantaneous rest frame; this is different from coordinate acceleration, which is acce ...
s measured the three components of velocity resulting from vehicle propulsion. The accelerometer measurements were sent through the launch vehicle data adapter (LDVA at location 19) to the LVDC. In the LVDC the accelerometer measurements were combined with the computed gravitational acceleration to obtain velocity and position of the vehicle.
The angular positions of gimbals on their axes were measured by resolvers, which sent their signals to the
Launch Vehicle Data Adaptor (LVDA). The LVDA was the input/output device for the LVDC. It performed the necessary processing of signals to make these signals acceptable to the LVDC.
The instantaneous attitude of the vehicle was compared with the desired vehicle attitude in the LVDC. Attitude correction signals from the LVDC were converted into control commands by the flight control computer. The required thrust direction was obtained by gimbaling the engines in the propelling stage to change the thrust direction of the vehicle. Gimbaling of these engines was accomplished through
hydraulic
Hydraulics (from Greek: Υδραυλική) is a technology and applied science using engineering, chemistry, and other sciences involving the mechanical properties and use of liquids. At a very basic level, hydraulics is the liquid counter ...
actuator
An actuator is a component of a machine that is responsible for moving and controlling a mechanism or system, for example by opening a valve. In simple terms, it is a "mover".
An actuator requires a control device (controlled by control signal) a ...
s. In the first and second stages (S-IC and S-II), the four outboard engines were gimbaled to control roll, pitch, and yaw. Since the third (S-IVB) stage has only one engine, an auxiliary propulsion system was used for roll control during powered flight. The auxiliary propulsion system provides complete attitude control during coast flight of the S-IVB/IU stage.
Environmental control
The environmental control system (ECS) maintains an acceptable operating environment for the IU equipment during preflight and flight operations. The ECS is composed of the following:
*The thermal conditioning system (TCS), which maintains a circulating coolant temperature to the electronic equipment of 59° ± 1 °F (15 ± 5/9 °C).
*Preflight purging system, which maintains a supply of temperature- and pressure-regulated mixture of air and gaseous nitrogen (air/GN2) in the IU/S-IVB equipment area.
*Gas bearing supply system, which furnishes GN2 to the ST-124-M3 inertial platform gas bearings.
*Hazardous gas detection sampling equipment which monitors the IU/S-IVB forward interstage area for the presence of hazardous vapors
Thermal conditioning
Thermal conditioning panels, also called cold plates, were located in both the IU and S-IVB stage (up to sixteen in each stage). Each cold plate contains tapped bolt holes in a grid pattern which provides flexibility of component mounting.
The cooling fluid circulated through the TCS was a mixture of 60 percent
methanol and 40 percent demineralized
water
Water (chemical formula ) is an inorganic, transparent, tasteless, odorless, and nearly colorless chemical substance, which is the main constituent of Earth's hydrosphere and the fluids of all known living organisms (in which it acts as ...
by weight. Each cold plate was capable of dissipating at least 420 watts.
During flight, heat generated by equipment mounted on the cold plates was dissipated to space by a
sublimation
Sublimation or sublimate may refer to:
* ''Sublimation'' (album), by Canvas Solaris, 2004
* Sublimation (phase transition), directly from the solid to the gas phase
* Sublimation (psychology), a mature type of defense mechanism
* Sublimate of mer ...
heat exchanger
A heat exchanger is a system used to transfer heat between a source and a working fluid. Heat exchangers are used in both cooling and heating processes. The fluids may be separated by a solid wall to prevent mixing or they may be in direct conta ...
. Water from a reservoir (water accumulator) was exposed to the low temperature and pressure environment of space, where it first freezes and then sublimates, taking heat from the heat exchanger and transferring it to the water molecules which escape to space in gaseous state. Water/methanol was cooled by circulation through the heat exchanger.
Preflight air/GN2 purge system
Before flight, ground support equipment (GSE) supplies cooled, filtered ventilating air to the IU, entering via the large duct in the middle of the umbilical panel (location 7), and branching into two ducts at the top that are carried around the IU in the cable rack. Downward pointing vents from these ducts release ventilating air to the interior of the IU. During fueling, gaseous nitrogen was supplied instead of air, to purge any propellant gases that might otherwise accumulate in the IU.
Gas bearing supply
To reduce errors in sensing attitude and velocity, designers cut friction to a minimum in the platform gyros and accelerometers by floating the bearings on a thin film of dry nitrogen. The nitrogen was supplied from a sphere holding 2 cu ft (56.6 L) of gas at 3,000
psig
The pound per square inch or, more accurately, pound-force per square inch (symbol: lbf/in2; abbreviation: psi) is a unit of pressure or of stress based on avoirdupois units. It is the pressure resulting from a force of one pound-force applied to ...
(pounds per square inch gauge, i.e. psi above one atmosphere) (20,7
MPa
MPA or mPa may refer to:
Academia
Academic degrees
* Master of Performing Arts
* Master of Professional Accountancy
* Master of Public Administration
* Master of Public Affairs
Schools
* Mesa Preparatory Academy
* Morgan Park Academy
* Mo ...
). This sphere is 21 inches (0,53 m) in diameter and is mounted at location 22, to the left of the ST-124-M3. Gas from the supply sphere passes through a filter, a pressure regulator, and a heat exchanger before flowing through the bearings in the stable platform.
Hazardous gas detection
The hazardous gas detection system monitors the presence of hazardous gases in the IU and S-IVB stage forward compartments during vehicle fueling. Gas was
sampled at four locations: between panels 1 and 2, 7 and 8, 13 and 14, and 19 and 20. Tubes lead from these locations to location 7, where they were connected to ground support equipment (external to the IU) which can detect hazardous gases.
Emergency detection
The emergency detection system (EDS) sensed initial development of conditions in the flight vehicle during the boost phases of flight which could cause vehicle failure. The EDS reacted to these emergency situations in one of two ways. If breakup of the vehicle were imminent, an automatic abort sequence would be initiated. If, however, the emergency condition were developing slowly enough or were of such a nature that the flight crew can evaluate it and take action, only visual indications were provided to the flight crew. Once an abort sequence had been initiated, either automatically or manually, it was irrevocable and ran to completion.
The EDS was distributed throughout the vehicle and includes some components in the IU. There were nine EDS rate gyros installed at location 15 in the IU. Three gyros monitored each of the three axes (pitch, roll and yaw), providing triple redundancy. The control signal processor (location 15) provided power to and received inputs from the nine EDS rate gyros. These inputs were processed and sent to the EDS distributor (location 14) and to the flight control computer (location 16). The EDS distributor served as a junction box and switching device to furnish the spacecraft display panels with emergency signals if emergency conditions existed. It also contained relay and diode logic for the automatic abort sequence. An electronic timer (location 17) was activated at liftoff and 30 seconds later energized relays in the EDS distributor which allowed multiple engine shutdown. This function was inhibited during the first 30 seconds of launch, to preclude the vehicle falling back into the launch area. While the automatic abort was inhibited, the flight crew can initiate a manual abort if an angular-overrate or two-engine-out condition arose.
Radio communications
The IU communicated by radio continually to ground for several purposes. The measurement and telemetry system communicated data about internal processes and conditions on the Saturn V. The tracking system communicated data used by the Mission Ground Station (MGS) to determine vehicle location. The radio command system allowed the MGS to send commands up to the IU.
Measuring and telemetry
Approximately 200 parameters were measured on the IU and transmitted to the ground, in order to
*Assist in the checkout of the launch vehicle prior to launch,
*Determine vehicle condition and to verify received commands during flight, and
*Facilitate postflight analysis of the mission.
Parameters measured include
acceleration
In mechanics, acceleration is the rate of change of the velocity of an object with respect to time. Accelerations are vector quantities (in that they have magnitude and direction). The orientation of an object's acceleration is given by ...
,
angular velocity
In physics, angular velocity or rotational velocity ( or ), also known as angular frequency vector,(UP1) is a pseudovector representation of how fast the angular position or orientation of an object changes with time (i.e. how quickly an objec ...
,
flow rate,
position
Position often refers to:
* Position (geometry), the spatial location (rather than orientation) of an entity
* Position, a job or occupation
Position may also refer to:
Games and recreation
* Position (poker), location relative to the dealer
* ...
,
pressure
Pressure (symbol: ''p'' or ''P'') is the force applied perpendicular to the surface of an object per unit area over which that force is distributed. Gauge pressure (also spelled ''gage'' pressure)The preferred spelling varies by country a ...
,
temperature
Temperature is a physical quantity that expresses quantitatively the perceptions of hotness and coldness. Temperature is measured with a thermometer.
Thermometers are calibrated in various temperature scales that historically have relied on ...
,
voltage
Voltage, also known as electric pressure, electric tension, or (electric) potential difference, is the difference in electric potential between two points. In a static electric field, it corresponds to the work needed per unit of charge t ...
,
current,
frequency
Frequency is the number of occurrences of a repeating event per unit of time. It is also occasionally referred to as ''temporal frequency'' for clarity, and is distinct from '' angular frequency''. Frequency is measured in hertz (Hz) which is ...
, and others.
Sensor signals were conditioned by
amplifier
An amplifier, electronic amplifier or (informally) amp is an electronic device that can increase the magnitude of a signal (a time-varying voltage or current). It may increase the power significantly, or its main effect may be to boost th ...
s or
converters located in measuring racks. There are four measuring racks in the IU at locations 1, 9, and 15 and twenty signal conditioning modules in each. Conditioned signals were routed to their assigned telemetry channel by the measuring distributor at location 10. There were two telemetry links. In order for the two IU telemetry links to handle approximately 200 separate measurements, these links must be shared. Both frequency sharing and time sharing
multiplexing
In telecommunications and computer networking, multiplexing (sometimes contracted to muxing) is a method by which multiple analog or digital signals are combined into one signal over a shared medium. The aim is to share a scarce resource - a ...
techniques were used to accomplish this. The two
modulation
In electronics and telecommunications, modulation is the process of varying one or more properties of a periodic waveform, called the '' carrier signal'', with a separate signal called the ''modulation signal'' that typically contains informat ...
techniques used were pulse code modulation/frequency modulation (PCM/FM) and frequency modulation/frequency modulation (FM/FM).
Two Model 270 time sharing
multiplexer
In electronics, a multiplexer (or mux; spelled sometimes as multiplexor), also known as a data selector, is a device that selects between several analog or digital input signals and forwards the selected input to a single output line. The sel ...
s (MUX-270) were used in the IU telemetry system, mounted at locations 9 and 10. Each one operates as a 30×120 multiplexer (30 primary channels, each sampled 120 times per second) with provisions for submultiplexing individual primary channels to form 10 subchannels each sampled at 12 times per second. Outputs from the MUX-270 go to the PCM/DDAS assembly model 301 at location 12, which in turn drives the 245.3 MHz PCM VHF transmitter.
The FM/FM signals were carried in 28 subcarrier channels and transmitted by a 250.7 MHz FM transmitter.
Both the FM/FM and the PCM/FM channels were coupled to the two telemetry antennas on opposite sides of the IU outside locations 10 and 22.
Tracking
C-band radar
Radar is a detection system that uses radio waves to determine the distance ('' ranging''), angle, and radial velocity of objects relative to the site. It can be used to detect aircraft, ships, spacecraft, guided missiles, motor vehicles, w ...
transponder
In telecommunications, a transponder is a device that, upon receiving a signal, emits a different signal in response. The term is a blend of ''transmitter'' and ''responder''.
In air navigation or radio frequency identification, a flight trans ...
s carried by the IU provided tracking data to the ground which were used to determine the vehicle's
trajectory
A trajectory or flight path is the path that an object with mass in motion follows through space as a function of time. In classical mechanics, a trajectory is defined by Hamiltonian mechanics via canonical coordinates; hence, a complete ...
. The transponder received coded or single pulse interrogation from ground stations and transmitted a single-pulse reply in the same frequency band (5.4 to 5.9
GHz). A common
antenna was used for receiving and transmitting. The C-band transponder antennas are outside locations 11 and 23, immediately below CCS PCM omni receive antennas.
Radio command
The command communications system (CCS) provided for digital data transmission from ground stations to the LVDC. This communications link was used to update guidance information or command certain other functions through the LVDC. Command data originated in the
Mission Control Center,
Houston
Houston (; ) is the List of cities in Texas by population, most populous city in Texas, the Southern United States#Major cities, most populous city in the Southern United States, the List of United States cities by population, fourth-most pop ...
, and was sent to remote stations for transmission to the launch vehicle. Command messages were transmitted from the ground at 2101.8 MHz. The received message was passed to the command decoder (location 18), where it was checked for authenticity before being passed to the LVDC. Verification of message receipt was accomplished through the IU PCM telemetry system. The CCS system used five antennas:
*A single directional antenna outside location 3–4,
*Two omni transmit antennas outside locations 11 and 23, and
*Two omni receive antennas outside locations 12 and 24.
Power
Power during flight originated with four silver-zinc batteries with a nominal voltage of 28±2 vdc. Battery D10 sat on a shelf at location 5, batteries D30 and D40 were on shelves in location 4, and battery D20 was at location 24. Two power supplies converted the unregulated battery power to regulated 56 vdc and 5 vdc. The 56 vdc power supply was at location 1 and provided power to the ST-124-M3 platform electronic assembly and the accelerometer signal conditioner. The 5 vdc power supply at location 12 provided 5 ±.005 vdc to the IU measuring system.
Gallery
These images show the development of the IU. The first four Saturn launches did not have an IU, but used guidance, telemetry and other equipment installed on top of the first stage.
The first IU flew on the fifth Saturn launch, SA-5, and was in diameter and high. The components it carried were in pressurized containers. This version flew on SA-5, SA-6 and SA-7. The IU carried by missions SA-8, -9, and -10 was only high, and was not pressurized.
["Saturn I Summary." 15 February 1966.]
With the Saturn IB and Saturn V launches, a third version was used, in diameter and high. Comparison of these photographs of the instrument unit shows that the configuration of components carried by this version changed, depending on the mission. Some equipment was deleted (e.g., the Azusa tracking system was deleted from later IUs), some equipment was added (e.g., a fourth battery for longer missions), and other components were moved around.
These images also show that some components (e.g., batteries, the ST-124 inertial platform) were installed in the IU after it had been stacked in the VAB on top of the S-IVB third stage.
Image:Saturn I vehicles.jpg, Saturn I vehicles compared. No IU on SA-1 to -4; version 1 on SA-5 to -7; version 2 on SA-8 to -10.
Image:Saturn I characteristics.jpg, Saturn I configuration
Image:Saturn IB characteristics.jpg, Saturn IB configuration
Image:SA-2 vehicle configurationMOD.jpg, Before the instrument unit, Saturn guidance components were contained in canisters.
Image:Instrument containers of the S-1 booster.jpg, Canisters being installed in forward end of S-1 stage
Image:BoosterWithCanisters.jpg, S-1 stage with canisters in the forward end
Image:SaturnC-1 InstrumentUnit.jpg, IU version 1 dimensions
Image:Saturn BlockII IU mockup.jpg, Mockup of version 1 of the instrument unit
Image:SaturnC-1 InstrumentUnitExploded.jpg, Exploded view of version 1 of the instrument unit
Image:Saturn I Block II IUs.jpg, Versions 1 and 2 of the IU
Image:Saturn V Instrument Unit (MSFC-6412716).jpg, Early instrument unit at Marshall Space Flight Center Building 4705
Image:System Test of the Saturn V Instrument Unit (6861934).jpg, IU at IBM plant in Huntsville
Image:Four IUs.jpg, Four IUs in the IBM plant at Huntsville
Image:IU-501 Apollo 4.jpg, IU-501 flew on the Apollo 4 mission
Image:IU-501 From Below.jpg, IU-501 from below in the VAB
Image:IU 501 From Top.jpg, IU-501 on top of the S-IVB in the stack for the Apollo 4 mission (SA-501)
Image:Saturn V Instument Unit assembly.jpg, IU-502 above the S-IVB stage in the VAB on July 14, 1967
File:Saturn V IU at KSC.jpg, SA-514 IU on display at the Apollo/Saturn V Center
References
Saturn
* Bilstein, Roger E. (1980). ''Stages to Saturn: A Technological History of the Apollo/Saturn Launch Vehicles.'' NASA SP-4206. . Available on-line
HTMLo
PDF* David S. Akens. ‘’Saturn Illustrated Chronology. Saturn's First Eleven Years: April 1957 through April 1968’’. NASA - Marshall Space Flight Center, MHR-5, 20 Jan 1971. Available online
* "Saturn I Summary." A 43-page popular account of the Saturn I program, dated 15 February 1966, covering missions SA-1 to SA-10. Available online from NTRS
PDF* "Saturn V Press Kit." Includes documents on Saturn V, first stage, F-1 engine, second stage, J-2 engine, instrument unit, facilities, testing, vehicle assembly and launch, program manager, flight history, STS-1, contractors, glossary, and index. Available online
* "The Apollo "A"/Saturn C-1 Launch Vehicle System". NASA MSFC Saturn Systems Office, 17 July 1961. 410 pages. NASA TM X-69174. MOR-MSAT- 61–5. Available online
PDFInformation and drawings about version 1 of the IU.
* Duran, B.E. "Saturn I/IB Launch Vehicle Operational Status and Experience". Paper given at Aeronautic and Space Engineering and Manufacturing Meeting of the Society of Automotive Engineers, Los Angeles, CA, Oct 7–11, 1968. 30 pages. Duran worked for Chrysler, maker of the S-1 booster.
* "Steps to Saturn". NASA MSFC, 106 pages. Available onlin
PDFDescribes booster manufacture by MSFC and use of canisters containing guidance equipment before the IU.
Apollo
* Charles D. Benson and William Barnaby Faherty. ''Moonport: A History of Apollo Launch Facilities and Operations.'' NASA SP-4204, 1978. Available online
* "Apollo Program Summary Report." NASA Lyndon B. Johnson Space Center, Houston, Texas, April 1975. JSC-09423. Available online
* Ivan D. Ertel, Mary Louise Mors, Jean Kernahan Bays, Courtney G. Brooks and Roland W. Newkirk. ''The Apollo Spacecraft: A Chronology.'' NASA SP-4009. Available online
* Orloff, Richard W. "Apollo By The Numbers". NASA History Division, Washington, DC, 2000. NASA SP-2000-4029. 345 pages. Available online
Appendices useful.
* "Apollo Program Flight Summary Report Apollo Missions AS-201 through Apollo 16". NASA Office of Manned Space Flight, Une 1972. 125 pages. Available online
PDF
Specific missions
* "Saturn SA-1 Flight Evaluation". NASA MSFC, December 14, 1961. MPRSAT- WF-61-8. Available onlin
PDFDescribes the Saturn guidance system before the IU.
* Brandner, F.W. "Technical Information Summary Concerning Saturn Vehicle SA-2". NASA MSFC Memo dated 5 April 1962. TMX 51831. 16 pages. Available online
PDFDescribes the Saturn guidance system before the IU.
* "Results of the Fourth Saturn IB Launch Vehicle Test Flight AS-204". NASA MSFC, 5 April 1968. 365 pages. MPR-SAT-FE-68-2. NASA TM X-61111. Available online
PDFDescribes changes to the IU made on the basis of data from mission SA-204.
* Chrysler Corporation, Huntsville Division. "Saturn Antenna Systems, SA-5". NASA MSFC Astrionics Division Instrumentation Branch, 18 June 1963. 439 pages. Available online
PDFDescribes some aspects of version 1 of the IU.
* Weichel, H.J. "SA-8 Flight Test Data Report". NASA Technical Memorandum TM X-53308. 2 August 1965. Available onlin
PDFAccording to this, the ASC-15 and the ST-90 were used in the active guidance system, while the ST-124 was part of the passenger system.
* "Saturn V Flight Manual SA-507." A 244-page description of Saturn-Apollo 507, dated 5 October 1969. Includes a chapter about the instrument unit (Section VII, PDF page 149). Available on-line:
PDF
Instrument unit
* IBM. "Instrument Unit System Description and Component Data." This lists, in Table 1, all components by name, part number, reference designation and location for IU-201 to -212 and IU-501 to -515. It also includes photos of many components. The change history page lists six changes, the latest being January 1970, the year IU-508 was launched.
* "Instrument Unit Fact Sheet." An 8-page Saturn V News Reference, dated December 1968, about the time IU-505 was delivered to Cape Canaveral. Available online
PDF* "Saturn Instrument Unit." A 102-page description of the IU, dated April 1968, prepared by Boeing.
* "Astrionics System Handbook for Saturn Launch Vehicles." A 417-page description of most of the functions and subsystems of the instrument unit, dated 1 November 1968. Available on-line
PDF
* Lowery, H.R. "Saturn Instrument Unit Command System". NASA MSFC Huntsville, Alabama, 22 October 1965. 45 pages. Technical Memorandum X- 53350. Available onlin
PDF* "Saturn IB/V Instrument Unit Instrumentation System Description". International Business Machines, Federal Systems Division, Huntsville, Alabama, 1 June 1966. 119 pages. IBM No. 65-966-0021, MSFC No. III-5-509-1. Available onlin
PDFDescribes the transducers, measurement system, and telemetry function of the IU.
Instrument unit guidance
* Herman E. Thomason. "General Description of the ST-124M Inertial Platform System." NASA TN D-2983, dated September 1965. 93 pages. This has clearer figures than most of the PDF documents about the IU, providing the best views of the insides of the gyros and gas bearings. Available on-line
PDF*
Walter Haeussermann. "Description and Performance of the Saturn Launch Vehicle's Navigation, Guidance, and Control System." NASA TN D-5869, dated July 1970. 52 pages. Available online
PDF* Richard L. Moore and Herman E. Thomason. "Gimbal Geometry and Attitude Sensing of the ST-124 Stabilized Platform." NASA TN D-1118, dated May 1962. An early, and mathematical, rather than descriptive, account of the ST-124. At this date the ST-124 was a 4-gimbal concept, whereas the version that flew had only 3 gimbals. Available onlin
PDF* "Saturn V Launch Vehicle Digital Computer. Volume 1: General Description and Theory." IBM, 30 November 1964. Changed 4 January 1965. 256 pages. Available online
PDF* "Laboratory Maintenance Instructions for the Saturn V Launch Vehicle Digital Computer." Volume 1 of 2, dated 4 January 1965. 256 pages.
* Decher, Rudolf. "The Astrionics System of Saturn Launch Vehicles". NASA MSFC Huntsville, Alabama, 1 February 1966. 180 pages. NASA TM X- 53384. Available online
PDF* Lyons, R.E. and Vanderkulk, W. "The Use of Triple-Modular Redundancy to Improve Computer Reliability". IBM Journal, April 1962, pp. 200–209. Available online
PDFTheory behind the LVDC.
* Stumpf, David K. "Titan II. A History of a Cold War Missile Program.". University of Arkansas Press, Fayetteville, Arkansas, 2000. . Picture of the ASC-15 computer used on the Titan II and on early Saturn flights. The ASC-15 was the predecessor of the LVDC, and was the guidance computer before the IU and on IU version 1, at least.
NASA computers
* Tomayko, James E. "Computers in Spaceflight: The NASA Experience". NASA Contractor Report 182505, March 1988. Available online
* "Spaceborne Digital Computer Systems". NASA, SP-8070, March 1971. Available online
PDF
Notes
External links
*
ttps://history.nasa.gov/diagrams/apollo.html Project Apollo Drawings and Technical Diagrams HTMLbr>
Project Apollo Archive, Apollo Image Gallery, NASA Public Affairs Office website by Kip Teague HTMLApollo Lunar Surface Journal HTMLQuickTime Virtual Reality movie of the interior of IU-514 on display at National Air and Space Museum, Udvar-Hazy Center, Dulles, Virginia MOVThe names of internal components appear in the lower left part of the frame when you mouse over them. If your browser does not display this file, download it to your computer and open it with QuickTime Player.
{{Apollo program hardware
Apollo program
Saturn (rocket family)
Apollo program hardware